ligatrap IgG纯化树脂和色谱柱产品

 ligatrap IgG纯化树脂和色谱柱产品

 

IgG Purification Resin and Columns

 

Part # Name Amount Price
LT-095KIT

LigaTrap Human IgG Kit

1 Kit $294.00
 
 
 
LT-095

LigaTrap Human IgG Resin

5 ml $450.00
 
 
 
LT-095-1x1ml

LigaTrap® Human IgG Purification Column

1 ml $100.00
 
 
 
LT-095-1x5ml

LigaTrap® Human IgG Purification Column

1 x 5 ml $475.00
 
 
 
LT-095-3x1ml

LigaTrap® Human IgG Purification Column

3 x 1 ml $295.00

 

IgG纯化树脂和色谱柱

免疫球蛋白G(IgG)代表人体中约75%的血清抗体,IgG是血液循环中常见的抗体类型。IgG分子由血浆B细胞产生和释放。每个IgG具有两个抗原结合位点。人IgG1和IgG3在引发抗体依赖性细胞介导的细胞毒性(ADCC)和补体依赖性细胞毒性(CDC)方面具有很高的活性。相反,IgG2和IgG4引起这种免疫应答的能力要差得多。结果,IgG1和IgG3适合用于针对癌细胞的治疗用途。

gG产量和纯度

通过将样品通过LigaTrap®人IgG树脂,Pierce Plus蛋白A和Pierce蛋白G,从含有PBS和80 mg / ml负载量的CHO加标培养基中纯化人IgG。纯度> 95%。与*的竞争对手蛋白A和G相比,掺入1%FBS的CHO培养基中的人IgG亚类证明了人IgG纯化IgG1和IgG2的能力。IgM纯化树脂的主要竞争者使用了三种不同的制造商推荐的结合条件。遵循所有制造商推荐的色谱方案。

可比性

SDS页面

 

关于LigaTrap

LigaTrap®纯化试剂盒和树脂  方便易用。只需将样品添加到树脂中,混合并离心。LigaTrap®纯化方案不仅易于遵循,而且可以快速简便地回收纯化的抗体,以便在终用途分析中进行筛选。可以同时处理多个样品,从而  快速  筛选抗体的产生。LigaTrap®旋转柱仅需使用移液器和离心机,无需设备。每个旋转柱多可以进行10次纯化,每个试剂盒都可以进行100多次纯化,从而使LigaTrap®成为一种经济高效的抗体纯化方法。

 

过氧化物酶HRP标记山羊抗兔IgG抗体|Peroxidase-Conjugated Goat Anti-Rabbit IgG

过氧化物酶HRP标记山羊抗兔IgG抗体|Peroxidase-Conjugated Goat Anti-Rabbit IgG

产品说明书

FAQ

COA

已发表文献

产品简介

本品是由辣根过氧化酶(HRP)标记的山羊抗兔IgG(H+L),使用抗原偶联的琼脂糖微珠从山羊抗血清内亲和色谱纯化所得。免疫电泳和/或ELISA法检测显示本品特异性结合完整的兔IgG分子,也会与其他兔免疫球蛋白的轻链结合。可能会与其他物种免疫球蛋白发生交叉反应,但不会识别非免疫球蛋白类的血清蛋白。

本品适合做单标实验。要做多标(Multiple-labeling)实验,建议使用经过与相近物种血清蛋白或者免疫球蛋白预先经过亲和吸附处理的二抗。

 

产品应用

建议稀释浓度:

IHC/ICC:1:500-1:5000;

ELISA/WB(显色法):1:5000-1:100000;

ELISA/WB(化学发光法):1:10000-1:200000;

 

产品信息

抗体浓度(Antibody Concentration)

100 μL(0.4 mg/mL)

缓冲液(Buffer)

0.005M 磷酸钠,0.125M 氯化钠,pH7.6

稳定剂(Stabilizer)

7.5 mg/mL BSA(无IgG,蛋白酶), 50%甘油

防腐剂(Preservative)

None(叠氮化钠会抑制HRP活性)

原料来源(Source of Material)

Jackson Immunoresearch 111-035-003

 

储存条件

-25 ~ -15℃分装保存,尽量避免反复冻融。有效期1年。

 

注意事项

1)本品不能保存于叠氮化钠中其会抑制辣根过氧化酶(HRP)活性;

2)为了您的安全和健康,请穿实验服并戴一次性手套操作。

3)本产品仅作科研用途!

 

过氧化物酶HRP标记山羊抗兔IgG抗体|Peroxidase-Conjugated Goat Anti-Rabbit IgG

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产品简介

本品是由辣根过氧化酶(HRP)标记的山羊抗兔IgG(H+L),使用抗原偶联的琼脂糖微珠从山羊抗血清内亲和色谱纯化所得。免疫电泳和/或ELISA法检测显示本品特异性结合完整的兔IgG分子,也会与其他兔免疫球蛋白的轻链结合。可能会与其他物种免疫球蛋白发生交叉反应,但不会识别非免疫球蛋白类的血清蛋白。

本品适合做单标实验。要做多标(Multiple-labeling)实验,建议使用经过与相近物种血清蛋白或者免疫球蛋白预先经过亲和吸附处理的二抗。

 

产品应用

建议稀释浓度:

IHC/ICC:1:500-1:5000;

ELISA/WB(显色法):1:5000-1:100000;

ELISA/WB(化学发光法):1:10000-1:200000;

 

产品信息

抗体浓度(Antibody Concentration)

100 μL(0.4 mg/mL)

缓冲液(Buffer)

0.005M 磷酸钠,0.125M 氯化钠,pH7.6

稳定剂(Stabilizer)

7.5 mg/mL BSA(无IgG,蛋白酶), 50%甘油

防腐剂(Preservative)

None(叠氮化钠会抑制HRP活性)

原料来源(Source of Material)

Jackson Immunoresearch 111-035-003

 

储存条件

-25 ~ -15℃分装保存,尽量避免反复冻融。有效期1年。

 

注意事项

1)本品不能保存于叠氮化钠中其会抑制辣根过氧化酶(HRP)活性;

2)为了您的安全和健康,请穿实验服并戴一次性手套操作。

3)本产品仅作科研用途!

 

