总SOD活性检测试剂盒(WST-8法)(S0101S)

总SOD活性检测试剂盒(WST-8法)

产品编号: S0101S

产品包装:100次
选择包装

100次 250次

说明书下载

568.00 10

价格: ¥ 568.00

产品简介
使用说明
产品图片
相关产品
相关论文
产品问答
产品编号 产品名称 产品包装 产品价格
S0101S 总SOD活性检测试剂盒(WST-8法) 100次 568.00元
S0101M 总SOD活性检测试剂盒(WST-8法) 250次 1098.00元

碧云天的总SOD活性检测试剂盒(WST-8法)(Total Superoxide Dismutase Assay Kit with WST-8)是一种基于WST-8的显色反应,通过比色来检测细胞、组织或其它样品中SOD即超氧化物歧化酶活性的试剂盒。
超氧化物歧化酶(Superoxide Dismutase, SOD)能催化超氧化物阴离子发生歧化作用,生成过氧化氢(H2O2)和氧气(O2),是生物体内一种重要的抗氧化酶。
目前有多种SOD活性测定法,其中NBT(氮蓝四唑)法由于使用方便而被广泛使用。但NBT法产生的甲臜染料水溶性差,易和被还原的黄嘌呤氧化酶相互作用,抑制百分率达不到100%等,从而使检测的灵敏度和精确度受到影响;细胞色素C法也是一种常用来检测SOD活性的方法,但细胞色素C其氧化活性高,易受样品中的还原剂干扰,另外该方法需要连续测定吸光度值,对于SOD的检测灵敏度比较低,并且不太适合大批量样本的检测。
目前测定SOD比较先进的方法包括WST-1法和WST-8法,其中WST-8法比WST-1法更加稳定、灵敏度更高。本试剂盒采用了目前测定SOD方法中稳定性更好、灵敏度更高的WST-8法,可以检测出低达0.5U/ml的超氧化物歧化酶。WST-8法的原理参考图1,WST-8可以和黄嘌呤氧化酶(Xanthine Oxidase, XO)催化产生的超氧化物阴离子(O2.-)反应产生水溶性的甲臜染料(formazan dye),由于SOD能催化超氧化物阴离子发生歧化作用,所以该反应步骤可以被SOD所抑制,因此SOD的活性与甲臜染料的生成量成负相关,从而通过对WST-8产物的比色分析即可计算SOD的酶活力。

总SOD活性检测试剂盒(WST-8法)(S0101S)
图1. 基于黄嘌呤氧化酶偶联反应体系和WST-8的SOD酶活力检测原理图。XO:xanthine oxidase。

WST-8的反应产物是稳定的水溶性产物,可以通过单个时间点的吸光度检测来测定SOD活力,适合高通量筛选研究。同时WST-8法测定SOD酶活力时,最大抑制百分率可以接近100%,并且可以不受一些常见的干扰因素的干扰,使检测效果比其它的一些常见方法显著改善。
本试剂盒的性能优于同类产品总SOD活性检测试剂盒(NBT法)。本产品的用途与同类产品总SOD活性检测试剂盒(NBT法)相同,等量SOD导致的吸光度变化值显著大于NBT法,线性范围更宽。本试剂盒提供的SOD样品制备液能直接裂解细胞,无需匀浆,操作更加便捷。
本试剂盒的检测不受样品中过氧化氢的干扰。很多细胞和组织样品中含有内源性的过氧化氢,会干扰SOD的检测。本试剂盒通过添加适量过氧化氢酶等特殊方法,能有效去除常规样品中过氧化氢的干扰。例如,对于SOD标准品的检测,标准品中添加高达0.1mM的过氧化氢时,对于检测结果仍无显著影响。
本试剂盒可以检测细胞或组织匀浆液上清、全血、红细胞抽提物、血清等生物样品中的SOD活性。本试剂盒S0101S包装共可以进行100次检测,S0101M包装共可以进行250次检测。
包装清单:

产品编号 产品名称  包装 
S0101S-1 SOD样品制备液 50ml
S0101S-2 SOD检测缓冲液 50ml
S0101S-3 WST-8 800μl
S0101S-4 酶溶液 100μl
S0101S-5 反应启动液(40X) 60μl
说明书 1份

产品编号 产品名称  包装 
S0101M-1 SOD样品制备液 125ml
S0101M-2 SOD检测缓冲液 125ml
S0101M-3 WST-8 2ml
S0101M-4 酶溶液 250μl
S0101M-5 反应启动液(40X) 150μl
说明书 1份

保存条件:
-20℃保存,半年有效。S0101-3 WST-8需避光保存。
注意事项:
待测样品-70℃可保存1个月。需注意反复冻融会导致SOD部分失活。
一个试剂盒如果不能在3次内使用完毕,其中的WST-8需要在首次使用时适当分装,以避免反复冻融导致的检测效果下降。
标准品稀释时所用的稀释液应尽量与样品一致。样品用试剂盒提供的SOD样品制备液制备时,标准品也宜使用SOD样品制备液进行稀释;当样品为血液等无需处理的样品时,宜使用试剂盒提供的SOD检测缓冲液稀释标准品。
抗氧化物会对本试剂盒的检测产生干扰,例如0.1mM ascorbic acid,5mM GSH都会使测定出来的吸光度显著升高。此时尽管样品没有颜色,如果设置了使用说明中的空白对照3,就可以消除样品中的抗氧化物的干扰。
本产品仅限于专业人员的科学研究用,不得用于临床诊断或治疗,不得用于食品或药品,不得存放于普通住宅内。
为了您的安全和健康,请穿实验服并戴一次性手套操作。

