Protective effect of quercetin on cadmium-induced kidney apoptosis in rats based on PERK signaling pathway

被引:4
|
作者
Ding, Lulu [1 ,2 ]
Wang, Ke [1 ,3 ]
Zhu, Huali [4 ]
Liu, Zongping [2 ]
Wang, Jicang [1 ]
机构
[1] Henan Univ Sci & Technol, Coll Anim Sci & Technol, 263 Kaiyuan Ave, Luoyang 471023, Peoples R China
[2] Yangzhou Univ, Coll Vet Med, 12 East Wenhui Rd, Yangzhou 225009, Peoples R China
[3] Zhengzhou Med Coll, 3 Chuangye Ave, Zhengzhou 452370, Peoples R China
[4] Henan Univ Sci & Technol, Law Hosp, 263 Kaiyuan Ave, Luoyang 471023, Peoples R China
基金
中国国家自然科学基金;
关键词
Cadmium; Quercetin; Kidney injury; Endoplasmic reticulum stress; Apoptosis; ENDOPLASMIC-RETICULUM STRESS; OXIDATIVE STRESS; LIPID-PEROXIDATION;
D O I
10.1016/j.jtemb.2023.127355
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
Background: Cadmium (Cd) is a highly toxic environmental pollutant that can enter the body through bioaccumulation. The kidney is an important target organ for Cd poisoning. Quercetin (Que) is a natural flavonoid compound with free radical scavenging and antioxidant properties. Previous studies showed that Que can alleviate kidney damage caused by Cd poisoning in rats, but the specific mechanism is still unclear.Methods: Twenty-four male Sprague-Dawley (SD) rats were divided into four groups: normal saline-treated control group, Cd group treated by intraperitoneal injection of 2 mg/kg b.w. CdCl2, Cd + Que group treated by intraperitoneal injection of 2 mg/kg b.w. CdCl2 and 100 mg/kg b.w. Que, and Que group treated by 100 mg/kg b.w. Que. Four weeks later, the rats were anesthetized with diethyl ether, and blood was taken intravenously. The rats were executed with their necks cut off, and the kidneys were removed. Body weight, kidney organ weight, and glutathione (GSH) and malondialdehyde (MDA) levels were measured. The structure of kidney tissue was observed by hematoxylin and eosin staining, kidney cell apoptosis was detected by TUNEL assay, and the mRNA expression levels of genes related to the PERK signaling pathway were analyzed by RT-PCR.Results: Compared with the control group, the Cd-treated group exhibited a significant decrease in body weight (P < 0.01). Their kidneys showed a significant increase in the relative organ weight (P < 0.01). Moreover, the MDA and GSH levels increased. Kidney tissue damage and renal cell apoptosis were observed, and the mRNA expression levels of genes related to the PERK signaling pathway significantly increased (P < 0.01). Compared with the Cd-treated group, the Cd + Que group exhibited a significant increase in body weight (P < 0.01) and significant decreases in the relative organ weight, MDA and GSH levels, and mRNA expression levels of genes related to the PERK signaling pathway (P < 0.01). Furthermore, kidney tissue damage and renal cell apoptosis were observed.Conclusion: Cd treatment resulted in rat weight loss, renal edema, and oxidative stress and caused renal tissue damage and cell apoptosis by activating the PERK signaling pathway. Que was able to restore the body weight and renal coefficient of rats. It also alleviated the oxidative stress and kidney tissue damage caused by Cd and the cell apoptosis caused by Cd through inhibiting the PERK signaling pathway. Thus, Que could be considered for the treatment of kidney diseases caused by Cd poisoning.
引用
收藏
页数:7
相关论文
共 50 条
  • [21] Effect of the flavonoid quercetin on cadmium-induced hepatotoxicity
    Vicente-Sanchez, C.
    Edigo, J.
    Sanchez-Gonzalez, P. D.
    Perez-Barriocanal, F.