过氧化物酶HRP标记山羊抗兔IgG抗体|Peroxidase-Conjugated Goat Anti-Rabbit IgG

暂无内容

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[2] Xia B, Shen X, He Y, et al. SARS-CoV-2 envelope protein causes acute respiratory distress syndrome (ARDS)-like pathological damages and constitutes an antiviral target. Cell Res. 2021;31(8):847-860. doi:10.1038/s41422-021-00519-4(IF:25.617)
[3] Yang WQ, Xiong QP, Ge JY, et al. THUMPD3-TRMT112 is a m2G methyltransferase working on a broad range of tRNA substrates. Nucleic Acids Res. 2021;49(20):11900-11919. doi:10.1093/nar/gkab927(IF:16.971)
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[6] Han L, Lai H, Yang Y, et al. A 5'-tRNA halve, tiRNA-Gly promotes cell proliferation and migration via binding to RBM17 and inducing alternative splicing in papillary thyroid cancer. J Exp Clin Cancer Res. 2021;40(1):222. Published 2021 Jul 5. doi:10.1186/s13046-021-02024-3(IF:11.161)
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[8] Wang T, Hu J, Luo H, et al. Photosensitizer and Autophagy Promoter Coloaded ROS-Responsive Dendrimer-Assembled Carrier for Synergistic Enhancement of Tumor Growth Suppression. Small. 2018;14(38):e1802337. doi:10.1002/smll.201802337(IF:9.598)
[9] Wu X, Qiao S, Wang W, et al. Melatonin prevents peri‑implantitis via suppression of TLR4/NF-κB. Acta Biomater. 2021;134:325-336. doi:10.1016/j.actbio.2021.07.017(IF:8.947)
[10] Fang DD, Tang Q, Kong Y, et al. MDM2 inhibitor APG-115 synergizes with PD-1 blockade through enhancing antitumor immunity in the tumor microenvironment. J Immunother Cancer. 2019;7(1):327. Published 2019 Nov 28. doi:10.1186/s40425-019-0750-6(IF:8.728)
[11] Song Y, Guo Y, Li X, et al. RBM39 Alters Phosphorylation of c-Jun and Binds to Viral RNA to Promote PRRSV Proliferation. Front Immunol. 2021;12:664417. Published 2021 May 17. doi:10.3389/fimmu.2021.664417(IF:7.561)
[12] Wang C, Qu L, Li S, et al. Discovery of First-in-Class Dual PARP and EZH2 Inhibitors for Triple-Negative Breast Cancer with Wild-Type BRCA. J Med Chem. 2021;64(17):12630-12650. doi:10.1021/acs.jmedchem.1c00567(IF:7.446)
[13] Song M, Wang Y, Chen Z, et al. Human CYP enzyme-activated genotoxicity of 2,2',4,4'-tetrabromobiphenyl ether in mammalian cells. Chemosphere. 2022;291(Pt 1):132784. doi:10.1016/j.chemosphere.2021.132784(IF:7.086)
[14] Liu S, Xu DS, Li M, et al. Icariin attenuates endothelial-mesenchymal transition via H19/miR-148b-3p/ELF5 in ox-LDL-stimulated HUVECs. Mol Ther Nucleic Acids. 2020;23:464-475. Published 2020 Dec 3. doi:10.1016/j.omtn.2020.11.021(IF:7.032)
[15] Wang C, Zhang H, Fu J, et al. Bartonella type IV secretion effector BepC induces stress fiber formation through activation of GEF-H1. PLoS Pathog. 2021;17(1):e1009065. Published 2021 Jan 28. doi:10.1371/journal.ppat.1009065(IF:6.823)
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[17] Qu L, Li S, Ji L, et al. Discovery of PT-65 as a highly potent and selective Proteolysis-targeting chimera degrader of GSK3 for treating Alzheimer's disease. Eur J Med Chem. 2021;226:113889. doi:10.1016/j.ejmech.2021.113889(IF:6.514)
[18] Lao Y, Wang Y, Chen J, et al. Synthesis and biological evaluation of 1,2,4-triazole derivatives as potential Nrf2 activators for the treatment of cerebral ischemic injury. Eur J Med Chem. 2022;236:114315. doi:10.1016/j.ejmech.2022.114315(IF:6.514)
[19] Wang C, Chen X, Liu X, et al. Discovery of precision targeting EZH2 degraders for triple-negative breast cancer. Eur J Med Chem. 2022;238:114462. doi:10.1016/j.ejmech.2022.114462(IF:6.514)
[20] Qu L, Ji L, Wang C, et al. Synthesis and evaluation of multi-target-directed ligands with BACE-1 inhibitory and Nrf2 agonist activities as potential agents against Alzheimer's disease. Eur J Med Chem. 2021;219:113441. doi:10.1016/j.ejmech.2021.113441(IF:6.514)
[21] Bu S, Wang Q, Sun J, Li X, Gu T, Lai D. Melatonin suppresses chronic restraint stress-mediated metastasis of epithelial ovarian cancer via NE/AKT/β-catenin/SLUG axis [published correction appears in Cell Death Dis. 2020 Sep 8;11(9):726]. Cell Death Dis. 2020;11(8):644. Published 2020 Aug 18. doi:10.1038/s41419-020-02906-y(IF:6.304)
[22] Ning FL, Tao J, Li DD, et al. Activating BK channels ameliorates vascular smooth muscle calcification through Akt signaling. Acta Pharmacol Sin. 2022;43(3):624-633. doi:10.1038/s41401-021-00704-6(IF:6.150)
[23] Wang C, Zhang J, Song S, et al. Imaging epileptic foci in mouse models via a low-density lipoprotein receptor-related protein-1 targeting strategy. EBioMedicine. 2021;63:103156. doi:10.1016/j.ebiom.2020.103156(IF:5.736)
[24] Xu R, Lai C, Yang F, et al. Preliminary Characterization of Two Small Insulinase-Like Proteases in Cryptosporidium parvum. Front Microbiol. 2021;12:651512. Published 2021 May 21. doi:10.3389/fmicb.2021.651512(IF:5.640)
[25] Su J, Jin C, Wu H, et al. Differential Expression of Three Cryptosporidium Species-Specific MEDLE Proteins. Front Microbiol. 2019;10:1177. Published 2019 May 29. doi:10.3389/fmicb.2019.01177(IF:5.640)
[26] Zhang S, Wang Y, Wu H, et al. Characterization of a Species-Specific Insulinase-Like Protease in Cryptosporidium parvum. Front Microbiol. 2019;10:354. Published 2019 Mar 6. doi:10.3389/fmicb.2019.00354(IF:5.640)
[27] Yang R, Li D, Yi S, Wang M. Evolutionarily conserved odorant-binding proteins participate in establishing tritrophic interactions. iScience. 2022;25(7):104664. Published 2022 Jun 23. doi:10.1016/j.isci.2022.104664(IF:5.458)
[28] Fang DD, Tang Q, Kong Y, et al. MDM2 inhibitor APG-115 exerts potent antitumor activity and synergizes with standard-of-care agents in preclinical acute myeloid leukemia models. Cell Death Discov. 2021;7(1):90. Published 2021 May 3. doi:10.1038/s41420-021-00465-5(IF:5.241)
[29] Ma Y, Zheng K, Pang Y, et al. Anti-hypertrophic effect of synovium-derived stromal cells on costal chondrocytes promotes cartilage repairs. J Orthop Translat. 2021;32:59-68. Published 2021 Jun 2. doi:10.1016/j.jot.2021.05.002(IF:5.191)
[30] Wu X, Jin S, Yang Y, et al. Altered expression of ferroptosis markers and iron metabolism reveals a potential role of ferroptosis in vitiligo. Pigment Cell Melanoma Res. 2022;35(3):328-341. doi:10.1111/pcmr.13032(IF:4.693)
[31] Li Z, Liu S, Fu T, Peng Y, Zhang J. Microtubule destabilization caused by silicate via HDAC6 activation contributes to autophagic dysfunction in bone mesenchymal stem cells. Stem Cell Res Ther. 2019;10(1):351. Published 2019 Nov 27. doi:10.1186/s13287-019-1441-4(IF:4.627)
[32] Shi X, Ding K, Zhao Q, et al. Suppression of CPSF6 Enhances Apoptosis Through Alternative Polyadenylation-Mediated Shortening of the VHL 3'UTR in Gastric Cancer Cells. Front Genet. 2021;12:707644. Published 2021 Sep 14. doi:10.3389/fgene.2021.707644(IF:4.599)
[33] Chen Z, Li Z, Jiang C, Jiang X, Zhang J. MiR-92b-3p promotes neurite growth and functional recovery via the PTEN/AKT pathway in acute spinal cord injury. J Cell Physiol. 2019;234(12):23043-23052. doi:10.1002/jcp.28864(IF:4.522)
[34] Yao H, Xu K, Zhou J, Zhou L, Wei S. A Tumor Microenvironment Destroyer for Efficient Cancer Suppression. ACS Biomater Sci Eng. 2020;6(1):450-462. doi:10.1021/acsbiomaterials.9b01544(IF:4.511)
[35] Sun X, Zhang J, Nie Q. Inferring latent temporal progression and regulatory networks from cross-sectional transcriptomic data of cancer samples. PLoS Comput Biol. 2021;17(3):e1008379. Published 2021 Mar 5. doi:10.1371/journal.pcbi.1008379(IF:4.475)
[36] Yin L, Zhang L, Luo L, et al. Berbamine reduces body weight via suppression of small GTPase Rab8a activity and activation of paraventricular hypothalamic neurons in obese mice. Eur J Pharmacol. 2022;916:174679. doi:10.1016/j.ejphar.2021.174679(IF:4.432)
[37] Fang DD, Zhu H, Tang Q, et al. FLT3 inhibition by olverembatinib (HQP1351) downregulates MCL-1 and synergizes with BCL-2 inhibitor lisaftoclax (APG-2575) in preclinical models of FLT3-ITD mutant acute myeloid leukemia. Transl Oncol. 2022;15(1):101244. doi:10.1016/j.tranon.2021.101244(IF:4.243)
[38] Li D, Qiu X, Yang J, Liu T, Luo Y, Lu Y. Generation of Human Lens Epithelial-Like Cells From Patient-Specific Induced Pluripotent Stem Cells. J Cell Physiol. 2016;231(12):2555-2562. doi:10.1002/jcp.25374(IF:4.155)
[39] Su J, Shen Y, Li N, et al. Comparative Characterization of CpCDPK1 and CpCDPK9, Two Potential Drug Targets Against Cryptosporidiosis. Microorganisms. 2022;10(2):333. Published 2022 Feb 1. doi:10.3390/microorganisms10020333(IF:4.128)
[40] Guo Y, Huo J, Wu D, et al. Simvastatin inhibits the adipogenesis of bone marrow‑derived mesenchymal stem cells through the downregulation of chemerin/CMKLR1 signaling. Int J Mol Med. 2020;46(2):751-761. doi:10.3892/ijmm.2020.4606(IF:4.101)
[41] Yang B, Li Y, Ma Y, et al. Selenium attenuates ischemia/reperfusion injury‑induced damage to the blood‑brain barrier in hyperglycemia through PI3K/AKT/mTOR pathway‑mediated autophagy inhibition. Int J Mol Med. 2021;48(3):178. doi:10.3892/ijmm.2021.5011(IF:4.101)
[42] Liu S, Xu DS, Ma JL, Huang P, Wu D, Ren LQ. LncRNA H19 Mitigates Oxidized Low-Density Lipoprotein Induced Pyroptosis via Caspase-1 in Raw 264.7 Cells. Inflammation. 2021;44(6):2407-2418. doi:10.1007/s10753-021-01511-1(IF:4.092)
[43] Zhang H, Guo F, Qi P, et al. OsHDA710-Mediated Histone Deacetylation Regulates Callus Formation of Rice Mature Embryo. Plant Cell Physiol. 2020;61(9):1646-1660. doi:10.1093/pcp/pcaa086(IF:4.062)
[44] Sun T, Zhang L, Feng J, et al. Characterization of cellular senescence in doxorubicin-induced aging mice. Exp Gerontol. 2022;163:111800. doi:10.1016/j.exger.2022.111800(IF:4.032)
[45] Wang J, Zhang Y, Liu X, Liu H. Is the Fixed Periodic Treatment Effective for the Tumor System without Complete Information?. Cancer Manag Res. 2021;13:8915-8928. Published 2021 Nov 30. doi:10.2147/CMAR.S339787(IF:3.989)
[46] Chen M, Lin H, Gao Y, Wang Z, Li Y, Jin F. Ghrelin attenuates drowning injury via dual effects on damage protection and immune repression. Ann Transl Med. 2021;9(11):920. doi:10.21037/atm-21-795(IF:3.932)
[47] Shi L, Zhang XB, Shi YF, et al. OsCDC48/48E complex is required for plant survival in rice (Oryza sativa L.). Plant Mol Biol. 2019;100(1-2):163-179. doi:10.1007/s11103-019-00851-9(IF:3.928)
[48] Shi J, Wang Y, Chen J, et al. Synthesis and biological evaluation of 1,2,4-oxadiazole core derivatives as potential neuroprotectants against acute ischemic stroke. Neurochem Int. 2021;148:105103. doi:10.1016/j.neuint.2021.105103(IF:3.921)
[49] Zhang KW, Wang D, Cai H, et al. IL‑6 plays a crucial role in epithelial‑mesenchymal transition and pro‑metastasis induced by sorafenib in liver cancer. Oncol Rep. 2021;45(3):1105-1117. doi:10.3892/or.2021.7926(IF:3.906)
[50] Qu F, Song Y, Wu Y, et al. The protective role of Ephrin-B2/EphB4 signaling in osteogenic differentiation under inflammatory environment. Exp Cell Res. 2021;400(2):112505. doi:10.1016/j.yexcr.2021.112505(IF:3.905)
[51] Cheng Q, Fan X, Liu Y, et al. miR-455-5p regulates circadian rhythms by accelerating the degradation of Clock mRNA. IUBMB Life. 2022;74(3):245-258. doi:10.1002/iub.2587(IF:3.885)
[52] He RZ, Zheng JH, Yao HF, et al. ADAMTS12 promotes migration and epithelial-mesenchymal transition and predicts poor prognosis for pancreatic cancer [published online ahead of print, 2022 Apr 25]. Hepatobiliary Pancreat Dis Int. 2022;S1499-3872(22)00117-5. doi:10.1016/j.hbpd.2022.04.005(IF:3.780)
[53] Wang Y, Wang H, Zhang L, et al. Potential mechanisms of tremor tolerance induced in rats by the repeated administration of total alkaloid extracts from the seeds of Peganum harmala Linn. J Ethnopharmacol. 2020;262:113183. doi:10.1016/j.jep.2020.113183(IF:3.690)
[54] Bu S, Li B, Wang Q, et al. Epithelial ovarian cancer stem‑like cells are resistant to the cellular lysis of cytokine‑induced killer cells via HIF1A‑mediated downregulation of ICAM‑1. Int J Oncol. 2019;55(1):179-190. doi:10.3892/ijo.2019.4794(IF:3.571)
[55] Shen Y, Zhou M, Yan J, et al. miR-200b inhibits TNF-α-induced IL-8 secretion and tight junction disruption of intestinal epithelial cells in vitro. Am J Physiol Gastrointest Liver Physiol. 2017;312(2):G123-G132. doi:10.1152/ajpgi.00316.2016(IF:3.468)
[56] Yao C, Chen X, Xu Y, et al. Comparing pretreatment strategies to increase the yield and purity of human urinary extracellular vesicles [published online ahead of print, 2022 Jun 30]. J Chromatogr B Analyt Technol Biomed Life Sci. 2022;1206:123359. doi:10.1016/j.jchromb.2022.123359(IF:3.318)
[57] Cao H, Hua D, Zhang H, et al. Oral immunization of recombinant Saccharomyces cerevisiae expressing fiber-2 of fowl adenovirus serotype 4 induces protective immunity against homologous infection. Vet Microbiol. 2022;271:109490. doi:10.1016/j.vetmic.2022.109490(IF:3.293)
[58] Li Q , Sun J , Mohammadtursun N , Wu J , Dong J , Li L . Curcumin inhibits cigarette smoke-induced inflammation via modulating the PPARγ-NF-κB signaling pathway. Food Funct. 2019;10(12):7983-7994. doi:10.1039/c9fo02159k(IF:3.241)
[59] Yang LY, Liu XF, Yang Y, et al. Biochemical features of the adhesion G protein-coupled receptor CD97 related to its auto-proteolysis and HeLa cell attachment activities. Acta Pharmacol Sin. 2017;38(1):56-68. doi:10.1038/aps.2016.89(IF:3.166)
[60] Fei J, Wu H, Su J, et al. Characterization of MEDLE-1, a protein in early development of Cryptosporidium parvum. Parasit Vectors. 2018;11(1):312. Published 2018 May 23. doi:10.1186/s13071-018-2889-2(IF:3.163)
[61] Yao Y, Luo R, Xiong S, Zhang C, Zhang Y. Protective effects of curcumin against rat intestinal inflammation‑related motility disorders. Mol Med Rep. 2021;23(5):391. doi:10.3892/mmr.2021.12030(IF:2.952)
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[63] Li D, Han X, Zhao Z, Lu Y, Yang J. Functional analysis of deleterious EPHA2 SNPs in lens epithelial cells. Mol Vis. 2021;27:384-395. Published 2021 Jun 23. (IF:2.367)
[64] You J, Cheng Y, Yang XJ, Chen L. Generation of a homozygous LRP2 knockout human embryonic stem cell line (FDCHDPe010-A-56) by CRISPR/Cas9 system. Stem Cell Res. 2021;53:102342. doi:10.1016/j.scr.2021.102342(IF:2.020)
[65] You J, Xi H, Ma S, Yang XJ, Chen L. Generation of a homozygous LRPAP1 knockout human embryonic stem cell line (FDCHDPe009-B) by CRISPR/Cas9 system. Stem Cell Res. 2021;56:102516. doi:10.1016/j.scr.2021.102516(IF:2.020)
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[67] Liu X, Xie F, Lai G, Wang J. Roles of heterogeneous nuclear ribonucleoprotein L in enamel organ development and the differentiation of ameloblasts. Arch Oral Biol. 2020;120:104933. doi:10.1016/j.archoralbio.2020.104933(IF:1.931)
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[70] Li X, Lei Y, Yu Y, et al. Discovery and characterization of a novel splice variant of the p53 tumor suppressor gene in a human T cell leukemia cellline. Int J Clin Exp Pathol. 2020;13(5):1121-1135. Published 2020 May 1. (IF:0.252)
[71] Feng Y, Jiang C, Yang F, Chen Z, Li Z. Apocynum venetum leaf extract protects against H2O2-induced oxidative stress by increasing autophagy in PC12 cells. Biomed Rep. 2020;13(2):6. doi:10.3892/br.2020.1313(IF:0.000)

碱性磷酸酶标记山羊抗兔IgG抗体(H+L) |Goat Anti-Rabbit IgG

碱性磷酸酶标记山羊抗兔IgG抗体(H+L) |Goat Anti-Rabbit IgG

产品说明书

FAQ

COA

已发表文献

产品描述

本品是由碱性磷酸酶(AP)标记的山羊抗兔IgG(H+L),使用抗原偶联的琼脂糖微珠从山羊抗血清内亲和色谱纯化所得。免疫电泳和/或ELISA法检测显示本品特异性结合完整的兔IgG分子,也会与其他兔免疫球蛋白的轻链结合。可能会与其他物种免疫球蛋白发生交叉反应,但不会识别非免疫球蛋白类的血清蛋白。
 

产品应用

建议稀释浓度:ELISA/WB 1:2500-1:25000
 

产品性质

抗体浓度(Antibody Concentration)

100µl(0.3 mg/ml)

缓冲液(Buffer)

0.005M Tris-HCl,0.125M 氯化钠, pH 8.0

稳定剂(Stabilizer)

7.5mg/ml BSA(无IgG,蛋白酶),50% 甘油

防腐剂(Preservative)

0.025% 叠氮化钠

原料来源(Source of Material)

Jackson Immunoresearch111-055-003

运输与保存方法

冰袋运输。-20℃分装保存,尽量避免反复冻融。
 

注意事项

1)本品含叠氮化钠,对人体有害,请注意适当防护。

2)为了您的安全和健康,请穿实验服并戴一次性手套操作。

3)本产品仅作科研用途!

碱性磷酸酶标记山羊抗兔IgG抗体(H+L) |Goat Anti-Rabbit IgG

暂无内容

[1] Kaushik AC, Wu Q, Lin L, et al. Exosomal ncRNAs profiling of mycobacterial infection identified miRNA-185-5p as a novel biomarker for tuberculosis. Brief Bioinform. 2021;22(6):bbab210. doi:10.1093/bib/bbab210(IF:11.622)

产品描述

本品是由碱性磷酸酶(AP)标记的山羊抗兔IgG(H+L),使用抗原偶联的琼脂糖微珠从山羊抗血清内亲和色谱纯化所得。免疫电泳和/或ELISA法检测显示本品特异性结合完整的兔IgG分子,也会与其他兔免疫球蛋白的轻链结合。可能会与其他物种免疫球蛋白发生交叉反应,但不会识别非免疫球蛋白类的血清蛋白。
 

产品应用

建议稀释浓度:ELISA/WB 1:2500-1:25000
 

产品性质

抗体浓度(Antibody Concentration)

100µl(0.3 mg/ml)

缓冲液(Buffer)

0.005M Tris-HCl,0.125M 氯化钠, pH 8.0

稳定剂(Stabilizer)

7.5mg/ml BSA(无IgG,蛋白酶),50% 甘油

防腐剂(Preservative)

0.025% 叠氮化钠

原料来源(Source of Material)

Jackson Immunoresearch111-055-003

运输与保存方法

冰袋运输。-20℃分装保存,尽量避免反复冻融。
 

注意事项

1)本品含叠氮化钠,对人体有害,请注意适当防护。

2)为了您的安全和健康,请穿实验服并戴一次性手套操作。

3)本产品仅作科研用途!

碱性磷酸酶标记山羊抗兔IgG抗体(H+L) |Goat Anti-Rabbit IgG

暂无内容

[1] Kaushik AC, Wu Q, Lin L, et al. Exosomal ncRNAs profiling of mycobacterial infection identified miRNA-185-5p as a novel biomarker for tuberculosis. Brief Bioinform. 2021;22(6):bbab210. doi:10.1093/bib/bbab210(IF:11.622)

生物素Biotin-SP标记山羊抗兔IgG抗体|Biotin-SP AffiniPure Goat Anti-Rabbit IgG

生物素Biotin-SP标记山羊抗兔IgG抗体|Biotin-SP AffiniPure Goat Anti-Rabbit IgG

产品说明书

FAQ

COA

已发表文献

产品描述

本品是由生物素标记的山羊抗兔IgG(H+L),使用抗原偶联的琼脂糖微珠从山羊抗血清内亲和色谱纯化所得。免疫电泳和/或ELISA法检测显示本品特异性结合完整的兔IgG分子,也会与其他兔免疫球蛋白的轻链结合。本品预先与相近物种包括人、小鼠和大鼠血清蛋白经过亲和吸附处理,ELISA和/或固相免疫吸附检测证实本品与以上物种几乎无交叉反应。但可能会与其他物种免疫球蛋白发生交叉反应。本品不会识别非免疫球蛋白类的血清蛋白。

本品适合做多标实验,广泛应用于多种免疫学实验如免疫细胞化学(ICC),流式细胞术(FC)以及免疫组化(IHC)等。

产品应用

建议稀释浓度:

ELISA/WB 1:10000-1:200000;

IHC/ICC(酶标法):1:250 – 1:2500; 

FC/ IHC/ICC(荧光法) 1:100-1:500

产品性质 

抗体浓度(Antibody Concentration)

100µl (0.5 mg/ml)

缓冲液(Buffer)

0.005M 磷酸钠,0.125M 氯化钠, pH 7.6

稳定剂(Stabilizer)

7.5mg/ml BSA(无IgG,蛋白酶),50% 甘油

防腐剂(Preservative)

0.025% 叠氮化钠

原料来源(Source of Material)

Jackson Immunoresearch 111-065-144

运输与保存方法

冰袋运输。-20℃分装保存,尽量避免反复冻融。有效期1年。

注意事项

1)本品含叠氮化钠,对人体有害,请注意适当防护。

2)为了您的安全和健康,请穿实验服并戴一次性手套操作。

3)本产品仅作科研用途!