使用说明:
1.样品的准备:
a.细胞样品的准备:对于贴壁细胞,吸净细胞培养液,用4℃或冰浴预冷的PBS或生理盐水洗涤一遍,按照每100万细胞加入100-200微升的比例加入本试剂盒提供的SOD样品制备液,适当吹打以充分裂解细胞;对于悬浮细胞,600g离心5分钟收集细胞,用4℃或冰浴预冷的PBS或生理盐水洗涤一遍,按照每100万细胞加入100-200微升的比例加入SOD样品制备液,适当吹打,以充分裂解细胞。4℃约12,000g离心3-5分钟,取上清作为待测样品。
b.组织样品的准备:动物用生理盐水(0.9% NaCl,含有0.16mg/ml肝素钠)灌流清除血液后获取组织样品。取适量的组织样品,按照每10mg组织加入100微升SOD样品制备液的比例在4℃或冰浴进行匀浆(可以使用玻璃匀浆器或各类常见电动匀浆器)。4℃约12,000g离心3-5分钟,取上清作为待测样品。
c.血浆或红细胞样品的准备:用抗凝管收集血液,颠倒混匀。4℃ 600g离心10分钟,移取上清至另一新的1ml离心管中,适量生理盐水稀释后即可作为血浆样本进行检测。红细胞样品可以参考步骤1a 悬浮细胞样品的制备方法,或其它不含Triton X-100等去垢剂的样品制备方法。
d.上述样品准备完毕后可以用碧云天生产的BCA蛋白浓度测定试剂盒(P0009/P0010/P0010S/P0011/P0012/P0012S)测定蛋白浓度。通常10-20微克蛋白的细胞或组织匀浆液样品中的SOD平均活力约1个活力单位左右(不同细胞和组织的差异会比较大,该活力范围仅作为初步的参考)。每种样品准备20-100微克蛋白量通常已经足够用于后续检测。
e.根据蛋白浓度和预计的蛋白使用量,用本试剂盒提供的SOD检测缓冲液适当稀释样品。例如,小鼠肝脏组织10%匀浆液(组织和匀浆液的重量比为1:10)上清,通常需要稀释10-100倍。准备好的样品如果当天测定,可以冰浴保存;如果当天不能完成测定,可以-70℃冻存,但建议尽量当天完成测定。
2.试剂盒的准备工作:
a.WST-8/酶工作液的配制:按照每个反应160μl的体积配制适量的WST-8/酶工作液。均匀混合151μl SOD检测缓冲液、8μl WST-8和1μl酶溶液,即可配制成160μl WST-8/酶工作液。根据待检测样品(包括标准品)的数量,配制适量的WST-8/酶工作液。具体配制方法可以参考下表。配制好的WST-8/酶工作液4℃或冰浴保存,可以在当天使用,但建议尽量现配现用。注意:由于酶溶液的用量较少且易沉降,必须注意在使用前先轻轻离心一下,然后适当混匀后再使用。

待测样品数量 1 10 20 50
SOD检测缓冲液(μl) 151 1510 3020 7550
WST-8(μl) 8 80 160 400
酶溶液(μl) 1 10 20 50
WST-8/酶工作液(μl) 160 1600 3200 8000

b.反应启动工作液的配制:把试剂盒中的反应启动液(40X)融解后混匀,按照每1μl反应启动液(40X)加入39μl SOD检测缓冲液的比例进行稀释,混匀后即为反应启动工作液。根据待检测样品(包括标准品)的数量,配制适量的反应启动工作液。配制好的反应启动工作液4℃或冰浴保存,可以在当天使用,但建议尽量现配现用。
c.(可选做)SOD标准品准备:需自备SOD标准品,用本试剂盒提供的SOD样品制备液(当样品用试剂盒提供的SOD样品制备液制备时)或SOD检测缓冲液(当样品为血液等无需处理的样品时)将SOD标准品稀释至如下系列浓度:100U/ml,50U/ml,20U/ml,10U/ml,5U/ml,2U/ml,1U/ml。在随后的检测中可以各取20微升,参考样品进行检测。SOD标准品的检测效果参考图2。说明:为避免稀释后SOD酶活性的下降,SOD标准品宜现稀释现使用;本试剂盒对于SOD的检测并不需要SOD作为标准品,但可以使用SOD标准品作为阳性对照或作为对SOD活性定量的参考。
3.样品测定:
a.参考下表使用96孔板设置样品孔和各种空白对照孔。并按下表依次加入待测样品和其它各种溶液。加入反应启动工作液后充分混匀。注意:加入反应启动工作液后反应即会开始,可以在低温操作或用排枪操作以减小各孔间因加入反应启动工作液的时间先后差异而导致的误差。

样品(Sample)/标准品 空白对照1(Blank1) 空白对照2(Blank2) 空白对照3 (Blank3)*
待测样品 20μl 20μl
SOD检测缓冲液 20μl 40μl 20μl
WST-8/酶工作液 160μl 160μl 160μl 160μl
反应启动工作液 20μl 20μl

*如果样品有颜色或含有抗氧化物质,则需设置空白对照3;如果样品没有颜色并且也不含有抗氧化物则没有必要设置空白对照3。
b.37℃孵育30分钟。说明:孵育25至35分钟检测出来的SOD活力无显著差异,但为保证检测结果的一致性,推荐孵育30分钟。
c.在450nm测定吸光度。如无450nm滤光片,可以使用420-480nm的滤光片。可以选择设定600nm (或600nm以上,如650nm)作为参比波长(也称参考波长),450nm吸光度的读数扣除参比波长的吸光度读数即可作为实测读数。
4.样品中总SOD活力的计算:
a.抑制百分率的计算:
参考如下计算公式计算抑制百分率:
抑制百分率=[(A空白对照1-A空白对照2)-(A样品-A空白对照3)]/(A空白对照1-A空白对照2)×100%
如果样品没有颜色并且也不含有抗氧化物,则A空白对照2 = A空白对照3,此时可以把计算公式简化 为如下形式(简化时可以不设置空白对照3):
抑制百分率 = (A空白对照1-A样品) / (A空白对照1-A空白对照2) × 100%
如果计算出来的抑制百分率小于30%或大于70%,则通常需要把该样品重新测定。尽量使样品的抑制百分率在30-70%范围内。如果测定出来的抑制百分率偏高,则需适当稀释样品;如果测定出来的抑制百分率偏低,则需重新准备浓度较高的待测样品。
b.SOD酶活力单位的定义:在上述黄嘌呤氧化酶偶联反应体系中抑制百分率为50%时,反应体系中的SOD酶活力定义为一个酶活力单位(unit)。注意:SOD的活力单位的定义方式有很多种,不同的活力单位需根据其定义的不同进行适当换算。
c.SOD酶活力的计算:

总SOD活性检测试剂盒(WST-8法)(S0101S) 图2. 本试剂盒对SOD标准品的检测效果。图A纵坐标ΔA450为孵育30分钟后,空白对照1与SOD标准品孔的吸光度差值。SOD酶活力和ΔA450及抑制百分率(图B)呈非线性关系,而1/SOD酶活力和1/抑制百分率成线性关系(图C)。图中数据仅作参考,实际测定获得的标准曲线的斜率和截距可能会因具体反应条件的不同和上图有较明显的差别。

