Aldehyde Dehydrogenase 2 Protects the Kidney from Ischemia-Reperfusion Injury by Suppressing the i κ B α /NF- κ B/IL-17C Pathway

被引:4
作者
Chen Y. [1 ]
Xiong Y. [1 ]
Luo J. [1 ]
Hu Q. [1 ]
Lan J. [1 ]
Zou Y. [1 ]
Ma Q. [1 ]
Yao H. [1 ]
Liu Z. [1 ]
Zhong Z. [1 ]
Ye Q. [1 ,2 ]
机构
[1] National Quality Control Center for Donated Organ Procurement, Hubei Key Laboratory of Medical Technology on Transplantation, Hubei Clinical Research Center for Natural Polymer Biological Liver, Hubei Engineering Center of Natural Polymer-Based Medical Mat
[2] Research Center of National Health Ministry on Transplantation Medicine Engineering and Technology, The 3rd Xiangya Hospital of Central South University, Changsha
关键词
All Open Access; Gold;
D O I
10.1155/2023/2264030
中图分类号
学科分类号
摘要
Objective. Ischemia-reperfusion injury (IRI) is an important cause of delayed functional recovery after transplantation. This study is aimed at investigating the molecular mechanism of ALDH2 in a kidney ischemia-reperfusion model based on RNA-seq. Methods. We performed kidney ischemia-reperfusion in ALDH2-/- and WT mice and evaluated kidney function and morphology using SCr, HE staining, TUNEL staining, and TEM. We used RNA-seq to compare mRNA expression in ALDH2-/- and WT mice after IR, and then, we verified the related molecular pathways by PCR and western blotting. In addition, activators and inhibitors of ALDH2 were used to alter the activity of ALDH2. Finally, we established a model of hypoxia and reoxygenation in HK-2 cells and clarified the role of ALDH2 in IR by interfering with ALDH2 and using an NF-κB inhibitor. Results. After kidney ischemia-reperfusion, the SCr value increased significantly, kidney tubular epithelial cells were damaged, and the apoptosis rate increased. In the microstructure, mitochondria were swollen and deformed, and ALDH2 deficiency aggravated these changes. The NF-κB pathway and IL-17 pathway were significantly enriched in ALDH2-/- mice compared with WT mice according to KEGG enrichment analysis of the RNA-seq data. The PCR results showed that the mRNA expression levels of IκBα and IL-17B, C, D, E, and F were significantly higher than those in the WT-IR group. Western blot verification results showed that ALHD2 knockdown resulted in increased phosphorylation of IκBα, increased phosphorylation of NF-κB, and increased expression of IL-17C. When we used ALDH2 agonists, the number of lesions and the expression levels of the corresponding proteins were reduced. Knockdown of ALDH2 in HK-2 cells resulted in a higher proportion of apoptotic cells after hypoxia and reoxygenation, but inhibiting the phosphorylation of NF-κB prevented the increase in apoptosis and reduced the protein expression level of IL-17C. Conclusion. ALDH2 deficiency can lead to the aggravation of kidney ischemia-reperfusion injury. RNA-seq analysis and validation by PCR and western blotting revealed that this effect may be due to the promotion of IκBα/NF-κB p65 phosphorylation during ischemia-reperfusion caused by ALDH2 deficiency, which then leads to an increase in inflammatory factors, including IL-17C. Thus, cell death is promoted, and kidney IRI is eventually aggravated. We link ALDH2 deficiency with inflammation, revealing a new idea for ALDH2-related research. © 2023 Yiwen Chen et al.
引用
收藏
相关论文
共 40 条
[1]  
Abecassis M., Bartlett S.T., Collins A.J., Davis C.L., Delmonico F.L., Friedewald J.J., Hays R., Howard A., Jones E., Leichtman A.B., Merion R.M., Metzger R.A., Pradel F., Schweitzer E.J., Velez R.L., Gaston R.S., Kidney transplantation as primary therapy for end-stage renal disease: A National Kidney Foundation/Kidney Disease Outcomes Quality Initiative (NKF/KDOQITM) conference, Clinical Journal of the American Society of Nephrology, 3, 2, pp. 471-480, (2008)
[2]  
Pefanis A., Ierino F.L., Murphy J.M., Cowan P.J., Regulated necrosis in kidney ischemia-reperfusion injury, Kidney International, 96, 2, pp. 291-301, (2019)
[3]  
Tingle S.J., Figueiredo R.S., Moir J.A., Goodfellow M., Talbot D., Wilson C.H., Machine perfusion preservation versus static cold storage for deceased donor kidney transplantation, Cochrane Database of Systematic Reviews, 3, 3, (2019)
[4]  
Simon J.N., Vrellaku B., Monterisi S., Chu S.M., Rawlings N., Lomas O., Marchal G.A., Waithe D., Syeda F., Gajendragadkar P.R., Jayaram R., Sayeed R., Channon K.M., Fabritz L., Swietach P., Zaccolo M., Eaton P., Casadei B., Oxidation of protein kinase a regulatory subunit PKARI α protects against myocardial ischemia-reperfusion injury by inhibiting lysosomal-triggered calcium release, Circulation, 143, 5, pp. 449-465, (2021)
[5]  
Alves D.S., Thulin G., Loffing J., Kashgarian M., Caplan M.J., Akt substrate of 160 kD regulates Na+,K+-ATPase trafficking in response to energy depletion and renal ischemia, Journal of the American Society of Nephrology, 26, 11, pp. 2765-2776, (2015)
[6]  
Liang S., Tian X., Wang C., Nanozymes in the treatment of diseases caused by excessive reactive oxygen species, Journal of Inflammation Research, 15, pp. 6307-6328, (2022)
[7]  
Wallert M., Ziegler M., Wang X., Maluenda A., Xu X., Yap M.L., Witt R., Giles C., Kluge S., Hortmann M., Zhang J., Meikle P., Lorkowski S., Peter K., α -Tocopherol preserves cardiac function by reducing oxidative stress and inflammation in ischemia/reperfusion injury, Redox Biology, 26, (2019)
[8]  
Adeniji E.A., Olotu F.A., Soliman M., Alcohol metabolic inefficiency: Structural characterization of polymorphism-induced ALDH2 dysfunctionality and allosteric site identification for design of potential wildtype reactivators, Protein Journal, 37, 3, pp. 216-222, (2018)
[9]  
Fagerberg L., Hallstrom B.M., Oksvold P., Kampf C., Djureinovic D., Odeberg J., Habuka M., Tahmasebpoor S., Danielsson A., Edlund K., Asplund A., Analysis of the Human Tissue-specific Expression by Genome-wide Integration of Transcriptomics and Antibody-based Proteomics, Molecular & Cellular Proteomics, 13, 2, pp. 397-406, (2014)
[10]  
Wang W., Wang C., Xu H., Gao Y., Aldehyde dehydrogenase, liver disease and cancer, International Journal of Biological Sciences, 16, 6, pp. 921-934, (2020)