生物素Biotin-SP标记山羊抗兔IgG抗体|Biotin-SP AffiniPure Goat Anti-Rabbit IgG

暂无内容

生物素Biotin-SP标记山羊抗兔IgG抗体|Biotin-SP AffiniPure Goat Anti-Rabbit IgG

暂无内容

产品描述

本品是由生物素标记的山羊抗兔IgG(H+L),使用抗原偶联的琼脂糖微珠从山羊抗血清内亲和色谱纯化所得。免疫电泳和/或ELISA法检测显示本品特异性结合完整的兔IgG分子,也会与其他兔免疫球蛋白的轻链结合。本品预先与相近物种包括人、小鼠和大鼠血清蛋白经过亲和吸附处理,ELISA和/或固相免疫吸附检测证实本品与以上物种几乎无交叉反应。但可能会与其他物种免疫球蛋白发生交叉反应。本品不会识别非免疫球蛋白类的血清蛋白。

本品适合做多标实验,广泛应用于多种免疫学实验如免疫细胞化学(ICC),流式细胞术(FC)以及免疫组化(IHC)等。

产品应用

建议稀释浓度:

ELISA/WB 1:10000-1:200000;

IHC/ICC(酶标法):1:250 – 1:2500; 

FC/ IHC/ICC(荧光法) 1:100-1:500

产品性质 

抗体浓度(Antibody Concentration)

100µl (0.5 mg/ml)

缓冲液(Buffer)

0.005M 磷酸钠,0.125M 氯化钠, pH 7.6

稳定剂(Stabilizer)

7.5mg/ml BSA(无IgG,蛋白酶),50% 甘油

防腐剂(Preservative)

0.025% 叠氮化钠

原料来源(Source of Material)

Jackson Immunoresearch 111-065-144

运输与保存方法

冰袋运输。-20℃分装保存,尽量避免反复冻融。有效期1年。

注意事项

1)本品含叠氮化钠,对人体有害,请注意适当防护。

2)为了您的安全和健康,请穿实验服并戴一次性手套操作。

3)本产品仅作科研用途!

生物素Biotin-SP标记山羊抗兔IgG抗体|Biotin-SP AffiniPure Goat Anti-Rabbit IgG

暂无内容

生物素Biotin-SP标记山羊抗兔IgG抗体|Biotin-SP AffiniPure Goat Anti-Rabbit IgG

暂无内容

Bovine IgG ELISA说明书

zeptometrix成立于1999年,是一家为药物研究行业提供诊断产品和服务的的私人控股公司。zeptometrix公司(ZMC)是一个传染病诊断行业先进者和创新者,为的客户提供值得信赖的产品和服务。zeptometrix是一个*集成的生物技术公司的产品支持的研发的所有阶段;发展,验证,制和商业化的诊断测试。zeptometrix不断开拓创新,致力为生命科学行业带来更多产品与服务。

 

Catalog #: 0801198

Bovine IgG ELISA

 

Preparation of Bovine IgG Standards

Tube

Number

Concentration of

Bovine IgG

Volume of Bovine IgG

Standard

Volume of

Assay Diluent

1

125 ng/mL

1000 ml

ml

2

62.5 ng/mL

500 ml of #1

500 ml

3

31.25 ng/mL

500 ml of #2

500 ml

4

15.6 ng/mL

500 ml of #3

500 ml

5

7.8 ng/mL

500 ml of #4

500 ml

6

0 ng/mL

ml

500 ml

 

 

 

试验过程

使用前允许所有试剂达到室温。用于制备标准和样品的标号试管。如果不使用整个96井板,则取下剩余的井板。 从板框和放置到重新密封塑料袋与干燥剂。密封袋并存放在2-8°C。

 

步骤1:将每条标签贴在其末端标签上,以确保在检测过程中这些条带与板框分离时的标识。

 

步骤2:将标准1-6的200ml移入重复井.

 

步骤3:每个样品的移液管200 L成重复的威尔斯。

 

第四步:用盖板盖上盖板,在37°C下孵育30分钟。

 

第五步:抽取每口井的内容物,用1x板冲洗缓冲液冲洗4次。清洗时,用1倍平板冲洗缓冲液的300ml注满井,然后抽吸。执行4次填充/吸气循环 s.在后的清洗周期之后,仔细地在吸水性纸巾的垫子上仔细地敲打盘子,*地擦拭盘子。继续,直到没有观察到可见的液滴板洗缓冲液。

 

步骤6:将检测抗体的100m1移入各标准标本中。

 

不要将检测器抗体添加到底物空白井中。

 

步骤7:用盖板盖上盖板,在37°C下孵育30分钟。

 

步骤8:如步骤6所述,用板洗缓冲器冲洗4次。

 

步骤9:将基材的100m1移入每口井,包括基板空白井。

 

步骤10:室温下将盘子孵育30分钟。含有牛IgG的井中会出现蓝色。

 

步骤11:将100m1的止住溶液注入每口井。将发生从蓝色到黄色的颜色变化。

 

步骤12:在15分钟内,用微滴度平板阅读器读取450 nm处每口井的光密度。

 

试样稀释

 

牛初乳通常含有50~80 mg/mL的IgG抗体。1:1,000,000牛初乳稀释在试验稀释剂中被推荐用于初步测试。

 

牛乳通常含有0.5mg/mL的IgG抗体。建议在试验稀释液中稀释1:10,000的牛乳进行初步测试。

 

牛血清通常含有25-30mg/mL的IgG抗体。建议在试验稀释剂中稀释1:500,000牛血清进行初步测试。

 

程序流程图

 

制备试剂稀释剂

吸管标本和标准

37℃孵育30分钟

 

制水板

移液管检测器抗体

37℃孵育30分钟

 

 

制水板

 

移液管底液

室温孵育30分钟

 

 

添加停止溶液并在450 nm处读取

 

 

 

贮存

 

在2-8℃下储存所有试剂盒试剂。

不要冻结。

未使用的微量培养板应保存在带有干燥剂的密封袋中,以使暴露于水分降至低。

储存和处理的所有试剂均为ST 至少可以在包盒标签上打印的过期日期之前。

 

货号

品名

目录价

规格

品牌

0801539DNA-1UG

Cryptococcus Neoformans serotype D, DNA

4524

1 ug

ZeptoMetrix

0801538DNA-1UG

Candida Tropicalis Z012, DNA

4524

1 ug

ZeptoMetrix

0801544DNA-10UG

Proteus Mirabilis Z050, DNA

7001

10 ug

ZeptoMetrix

0801545DNA-10UG

Streptococcus Agalactiae 2603V – R, DNA

7001

10 ug

ZeptoMetrix

0801562DNA-10UG

Bacillus Subtilis Z094, DNA

7001

10 ug

ZeptoMetrix

0801563DNA-10UG

Citrobacter FreundII Z064, DNA

7001

10 ug

ZeptoMetrix

0801569DNA-10UG

Stenotrophomonas Maltophilia Z074, DNA

7001

10 ug

ZeptoMetrix

0801536DNA-1UG

Candida Krusei Z009, DNA

4524

1 ug

ZeptoMetrix

0801537DNA-1UG

Candida Parapsilosis Z011, DNA

4524

1 ug

ZeptoMetrix

0801535DNA-1UG

Candida Glabrata Z007, DNA

4524

1 ug

ZeptoMetrix

0801519DNA-10UG

Pseudomonas Aeruginosa clinical isolate, DNA

7001

10 ug

ZeptoMetrix

0801534DNA-10UG

Listeria Monocytogenes serotype 1 – 2b, DNA

7001

10 ug

ZeptoMetrix

0801518DNA-10UG

Enterobacter Aerogenes Z052, DNA

7001

10 ug

ZeptoMetrix

0801511DNA-10UG

Neisseria Meningitidis serogroup A, DNA

7001

10 ug

ZeptoMetrix

0801506DNA-10UG

Klebsiella Pneumoniae Z026, DNA

7001

10 ug

ZeptoMetrix

0801504DNA-1UG

Candida Albicans Z006, DNA

4524

1 ug

ZeptoMetrix

0801597DNA-10UG

Acinetobacter BaumannII 307-0294, DNA

7001

10 ug

ZeptoMetrix

0801579DNA-10UG

Mycoplasma Pneumoniae M129, DNA

7001

10 ug

ZeptoMetrix

0801679DNA-10UG

Haemophilus Influenzae type b; Eagan, DNA

7001

10 ug

ZeptoMetrix

0801676DNA-1UG

Histoplasma capsulatum Recombinant, DNA

7001

1 ug

ZeptoMetrix

0801677DNA-1UG

Coccidioides Immitis Recombinant, DNA

7001

1 ug

ZeptoMetrix

0801675DNA-10UG

Staphylococcus Aureus MSSA; mecA-deficient, DNA

7001

10 ug

ZeptoMetrix

0801674DNA-10UG

Yersinia Enterocolitica clinical isolate, DNA

7001

10 ug

ZeptoMetrix

0801651DNA-10UG

Staphylococcus Epidermidis MRSE; RP62A, DNA

7001

10 ug

ZeptoMetrix

0801650DNA-10UG

Campylobacter Jejuni clinical isolate, DNA

7001

10 ug

ZeptoMetrix

0801638DNA-10UG

Staphylococcus Aureus MRSA; COL, DNA

7001

10 ug

ZeptoMetrix

0801627DNA-10UG

Shigella Sonnei Z004, DNA

7001

10 ug

ZeptoMetrix

0801624DNA-10UG

Escherichia Coli ETEC; ST+, LT+ DNA

2730

10 ug

ZeptoMetrix

0801622DNA-10UG

Escherichia Coli O157:H7; EDL933, DNA

2730

10 ug

ZeptoMetrix

0801603DNA-1UG

Candida Lusitaniae Z010, DNA

4524

1 ug

ZeptoMetrix

0801619DNA-1UG

Clostridium Difficile NAP1, DNA

7001

1 ug

ZeptoMetrix

0801601DNA-1UG

Aspergillus Terreus Z016, DNA

4524

1 ug

ZeptoMetrix

0801602DNA-1UG

Candida GuilliermondII Z008, DNA

4524

1 ug

ZeptoMetrix

0801598DNA-1UG

Aspergillus Flavus Z013, DNA

4524

1 ug

ZeptoMetrix

0801680DNA-10UG

Haemophilus Influenzae type b; MinnA, DNA

7001

10 ug

ZeptoMetrix

0801482DNA-10UG

Neisseria Gonorrhoeae type strain, DNA

7001

10 ug

ZeptoMetrix

0801439DNA-10UG

Streptococcus Pneumoniae Z022; 19F (Danish), DNA

7001

10 ug

ZeptoMetrix

801223

Goat IgG ELISA

4875

96 det.

ZeptoMetrix

801010

Chicken IgY ELISA

4875

96 det.

ZeptoMetrix

801198

Bovine IgG ELISA

6689

96 det.

ZeptoMetrix

801188

ELISA Construction System

5343

5 plates

ZeptoMetrix

0801185L

ZeptoBlock

3842

1 L

ZeptoMetrix

0801185

ZeptoBlock

1697

120 ml

ZeptoMetrix

0801184L

ZeptoBind

3842

1 L

ZeptoMetrix

0801184

ZeptoBind

839

60 ml

ZeptoMetrix

0801179L

ZeptoCoat

3842

1 L

ZeptoMetrix

0801179

ZeptoCoat

839

60 ml

ZeptoMetrix

0802001

rhIL-2 Recominant Human Interleukin-2

5850

100 ug

ZeptoMetrix

0801060

10x Plate Wash Buffer

293

125 ml

ZeptoMetrix

0801114

rhIL-2 Recominant Human Interleukin-2 (20.000 units)

1463

1.1 ml

ZeptoMetrix

0801017

TCGF (Natural T-Cell Growth Factor, IL-2)

4700

50 ml

ZeptoMetrix

0801195

ZeptoGel

5207

500 ml

ZeptoMetrix

0801002

HIV-1 p24 Antigen ELISA 2.0 Kit

9341

96 det.

ZeptoMetrix

0801221

Horse IgG ELISA

4875

96 det.

ZeptoMetrix

0801008

HIV-1 p24 Antigen ELISA 2.0 Kit

38805

480 det.

ZeptoMetrix

0801437DNA-10UG

Salmonella Enterica Typhimurium Z005, DNA

7001

10 ug

ZeptoMetrix

0801803P

Cryptococcus Neoformans Serotype A, antigen

1092

1.0 ml

ZeptoMetrix

0801202

Rabbit IgG ELISA

6689

96 det.

ZeptoMetrix

0801009

Rat IgG ELISA

4875

96 det.

ZeptoMetrix

0801181

Mouse IgM ELISA

6689

96 det.

ZeptoMetrix

0801201

SIV p27 Antigen ELISA Kit

49764

480 det.

ZeptoMetrix

0801200

HIV-1 p24 Antigen ELISA Kit

38805

480 det.

ZeptoMetrix

0801197

Human IgA ELISA

6689

96 det.

ZeptoMetrix

0801183

Human IgM ELISA

6689

96 det.

ZeptoMetrix

0801182

Human IgG ELISA

6689

96 det.

ZeptoMetrix

0801169

SIV p27 Antigen ELISA Kit

11993

96 det.

ZeptoMetrix

0801137

HIV-1 p24 Extended Range Kit

1346

kit

ZeptoMetrix

0801116

HTLV p19 Antigen ELISA Kit

11993

96 det.

ZeptoMetrix

0801111

HIV-1 p24 Antigen ELISA Kit

9341

96 det.

ZeptoMetrix

0801096

HIV-1 p24 ICx – CRx Kit

1853

100 det.

ZeptoMetrix

0801180

Mouse IgG ELISA

6689

96 det.