SOD酶活力的计算公式如下:
待测样品中SOD酶活力单位=检测体系中SOD酶活力单位=抑制百分率/(1-抑制百分率)units
例如,当抑制百分率为50%时,待测样品中SOD酶活力单位=50% / (1-50%)units=1 unit;当抑制百分率为60%时,待测样品中SOD酶活力单位=60% / (1-60%)units=1.5 units。
d.如果样品为细胞或组织的匀浆液,可以根据样品的蛋白浓度和稀释倍数,将SOD活力单位换算为U/g或U/mg蛋白。如果样品为红细胞抽提液,可以根据血红蛋白含量,可换算为U/克血红蛋白或U/毫克血红蛋白。
附1:SOD酶活力计算的参考方案:可以先使用本试剂盒绘制SOD标准品的抑制百分率曲线,然后根据样品检测到的抑制百分率对比标准品的抑制百分率曲线计算出样品中的SOD酶活力单位。本方案仅供参考,使用本试剂盒时不必使用本方案进行检测和计算。此外,本方案需确保标准品的酶活力数据可靠,不会因为标准品的保存问题而导致实际酶活力下降。
附2:SOD酶活力的动力学检测:如果条件许可,使用本试剂盒时也可以使用动力学方法检测SOD的酶活力。通常在步骤3a后可以37℃孵育同时在450nm连续测定吸光度30分钟。根据30分钟内的吸光度变化的斜率计算出抑制百分率:
抑制百分率=[(斜率空白对照1-斜率空白对照2)-(斜率样品-斜率空白对照3)]/(斜率空白对照1-斜率空白对照2)×100%
其余的计算方法同上述非动力学的计算方法。动力学方法的检测和计算更加精确一些,但检测起来相对要麻烦一些。使用本试剂盒通常使用非动力学方法即可。

总SOD活性检测试剂盒(WST-8法)(S0101S)

相关产品请点击如下按钮:
活性氧相关

使用本产品的文献:

1. Zhao J, Xu S, Song F, Nian L, Zhou X, Wang S.
2,3,5,4′-tetrahydroxystilbene-2-O-β-D-glucoside protects human umbilical vein endothelial cells against lysophosphatidylcholine-induced apoptosis by upregulating superoxide dismutase and glutathione peroxidase.
IUBMB Life . 2014 Oct;66(10):711-22. (IF 3.244)

2. Zhao H, Wang R, Tao Z, Yan F, Gao L, Liu X, Wang N, Min L, Jia Y, Zhao Y, Ji X, Luo Y.
Activation of T-LAK-cell-originated protein kinase-mediated antioxidation protects against focal cerebral ischemia-reperfusion injury.
FEBS J . 2014 Oct;281(19):4411-20. (IF 4.392)

3. Li X, Xu L, Zhou W, Zhao Q, Wang Y.
Chronic exposure to microcystin-LR affected mitochondrial DNA maintenance and caused pathological changes of lung tissue in mice.
Environ Pollut . 2015 Dec 16;210:48-56. (IF 6.792)

4. Liu J, Tang X, Wang Y, Zang Y, Zhou B.
A Zostera marina manganese superoxide dismutase gene involved in the responses to temperature stress.
Gene . 2016 Jan 10;575(2 Pt 3):718-24. (IF 2.984)

5. Chen W, Su H, Xu Y, Bao T, Zheng X.
Protective effect of wild raspberry (Rubus hirsutus Thunb.) extract against acrylamide-induced oxidative damage is potentiated after simulated gastrointestinal digestion.
Food Chem . 2016 Apr 1;196:943-52. (IF 6.306)

6. Sun Y, Xiu C, Liu W, Tao Y, Wang J, Qu YI.
Grape seed proanthocyanidin extract protects the retina against early diabetic injury by activating the Nrf2pathway.
Exp Ther Med . 2016 Apr;11(4):1253-1258. (IF 1.785)

7. Lin J, Zou Y, Cao K, Ma C, Chen Z.
The impact of heterologous catalase expression and superoxide dismutase overexpression on enhancingthe oxidative resistance in Lactobacillus casei.
J IND MICROBIOL BIOT . 2016 May;43(5):703-11. (IF 2.824)

8. Wang J, Chen X, Wang F, Zhang J, Li P, Li Z, Xu J, Gao F, Jin C, Tian H, Zhang J, Li W, Lu L, Xu GT.
OFD1, as a Ciliary Protein, Exhibits Neuroprotective Function in Photoreceptor Degeneration Models.
PLoS One . 2016 May 19;11(5):e0155860. (IF 2.74)

9. Zhuang C, Xu NW, Gao GM, Ni S, Miao KS, Li CK, Wang LM, Xie HG.
Polysaccharide from Angelica sinensis protects chondrocytes from H2O2-induced apoptosis through its antioxidant effects in vitro.
Int J Biol Macromol . 2016 Jun;87:322-8. (IF 5.162)

10. Guo H, Zhang N, Liu D, Wang P, Ma X.
Inhibitory effect on the proliferation of human heptoma induced by cell-permeable
Biomed Pharmacother . 2016 Oct;83:1379-1386. (IF 4.545)

11. Yang J, Liu X, Zhang X, Jin Q, Li J.
Phenolic Profiles, Antioxidant Activities, and Neuroprotective Properties of Mulberry
J Food Sci . 2016 Oct;81(10):C2439-C2446. (IF 2.478)

12. Sun X, Jiao X, Ma Y, Liu Y, Zhang L, He Y, Chen Y.
Trimethylamine N-oxide induces inflammation and endothelial dysfunction in human umbilical veinendothelial cells via activating ROS-TXNIP-NLRP3 inflammasome.
BIOCHEM BIOPH RES CO . 2016 Dec 2;481(1-2):63-70. (IF 2.985)

13. Pan K, Li X, Chen Y, Zhu D, Li Y, Tao G, Zuo Z.
Deferoxamine pre-treatment protects against postoperative cognitive dysfunction of aged rats bydepressing microglial activation via ameliorating iron accumulation in hippocampus.
Neuropharmacology . 2016 Dec;111:180-194. (IF 4.431)

14. Dong K, Hao P, Xu S, Liu S, Zhou W, Yue X, Rausch-Fan X, Liu Z.
Alpha-Lipoic Acid Alleviates High-Glucose Suppressed Osteogenic Differentiation of MC3T3-E1Cells via Antioxidant Effect and PI3K/Akt Signaling Pathway.
CELL PHYSIOL BIOCHEM . 2017;42(5):1897-1906. (IF 5.5)

15. Zhang W, Zhang Y, Guo X, Zeng Z, Wu J, Liu Y, He J, Wang R, Huang Q, Chen Z.
Sirt1 Protects Endothelial Cells against LPS-Induced Barrier Dysfunction.
Oxid Med Cell Longev . 2017;2017:4082102. (IF 5.076)

