Trim21 mediates metabolic reprogramming in renal tubular cells via PFKP ubiquitination to alleviate renal fibrosis.

IF 4.5 2区 生物学 Q2 CELL BIOLOGY Journal of Cellular Physiology Pub Date : 2024-09-22 DOI:10.1002/jcp.31439
Yang Wen, Maoqing Tian, Xushun Jiang, Ying Gong, Hua Gan
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Abstract

Chronic kidney disease (CKD), stemming from varied nephric impairments, manifests a steadily escalating global incidence. As a progressive pathological condition, CKD is typified by an intensification in the gravity of renal interstitium fibrotic transformations. Nonetheless, the intrinsic mechanisms underpinning nephric fibrosis remain elusive. In this context, we elucidated a marked augmentation in aerobic glycolysis within proximal tubular epithelial cells (TECs) of CKD patients, alongside unilateral ureteral obstruction (UUO) and ischemia-reperfusion injury (IRI) murine models, concomitant with deficiency of Trim21. Experimental investigations, both in vivo and in vitro, revealed that Trim21 deficiency aggravates the aberrantly heightened aerobic glycolysis, thereby exacerbating fibrotic reaction progression. Concomitantly, enhancive glycolytic flux paralleled an elevation in ATP genesis and reconstitution of cytoskeletal architecture. Mechanistically, we uncovered that Trim21 modulates aerobic glycolysis in TECs via ubiquitin-facilitated degradation of phosphofructokinase platelet (PFKP), thus attenuating nephric fibrosis. Collectively, our insights posit Trim21 as a prospective therapeutic target in the amelioration of renal fibrosis.

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Trim21通过PFKP泛素化介导肾小管细胞的代谢重编程,从而缓解肾脏纤维化。
慢性肾脏病(CKD)源于各种肾功能损伤,在全球的发病率不断攀升。作为一种渐进性病理状态,慢性肾脏病的典型特征是肾间质纤维化转变加剧。然而,肾脏纤维化的内在机制仍然难以捉摸。在此背景下,我们阐明了在单侧输尿管梗阻(UUO)和缺血再灌注损伤(IRI)小鼠模型中,CKD 患者近端肾小管上皮细胞(TECs)内的有氧糖酵解显著增加,同时缺乏 Trim21。体内和体外的实验研究表明,Trim21 缺乏会加剧有氧糖酵解的异常增高,从而加剧纤维化反应的进展。与此同时,糖酵解通量的增强与 ATP 生成的增加和细胞骨架结构的重建并行不悖。从机理上讲,我们发现 Trim21 通过泛素促进的血小板磷酸果糖激酶(PFKP)降解调节 TEC 中的有氧糖酵解,从而减轻肾纤维化。总之,我们的研究发现,Trim21 是改善肾脏纤维化的潜在治疗靶点。
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来源期刊
CiteScore
14.70
自引率
0.00%
发文量
256
审稿时长
1 months
期刊介绍: The Journal of Cellular Physiology publishes reports of high biological significance in areas of eukaryotic cell biology and physiology, focusing on those articles that adopt a molecular mechanistic approach to investigate cell structure and function. There is appreciation for the application of cellular, biochemical, molecular and in vivo genetic approaches, as well as the power of genomics, proteomics, bioinformatics and systems biology. In particular, the Journal encourages submission of high-interest papers investigating the genetic and epigenetic regulation of proliferation and phenotype as well as cell fate and lineage commitment by growth factors, cytokines and their cognate receptors and signal transduction pathways that influence the expression, integration and activities of these physiological mediators. Similarly, the Journal encourages submission of manuscripts exploring the regulation of growth and differentiation by cell adhesion molecules in addition to the interplay between these processes and those induced by growth factors and cytokines. Studies on the genes and processes that regulate cell cycle progression and phase transition in eukaryotic cells, and the mechanisms that determine whether cells enter quiescence, proliferate or undergo apoptosis are also welcomed. Submission of papers that address contributions of the extracellular matrix to cellular phenotypes and physiological control as well as regulatory mechanisms governing fertilization, embryogenesis, gametogenesis, cell fate, lineage commitment, differentiation, development and dynamic parameters of cell motility are encouraged. Finally, the investigation of stem cells and changes that differentiate cancer cells from normal cells including studies on the properties and functions of oncogenes and tumor suppressor genes will remain as one of the major interests of the Journal.
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