ZeptoMetrix

0801693DNA-10UG

Enterococcus Faecalis VRE, DNA

7001

10 ug

ZeptoMetrix

0801084

Anti-HTLV-I gp46 Clone 67 – 5.5.13.1

4388

100 ug

ZeptoMetrix

0801119

Anti-HTLV-II gp46 Clone 73 – 4.9.8

30732

1 mg

ZeptoMetrix

0801120

Anti-HTLV-II p24 Clone 75 – 4.21.11

30732

1 mg

ZeptoMetrix

0801012

Anti-PON1 Clone KRJ1

4388

100 ug

ZeptoMetrix

0801014

Anti-PON1 Clone KRJ2

4388

100 ug

ZeptoMetrix

0801095

Anti-PON1 Clone KRJ1

30732

1 mg

ZeptoMetrix

0801097

Anti-PON1 Clone KRJ2

30732

1 mg

ZeptoMetrix

0801025

Anti-Zika NS1 Clone 1D12

4388

100 ug

ZeptoMetrix

0801032CFHI

HIV Type 1 Strain: IIIB – CFHI

6045

1.0 ml

ZeptoMetrix

0801033CFHI

Human T-Lymphotropic Virus Type I (HTLV-I) – CFHI

6045

1.0 ml

ZeptoMetrix

0801113

Anti-HTLV-II p19 Clone 78 – 6.18.07

30732

1 mg

ZeptoMetrix

0801093

Anti-HTLV-II p19 Clone 78 – 6.18.07

4388

100 ug

ZeptoMetrix

0801094

Anti-HTLV-I gp46 Clone 65 – 6C2.2.34

30732

1 mg

ZeptoMetrix

0801107

Anti-HTLV-I p19 Clone TP-7

30732

1 mg

ZeptoMetrix

0801108

Anti-HTLV-I p19 Clone 45 – 6.11.1.3

30732

1 mg

ZeptoMetrix

0801110

Anti-HTLV-I p24 Clone 46 – 3.24.4

30732

1 mg

ZeptoMetrix

0801127

Anti-HTLV-I gp46 Clone 67 – 5.5.13.1

30732

1 mg

ZeptoMetrix

0801118

Anti-HTLV-I gp46 Clone 68 – 4.11.21

30732

1 mg

ZeptoMetrix

0802004

Anti-HTLV-I gp46 Clone 65 – 6C2.2.34

4388

100 ug

ZeptoMetrix

0801086

Anti-HTLV-II gp46 Clone 73 – 4.9.8

4388

100 ug

ZeptoMetrix

0801087

Anti-HTLV-II p24 Clone 75 – 4.21.11

4388

100 ug

ZeptoMetrix

0801032

Human Immunodeficiency Virus Type 1 (HIV-1) Strain: IIIB Lysate

27593

1 mg

ZeptoMetrix

0801033

Human T-Lymphotropic Virus Type I (HTLV-I) Lysate

31181

1 mg

ZeptoMetrix

0801216

Dinucleotide Standards ThymineGlycolCytidineDimer

1287

50 mg at 1.0 OD

ZeptoMetrix

0801217

Dinucleotide Standards ThymineGlycolAdenineDimer

1287

50 mg at 1.0 OD

ZeptoMetrix

0801218

Nucleoside Standards 8-Oxo-dG

1287

1 mg

ZeptoMetrix

0801219

Nucleoside Standards 8-Oxo-dA

1365

1 mg

ZeptoMetrix

0801384

PON Standards

5265

600 ul

ZeptoMetrix

0801500

Simian Immunodeficiency Virus (SIV) Kit (10 Strip)

9360

10 det.

ZeptoMetrix

0801501

Simian Immunodeficiency Virus (SIV) Kit (30 Strip)

22854

30 det.

ZeptoMetrix

0801502

Simian Immunodeficiency Virus (SIV) Strips (10/tube)

5343

10 strips

ZeptoMetrix

0801021

Zika (PRVABC59) Strips (10/tube)

5343

10 strips

ZeptoMetrix

0801215

Dinucleotide Standards ThymineGlycolThymineDimer

1287

50 mg at 1.0 OD

ZeptoMetrix

0801214

Dinucleotide Standards ThymineGlycolGuanineDimer

1287

50 mg at 1.0 OD

ZeptoMetrix

0801808

Scedosporium prolificans Z083

8775

1.0 ml

ZeptoMetrix

0801192

TBARS Assay kit

7995

160 det.

ZeptoMetrix

0801199

Arylesterase – Paraoxonase Assay Kit

7995

200 tests

ZeptoMetrix

0805002

Total Glutathione Peroxidase Assay Kit

7625

100 tests

ZeptoMetrix

0805004

Glutathione Reductase Assay Kit

10257

100 tests

ZeptoMetrix

0801210

Dinucleotide Standards Formamido Guanine Dimer

1287

50 mg at 1.0 OD

ZeptoMetrix

0801211

Dinucleotide Standards Formamido Cytidine Dimer

1287

50 mg at 1.0 OD

ZeptoMetrix

0801212

Dinucleotide Standards Formamido Thymine Dimer

1287

50 mg at 1.0 OD

ZeptoMetrix

0801213

Dinucleotide Standards Formamido Adenine Dimer

1287

50 mg at 1.0 OD

ZeptoMetrix

0801022

Zika (MR-766) Strips (10/tube)

5343

10 strips

ZeptoMetrix

0801085

Anti-HTLV-I gp46 Clone 68 – 4.11.21

4388

100 ug

ZeptoMetrix

0801698DNA-1UG

Pneumocystis Jiroveci Recombinant W303-Pji, Genomic DNA

7001

10 ug

ZeptoMetrix

0801765DNA-1UG

Scedosporium Apiospermum Z085, DNA

4524

1 ug

ZeptoMetrix

0801770DNA-1UG

Fusarium Oxysporum Z084, DNA

4524

1 ug

ZeptoMetrix

0801802DNA-1UG

Tremella Fuciformis Recombinant, DNA

7001

1 ug

ZeptoMetrix

0801806DNA-1UG

Fusarium solani Z081, DNA

4524

1 ug

ZeptoMetrix

0801808DNA-1UG

Scedosporium Prolificans Z083, DNA

4524

1 ug

ZeptoMetrix

0801827DNA-1UG

Aspergillus Niger Z105, DNA

4524

1 ug

ZeptoMetrix

0801834DNA-1UG

Rhizopus oryzae Z106, DNA

4524

1 ug

ZeptoMetrix

0801899DNA-10UG

Plesiomonas shigelloides Z130, DNA

7001

10 ug

ZeptoMetrix

0801901DNA-10UG

Vibrio Cholerae Z132 (toxigenic)

7001

10 ug

ZeptoMetrix

0801761DNA-1UG

Mucor Indicus Z079, DNA

4524

1 ug

ZeptoMetrix

0801759DNA-1UG

Cunninghamella bertholletiae Z080, DNA

4524

1 ug

ZeptoMetrix

0801700DNA-1UG

Cryptosporidium Parvum-S. cerevisiae Recombinant, DNA

7001

1.0 ml

ZeptoMetrix

0801716DNA-1UG

Aspergillus Fumigatus Z014, DNA

4524

1 ug

ZeptoMetrix

0801723DNA-10UG

Serratia Marcescens Z053, DNA

7001

10 ug

ZeptoMetrix

0801697DNA-1UG

Blastomyces Dermatitidis Recombinant W303-Bde, Genomic DNA

7001

1 ug

ZeptoMetrix

0801736DNA-10UG

Haemophilus ducreyi class I, DNA

7001

10 ug

ZeptoMetrix

0801743DNA-10UG

Bacteroides Thetaiotaomicron Z037 DNA

7001

10 ug

ZeptoMetrix

0801745DNA-10UG

Citrobacter Koseri Z039, DNA

7001

10 ug

ZeptoMetrix

0801747DNA-10UG

Escherichia coli O111:NM, DNA

7001

10 ug

ZeptoMetrix

0801755DNA-1UG

Rhizopus Microsporus Z056, DNA

4524

1 ug

ZeptoMetrix

0801004

Anti-HIV-l p24 Clone 38 – 8.7.47

4388

100 ug

ZeptoMetrix

0801005

Anti-HIV-l p17 Clone 32 – 5.8.42

4388

100 ug

ZeptoMetrix

0801124

Anti-HIV-l p24 Clone 32 – 5.17.76

30732

1 mg

ZeptoMetrix

0801125

Anti-HIV-l p24 Clone 38 – 8.7.47

30732

1 mg

ZeptoMetrix

0801126

Anti-HIV-l p24 Clone 39 – 5.1.23

30732

1 mg

ZeptoMetrix

0801128

Anti-HIV-l RT Clone 39 – 4.12.2

30732

1 mg

ZeptoMetrix

0801136

Anti-HIV-l p24 Clone 39 – 5.4A

30732

1 mg

ZeptoMetrix

0801003

Anti-HTLV-I p19 Clone TP-7

4388

100 ug

ZeptoMetrix

0802014

Anti-HIV-l p24 Clone 39 – 6.14

30732

1 mg

ZeptoMetrix

0801018

Anti-HTLV-I p24 Clone 46 – 3.24.4

4388

100 ug

ZeptoMetrix

0801082

Anti-HTLV-I p19 Clone 45 – 6.11.1.3

4388

100 ug

ZeptoMetrix

0801123

Anti-HIV-l p17 Clone 32 – 5.8.42

30732

1 mg

ZeptoMetrix

0801122

Anti-HIV-l p17 Clone 2D11

30732

1 mg

ZeptoMetrix

0801121

Anti-HIV-l gp41 Clone 10E9

30732

1 mg

ZeptoMetrix

0801006

Anti-HIV-l gp41 Clone 10E9

4388

100 ug

ZeptoMetrix

0801007

Anti-HIV-l RT Clone 39 – 4.12.2

4388

100 ug

ZeptoMetrix

0801076

Anti-HIV-l p17 Clone 2D11

4388

100 ug

ZeptoMetrix

0801077

Anti-HIV-l p17 Clone 32 – 1.24.89

4388

100 ug

ZeptoMetrix

0801078

Anti-HIV-l p24 Clone 32 – 5.17.76

4388

100 ug

ZeptoMetrix

0801079

Anti-HIV-l p24 Clone 39 – 5.1.23

4388

100 ug

ZeptoMetrix

0801080

Anti-HIV-l p24 Clone 39 – 5.4A

4388

100 ug

ZeptoMetrix

0801081

Anti-HIV-l p24 Clone 39 – 6.14

4388

100 ug

ZeptoMetrix

0801115

Anti-HIV-l p17 Clone 32 – 1.24.89

30732

1 mg

ZeptoMetrix

 

 

上海金畔生物科技有限公司是实验试剂一站式采购服务商

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405标记山羊抗兔IgG抗体|405-AffiniPure Goat Anti-Rabbit IgG(H+L)

405标记山羊抗兔IgG抗体|405-AffiniPure Goat Anti-Rabbit IgG(H+L)

产品说明书

FAQ

COA

已发表文献

产品描述

     本品是由DyLightTM 405标记的山羊抗兔IgG(H+L),使用抗原偶联的琼脂糖微珠从山羊抗血清内亲和色谱纯化所得。免疫电泳和/或ELISA法检测显示本品特异性结合完整的兔IgG分子,也会与其他兔免疫球蛋白的轻链结合。可能会与其他物种免疫球蛋白发生交叉反应,但不会识别非免疫球蛋白类的血清蛋白。该荧光基团Amax(最大激发波长)为400nm,Emax(最大发射波长)为420nm。

本品适合做单标实验,广泛应用于多种免疫学实验如免疫细胞化学(ICC),流式细胞术(FC)以及免疫组化(IHC)等。要做多标(multiple-labeling)实验,建议使用与相近物种的血清蛋白或者免疫球蛋白预先经过亲和吸附处理的二抗。

产品应用

建议稀释浓度:1:25-1:100(For most application)

产品性质 

抗体浓度(Antibody Concentration)

100µl (0.75mg/ml)

缓冲液(Buffer)

0.005M 磷酸钠,0.125M 氯化钠, pH 7.6

稳定剂(Stabilizer)

7.5mg/ml BSA(无IgG,蛋白酶),50% 甘油

荧光素(Fluorophore)

DyLightTM 405, Amax=400, Emax=420

防腐剂(Preservative)

0.025% 叠氮化钠

原料来源(Source of Material)

Jackson Immunoresearch 111-475-003

运输与保存方法

冰袋运输。-20℃分装保存,尽量避免反复冻融。有效期1年。
 

注意事项

1)本品含叠氮化钠,对人体有害,请注意适当防护。

2)为了您的安全和健康,请穿实验服并戴一次性手套操作。
3)本产品仅作科研用途!

405标记山羊抗兔IgG抗体|405-AffiniPure Goat Anti-Rabbit IgG(H+L)

暂无内容

405标记山羊抗兔IgG抗体|405-AffiniPure Goat Anti-Rabbit IgG(H+L)

暂无内容

产品描述

     本品是由DyLightTM 405标记的山羊抗兔IgG(H+L),使用抗原偶联的琼脂糖微珠从山羊抗血清内亲和色谱纯化所得。免疫电泳和/或ELISA法检测显示本品特异性结合完整的兔IgG分子,也会与其他兔免疫球蛋白的轻链结合。可能会与其他物种免疫球蛋白发生交叉反应,但不会识别非免疫球蛋白类的血清蛋白。该荧光基团Amax(最大激发波长)为400nm,Emax(最大发射波长)为420nm。

本品适合做单标实验,广泛应用于多种免疫学实验如免疫细胞化学(ICC),流式细胞术(FC)以及免疫组化(IHC)等。要做多标(multiple-labeling)实验,建议使用与相近物种的血清蛋白或者免疫球蛋白预先经过亲和吸附处理的二抗。

产品应用

建议稀释浓度:1:25-1:100(For most application)

产品性质 

抗体浓度(Antibody Concentration)

100µl (0.75mg/ml)

缓冲液(Buffer)

0.005M 磷酸钠,0.125M 氯化钠, pH 7.6

稳定剂(Stabilizer)

7.5mg/ml BSA(无IgG,蛋白酶),50% 甘油

荧光素(Fluorophore)

DyLightTM 405, Amax=400, Emax=420

防腐剂(Preservative)

0.025% 叠氮化钠

原料来源(Source of Material)

Jackson Immunoresearch 111-475-003

运输与保存方法

冰袋运输。-20℃分装保存,尽量避免反复冻融。有效期1年。
 

注意事项

1)本品含叠氮化钠,对人体有害,请注意适当防护。

2)为了您的安全和健康,请穿实验服并戴一次性手套操作。
3)本产品仅作科研用途!

405标记山羊抗兔IgG抗体|405-AffiniPure Goat Anti-Rabbit IgG(H+L)

暂无内容

405标记山羊抗兔IgG抗体|405-AffiniPure Goat Anti-Rabbit IgG(H+L)

暂无内容

488标记山羊抗兔IgG抗体 488山羊抗兔IgG抗体|Goat Anti-Rabbit IgG

488标记山羊抗兔IgG抗体 488山羊抗兔IgG抗体|Goat Anti-Rabbit IgG

产品说明书

FAQ

COA

已发表文献

产品描述

本品是由Alexa Fluor 488标记的山羊抗兔IgG(H+L),使用抗原偶联的琼脂糖微珠从山羊抗血清内亲和色谱纯化所得。免疫电泳和/或ELISA法检测显示本品特异性结合完整的兔IgG分子,也会与其他兔免疫球蛋白的轻链结合。可能会与其他物种免疫球蛋白发生交叉反应,但不会识别非免疫球蛋白类的血清蛋白。Alexa Fluor 488的光谱性质同FITC,Amax(最大激发波长)为493 nm,Emax(最大发射波长)为519 nm。

本品适合做单标实验,广泛应用于多种免疫学实验如免疫细胞化学(ICC),流式细胞术(FC)以及免疫组化(IHC)等。要做多标(multiple-labeling)实验,建议使用与相近物种的血清蛋白或者免疫球蛋白预先经过亲和吸附处理的二抗。

产品应用

建议稀释浓度:1:50-1:400(For most application)。

产品性质

抗体浓度(Antibody Concentration)

100 µL(0.75 mg/mL)

缓冲液(Buffer)

0.005 M磷酸钠,0.125 M氯化钠,pH 7.6

稳定剂(Stabilizer)

7.5 mg/mL BSA(无IgG,蛋白酶),50%甘油

荧光素(Fluorophore)

Alexa Fluor® 488,Amax=493,Emax=519

防腐剂(Preservative)

0.025% 叠氮化钠

原料来源(Source of Material)

Jackson Immunoresearch 111-545-003

运输与保存方法

冰袋运输。-20℃分装保存,尽量避免反复冻融。有效期1年。

注意事项

1)本品含叠氮化钠,对人体有害,请注意适当防护。

2)为了您的安全和健康,请穿实验服并戴一次性手套操作。

3)本产品仅作科研用途!