16. Cao XN, Shen LJ, Wu SD, Yan C, Zhou Y, Xiong G, Wang YC, Liu Y, Liu B, Tang XL, Guo M, Liu DY, Long CL, Sun M, He DW, Lin T, Wei GH.
Urban fine particulate matter exposure causes male reproductive injury through destroying blood-testisbarrier (BTB) integrity.
Toxicol Lett . 2017 Jan 15;266:1-12. (IF 3.569)

17. Huang W, Guo HL, Deng X, Zhu TT, Xiong JF, Xu YH, Xu Y.
Short-Chain Fatty Acids Inhibit Oxidative Stress and Inflammation in Mesangial Cells Induced by HighGlucose and Lipopolysaccharide.
 EXP CLIN ENDOCR DIAB . 2017 Jan 3.doi: 10.1055/s-0042-121493. [Epub ahead of print] (IF 0.87)

18. Chen W, Su H, Xu Y, Jin C.
In vitro gastrointestinal digestion promotes the protective effect of blackberry extract against acrylamide-induced oxidative stress.
SCI REP-UK . 2017 Jan 13;7:40514. (IF 3.998)

19. Cao XN, Shen LJ, Wu SD, Yan C, Zhou Y, Xiong G, Wang YC, Liu Y, Liu B, Tang XL, Guo M, Liu DY, Long CL, Sun M, He DW, Lin T, Wei GH.
Urban fine particulate matter exposure causes male reproductive injury through destroyingblood-testis barrier (BTB) integrity.
Toxicol Lett . 2017 Jan 15;266:1-12. (IF 3.569)

20. Hu W, Wang H, Liu Z, Liu Y, Wang R, Luo X, Huang Y.
Neuroprotective effects of lycopene in spinal cord injury in rats via antioxidative and anti-apoptoticpathway.
Neurosci Lett . 2017 Feb 3;642:107-112. (IF 2.274)

21. Li H, Li Z, Peng L, Jiang N, Liu Q, Zhang E, Liang B, Li R, Zhu H.
Lycium barbarum polysaccharide protects human keratinocytes against UVB-induced photo-damage.
FREE RADICAL RES . 2017 Feb;51(2):200-210. (IF 2.839)

22. Hu W, Wang H, Liu Z, Liu Y, Wang R, Luo X, Huang Y.
Neuroprotective effects of lycopene in spinal cord injury in rats via antioxidative and anti-apoptotic pathway.
Neurosci Lett . 2017 Mar 6;642:107-112. (IF 2.274)

23. Yuan J, Zhu C, Hong Y, Sun Z, Fang X, Wu B, Li S.
The role of cPLA2 in Methylglyoxal-induced cell apoptosis of HUVECs.
TOXICOL APPL PHARM  . 2017 May 15;323:44-52. (IF 3.616)

24. Gong W, Li J, Chen Z, Huang J, Chen Q, Cai W, Liu P, Huang H.
Polydatin promotes Nrf2-ARE anti-oxidative pathway through activating CKIP-1 to resist HG-induced up-regulation of FN and ICAM-1 in GMCs and diabetic mice kidneys.
FREE RADICAL BIO MED . 2017 May;106:393-405. (IF 6.17)

25. Wang M, Zhang Y, Guo P.
Effect of florfenicol and thiamphenicol exposure onthe photosynthesis and antioxidant system of Microcystis flos-aquae.
Aquat Toxicol . 2017 May;186:67-76. (IF 4.344)

26. Chang Y, Li S, Guo W, Yang Y, Zhang W, Zhang Q, He Y, Yi X, Cui T, An Y, Song P, Jian Z, Liu L, Li K, Wang G, Gao T, Wang L, Li C.
Simvastatin Protects Human Melanocytes from H2O2-Induced Oxidative Stress by ActivatingNrf2.
J Invest Dermatol . 2017 Jun;137(6):1286-1296. (IF 7.143)

27. Jiao YH, Dou M, Wang G, Li HY, Liu JS, Yang X, Yang WD.
Exposure of okadaic acid alters the angiogenesis in developing chick embryos.
Toxicon . 2017 Jul;133:74-81. (IF 2.201)

28. Leng ZG, Lin SJ, Wu ZR, Guo YH, Cai L, Shang HB, Tang H, Xue YJ, Lou MQ, Zhao W, Le WD, Zhao WG, Zhang X, Wu ZB.
Activation of DRD5 (dopamine receptor D5) inhibits tumor growth by autophagic cell death.
Autophagy . 2017 Aug 3;13(8):1404-1419. (IF 9.77)

29. Fu Q, Huang T, Wang X, Lu C, Liu F, Yang G, Wang Y, Wang B.
Association of elevated reactive oxygen species and hyperthermia induced radiosensitivity in cancer stem-like cells.
ONCOTARGET . 2017 Oct 9;8(60):101560-101571. (IF 5.168)

30. Peng J, Deng X, Huang W, Yu JH, Wang JX, Wang JP, Yang SB, Liu X, Wang L, Zhang Y, Zhou XY, Yang H, He YZ, Xu FY.
Irisin protects against neuronal injury induced by oxygen-glucose deprivation in part depends on the inhibition of ROS-NLRP3 inflammatory signaling pathway.
Mol Immunol . 2017 Nov;91:185-194. (IF 3.641)

31. Dong X, Niu Y, Ding Y, Wang Y, Zhao J, Leng W, Qin L.
Formulation and Drug Loading Features of Nano-Erythrocytes.
Nanoscale Res Lett . 2017 Dec;12(1):202. (IF 3.581)

32. Liu SY,Lu S,Yu XL,Yang SG,Liu W,Liu XM,Wang SW,Zhu J,Ji M,Liu DQ,Zhang ZP,Liu RT
Fruitless Wolfberry-Sprout Extract Rescued Cognitive Deficits and Attenuated Neuropathology in Alzheimer’s Disease Transgenic Mice.
Curr Alzheimer Res . 2018;15(9):856-868. (IF 3.047)

33. Lu MC, Jiao Q, Liu T, Tan SJ, Zhou HS, You QD, Jiang ZY.
Discovery of a head-to-tail cyclic peptide as the Keap1-Nrf2 protein-protein interaction inhibitor with high cell potency.
Eur J Med Chem . 2018 Jan 1;143:1578-1589. (IF 5.572)

34. Fu Q,Li C,Yu L
Gambogic acid inhibits spinal cord injury and inflammation through suppressing the p38 and Akt signaling pathways.
Mol Med Rep . 2018 Jan;17(1):2026-2032. (IF 2.1)

