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TRIM29 通过 NF-κB/NLRP3 炎性小体途径促进糖尿病肾病足细胞焦亡。

TRIM29 promotes podocyte pyroptosis in diabetic nephropathy through the NF-kB/NLRP3 inflammasome pathway.

机构信息

Department of Nephrology, Nanjing Drum Tower Hospital Group Suqian Hospital, Suqian, China.

Department of Nephrology, The Affiliated Suqian Hospital of Xuzhou Medical University, Suqian, China.

出版信息

Cell Biol Int. 2023 Jun;47(6):1126-1135. doi: 10.1002/cbin.12006. Epub 2023 Feb 25.

Abstract

Diabetic nephropathy (DN) is one of the most common complications of diabetes. Gradual loss of podocytes is a sign of DN and pyroptosis mechanistically correlates with podocyte injury in DN; however, the mechanism(s) involved remain unknown. Here we reveal that TRIM29 is overexpressed in high glucose (HG)-treated murine podocytes cells and that TRIM29 silencing significantly inhibits podocyte damage due to HG treatment, as evidenced by lower desmin expression and greater nephrin expression. Additionally, flow cytometry analysis showed that TRIM29 silencing significantly inhibited HG treatment-induced pyroptosis, which was confirmed by immunoblotting for NLRP3, active Caspase-1, GSDMD-N, and phosphorylated NF-κB-p65. Conversely, overexpression of TRIM29 could trigger pyroptosis that was attenuated by NF-κB inhibition, indicating that TRIM29 promotes pyroptosis through the NF-κB pathway. Mechanistic studies revealed that TRIM29 interacts with IκBα to mediate its ubiquitination-dependent degradation, which in turn leads to NF-κB activation. Taken together, our data demonstrate that TRIM29 can promote podocyte pyroptosis by activating the NF-κB/NLRP3 pathway. Thus, TRIM29 represents a potentially novel therapeutic target that may also be clinically relevant in the management of DN.

摘要

糖尿病肾病(DN)是糖尿病最常见的并发症之一。足细胞逐渐丢失是 DN 的一个标志,并且细胞焦亡与 DN 中的足细胞损伤在机制上相关;然而,其涉及的机制仍不清楚。在这里,我们揭示了 TRIM29 在高糖(HG)处理的鼠足细胞中过表达,并且沉默 TRIM29 可显著抑制由于 HG 处理引起的足细胞损伤,这表现在波形蛋白表达降低和nephrin 表达增加。此外,流式细胞术分析表明,沉默 TRIM29 可显著抑制 HG 处理诱导的细胞焦亡,这通过 NLRP3、活性 Caspase-1、GSDMD-N 和磷酸化 NF-κB-p65 的免疫印迹得到证实。相反,TRIM29 的过表达可引发细胞焦亡,而 NF-κB 抑制可减弱这种细胞焦亡,表明 TRIM29 通过 NF-κB 途径促进细胞焦亡。机制研究表明,TRIM29 与 IκBα 相互作用,介导其泛素化依赖性降解,进而导致 NF-κB 激活。总之,我们的数据表明,TRIM29 可以通过激活 NF-κB/NLRP3 通路促进足细胞细胞焦亡。因此,TRIM29 代表了一个潜在的新的治疗靶点,在糖尿病肾病的治疗中也可能具有临床相关性。

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