 

488标记山羊抗兔IgG抗体 488山羊抗兔IgG抗体|Goat Anti-Rabbit IgG

暂无内容

[1] Li S, Wen Z, Ghalandari B, et al. Single-Cell Immunoblotting based on a Photoclick Hydrogel Enables High-Throughput Screening and Accurate Profiling of Exogenous Gene Expression. Adv Mater. 2021;33(22):e2101108. doi:10.1002/adma.202101108(IF:30.849)
[2] Yang WQ, Xiong QP, Ge JY, et al. THUMPD3-TRMT112 is a m2G methyltransferase working on a broad range of tRNA substrates. Nucleic Acids Res. 2021;49(20):11900-11919. doi:10.1093/nar/gkab927(IF:16.971)
[3] Wang Z, Gong X, Li J, et al. Oxygen-Delivering Polyfluorocarbon Nanovehicles Improve Tumor Oxygenation and Potentiate Photodynamic-Mediated Antitumor Immunity. ACS Nano. 2021;15(3):5405-5419. doi:10.1021/acsnano.1c00033(IF:15.881)
[4] Feng L, Wang Q, Shan C, et al. An adenovirus-vectored COVID-19 vaccine confers protection from SARS-COV-2 challenge in rhesus macaques. Nat Commun. 2020;11(1):4207. Published 2020 Aug 21. doi:10.1038/s41467-020-18077-5(IF:12.121)
[5] Wang H, Huang Y, Xiao Q, et al. Carotenoids modulate kernel texture in maize by influencing amyloplast envelope integrity. Nat Commun. 2020;11(1):5346. Published 2020 Oct 22. doi:10.1038/s41467-020-19196-9(IF:12.121)
[6] Ni XC, Wang HF, Cai YY, et al. Ginsenoside Rb1 inhibits astrocyte activation and promotes transfer of astrocytic mitochondria to neurons against ischemic stroke. Redox Biol. 2022;54:102363. doi:10.1016/j.redox.2022.102363(IF:11.799)
[7] Wang Y, Gong X, Li J, et al. M2 macrophage microvesicle-inspired nanovehicles improve accessibility to cancer cells and cancer stem cells in tumors. J Nanobiotechnology. 2021;19(1):397. Published 2021 Nov 27. doi:10.1186/s12951-021-01143-5(IF:10.435)
[8] Wang H, Li J, Wang Z, et al. Tumor-permeated bioinspired theranostic nanovehicle remodels tumor immunosuppression for cancer therapy. Biomaterials. 2021;269:120609. doi:10.1016/j.biomaterials.2020.120609(IF:10.317)
[9] Huang Y, Wang H, Huang X, et al. Maize VKS1 Regulates Mitosis and Cytokinesis During Early Endosperm Development. Plant Cell. 2019;31(6):1238-1256. doi:10.1105/tpc.18.00966(IF:8.631)
[10] Kong L, Deng J, Zhou X, et al. Sitagliptin activates the p62-Keap1-Nrf2 signalling pathway to alleviate oxidative stress and excessive autophagy in severe acute pancreatitis-related acute lung injury. Cell Death Dis. 2021;12(10):928. Published 2021 Oct 11. doi:10.1038/s41419-021-04227-0(IF:8.469)
[11] Zhang W, Yu M, Xi Z, et al. Cancer Cell Membrane-Camouflaged Nanorods with Endoplasmic Reticulum Targeting for Improved Antitumor Therapy. ACS Appl Mater Interfaces. 2019;11(50):46614-46625. doi:10.1021/acsami.9b18388(IF:8.456)
[12] Yang J, Fu M, Ji C, Huang Y, Wu Y. Maize Oxalyl-CoA Decarboxylase1 Degrades Oxalate and Affects the Seed Metabolome and Nutritional Quality. Plant Cell. 2018;30(10):2447-2462. doi:10.1105/tpc.18.00266(IF:8.228)
[13] Guo H, Yin W, Zou Z, et al. Quercitrin alleviates cartilage extracellular matrix degradation and delays ACLT rat osteoarthritis development: An in vivo and in vitro study. J Adv Res. 2020;28:255-267. Published 2020 Jun 24. doi:10.1016/j.jare.2020.06.020(IF:6.992)
[14] Wang K, Wang Y, Wang Y, et al. EIF5A2 enhances stemness of epithelial ovarian cancer cells via a E2F1/KLF4 axis. Stem Cell Res Ther. 2021;12(1):186. Published 2021 Mar 16. doi:10.1186/s13287-021-02256-2(IF:6.832)
[15] Zhu Y, Wang X, Hu M, et al. Targeting Aβ and p-Tau Clearance in Methamphetamine-Induced Alzheimer's Disease-Like Pathology: Roles of Syntaxin 17 in Autophagic Degradation in Primary Hippocampal Neurons. Oxid Med Cell Longev. 2022;2022:3344569. Published 2022 May 18. doi:10.1155/2022/3344569(IF:6.543)
[16] Zhang H, Bi Y, Wei Y, Liu J, Kuerban K, Ye L. Blocking Wnt/β-catenin Signal Amplifies Anti-PD-1 Therapeutic Efficacy by Inhibiting Tumor Growth, Migration, and Promoting Immune Infiltration in Glioblastomas. Mol Cancer Ther. 2021;20(7):1305-1315. doi:10.1158/1535-7163.MCT-20-0825(IF:6.261)
[17] Chen S, Liu Y, Yang X, et al. Dysfunction of dimorphic sperm impairs male fertility in the silkworm. Cell Discov. 2020;6:60. Published 2020 Sep 8. doi:10.1038/s41421-020-00194-6(IF:6.255)
[18] Zhu L, Liu Z, Ren Y, et al. Neuroprotective effects of salidroside on ageing hippocampal neurons and naturally ageing mice via the PI3K/Akt/TERT pathway. Phytother Res. 2021;35(10):5767-5780. doi:10.1002/ptr.7235(IF:5.882)
[19] Yang S, Yang Y, Chen C, et al. The Anti-Neuroinflammatory Effect of Fuzi and Ganjiang Extraction on LPS-Induced BV2 Microglia and Its Intervention Function on Depression-Like Behavior of Cancer-Related Fatigue Model Mice. Front Pharmacol. 2021;12:670586. Published 2021 May 28. doi:10.3389/fphar.2021.670586(IF:5.811)
[20] Li C, Zheng Y, Liu Y, et al. The interaction protein of SORBS2 in myocardial tissue to find out the pathogenic mechanism of LVNC disease. Aging (Albany NY). 2022;14(2):800-810. doi:10.18632/aging.203841(IF:5.682)
[21] Li B, Wu H, Li N, et al. Preliminary Characterization of MEDLE-2, a Protein Potentially Involved in the Invasion of Cryptosporidium parvum. Front Microbiol. 2017;8:1647. Published 2017 Aug 31. doi:10.3389/fmicb.2017.01647(IF:5.640)
[22] Li M, Pei Z, Zhang H, Qu J. Expression Profile of Long Noncoding RNAs and Circular RNAs in Mouse C3H10T1/2 Mesenchymal Stem Cells Undergoing Myogenic and Cardiomyogenic Differentiation. Stem Cells Int. 2021;2021:8882264. Published 2021 Apr 30. doi:10.1155/2021/8882264(IF:5.443)
[23] Xu XX, Zheng G, Tang SK, Liu HX, Hu YZ, Shang P. Theaflavin protects chondrocytes against apoptosis and senescence via regulating Nrf2 and ameliorates murine osteoarthritis. Food Funct. 2021;12(4):1590-1602. doi:10.1039/d0fo02038a(IF:5.396)
[24] Zou ZL, Sun MH, Yin WF, Yang L, Kong LY. Avicularin suppresses cartilage extracellular matrix degradation and inflammation via TRAF6/MAPK activation. Phytomedicine. 2021;91:153657. doi:10.1016/j.phymed.2021.153657(IF:5.340)
[25] Zhu Y, Zhao P, Sun L, et al. Overexpression of circRNA SNRK targets miR-103-3p to reduce apoptosis and promote cardiac repair through GSK3β/β-catenin pathway in rats with myocardial infarction. Cell Death Discov. 2021;7(1):84. Published 2021 Apr 19. doi:10.1038/s41420-021-00467-3(IF:5.241)
[26] Li SS, Hua XY, Zheng MX, et al. Electroacupuncture treatment improves motor function and neurological outcomes after cerebral ischemia/reperfusion injury. Neural Regen Res. 2022;17(7):1545-1555. doi:10.4103/1673-5374.330617(IF:5.135)
[27] Zhang X, Cong Y, Chu Z, et al. Aberrant epigenetic regulation of RARβ by TET2 is involved in cutaneous squamous cell carcinoma resistance to retinoic acid. Int J Biochem Cell Biol. 2022;145:106190. doi:10.1016/j.biocel.2022.106190(IF:5.085)
[28] Ye W, Zheng C, Yu D, et al. Lipoxin A4 Ameliorates Acute Pancreatitis-Associated Acute Lung Injury through the Antioxidative and Anti-Inflammatory Effects of the Nrf2 Pathway. Oxid Med Cell Longev. 2019;2019:2197017. Published 2019 Nov 6. doi:10.1155/2019/2197017(IF:4.868)
[29] Hu J, Kong S, Dong T, et al. Autophagy modulates mesenchymal-to-endothelial transition via p53. Aging (Albany NY). 2020;12(21):22112-22121. doi:10.18632/aging.104065(IF:4.831)
[30] Yao H, Xu K, Zhou J, Zhou L, Wei S. A Tumor Microenvironment Destroyer for Efficient Cancer Suppression. ACS Biomater Sci Eng. 2020;6(1):450-462. doi:10.1021/acsbiomaterials.9b01544(IF:4.511)
[31] Tang S, Zhou W, Zhong X, et al. Arctigenin prevents the progression of osteoarthritis by targeting PI3K/Akt/NF-κB axis: In vitro and in vivo studies. J Cell Mol Med. 2020;24(7):4183-4193. doi:10.1111/jcmm.15079(IF:4.486)
[32] Ying X, Xie Q, Li S, et al. Water treadmill training attenuates blood-spinal cord barrier disruption in rats by promoting angiogenesis and inhibiting matrix metalloproteinase-2/9 expression following spinal cord injury. Fluids Barriers CNS. 2020;17(1):70. Published 2020 Nov 25. doi:10.1186/s12987-020-00232-1(IF:4.470)
[33] Huang Y, Yu H, Liang M, et al. Hearing Protection Outcomes of Analog Electrode Arrays Coated with Different Drug-Eluting Polymer Films Implanted into Guinea Pig Cochleae [published correction appears in Drug Des Devel Ther. 2021 Nov 24;15:4759-4760]. Drug Des Devel Ther. 2021;15:3443-3450. Published 2021 Aug 11. doi:10.2147/DDDT.S318117(IF:4.162)
[34] Yang S, Chu S, Ai Q, et al. Anti-inflammatory effects of higenamine (Hig) on LPS-activated mouse microglia (BV2) through NF-κB and Nrf2/HO-1 signaling pathways. Int Immunopharmacol. 2020;85:106629. doi:10.1016/j.intimp.2020.106629(IF:3.943)
[35] Ying X, Xie Q, Yu X, et al. Water treadmill training protects the integrity of the blood-spinal cord barrier following SCI via the BDNF/TrkB-CREB signalling pathway. Neurochem Int. 2021;143:104945. doi:10.1016/j.neuint.2020.104945(IF:3.881)
[36] Zhang T, Lu D, Yang W, et al. HMG-CoA Reductase Inhibitors Relieve Endoplasmic Reticulum Stress by Autophagy Inhibition in Rats With Permanent Brain Ischemia. Front Neurosci. 2018;12:405. Published 2018 Jun 19. doi:10.3389/fnins.2018.00405(IF:3.877)
[37] Li C, Zhang H, Xie Y, et al. Effects of CMYA1 overexpression on cardiac structure and function in mice. Acta Biochim Biophys Sin (Shanghai). 2021;53(5):593-600. doi:10.1093/abbs/gmab029(IF:3.848)
[38] Lu D, Mai HC, Liang YB, Xu BD, Xu AD, Zhang YS. Beneficial Role of Rosuvastatin in Blood-Brain Barrier Damage Following Experimental Ischemic Stroke. Front Pharmacol. 2018;9:926. Published 2018 Aug 21. doi:10.3389/fphar.2018.00926(IF:3.831)
[39] Shen Y, Zhou M, Yan J, et al. miR-200b inhibits TNF-α-induced IL-8 secretion and tight junction disruption of intestinal epithelial cells in vitro. Am J Physiol Gastrointest Liver Physiol. 2017;312(2):G123-G132. doi:10.1152/ajpgi.00316.2016(IF:3.468)
[40] Li C, Wang Y, Zheng H, et al. Antiviral activity of ISG15 against classical swine fever virus replication in porcine alveolar macrophages via inhibition of autophagy by ISGylating BECN1. Vet Res. 2020;51(1):22. Published 2020 Feb 24. doi:10.1186/s13567-020-00753-5(IF:3.357)
[41] Ma C, Gao T, Ju J, et al. Sympathetic innervation contributes to perineural invasion of salivary adenoid cystic carcinoma via the β2-adrenergic receptor. Onco Targets Ther. 2019;12:1475-1495. Published 2019 Feb 21. doi:10.2147/OTT.S190847(IF:3.046)
[42] Wei C, Lu N, Wang L, et al. Upregulation of UHRF1 promotes the progression of melanoma by inducing cell proliferation. Oncol Rep. 2018;39(6):2553-2562. doi:10.3892/or.2018.6356(IF:2.976)
[43] Wang T, Qin Y, Zhang J, et al. An antiviral drug-resistant mutant of hepatitis B virus with high replication capacity in association with a large in-frame deletion in the preS1 region of viral surface gene. Virus Genes. 2020;56(6):677-686. doi:10.1007/s11262-020-01787-9(IF:1.991)

产品描述

本品是由Alexa Fluor 488标记的山羊抗兔IgG(H+L),使用抗原偶联的琼脂糖微珠从山羊抗血清内亲和色谱纯化所得。免疫电泳和/或ELISA法检测显示本品特异性结合完整的兔IgG分子,也会与其他兔免疫球蛋白的轻链结合。可能会与其他物种免疫球蛋白发生交叉反应,但不会识别非免疫球蛋白类的血清蛋白。Alexa Fluor 488的光谱性质同FITC,Amax(最大激发波长)为493 nm,Emax(最大发射波长)为519 nm。

本品适合做单标实验,广泛应用于多种免疫学实验如免疫细胞化学(ICC),流式细胞术(FC)以及免疫组化(IHC)等。要做多标(multiple-labeling)实验,建议使用与相近物种的血清蛋白或者免疫球蛋白预先经过亲和吸附处理的二抗。

产品应用

建议稀释浓度:1:50-1:400(For most application)。

产品性质

抗体浓度(Antibody Concentration)

100 µL(0.75 mg/mL)

缓冲液(Buffer)

0.005 M磷酸钠,0.125 M氯化钠,pH 7.6

稳定剂(Stabilizer)

7.5 mg/mL BSA(无IgG,蛋白酶),50%甘油

荧光素(Fluorophore)

Alexa Fluor® 488,Amax=493,Emax=519

防腐剂(Preservative)

0.025% 叠氮化钠

原料来源(Source of Material)

Jackson Immunoresearch 111-545-003

运输与保存方法

冰袋运输。-20℃分装保存,尽量避免反复冻融。有效期1年。

注意事项

1)本品含叠氮化钠,对人体有害,请注意适当防护。

2)为了您的安全和健康,请穿实验服并戴一次性手套操作。

3)本产品仅作科研用途!