35. Wang M,Wang B,Jiang K,Liu M,Shi X,Wang L
A mitochondrial manganese superoxide dismutase involved in innate immunity is essential for the survival of Chlamys farreri.
FISH SHELLFISH IMMUN . 2018 Jan;72:282-290. (IF 3.298)

36. Ge J,Chen L,Yang Y,Lu X,Xiang Z
Sparstolonin B prevents lumbar intervertebral disc degeneration through toll like receptor 4, NADPH oxidase activation and the protein kinase B signaling pathway.
Mol Med Rep . 2018 Jan;17(1):1347-1353. (IF 2.1)

37. Jiang Y,Wang W,Liu ZY,Xie Y,Qian Y,Cai XN
Overexpression of miR-130a-3p/301a-3p attenuates high glucose-induced MPC5 podocyte dysfunction through suppression of TNF-α signaling.
Exp Ther Med . 2018 Jan;15(1):1021-1028. (IF 1.785)

38. Dai J,Gu L,Su Y,Wang Q,Zhao Y,Chen X,Deng H,Li W,Wang G,Li K
Inhibition of curcumin on influenza A virus infection and influenzal pneumonia via oxidative stress, TLR2/4, p38/JNK MAPK and NF-κB pathways.
Int Immunopharmacol . 2018 Jan;54:177-187. (IF 3.943)

39. Nie HT,Guo YX,Yao XL,Ma TW,Deng KP,Wang Z,Zhang GM,Sun LW,Wang ZY,Wang HC,Wang F
Acute nutrient treatment causes alterations in intra-follicular antioxidation and AKT signaling.
Reproduction . 2018 Jan;155(1):37-49. (IF 3.206)

40. Gong W, Chen Z, Zou Y, Zhang L, Huang J, Liu P, Huang H.
CKIP-1 affects the polyubiquitination of Nrf2 and Keap1 via mediating Smurf1 to resist HG-induced renal fibrosis in GMCs and diabetic mice kidneys.
FREE RADICAL BIO MED . 2018 Feb 1;115:338-350. (IF 6.17)

41. Wang L,Wang F,Liu S,Yang X,Yang J,Ming D
VEGF attenuates 2-VO induced cognitive impairment and neuronal injury associated with the activation of PI3K/Akt and Notch1 pathway.
Exp Gerontol . 2018 Feb;102:93-100. (IF 3.376)

42. Chen L,Yao H,Chen X,Wang Z,Xiang Y,Xia J,Liu Y,Wang Y
Ginsenoside Rg1 Decreases Oxidative Stress and Down-Regulates Akt/mTOR Signalling to Attenuate Cognitive Impairment in Mice and Senescence of Neural Stem Cells Induced by D-Galactose.
Neurochem Res . 2018 Feb;43(2):430-440. (IF 3.038)

43. Ma J,Song D,Zhang Y,Chen L,Zhang S,Jia J,Chen T,Guo C,Tian L,Gao A,Niu P
SIRT1 exhibits antioxidative effects in HT22 cells induced by tert-butyl alcohol.
Environ Toxicol . 2018 Feb;33(2):142-148. (IF 3.118)

44. Wang J, Zhang J, Chen X, Yang Y, Wang F, Li W, Awuti M, Sun Y, Lian C, Li Z, Wang M, Xu JY, Jin C, Tian H, Gao F, Zhang J, Sinha D, Lu L, Xu GT.
miR-365 promotes diabetic retinopathy through inhibiting Timp3 and increasing oxidative stress.
Exp Eye Res . 2018 Mar;168:89-99. (IF 3.011)

45. Zhang N,Feng H,Liao HH,Chen S,Yang Z,Deng W,Tang QZ
Myricetin attenuated LPS induced cardiac injury in vivo and in vitro.
Phytother Res . 2018 Mar;32(3):459-470. (IF 4.087)

46. Cui K,Tang Z,Li CC,Wang T,Rao K,Wang SG,Liu JH,Chen Z
Lipoxin A4 improves erectile dysfunction in rats with type I diabetes by inhibiting oxidative stress and corporal fibrosis.
Asian J Androl . 2018 Mar-Apr;20(2):166-172. (IF 2.448)

47. Xie X,Chen Q,Tao J
Astaxanthin Promotes Nrf2/ARE Signaling to Inhibit HG-Induced Renal Fibrosis in GMCs.
Mar Drugs . 2018 Apr 5;16(4). pii: E117. (IF 4.073)

48. Yang J,Zhang Y,Zang G,Wang T,Yu Z,Wang S,Tang Z,Liu J
Adipose-derived stem cells improve erectile function partially through the secretion of IGF-1, bFGF, and VEGF in aged rats.
Andrology . 2018 May;6(3):498-509. (IF 3.106)

49. Fang Z,Luo W,Luo Y
Protective effect of α-mangostin against CoCl2-induced apoptosis by suppressing oxidative stress in H9C2 rat cardiomyoblasts.
Mol Med Rep . 2018 May;17(5):6697-6704. (IF 2.1)

50. Wu D,Han R,Deng S,Liu T,Zhang T,Xie H,Xu Y
Protective Effects of Flagellin A N/C Against Radiation-Induced NLR Pyrin Domain Containing 3 Inflammasome-Dependent Pyroptosis in Intestinal Cells.
INT J RADIAT ONCOL . 2018 May 1;101(1):107-117. (IF 5.859)

51. Wang X,Chen B,Sun J,Jiang Y,Zhang H,Zhang P,Fei B,Xu Y
Iron-induced oxidative stress stimulates osteoclast differentiation via NF-κB signaling pathway in mouse model.
Metabolism . 2018 Jun;83:167-176. (IF 6.159)

52. Chen M,Zheng J,Liu G,Xu E,Wang J,Fuqua BK,Vulpe CD,Anderson GJ,Chen H
Ceruloplasmin and hephaestin jointly protect the exocrine pancreas against oxidative damage by facilitating iron efflux.
Redox Biol . 2018 Jul;17:432-439. (IF 9.986)

53. Pan L,Zhou L,Yin W,Bai J,Liu R
miR-125a induces apoptosis, metabolism disorder and migrationimpairment in pancreatic cancer cells by targeting Mfn2-related mitochondrial fission.
Int J Oncol . 2018 Jul;53(1):124-136. (IF 3.899)

54. Zhang X,Li J,Cheng Y,Yi J,Liu X,Cheng W
Downregulation of CUEDC2 prevents doxorubicin‑induced cardiotoxicity in H9c2 cells.
Mol Med Rep . 2018 Jul;18(1):855-863. (IF 2.1)