    Lopez-Novoa, J. M.
    Morales, A. I.
    FOOD AND CHEMICAL TOXICOLOGY, 2008, 46 (06) : 2279 - 2287
  • [22] Protective Effect of Quercetin on Cadmium-Induced Oxidative Toxicity on Germ Cells in Male Mice
    Bu, Tongliang
    Mi, Yuling
    Zeng, Weidong
    Zhang, Caiqiao
    ANATOMICAL RECORD-ADVANCES IN INTEGRATIVE ANATOMY AND EVOLUTIONARY BIOLOGY, 2011, 294 (03): : 520 - 526
  • [23] Protective Effects of Astilbin Against Cadmium-Induced Apoptosis in Chicken Kidneys via Endoplasmic Reticulum Stress Signaling Pathway
    Xiuyu Li
    Ming Ge
    Weifeng Zhu
    Panpan Wang
    Jiangfeng Wang
    Tiange Tai
    Yuxi Wang
    Jianxu Sun
    Guangliang Shi
    Biological Trace Element Research, 2022, 200 : 4430 - 4443
  • [24] Protective Effects of Astilbin Against Cadmium-Induced Apoptosis in Chicken Kidneys via Endoplasmic Reticulum Stress Signaling Pathway
    Li, Xiuyu
    Ge, Ming
    Zhu, Weifeng
    Wang, Panpan
    Wang, Jiangfeng
    Tai, Tiange
    Wang, Yuxi
    Sun, Jianxu
    Shi, Guangliang
    BIOLOGICAL TRACE ELEMENT RESEARCH, 2022, 200 (10) : 4430 - 4443
  • [25] Protective effect of theaflavins on cadmium-induced testicular toxicity in male rats
    Wang, Wenxiang
    Sun, Yan
    Liu, Jin
    Wang, Jieying
    Li, Yuchen
    Li, Hong
    Zhang, Wenchang
    Liao, Huizhen
    FOOD AND CHEMICAL TOXICOLOGY, 2012, 50 (09) : 3243 - 3250
  • [26] Protective effect of hemin against cadmium-induced testicular damage in rats
    Fouad, Amr A.
    Qureshi, Habib A.
    Al-Sultan, Ali Ibrahim
    Yacoubi, Mohamed T.
    Ali, Abdellah Abusrie
    TOXICOLOGY, 2009, 257 (03) : 153 - 160
  • [27] Protective Effect of Quercetin Against Renal Toxicity Induced by Cadmium in Rats
    Aktoz, Tevfik
    Kanter, Mehmet
    Uz, Yesim Hulya
    Aktas, Cevat
    Erboga, Mustafa
    Atakan, Irfan Huseyin
    BALKAN MEDICAL JOURNAL, 2012, 29 (01) : 56 - 61
  • [28] Protective Effect of Quercetin Treatment against Cadmium-Induced Oxidative Stress in a Male Rat Model
    Alharbi, Nouf
    Elobeid, Mai
    Virk, Promy
    PAKISTAN JOURNAL OF ZOOLOGY, 2019, 51 (06) : 2287 - 2296
  • [29] Protective Effect of Ipomoea staphylina Against Cadmium-Induced Cardiotoxicity in Wistar Rats
    Yanchun, Z.
    Xue, Jin
    Firdous, S. M.
    Xue, Wang
    INDIAN JOURNAL OF PHARMACEUTICAL SCIENCES, 2021, 83 (01) : 93 - 100
  • [30] Protective effect of astragaloside IV on cadmium-induced spermatogenesis microenvironment damage in rats
    Ning, Wei
    Liao, Xiaogang
    Dong, Xingyou
    Wang, Yangcai
    Yang, Xingliang
    Xu, Jie
    Yi, Shanhong
    Yang, Zhenxing
    SYSTEMS BIOLOGY IN REPRODUCTIVE MEDICINE, 2022, 68 (03) : 203 - 212