 

488标记山羊抗兔IgG抗体 488山羊抗兔IgG抗体|Goat Anti-Rabbit IgG

暂无内容

[1] Li S, Wen Z, Ghalandari B, et al. Single-Cell Immunoblotting based on a Photoclick Hydrogel Enables High-Throughput Screening and Accurate Profiling of Exogenous Gene Expression. Adv Mater. 2021;33(22):e2101108. doi:10.1002/adma.202101108(IF:30.849)
[2] Yang WQ, Xiong QP, Ge JY, et al. THUMPD3-TRMT112 is a m2G methyltransferase working on a broad range of tRNA substrates. Nucleic Acids Res. 2021;49(20):11900-11919. doi:10.1093/nar/gkab927(IF:16.971)
[3] Wang Z, Gong X, Li J, et al. Oxygen-Delivering Polyfluorocarbon Nanovehicles Improve Tumor Oxygenation and Potentiate Photodynamic-Mediated Antitumor Immunity. ACS Nano. 2021;15(3):5405-5419. doi:10.1021/acsnano.1c00033(IF:15.881)
[4] Feng L, Wang Q, Shan C, et al. An adenovirus-vectored COVID-19 vaccine confers protection from SARS-COV-2 challenge in rhesus macaques. Nat Commun. 2020;11(1):4207. Published 2020 Aug 21. doi:10.1038/s41467-020-18077-5(IF:12.121)
[5] Wang H, Huang Y, Xiao Q, et al. Carotenoids modulate kernel texture in maize by influencing amyloplast envelope integrity. Nat Commun. 2020;11(1):5346. Published 2020 Oct 22. doi:10.1038/s41467-020-19196-9(IF:12.121)
[6] Ni XC, Wang HF, Cai YY, et al. Ginsenoside Rb1 inhibits astrocyte activation and promotes transfer of astrocytic mitochondria to neurons against ischemic stroke. Redox Biol. 2022;54:102363. doi:10.1016/j.redox.2022.102363(IF:11.799)
[7] Wang Y, Gong X, Li J, et al. M2 macrophage microvesicle-inspired nanovehicles improve accessibility to cancer cells and cancer stem cells in tumors. J Nanobiotechnology. 2021;19(1):397. Published 2021 Nov 27. doi:10.1186/s12951-021-01143-5(IF:10.435)
[8] Wang H, Li J, Wang Z, et al. Tumor-permeated bioinspired theranostic nanovehicle remodels tumor immunosuppression for cancer therapy. Biomaterials. 2021;269:120609. doi:10.1016/j.biomaterials.2020.120609(IF:10.317)
[9] Huang Y, Wang H, Huang X, et al. Maize VKS1 Regulates Mitosis and Cytokinesis During Early Endosperm Development. Plant Cell. 2019;31(6):1238-1256. doi:10.1105/tpc.18.00966(IF:8.631)
[10] Kong L, Deng J, Zhou X, et al. Sitagliptin activates the p62-Keap1-Nrf2 signalling pathway to alleviate oxidative stress and excessive autophagy in severe acute pancreatitis-related acute lung injury. Cell Death Dis. 2021;12(10):928. Published 2021 Oct 11. doi:10.1038/s41419-021-04227-0(IF:8.469)
[11] Zhang W, Yu M, Xi Z, et al. Cancer Cell Membrane-Camouflaged Nanorods with Endoplasmic Reticulum Targeting for Improved Antitumor Therapy. ACS Appl Mater Interfaces. 2019;11(50):46614-46625. doi:10.1021/acsami.9b18388(IF:8.456)
[12] Yang J, Fu M, Ji C, Huang Y, Wu Y. Maize Oxalyl-CoA Decarboxylase1 Degrades Oxalate and Affects the Seed Metabolome and Nutritional Quality. Plant Cell. 2018;30(10):2447-2462. doi:10.1105/tpc.18.00266(IF:8.228)
[13] Guo H, Yin W, Zou Z, et al. Quercitrin alleviates cartilage extracellular matrix degradation and delays ACLT rat osteoarthritis development: An in vivo and in vitro study. J Adv Res. 2020;28:255-267. Published 2020 Jun 24. doi:10.1016/j.jare.2020.06.020(IF:6.992)
[14] Wang K, Wang Y, Wang Y, et al. EIF5A2 enhances stemness of epithelial ovarian cancer cells via a E2F1/KLF4 axis. Stem Cell Res Ther. 2021;12(1):186. Published 2021 Mar 16. doi:10.1186/s13287-021-02256-2(IF:6.832)
[15] Zhu Y, Wang X, Hu M, et al. Targeting Aβ and p-Tau Clearance in Methamphetamine-Induced Alzheimer's Disease-Like Pathology: Roles of Syntaxin 17 in Autophagic Degradation in Primary Hippocampal Neurons. Oxid Med Cell Longev. 2022;2022:3344569. Published 2022 May 18. doi:10.1155/2022/3344569(IF:6.543)
[16] Zhang H, Bi Y, Wei Y, Liu J, Kuerban K, Ye L. Blocking Wnt/β-catenin Signal Amplifies Anti-PD-1 Therapeutic Efficacy by Inhibiting Tumor Growth, Migration, and Promoting Immune Infiltration in Glioblastomas. Mol Cancer Ther. 2021;20(7):1305-1315. doi:10.1158/1535-7163.MCT-20-0825(IF:6.261)
[17] Chen S, Liu Y, Yang X, et al. Dysfunction of dimorphic sperm impairs male fertility in the silkworm. Cell Discov. 2020;6:60. Published 2020 Sep 8. doi:10.1038/s41421-020-00194-6(IF:6.255)
[18] Zhu L, Liu Z, Ren Y, et al. Neuroprotective effects of salidroside on ageing hippocampal neurons and naturally ageing mice via the PI3K/Akt/TERT pathway. Phytother Res. 2021;35(10):5767-5780. doi:10.1002/ptr.7235(IF:5.882)
[19] Yang S, Yang Y, Chen C, et al. The Anti-Neuroinflammatory Effect of Fuzi and Ganjiang Extraction on LPS-Induced BV2 Microglia and Its Intervention Function on Depression-Like Behavior of Cancer-Related Fatigue Model Mice. Front Pharmacol. 2021;12:670586. Published 2021 May 28. doi:10.3389/fphar.2021.670586(IF:5.811)
[20] Li C, Zheng Y, Liu Y, et al. The interaction protein of SORBS2 in myocardial tissue to find out the pathogenic mechanism of LVNC disease. Aging (Albany NY). 2022;14(2):800-810. doi:10.18632/aging.203841(IF:5.682)
[21] Li B, Wu H, Li N, et al. Preliminary Characterization of MEDLE-2, a Protein Potentially Involved in the Invasion of Cryptosporidium parvum. Front Microbiol. 2017;8:1647. Published 2017 Aug 31. doi:10.3389/fmicb.2017.01647(IF:5.640)
[22] Li M, Pei Z, Zhang H, Qu J. Expression Profile of Long Noncoding RNAs and Circular RNAs in Mouse C3H10T1/2 Mesenchymal Stem Cells Undergoing Myogenic and Cardiomyogenic Differentiation. Stem Cells Int. 2021;2021:8882264. Published 2021 Apr 30. doi:10.1155/2021/8882264(IF:5.443)
[23] Xu XX, Zheng G, Tang SK, Liu HX, Hu YZ, Shang P. Theaflavin protects chondrocytes against apoptosis and senescence via regulating Nrf2 and ameliorates murine osteoarthritis. Food Funct. 2021;12(4):1590-1602. doi:10.1039/d0fo02038a(IF:5.396)
[24] Zou ZL, Sun MH, Yin WF, Yang L, Kong LY. Avicularin suppresses cartilage extracellular matrix degradation and inflammation via TRAF6/MAPK activation. Phytomedicine. 2021;91:153657. doi:10.1016/j.phymed.2021.153657(IF:5.340)
[25] Zhu Y, Zhao P, Sun L, et al. Overexpression of circRNA SNRK targets miR-103-3p to reduce apoptosis and promote cardiac repair through GSK3β/β-catenin pathway in rats with myocardial infarction. Cell Death Discov. 2021;7(1):84. Published 2021 Apr 19. doi:10.1038/s41420-021-00467-3(IF:5.241)
[26] Li SS, Hua XY, Zheng MX, et al. Electroacupuncture treatment improves motor function and neurological outcomes after cerebral ischemia/reperfusion injury. Neural Regen Res. 2022;17(7):1545-1555. doi:10.4103/1673-5374.330617(IF:5.135)
[27] Zhang X, Cong Y, Chu Z, et al. Aberrant epigenetic regulation of RARβ by TET2 is involved in cutaneous squamous cell carcinoma resistance to retinoic acid. Int J Biochem Cell Biol. 2022;145:106190. doi:10.1016/j.biocel.2022.106190(IF:5.085)
[28] Ye W, Zheng C, Yu D, et al. Lipoxin A4 Ameliorates Acute Pancreatitis-Associated Acute Lung Injury through the Antioxidative and Anti-Inflammatory Effects of the Nrf2 Pathway. Oxid Med Cell Longev. 2019;2019:2197017. Published 2019 Nov 6. doi:10.1155/2019/2197017(IF:4.868)
[29] Hu J, Kong S, Dong T, et al. Autophagy modulates mesenchymal-to-endothelial transition via p53. Aging (Albany NY). 2020;12(21):22112-22121. doi:10.18632/aging.104065(IF:4.831)
[30] Yao H, Xu K, Zhou J, Zhou L, Wei S. A Tumor Microenvironment Destroyer for Efficient Cancer Suppression. ACS Biomater Sci Eng. 2020;6(1):450-462. doi:10.1021/acsbiomaterials.9b01544(IF:4.511)
[31] Tang S, Zhou W, Zhong X, et al. Arctigenin prevents the progression of osteoarthritis by targeting PI3K/Akt/NF-κB axis: In vitro and in vivo studies. J Cell Mol Med. 2020;24(7):4183-4193. doi:10.1111/jcmm.15079(IF:4.486)
[32] Ying X, Xie Q, Li S, et al. Water treadmill training attenuates blood-spinal cord barrier disruption in rats by promoting angiogenesis and inhibiting matrix metalloproteinase-2/9 expression following spinal cord injury. Fluids Barriers CNS. 2020;17(1):70. Published 2020 Nov 25. doi:10.1186/s12987-020-00232-1(IF:4.470)
[33] Huang Y, Yu H, Liang M, et al. Hearing Protection Outcomes of Analog Electrode Arrays Coated with Different Drug-Eluting Polymer Films Implanted into Guinea Pig Cochleae [published correction appears in Drug Des Devel Ther. 2021 Nov 24;15:4759-4760]. Drug Des Devel Ther. 2021;15:3443-3450. Published 2021 Aug 11. doi:10.2147/DDDT.S318117(IF:4.162)
[34] Yang S, Chu S, Ai Q, et al. Anti-inflammatory effects of higenamine (Hig) on LPS-activated mouse microglia (BV2) through NF-κB and Nrf2/HO-1 signaling pathways. Int Immunopharmacol. 2020;85:106629. doi:10.1016/j.intimp.2020.106629(IF:3.943)
[35] Ying X, Xie Q, Yu X, et al. Water treadmill training protects the integrity of the blood-spinal cord barrier following SCI via the BDNF/TrkB-CREB signalling pathway. Neurochem Int. 2021;143:104945. doi:10.1016/j.neuint.2020.104945(IF:3.881)
[36] Zhang T, Lu D, Yang W, et al. HMG-CoA Reductase Inhibitors Relieve Endoplasmic Reticulum Stress by Autophagy Inhibition in Rats With Permanent Brain Ischemia. Front Neurosci. 2018;12:405. Published 2018 Jun 19. doi:10.3389/fnins.2018.00405(IF:3.877)
[37] Li C, Zhang H, Xie Y, et al. Effects of CMYA1 overexpression on cardiac structure and function in mice. Acta Biochim Biophys Sin (Shanghai). 2021;53(5):593-600. doi:10.1093/abbs/gmab029(IF:3.848)
[38] Lu D, Mai HC, Liang YB, Xu BD, Xu AD, Zhang YS. Beneficial Role of Rosuvastatin in Blood-Brain Barrier Damage Following Experimental Ischemic Stroke. Front Pharmacol. 2018;9:926. Published 2018 Aug 21. doi:10.3389/fphar.2018.00926(IF:3.831)
[39] Shen Y, Zhou M, Yan J, et al. miR-200b inhibits TNF-α-induced IL-8 secretion and tight junction disruption of intestinal epithelial cells in vitro. Am J Physiol Gastrointest Liver Physiol. 2017;312(2):G123-G132. doi:10.1152/ajpgi.00316.2016(IF:3.468)
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[42] Wei C, Lu N, Wang L, et al. Upregulation of UHRF1 promotes the progression of melanoma by inducing cell proliferation. Oncol Rep. 2018;39(6):2553-2562. doi:10.3892/or.2018.6356(IF:2.976)
[43] Wang T, Qin Y, Zhang J, et al. An antiviral drug-resistant mutant of hepatitis B virus with high replication capacity in association with a large in-frame deletion in the preS1 region of viral surface gene. Virus Genes. 2020;56(6):677-686. doi:10.1007/s11262-020-01787-9(IF:1.991)

FITC标记山羊抗兔IgG抗体 FITC山羊抗兔IgG抗体|FITC Goat Anti-Rabbit IgG

FITC标记山羊抗兔IgG抗体 FITC山羊抗兔IgG抗体|FITC Goat Anti-Rabbit IgG

产品说明书

FAQ

COA

已发表文献

产品描述

 

本品是由FITC标记的山羊抗兔IgG(H+L),使用抗原偶联的琼脂糖微珠从山羊抗血清内亲和色谱纯化所得。免疫电泳和/或ELISA法检测显示本品特异性结合完整的兔IgG分子,也会与其他兔免疫球蛋白的轻链结合。可能会与其他物种免疫球蛋白发生交叉反应,但不会识别非免疫球蛋白类的血清蛋白。该荧光基团光谱性质同Alexa Fluor 488,Amax(最大激发波长)为492nm,Emax(最大发射波长)为520nm。

本品适合做单标实验,广泛应用于多种免疫学实验如免疫细胞化学(ICC),流式细胞术(FC)以及免疫组化(IHC)等。要做多标(multiple-labeling)实验,建议使用与相近物种的血清蛋白或者免疫球蛋白预先经过亲和吸附处理的二抗。

产品应用

建议稀释浓度:1:25-1:100(For most application)

产品性质 

抗体浓度(Antibody Concentration)

100µl (0.75mg/ml)

缓冲液(Buffer)

0.005M 磷酸钠,0.125M 氯化钠, pH 7.6

稳定剂(Stabilizer)

7.5mg/ml BSA(无IgG,蛋白酶),50% 甘油

荧光素(Fluorophore)

FITC-isomer 1, Amax =492nm, Emax=520nm

防腐剂(Preservative)

0.025% 叠氮化钠

原料来源(Source of Material)

Jackson Immunoresearch 111-095-003

运输与保存方法

冰袋运输。-20℃分装保存,尽量避免反复冻融。有效期1年。

注意事项

1)本品含叠氮化钠,对人体有害,请注意适当防护。

2)为了您的安全和健康,请穿实验服并戴一次性手套操作。

3)本产品仅作科研用途!