55. Wang Y,Chen G,Yan J,Chen X,He F,Zhu C,Zhang J,Lin J,Pan G,Yu J,Pei M,Yang H,Liu T
Upregulation of SIRT1 by Kartogenin Enhances Antioxidant Functions and Promotes Osteogenesis in Human Mesenchymal Stem Cells.
Oxid Med Cell Longev . 2018 Jul 15;2018:1368142. (IF 5.076)

56. Ding W,Zhao Y,Xu JW,Zhao P,Li T,Ma H,Reiter RJ,Yu X
Melatonin: A Multifunctional Molecule That Triggers Defense Responses against High Light and Nitrogen Starvation Stress in Haematococcus pluvialis.
J AGR FOOD CHEM . 2018 Jul 25;66(29):7701-7711. (IF 4.192)

57. Yanfei Cui,Shengya Yang
Overexpression of Annexin A1 Protects Against Benzo[a]pyrene‑induced Bronchial Epithelium Injury
Mol Med Rep. 2018 Jul;18(1):349-357.;doi: 10.3892/mmr.2018.8998. (IF 2.1)

58. Jin Y,Tu Q,Liu M
MicroRNA‑125b regulates Alzheimer’s disease through SphK1 regulation.
Mol Med Rep . 2018 Aug;18(2):2373-2380. (IF 2.1)

59. Ma X,Hu B,Zou C,Han A,Xu Z,Zhang T,Yu W
The effects of hyperoxia liquid regulate cardiopulmonary bypass‑induced myocardial damage through the Nrf2‑ARE signaling pathway.
Mol Med Rep . 2018 Aug;18(2):2342-2348. (IF 2.1)

60. Chen L,Zhang J,Li C,Wang Z,Li J,Zhao D,Wang S,Zhang H,Huang Y,Guo X
Glycine Transporter-1 and glycine receptor mediate the antioxidant effect of glycine in diabetic rat islets and INS-1 cells.
FREE RADICAL BIO MED . 2018 Aug 1;123:53-61. (IF 6.17)

61. Hu Y,Pan J,Xin Y,Mi X,Wang J,Gao Q,Luo H
Gene Expression Analysis Reveals Novel Gene Signatures Between Young and Old Adults in Human Prefrontal Cortex.
Front Aging Neurosci . 2018 Aug 27;10:259. (IF 4.362)

62. Liu H,Zhang X,Zhang S,Huang H,Wu J,Wang Y,Yuan L,Liu C,Zeng X,Cheng X,Zhuang D,Zhang H
Oxidative Stress Mediates Microcystin-LR-Induced Endoplasmic Reticulum Stress and Autophagy in KK-1 Cells and C57BL/6 Mice Ovaries.
Front Physiol . 2018 Aug 6;9:1058. (IF 3.367)

63. Huang Y,Hu Z
UBIAD1 protects against oxygen-glucose deprivation/reperfusion-induced multiple subcellular organelles injury through PI3K/AKT pathway in N2A cells.
J Cell Physiol . 2018 Sep;233(9):7480-7496. (IF 5.546)

64. Bao J,Ye C,Zheng Z,Zhou Z
Fmr1 protects cardiomyocytes against lipopolysaccharide-induced myocardial injury.
Exp Ther Med . 2018 Sep;16(3):1825-1833. (IF 1.785)

65. Wang L,Chen HC,Yang X,Tao JJ,Liang G,Wu JZ,Wu WC,Wang Y,Song ZM,Zhang X
The novel chalcone analog L2H17 protects retinal ganglion cells from oxidative stress-induced apoptosis.
Neural Regen Res . 2018 Sep;13(9):1665-1672. (IF 3.171)

66. Xu E,Chen M,Zheng J,Maimaitiming Z,Zhong T,Chen H
Deletion of hephaestin and ceruloplasmin induces a serious systemic iron deficiency and disrupts iron homeostasis.
BIOCHEM BIOPH RES CO . 2018 Sep 10;503(3):1905-1910. (IF 2.985)

67. Ji C,Luo Y,Zou C,Huang L,Tian R,Lu Z
Effect of astragaloside IV on indoxyl sulfate-induced kidney injury in mice via attenuation of oxidative stress.
BMC PHARMACOL TOXICO . 2018 Sep 3;19(1):53. (IF 1.771)

68. Fu Y,Wu HQ,Cui HL,Li YY,Li CZ
Gastroprotective and anti-ulcer effects of oxymatrine against several gastric ulcer models in rats: Possible roles of antioxidant, antiinflammatory, and prosurvival mechanisms.
Phytother Res . 2018 Oct;32(10):2047-2058. (IF 4.087)

69. Liu S,Yuan J,Yue W,Bi Y,Shen X,Gao J,Xu X,Lu Z
GCN2 deficiency protects against high fat diet induced hepatic steatosis and insulin resistance in mice.
BBA-MOL BASIS DIS . 2018 Oct;1864(10):3257-3267. (IF 4.352)

70. Jiang H,Gao X,Gong J,Yang Q,Lan R,Wang T,Liu J,Yin C,Wang S,Liu Z
Downregulated Expression of Solute Carrier Family 26 Member 6 in NRK-52E Cells Attenuates Oxalate-Induced Intracellular Oxidative Stress.
Oxid Med Cell Longev . 2018 Oct 10;2018:1724648. (IF 5.076)

71. Lu C,Chen X,Wang Q,Xu X,Xu B
TNFα promotes glioblastoma A172 cell mitochondrial apoptosis via augmenting mitochondrial fission and repression of MAPK-ERK-YAP signaling pathways.
ONCOTARGETS THER . 2018 Oct 18;11:7213-7227. (IF 3.337)

72. Liu Q,Hu Y,Zhang M,Yan Y,Yu H,Ge L
microRNA-451 protects neurons against ischemia/reperfusion injury-induced cell death by targeting CELF2.
Neuropsychiatr Dis Treat . 2018 Oct 23;14:2773-2782.