 

FITC标记山羊抗兔IgG抗体 FITC山羊抗兔IgG抗体|FITC Goat Anti-Rabbit IgG

暂无内容

[1] Wang Z, Gong X, Li J, et al. Oxygen-Delivering Polyfluorocarbon Nanovehicles Improve Tumor Oxygenation and Potentiate Photodynamic-Mediated Antitumor Immunity. ACS Nano. 2021;15(3):5405-5419. doi:10.1021/acsnano.1c00033(IF:15.881)
[2] Bao L, Dou G, Tian R, et al. Engineered neutrophil apoptotic bodies ameliorate myocardial infarction by promoting macrophage efferocytosis and inflammation resolution. Bioact Mater. 2021;9:183-197. Published 2021 Aug 27. doi:10.1016/j.bioactmat.2021.08.008(IF:14.593)
[3] Shi X, Cheng Y, Wang J, et al. 3D printed intelligent scaffold prevents recurrence and distal metastasis of breast cancer. Theranostics. 2020;10(23):10652-10664. Published 2020 Aug 29. doi:10.7150/thno.47933(IF:11.556)
[4] Li Z, Wu M, Liu S, et al. Apoptotic vesicles activate autophagy in recipient cells to induce angiogenesis and dental pulp regeneration [published online ahead of print, 2022 May 10]. Mol Ther. 2022;S1525-0016(22)00304-5. doi:10.1016/j.ymthe.2022.05.006(IF:11.454)
[5] Chen H, Wang X, Wang J, et al. In vitroadipogenesis and long-term adipocyte culture in adipose tissue-derived cell banks. Biofabrication. 2021;13(3):10.1088/1758-5090/ac0610. Published 2021 Jul 5. doi:10.1088/1758-5090/ac0610(IF:10.020)
[6] Wang Y, Lin YX, Qiao SL, et al. Polymeric nanoparticles promote macrophage reversal from M2 to M1 phenotypes in the tumor microenvironment. Biomaterials. 2017;112:153-163. doi:10.1016/j.biomaterials.2016.09.034(IF:8.387)
[7] Yuan J, Jiang X, Lan H, et al. Multi-Omics Analysis of the Therapeutic Value of MAL2 Based on Data Mining in Human Cancers. Front Cell Dev Biol. 2022;9:736649. Published 2022 Jan 17. doi:10.3389/fcell.2021.736649(IF:6.684)
[8] Tao Y, Qiao SM, Lv CJ, et al. Phytoestrogen arctigenin preserves the mucus barrier in inflammatory bowel diseases by inhibiting goblet cell apoptosis via the ERβ/TRIM21/PHB1 pathway [published online ahead of print, 2022 May 22]. Phytother Res. 2022;10.1002/ptr.7495. doi:10.1002/ptr.7495(IF:5.882)
[9] Li Z, You L, Yan D, James AA, Huang Y, Tan A. Bombyx mori histone methyltransferase BmAsh2 is essential for silkworm piRNA-mediated sex determination. PLoS Genet. 2018;14(2):e1007245. Published 2018 Feb 23. doi:10.1371/journal.pgen.1007245(IF:5.540)
[10] Tao Y, Yue M, Lv C, et al. Pharmacological activation of ERβ by arctigenin maintains the integrity of intestinal epithelial barrier in inflammatory bowel diseases. FASEB J. 2020;34(2):3069-3090. doi:10.1096/fj.201901638RR(IF:5.391)
[11] Li Z, Liu S, Fu T, Peng Y, Zhang J. Microtubule destabilization caused by silicate via HDAC6 activation contributes to autophagic dysfunction in bone mesenchymal stem cells. Stem Cell Res Ther. 2019;10(1):351. Published 2019 Nov 27. doi:10.1186/s13287-019-1441-4(IF:4.627)
[12] Li Z, You L, Zhang Q, Yu Y, Tan A. A Targeted In-Fusion Expression System for Recombinant Protein Production in Bombyx mori. Front Genet. 2022;12:816075. Published 2022 Jan 4. doi:10.3389/fgene.2021.816075(IF:4.599)
[13] Zheng C, Wu SM, Lian H, et al. Low-intensity pulsed ultrasound attenuates cardiac inflammation of CVB3-induced viral myocarditis via regulation of caveolin-1 and MAPK pathways. J Cell Mol Med. 2019;23(3):1963-1975. doi:10.1111/jcmm.14098(IF:4.302)
[14] Wang H, Zhang Z, Guan J, Lu W, Zhan C. Unraveling GLUT-mediated transcytosis pathway of glycosylated nanodisks. Asian J Pharm Sci. 2021;16(1):120-128. doi:10.1016/j.ajps.2020.07.001(IF:3.968)
[15] Chen L, Lv L, Zhang L, et al. Metformin ameliorates bladder dysfunction in a rat model of partial bladder outlet obstruction. Am J Physiol Renal Physiol. 2021;320(5):F838-F858. doi:10.1152/ajprenal.00625.2020(IF:3.377)
[16] Yang LY, Liu XF, Yang Y, et al. Biochemical features of the adhesion G protein-coupled receptor CD97 related to its auto-proteolysis and HeLa cell attachment activities. Acta Pharmacol Sin. 2017;38(1):56-68. doi:10.1038/aps.2016.89(IF:3.166)
[17] Wang Y, Jiang C, Cong S, Guo C, Yan Z. Extracellular matrix deposited by Wharton's jelly mesenchymal stem cells enhances cell expansion and tissue specific lineage potential. Am J Transl Res. 2018;10(11):3465-3480. Published 2018 Nov 15. (IF:3.061)
[18] Xue Z, Zhuang J, Bai H, et al. VDR mediated HSD3B1 to regulate lipid metabolism and promoted testosterone synthesis in mouse Leydig cells. Genes Genomics. 2022;44(5):583-592. doi:10.1007/s13258-022-01232-1(IF:1.839)

产品描述

 

本品是由FITC标记的山羊抗兔IgG(H+L),使用抗原偶联的琼脂糖微珠从山羊抗血清内亲和色谱纯化所得。免疫电泳和/或ELISA法检测显示本品特异性结合完整的兔IgG分子,也会与其他兔免疫球蛋白的轻链结合。可能会与其他物种免疫球蛋白发生交叉反应,但不会识别非免疫球蛋白类的血清蛋白。该荧光基团光谱性质同Alexa Fluor 488,Amax(最大激发波长)为492nm,Emax(最大发射波长)为520nm。

本品适合做单标实验,广泛应用于多种免疫学实验如免疫细胞化学(ICC),流式细胞术(FC)以及免疫组化(IHC)等。要做多标(multiple-labeling)实验,建议使用与相近物种的血清蛋白或者免疫球蛋白预先经过亲和吸附处理的二抗。

产品应用

建议稀释浓度:1:25-1:100(For most application)

产品性质 

抗体浓度(Antibody Concentration)

100µl (0.75mg/ml)

缓冲液(Buffer)

0.005M 磷酸钠,0.125M 氯化钠, pH 7.6

稳定剂(Stabilizer)

7.5mg/ml BSA(无IgG,蛋白酶),50% 甘油

荧光素(Fluorophore)

FITC-isomer 1, Amax =492nm, Emax=520nm

防腐剂(Preservative)

0.025% 叠氮化钠

原料来源(Source of Material)

Jackson Immunoresearch 111-095-003

运输与保存方法

冰袋运输。-20℃分装保存,尽量避免反复冻融。有效期1年。

注意事项

1)本品含叠氮化钠,对人体有害,请注意适当防护。

2)为了您的安全和健康,请穿实验服并戴一次性手套操作。

3)本产品仅作科研用途!

 

FITC标记山羊抗兔IgG抗体 FITC山羊抗兔IgG抗体|FITC Goat Anti-Rabbit IgG

暂无内容

[1] Wang Z, Gong X, Li J, et al. Oxygen-Delivering Polyfluorocarbon Nanovehicles Improve Tumor Oxygenation and Potentiate Photodynamic-Mediated Antitumor Immunity. ACS Nano. 2021;15(3):5405-5419. doi:10.1021/acsnano.1c00033(IF:15.881)
[2] Bao L, Dou G, Tian R, et al. Engineered neutrophil apoptotic bodies ameliorate myocardial infarction by promoting macrophage efferocytosis and inflammation resolution. Bioact Mater. 2021;9:183-197. Published 2021 Aug 27. doi:10.1016/j.bioactmat.2021.08.008(IF:14.593)
[3] Shi X, Cheng Y, Wang J, et al. 3D printed intelligent scaffold prevents recurrence and distal metastasis of breast cancer. Theranostics. 2020;10(23):10652-10664. Published 2020 Aug 29. doi:10.7150/thno.47933(IF:11.556)
[4] Li Z, Wu M, Liu S, et al. Apoptotic vesicles activate autophagy in recipient cells to induce angiogenesis and dental pulp regeneration [published online ahead of print, 2022 May 10]. Mol Ther. 2022;S1525-0016(22)00304-5. doi:10.1016/j.ymthe.2022.05.006(IF:11.454)
[5] Chen H, Wang X, Wang J, et al. In vitroadipogenesis and long-term adipocyte culture in adipose tissue-derived cell banks. Biofabrication. 2021;13(3):10.1088/1758-5090/ac0610. Published 2021 Jul 5. doi:10.1088/1758-5090/ac0610(IF:10.020)
[6] Wang Y, Lin YX, Qiao SL, et al. Polymeric nanoparticles promote macrophage reversal from M2 to M1 phenotypes in the tumor microenvironment. Biomaterials. 2017;112:153-163. doi:10.1016/j.biomaterials.2016.09.034(IF:8.387)
[7] Yuan J, Jiang X, Lan H, et al. Multi-Omics Analysis of the Therapeutic Value of MAL2 Based on Data Mining in Human Cancers. Front Cell Dev Biol. 2022;9:736649. Published 2022 Jan 17. doi:10.3389/fcell.2021.736649(IF:6.684)
[8] Tao Y, Qiao SM, Lv CJ, et al. Phytoestrogen arctigenin preserves the mucus barrier in inflammatory bowel diseases by inhibiting goblet cell apoptosis via the ERβ/TRIM21/PHB1 pathway [published online ahead of print, 2022 May 22]. Phytother Res. 2022;10.1002/ptr.7495. doi:10.1002/ptr.7495(IF:5.882)
[9] Li Z, You L, Yan D, James AA, Huang Y, Tan A. Bombyx mori histone methyltransferase BmAsh2 is essential for silkworm piRNA-mediated sex determination. PLoS Genet. 2018;14(2):e1007245. Published 2018 Feb 23. doi:10.1371/journal.pgen.1007245(IF:5.540)
[10] Tao Y, Yue M, Lv C, et al. Pharmacological activation of ERβ by arctigenin maintains the integrity of intestinal epithelial barrier in inflammatory bowel diseases. FASEB J. 2020;34(2):3069-3090. doi:10.1096/fj.201901638RR(IF:5.391)
[11] Li Z, Liu S, Fu T, Peng Y, Zhang J. Microtubule destabilization caused by silicate via HDAC6 activation contributes to autophagic dysfunction in bone mesenchymal stem cells. Stem Cell Res Ther. 2019;10(1):351. Published 2019 Nov 27. doi:10.1186/s13287-019-1441-4(IF:4.627)
[12] Li Z, You L, Zhang Q, Yu Y, Tan A. A Targeted In-Fusion Expression System for Recombinant Protein Production in Bombyx mori. Front Genet. 2022;12:816075. Published 2022 Jan 4. doi:10.3389/fgene.2021.816075(IF:4.599)
[13] Zheng C, Wu SM, Lian H, et al. Low-intensity pulsed ultrasound attenuates cardiac inflammation of CVB3-induced viral myocarditis via regulation of caveolin-1 and MAPK pathways. J Cell Mol Med. 2019;23(3):1963-1975. doi:10.1111/jcmm.14098(IF:4.302)
[14] Wang H, Zhang Z, Guan J, Lu W, Zhan C. Unraveling GLUT-mediated transcytosis pathway of glycosylated nanodisks. Asian J Pharm Sci. 2021;16(1):120-128. doi:10.1016/j.ajps.2020.07.001(IF:3.968)
[15] Chen L, Lv L, Zhang L, et al. Metformin ameliorates bladder dysfunction in a rat model of partial bladder outlet obstruction. Am J Physiol Renal Physiol. 2021;320(5):F838-F858. doi:10.1152/ajprenal.00625.2020(IF:3.377)
[16] Yang LY, Liu XF, Yang Y, et al. Biochemical features of the adhesion G protein-coupled receptor CD97 related to its auto-proteolysis and HeLa cell attachment activities. Acta Pharmacol Sin. 2017;38(1):56-68. doi:10.1038/aps.2016.89(IF:3.166)
[17] Wang Y, Jiang C, Cong S, Guo C, Yan Z. Extracellular matrix deposited by Wharton's jelly mesenchymal stem cells enhances cell expansion and tissue specific lineage potential. Am J Transl Res. 2018;10(11):3465-3480. Published 2018 Nov 15. (IF:3.061)
[18] Xue Z, Zhuang J, Bai H, et al. VDR mediated HSD3B1 to regulate lipid metabolism and promoted testosterone synthesis in mouse Leydig cells. Genes Genomics. 2022;44(5):583-592. doi:10.1007/s13258-022-01232-1(IF:1.839)

Cy3标记山羊抗兔IgG抗体 Cy3山羊抗兔IgG抗体|Cy3 Goat Anti-Rabbit IgG

Cy3标记山羊抗兔IgG抗体 Cy3山羊抗兔IgG抗体|Cy3 Goat Anti-Rabbit IgG

产品说明书

FAQ

COA

已发表文献

产品描述

本品是由Cy3标记的山羊抗兔IgG(H+L),使用抗原偶联的琼脂糖微珠从山羊抗血清内亲和色谱纯化所得。免疫电泳和/或ELISA法检测显示本品特异性结合完整的兔IgG分子,也会与其他兔免疫球蛋白的轻链结合。可能会与其他物种免疫球蛋白发生交叉反应,但不会识别非免疫球蛋白类的血清蛋白。

Cy3最大激发波长(Amax)为550 nm,最大发射波长(Emax)为570 nm。本品适合做单标实验。要做多标(multiple-labeling)实验,建议使用与相近物种血清蛋白或者免疫球蛋白预先经过亲和吸附处理的二抗。

产品应用

建议稀释浓度:1:50-1:400(For most applications)。

产品性质

抗体浓度(Antibody Concentration)

100 µL(0.75 mg/mL)

缓冲液(Buffer)

0.005 M磷酸钠,0.125 M氯化钠,pH 7.6

稳定剂(Stabilizer)

7.5 mg/mL BSA(无IgG,蛋白酶),50%甘油

防腐剂(Preservative)

0.025% 叠氮化钠

原料来源(Source of Material)

Jackson Immunoresearch 111-165-003

运输与保存方法

冰袋运输。-20℃分装保存,尽量避免反复冻融。有效期1年。

注意事项

1)本品含叠氮化钠,对人体有害,请注意适当防护。

2)为了您的安全和健康,请穿实验服并戴一次性手套操作。

3)本产品仅作科研用途!