73. Deng J,Liu Q,Zhang Q,Zhang C,Liu D,Fan D,Yang H
Comparative study on composition, physicochemical and antioxidant characteristics of different varieties of kiwifruit seed oil in China.
Food Chem . 2018 Oct 30;264:411-418. (IF 6.306)

74. Zheng JW,Liu SL,Lu SH,Li HY,Liu JS,Yang WD
Proteomic profile in the mussel Perna viridis after short-term exposure to the brown tide alga Aureococcus anophagefferens.
ECOTOX ENVIRON SAFE . 2018 Oct 30;162:365-375. (IF 4.872)

75. Xu N,Kan P,Yao X,Yang P,Wang J,Xiang L,Zhu Y
Astragaloside IV reversed the autophagy and oxidative stress induced by the intestinal microbiota of AIS in mice.
J Microbiol . 2018 Nov;56(11):838-846. (IF 2.845)

76. Zhang D,Li Y,Zhang T,Liu J,Jahejo AR,Yang L,Chen P,Ning G,Huo N,Ma H,Yan F,Tian W
Protective effects of zinc and N-acetyl-L-cysteine supplementation against cadmium induced erythrocyte cytotoxicity in Arbor Acres broiler chickens (Gallus gallus domesticus).
ECOTOX ENVIRON SAFE . 2018 Nov 15;163:331-339. (IF 4.872)

77. Yao S,Yan W
Overexpression of Mst1 reduces gastric cancer cell viability by repressing the AMPK-Sirt3 pathway and activating mitochondrial fission.
ONCOTARGETS THER . 2018 Nov 29;11:8465-8479. (IF 3.337)

78. Chen Q,Tao J,Li G,Zheng D,Tan Y,Li R,Tian L,Li Z,Cheng H,Xie X
Astaxanthin ameliorates experimental diabetes-induced renal oxidative stress and fibronectin by upregulating connexin43 in glomerular mesangial cells and diabetic mice.
Eur J Pharmacol . 2018 Dec 5;840:33-43. (IF 3.263)

79. Lin S,Ren A,Wang L,Santos C,Huang Y,Jin L,Li Z,Greene NDE
Aberrant methylation of Pax3 gene and neural tube defects in association with exposure to polycyclic aromatic hydrocarbons.
Clin Epigenetics. 2019 Jan 21;11(1):13. (IF 5.028)

80. Yang J,Zhou X,Zeng X,Hu O,Yi L,Mi M
Resveratrol attenuates oxidative injury in human umbilical vein endothelial cells through regulating mitochondrial fusion via TyrRS-PARP1 pathway.
NUTR METAB. 2019 Jan 30;16:9. (IF 3.211)

81. Zhang H,Chen Y,Pei Z,Gao H,Shi W,Sun M,Xu Q,Zhao J,Meng W,Xiao K
Protective effects of polydatin against sulfur mustard-induced hepatic injury.
TOXICOL APPL PHARM . 2019 Mar 15;367:1-11. (IF 3.616)

82. Wang SQ,Yang XY,Cui SX,Gao ZH,Qu XJ
Heterozygous knockout insulin-like growth factor-1 receptor (IGF-1R) regulates mitochondrial functions and prevents colitis and colorectal cancer.
FREE RADICAL BIO MED. 2019 Apr;134:87-98. (IF 6.17)

83. Chang G,Chen Y,Zhang H,Zhou W
Trans sodium crocetinate alleviates ischemia/reperfusion-induced myocardial oxidative stress and apoptosis via the SIRT3/FOXO3a/SOD2 signaling pathway.
Int Immunopharmacol. 2019 Jun;71:361-371. (IF 3.943)

84. Xu X,Huang L,Zhang Z,Tong J,Mi J,Wu Y,Zhang C,Yan H
Targeting non-oncogene ROS pathway by alantolactone in B cell acute lymphoblastic leukemia cells.
Life Sci. 2019 Jun 15;227:153-165. (IF 3.647)

85. Rao G,Zhang W,Song S
MicroRNA‑217 inhibition relieves cerebral ischemia/reperfusion injury by targeting SIRT1.
Mol Med Rep. 2019 Aug;20(2):1221-1229. (IF 2.1)

86. Li X,Qi M,Sun X,Weir MD,Tay FR,Oates TW,Dong B,Zhou Y,Wang L,Xu HHK
Surface treatments on titanium implants via nanostructured ceria for antibacterial and anti-inflammatory capabilities.
Acta Biomater. 2019 Aug;94:627-643. (IF 7.242)

87. Li Y,Ma S,Zhang Y,Yao M,Zhu X,Guan F
(-)-Epicatechin mitigates radiation-induced intestinal injury and promotes intestinal regeneration via suppressing oxidative stress.
FREE RADICAL RES. 2019 Aug;53(8):851-864. (IF 2.839)

88. Lu MC,Zhao J,Liu YT,Liu T,Tao MM,You QD,Jiang ZY
CPUY192018, a potent inhibitor of the Keap1-Nrf2 protein-protein interaction, alleviates renal inflammation in mice by restricting oxidative stress and NF-κB activation.
Redox Biol. 2019 Sep;26:101266. (IF 9.986)

89. Liu C,Wu QQ,Cai ZL,Xie SY,Duan MX,Xie QW,Yuan Y,Deng W,Tang QZ
Zingerone attenuates aortic banding-induced cardiac remodelling via activating the eNOS/Nrf2 pathway.
J Cell Mol Med. 2019 Sep;23(9):6466-6478. (IF 4.486)

90. Zhang J,Zhang SD,Wang P,Guo N,Wang W,Yao LP,Yang Q,Efferth T,Jiao J,Fu YJ
Pinolenic acid ameliorates oleic acid-induced lipogenesis and oxidative stress via AMPK/SIRT1 signaling pathway in HepG2 cells.
Eur J Pharmacol. 2019 Oct 15;861:172618. (IF 3.263)

91. Song Y,Li X,Gong X,Zhao X,Ma Z,Xia T,Gu X
Green tea polyphenols improve isoflurane-induced cognitive impairment via modulating oxidative stress.
J Nutr Biochem. 2019 Nov;73:108213. (IF 4.873)

92. Chen J,Huang Z,Wu X,Kang J,Ren Y,Gao W,Lu X,Wang J,Ding W,Nakabeppu Y,Fan Y,Wang Y
Oxidative stress induces different tissue dependent effects on Mutyh-deficient mice.
FREE RADICAL BIO MED. 2019 Nov 1;143:482-493. (IF 6.17)

93. Li X,Qi M,Li C,Dong B,Wang J,Weir MD,Imazato S,Du L,Lynch CD,Xu L,Zhou Y,Wang L,Xu HHK
Novel nanoparticles of cerium-doped zeolitic imidazolate frameworks with dual benefits of antibacterial and anti-inflammatory functions against periodontitis.
J Mater Chem B. 2019 Nov 28;7(44):6955-6971. (IF 5.344)

94. Tang J,Xiong L,Shu X,Chen W,Li W,Li J,Ma L,Xiao Y,Li L
Antioxidant effects of bioactive compounds isolated from cordyceps and their protective effects against UVB-irradiated HaCaT cells.
J COSMET DERMATOL-US. 2019 Dec;18(6):1899-1906. (IF 1.621)

95. Guoyong Lu,Peng Tian,Yongxin Zhu,Xiaohua Zuo,Xiaoqiang Li
LncRNA XIST knockdown ameliorates oxidative low-density lipoprotein-induced endothelial cells injury by targeting miR-204-5p/TLR4
J Biosci. 2020;45:52.;

96. Meng-Qiao Zhou,E Jin,Jing Wu,Fei Ren,Yu-Zhi Yang,Dong-Dong Duan
CTRP12 Ameliorated Lipopolysaccharide-Induced Cardiomyocyte Injury
Chem Pharm Bull (Tokyo). 2020;68(2):133-139.;doi: 10.1248/cpb.c19-00646.