 

Cy3标记山羊抗兔IgG抗体 Cy3山羊抗兔IgG抗体|Cy3 Goat Anti-Rabbit IgG

暂无内容

[1] Liu Y, Lu Y, Ning B, et al. Intravenous Delivery of Living Listeria monocytogenes Elicits Gasdmermin-Dependent Tumor Pyroptosis and Motivates Anti-Tumor Immune Response. ACS Nano. 2022;16(3):4102-4115. doi:10.1021/acsnano.1c09818(IF:15.881)
[2] Bao L, Dou G, Tian R, et al. Engineered neutrophil apoptotic bodies ameliorate myocardial infarction by promoting macrophage efferocytosis and inflammation resolution. Bioact Mater. 2021;9:183-197. Published 2021 Aug 27. doi:10.1016/j.bioactmat.2021.08.008(IF:14.593)
[3] Li Z, Wu M, Liu S, et al. Apoptotic vesicles activate autophagy in recipient cells to induce angiogenesis and dental pulp regeneration [published online ahead of print, 2022 May 10]. Mol Ther. 2022;S1525-0016(22)00304-5. doi:10.1016/j.ymthe.2022.05.006(IF:11.454)
[4] Wang D, Zhang L, Hu A, et al. Loss of 4.1N in epithelial ovarian cancer results in EMT and matrix-detached cell death resistance. Protein Cell. 2021;12(2):107-127. doi:10.1007/s13238-020-00723-9(IF:10.164)
[5] Cheng Y, Sun F, Wang L, et al. Virus-induced p38 MAPK activation facilitates viral infection. Theranostics. 2020;10(26):12223-12240. Published 2020 Oct 30. doi:10.7150/thno.50992(IF:8.579)
[6] Chen H, Cheng Y, Wang X, et al. 3D printed in vitro tumor tissue model of colorectal cancer. Theranostics. 2020;10(26):12127-12143. Published 2020 Oct 26. doi:10.7150/thno.52450(IF:8.579)
[7] Wang Y, Lu J, Chen L, et al. Tumor-Derived EV-Encapsulated miR-181b-5p Induces Angiogenesis to Foster Tumorigenesis and Metastasis of JPCC. Mol Ther Nucleic Acids. 2020;20:421-437. doi:10.1016/j.omtn.2020.03.002(IF:7.032)
[8] Zhang J, Li C, Zhang L, et al. Andrographolide, a diterpene lactone from the Traditional Chinese Medicine Andrographis paniculate, induces senescence in human lung adenocarcinoma via p53/p21 and Skp2/p27 [published online ahead of print, 2022 Jan 10]. Phytomedicine. 2022;98:153933. doi:10.1016/j.phymed.2022.153933(IF:5.340)
[9] Zheng JM, Zhou HX, Yu HY, et al. By Increasing the Expression and Activation of STAT3, Sustained C5a Stimulation Increases the Proliferation, Migration, and Invasion of RCC Cells and Promotes the Growth of Transgrafted Tumors. Cancer Manag Res. 2021;13:7607-7621. Published 2021 Oct 4. doi:10.2147/CMAR.S326352(IF:3.989)
[10] Yang T, Xu R, Su Q, et al. Chelerythrine hydrochloride inhibits proliferation and induces mitochondrial apoptosis in cervical cancer cells via PI3K/BAD signaling pathway. Toxicol In Vitro. 2020;68:104965. doi:10.1016/j.tiv.2020.104965(IF:2.959)
[11] Zheng JM, Wang SS, Tian X, Che DJ. Sustained activation of C3aR in a human podocyte line impairs the morphological maturation of the cells. Mol Med Rep. 2020;22(6):5326-5338. doi:10.3892/mmr.2020.11626(IF:2.100)

产品描述

本品是由Cy3标记的山羊抗兔IgG(H+L),使用抗原偶联的琼脂糖微珠从山羊抗血清内亲和色谱纯化所得。免疫电泳和/或ELISA法检测显示本品特异性结合完整的兔IgG分子,也会与其他兔免疫球蛋白的轻链结合。可能会与其他物种免疫球蛋白发生交叉反应,但不会识别非免疫球蛋白类的血清蛋白。

Cy3最大激发波长(Amax)为550 nm,最大发射波长(Emax)为570 nm。本品适合做单标实验。要做多标(multiple-labeling)实验,建议使用与相近物种血清蛋白或者免疫球蛋白预先经过亲和吸附处理的二抗。

产品应用

建议稀释浓度:1:50-1:400(For most applications)。

产品性质

抗体浓度(Antibody Concentration)

100 µL(0.75 mg/mL)

缓冲液(Buffer)

0.005 M磷酸钠,0.125 M氯化钠,pH 7.6

稳定剂(Stabilizer)

7.5 mg/mL BSA(无IgG,蛋白酶),50%甘油

防腐剂(Preservative)

0.025% 叠氮化钠

原料来源(Source of Material)

Jackson Immunoresearch 111-165-003

运输与保存方法

冰袋运输。-20℃分装保存,尽量避免反复冻融。有效期1年。

注意事项

1)本品含叠氮化钠,对人体有害,请注意适当防护。

2)为了您的安全和健康,请穿实验服并戴一次性手套操作。

3)本产品仅作科研用途!

 

Cy3标记山羊抗兔IgG抗体 Cy3山羊抗兔IgG抗体|Cy3 Goat Anti-Rabbit IgG

暂无内容

[1] Liu Y, Lu Y, Ning B, et al. Intravenous Delivery of Living Listeria monocytogenes Elicits Gasdmermin-Dependent Tumor Pyroptosis and Motivates Anti-Tumor Immune Response. ACS Nano. 2022;16(3):4102-4115. doi:10.1021/acsnano.1c09818(IF:15.881)
[2] Bao L, Dou G, Tian R, et al. Engineered neutrophil apoptotic bodies ameliorate myocardial infarction by promoting macrophage efferocytosis and inflammation resolution. Bioact Mater. 2021;9:183-197. Published 2021 Aug 27. doi:10.1016/j.bioactmat.2021.08.008(IF:14.593)
[3] Li Z, Wu M, Liu S, et al. Apoptotic vesicles activate autophagy in recipient cells to induce angiogenesis and dental pulp regeneration [published online ahead of print, 2022 May 10]. Mol Ther. 2022;S1525-0016(22)00304-5. doi:10.1016/j.ymthe.2022.05.006(IF:11.454)
[4] Wang D, Zhang L, Hu A, et al. Loss of 4.1N in epithelial ovarian cancer results in EMT and matrix-detached cell death resistance. Protein Cell. 2021;12(2):107-127. doi:10.1007/s13238-020-00723-9(IF:10.164)
[5] Cheng Y, Sun F, Wang L, et al. Virus-induced p38 MAPK activation facilitates viral infection. Theranostics. 2020;10(26):12223-12240. Published 2020 Oct 30. doi:10.7150/thno.50992(IF:8.579)
[6] Chen H, Cheng Y, Wang X, et al. 3D printed in vitro tumor tissue model of colorectal cancer. Theranostics. 2020;10(26):12127-12143. Published 2020 Oct 26. doi:10.7150/thno.52450(IF:8.579)
[7] Wang Y, Lu J, Chen L, et al. Tumor-Derived EV-Encapsulated miR-181b-5p Induces Angiogenesis to Foster Tumorigenesis and Metastasis of JPCC. Mol Ther Nucleic Acids. 2020;20:421-437. doi:10.1016/j.omtn.2020.03.002(IF:7.032)
[8] Zhang J, Li C, Zhang L, et al. Andrographolide, a diterpene lactone from the Traditional Chinese Medicine Andrographis paniculate, induces senescence in human lung adenocarcinoma via p53/p21 and Skp2/p27 [published online ahead of print, 2022 Jan 10]. Phytomedicine. 2022;98:153933. doi:10.1016/j.phymed.2022.153933(IF:5.340)
[9] Zheng JM, Zhou HX, Yu HY, et al. By Increasing the Expression and Activation of STAT3, Sustained C5a Stimulation Increases the Proliferation, Migration, and Invasion of RCC Cells and Promotes the Growth of Transgrafted Tumors. Cancer Manag Res. 2021;13:7607-7621. Published 2021 Oct 4. doi:10.2147/CMAR.S326352(IF:3.989)
[10] Yang T, Xu R, Su Q, et al. Chelerythrine hydrochloride inhibits proliferation and induces mitochondrial apoptosis in cervical cancer cells via PI3K/BAD signaling pathway. Toxicol In Vitro. 2020;68:104965. doi:10.1016/j.tiv.2020.104965(IF:2.959)
[11] Zheng JM, Wang SS, Tian X, Che DJ. Sustained activation of C3aR in a human podocyte line impairs the morphological maturation of the cells. Mol Med Rep. 2020;22(6):5326-5338. doi:10.3892/mmr.2020.11626(IF:2.100)

罗丹明标记山羊抗兔IgG抗体 TRITC山羊抗兔IgG抗体|TRITC Goat Anti-Rabbit IgG

罗丹明标记山羊抗兔IgG抗体 TRITC山羊抗兔IgG抗体|TRITC Goat Anti-Rabbit IgG

产品说明书

FAQ

COA

已发表文献

产品描述

本品是由Rhodamine(TRITC)标记的山羊抗兔IgG(H+L),使用抗原偶联的琼脂糖微珠从山羊抗血清内亲和色谱纯化所得。免疫电泳和/或ELISA法检测显示本品特异性结合完整的兔IgG分子,也会与其他兔免疫球蛋白的轻链结合。可能会与其他物种免疫球蛋白发生交叉反应,但不会识别非免疫球蛋白类的血清蛋白。

Rhodamine(TRITC)的光谱性质类似于Cy3,Amax(最大激发波长)为550nm,Emax(最大发射波长)为570nm。本品适合做单标实验。要做多标(multiple-labeling)实验,建议使用经过与相近物种血清蛋白或者免疫球蛋白预先经过亲和吸附处理的二抗。

产品应用

建议稀释浓度:1:25-1:100(For most applications)

产品性质

抗体浓度(Antibody Concentration)

100µl (0.75 mg/ml)

缓冲液(Buffer)

0.005M 磷酸钠,0.125M 氯化钠, pH 7.6

荧光素(Fluorophore)

TRITC, Amax=550, Emax=570

稳定剂(Stabilizer)

7.5mg/ml BSA(无IgG,蛋白酶),50% 甘油

防腐剂(Preservative)

0.025% 叠氮化钠

原料来源(Source of Material)

Jackson Immunoresearch 111-025-003

运输与保存方法

冰袋运输。-20℃分装保存,尽量避免反复冻融。有效期1年。
 

注意事项

1)本品含叠氮化钠,对人体有害,请注意适当防护。

2)为了您的安全和健康,请穿实验服并戴一次性手套操作。

3)本产品仅作科研用途!

 

罗丹明标记山羊抗兔IgG抗体 TRITC山羊抗兔IgG抗体|TRITC Goat Anti-Rabbit IgG

暂无内容

[1] Li C, Liu Z, Wu G, et al. FOXO1 mediates hypoxia-induced G0/G1 arrest in ovarian somatic granulosa cells by activating the TP53INP1-p53-CDKN1A pathway. Development. 2021;148(14):dev199453. doi:10.1242/dev.199453(IF:6.868)
[2] Xu P, Zhao R, Zhang CY, et al. Loss of TACC1 variant25 inducing cell proliferation and suppressing autophagy in head and neck squamous carcinoma. Cell Death Discov. 2021;7(1):386. Published 2021 Dec 11. doi:10.1038/s41420-021-00777-6(IF:5.241)
[3] Wang J, Zhu L, Chen X, Huang R, Wang S, Dong P. Human Bone Marrow Mesenchymal Stem Cells Functionalized by Hybrid Baculovirus-Adeno-Associated Viral Vectors for Targeting Hypopharyngeal Carcinoma. Stem Cells Dev. 2019;28(8):543-553. doi:10.1089/scd.2018.0252(IF:3.147)
[4] Li P, Wang J, Chen G, et al. Oncolytic activity of canine distemper virus in canine mammary tubular adenocarcinoma cells. Vet Comp Oncol. 2019;17(2):174-183. doi:10.1111/vco.12466(IF:2.379)

产品描述

本品是由Rhodamine(TRITC)标记的山羊抗兔IgG(H+L),使用抗原偶联的琼脂糖微珠从山羊抗血清内亲和色谱纯化所得。免疫电泳和/或ELISA法检测显示本品特异性结合完整的兔IgG分子,也会与其他兔免疫球蛋白的轻链结合。可能会与其他物种免疫球蛋白发生交叉反应,但不会识别非免疫球蛋白类的血清蛋白。

Rhodamine(TRITC)的光谱性质类似于Cy3,Amax(最大激发波长)为550nm,Emax(最大发射波长)为570nm。本品适合做单标实验。要做多标(multiple-labeling)实验,建议使用经过与相近物种血清蛋白或者免疫球蛋白预先经过亲和吸附处理的二抗。

产品应用

建议稀释浓度:1:25-1:100(For most applications)

产品性质

抗体浓度(Antibody Concentration)

100µl (0.75 mg/ml)

缓冲液(Buffer)

0.005M 磷酸钠,0.125M 氯化钠, pH 7.6

荧光素(Fluorophore)

TRITC, Amax=550, Emax=570

稳定剂(Stabilizer)

7.5mg/ml BSA(无IgG,蛋白酶),50% 甘油

防腐剂(Preservative)

0.025% 叠氮化钠

原料来源(Source of Material)

Jackson Immunoresearch 111-025-003

运输与保存方法

冰袋运输。-20℃分装保存,尽量避免反复冻融。有效期1年。
 

注意事项

1)本品含叠氮化钠,对人体有害,请注意适当防护。

2)为了您的安全和健康,请穿实验服并戴一次性手套操作。

3)本产品仅作科研用途!

 

罗丹明标记山羊抗兔IgG抗体 TRITC山羊抗兔IgG抗体|TRITC Goat Anti-Rabbit IgG

暂无内容

[1] Li C, Liu Z, Wu G, et al. FOXO1 mediates hypoxia-induced G0/G1 arrest in ovarian somatic granulosa cells by activating the TP53INP1-p53-CDKN1A pathway. Development. 2021;148(14):dev199453. doi:10.1242/dev.199453(IF:6.868)
[2] Xu P, Zhao R, Zhang CY, et al. Loss of TACC1 variant25 inducing cell proliferation and suppressing autophagy in head and neck squamous carcinoma. Cell Death Discov. 2021;7(1):386. Published 2021 Dec 11. doi:10.1038/s41420-021-00777-6(IF:5.241)
[3] Wang J, Zhu L, Chen X, Huang R, Wang S, Dong P. Human Bone Marrow Mesenchymal Stem Cells Functionalized by Hybrid Baculovirus-Adeno-Associated Viral Vectors for Targeting Hypopharyngeal Carcinoma. Stem Cells Dev. 2019;28(8):543-553. doi:10.1089/scd.2018.0252(IF:3.147)
[4] Li P, Wang J, Chen G, et al. Oncolytic activity of canine distemper virus in canine mammary tubular adenocarcinoma cells. Vet Comp Oncol. 2019;17(2):174-183. doi:10.1111/vco.12466(IF:2.379)