97. Zhibo Zheng,Shuai Xiang,Yingjie Wang,Yulei Dong,Zeng Li,Yongbo Xiang,Yanyan Bian,Bin Feng,Bo Yang,Xisheng Weng
NR4A1 promotes TNF‑α‑induced chondrocyte death and migration injury via activating the AMPK/Drp1/mitochondrial fission pathway
Int J Mol Med. 2020 Jan;45(1):151-161.;doi: 10.3892/ijmm.2019.4398.

98. Yi Liu,Yili Fu,Xianoxing Hu,Shuo Chen,Jinbai Miao,Yang Wang,Ying Zhou,Yuan Zhang
Caveolin-1 knockdown increases the therapeutic sensitivity of lung cancer to cisplatin-induced apoptosis by repressing Parkin-related mitophagy and activating the ROCK1 pathway
J Cell Physiol. 2020 Feb;235(2):1197-1208.;doi: 10.1002/jcp.29033.

99. Jiang H,Li R,Zhang Z,Chang C,Liu Y,Liu Z,He Q,Wang Q
Retinoid X receptor α (RXRα)-mediated erythroid-2-related factor-2 (NRF2) inactivation contributes to N,N-dimethylformamide (DMF)-induced oxidative stress in HL-7702 and HuH6 cells.
J Appl Toxicol. 2020 Apr;40(4):470-482. (IF 2.997)

100. Wenjin Guo,Juxiong Liu,Jingxuan Sun,Qian Gong,He Ma,Xingchi Kan,Yu Cao,Jianfa Wang,Shoupeng Fu
Butyrate alleviates oxidative stress by regulating NRF2 nuclear accumulation and H3K9/14 acetylation via GPR109A in bovine mammary epithelial cells and mammary glands
Free Radic Biol Med. 2020 May 20;152:728-742.;doi: 10.1016/j.freeradbiomed.2020.01.016.

101. Er Hui Wang,Zeng Li Yu,Guan Fang Ping,De Sheng Zhai
Grape Seed Procyanidin Extract Attenuate Sodium Fluoride-induced Oxidative Damage and Apoptosis in Rat Kidneys
Biomed Environ Sci. 2020 Jun 20;33(6):454-457.;doi: 10.3967/bes2020.061.

102. Yanxia Jin,Liqin Cai,Qian Yang,Ziyi Luo,Li Liang,Yuxing Liang,Balu Wu,Lu Ding,Dongdong Zhang,Xiaojuan Xu,Lina Zhang,Fuling Zhou
Anti-leukemia activities of selenium nanoparticles embedded in nanotube consisted of triple-helix β-d-glucan
Carbohydr Polym. 2020 Jul 15;240:116329.;doi: 10.1016/j.carbpol.2020.116329.

103. Xiaojin Luan,Yidan Yan,Qianwen Zheng,Min Wang,Wanyin Chen,Jun Yu,Jie Fang
Excessive reactive oxygen species induce apoptosis via the APPL1-Nrf2/HO-1 antioxidant signalling pathway in trophoblasts with missed abortion
Life Sci. 2020 Aug 1;254:117781.;doi: 10.1016/j.lfs.2020.117781.

104. Fudong Zhu,Xiaobo Cai,Xin Yang,Jianfeng He,Chengze Wang,Mingxiang Wang,Aili Simaiti,Wei Yang,Xinqiang Zhu,Peilin Yu
TRPM2 expression levels are associated with histological grading in patients with tongue squamous cell carcinoma
Mol Med Rep. 2020 Aug 5.;doi: 10.3892/mmr.2020.11417.

105. Fengxia Lin,Xiaojing Huang,Fuya Xing,Luhua Xu,Weiwei Zhang,Zhengtao Chen,Xiao Ke,Yinzhi Song,Zhicong Zeng
Semen Brassicae reduces thoracic aortic remodeling, inflammation, and oxidative damage in spontaneously hypertensive rats
Biomed Pharmacother. 2020 Sep;129:110400.;doi: 10.1016/j.biopha.2020.110400.

106. Zuying Yu,Liu Yang,Shan Deng,Minglu Liang
Daidzein ameliorates LPS-induced hepatocyte injury by inhibiting inflammation and oxidative stress
Eur J Pharmacol. 2020 Oct 15;885:173399.;doi: 10.1016/j.ejphar.2020.173399.

107. Yun-Jie Wei,Hai-Jun Xu,Jia-Juan Chen,Xi Yang,Jian Xiong,Jing Wang,Fei Cheng
Carnosic acid protects against pressure overload-induced cardiac remodelling by inhibiting the AKT/GSK3β/NOX4 signalling pathway
Exp Ther Med. 2020 Oct;20(4):3709-3719.;doi: 10.3892/etm.2020.9109.

108. Bin Huai,Jiyu Ding
Atractylenolide III attenuates bleomycin-induced experimental pulmonary fibrosis and oxidative stress in rat model via Nrf2/NQO1/HO-1 pathway activation
Immunopharmacol Immunotoxicol. 2020 Oct;42(5):436-444.;doi: 10.1080/08923973.2020.1806871.

109. Bingbing Zhang,Ming Li,Wei Yang,Juan J Loor,Yusheng Liang,Shuang Wang,Yingying Zhao,Han Guo,Xinru Ma,Liyun Yu,Chuang Xu
Mitochondrial dysfunction and endoplasmic reticulum stress in calf hepatocytes are associated with fatty acid-induced ORAI calcium release-activated calcium modulator 1 signaling
J Dairy Sci. 2020 Dec;103(12):11945-11956.;doi: 10.3168/jds.2020-18684.

110. Yan Yang,Jie Li,Lingqiang Zhang,Zeyuan Lin,Haiming Xiao,Xiaohong Sun,Meng Zhang,Peiqing Liu,Heqing Huang
CKIP-1 acts downstream to Cx43 on the activation of Nrf2 signaling pathway to protect from renal fibrosis in diabetes
Pharmacol Res. 2021 Jan;163:105333.;doi: 10.1016/j.phrs.2020.105333.