WWP2 Regulates Renal Fibrosis and the Metabolic Reprogramming of Profibrotic Myofibroblasts

Author:

Chen Huimei1ORCID,You Ran2ORCID,Guo Jing1ORCID,Zhou Wei2ORCID,Chew Gabriel1,Devapragash Nithya1,Loh Jui Zhi1,Gesualdo Loreto3ORCID,Li Yanwei2,Jiang Yuteng2,Tan Elisabeth Li Sa1,Chen Shuang24,Pontrelli Paola3ORCID,Pesce Francesco5ORCID,Behmoaras Jacques16ORCID,Zhang Aihua2ORCID,Petretto Enrico14ORCID

Affiliation:

1. Programme in Cardiovascular and Metabolic Disorders (CVMD) and Centre for Computational Biology (CCB), Duke-NUS Medical School, Singapore

2. Department of Nephrology, Children's Hospital of Nanjing Medical University, Nanjing, China

3. Nephrology, Dialysis and Transplantation Unit, Department of Precision and Regenerative Medicine and Ionian Area (DiMePRe-J), University of Bari Aldo Moro, Bari, Italy

4. School of Science, Institute for Big Data and Artificial Intelligence in Medicine, China Pharmaceutical University, Nanjing, China

5. Division of Renal Medicine, Fatebenefratelli Isola Tiberina—Gemelli Isola, Rome, Italy

6. Centre for Inflammatory Disease, Imperial College London, Hammersmith Hospital, London, United Kingdom

Abstract

Key Points WWP2 expression is elevated in the tubulointerstitium of fibrotic kidneys and contributes to CKD pathogenesis and progression.WWP2 uncouples the profibrotic activation and cell proliferation in renal myofibroblasts.WWP2 controls mitochondrial respiration in renal myofibroblasts through the metabolic regulator peroxisome proliferator-activated receptor gamma coactivator 1-alpha. Background Renal fibrosis is a common pathologic end point in CKD that is challenging to reverse, and myofibroblasts are responsible for the accumulation of a fibrillar collagen–rich extracellular matrix. Recent studies have unveiled myofibroblasts' diversity in proliferative and fibrotic characteristics, which are linked to different metabolic states. We previously demonstrated the regulation of extracellular matrix genes and tissue fibrosis by WWP2, a multifunctional E3 ubiquitin–protein ligase. Here, we investigate WWP2 in renal fibrosis and in the metabolic reprograming of myofibroblasts in CKD. Methods We used kidney samples from patients with CKD and WWP2-null kidney disease mice models and leveraged single-cell RNA sequencing analysis to detail the cell-specific regulation of WWP2 in fibrotic kidneys. Experiments in primary cultured myofibroblasts by bulk-RNA sequencing, chromatin immunoprecipitation sequencing, metabolomics, and cellular metabolism assays were used to study the metabolic regulation of WWP2 and its downstream signaling. Results The tubulointerstitial expression of WWP2 was associated with fibrotic progression in patients with CKD and in murine kidney disease models. WWP2 deficiency promoted myofibroblast proliferation and halted profibrotic activation, reducing the severity of renal fibrosis in vivo. In renal myofibroblasts, WWP2 deficiency increased fatty acid oxidation and activated the pentose phosphate pathway, boosting mitochondrial respiration at the expense of glycolysis. WWP2 suppressed the transcription of peroxisome proliferator-activated receptor gamma coactivator 1-alpha (PGC-1α), a metabolic mediator of fibrotic response, and pharmacologic inhibition of PGC-1α partially abrogated the protective effects of WWP2 deficiency on myofibroblasts. Conclusions WWP2 regulates the metabolic reprogramming of profibrotic myofibroblasts by a WWP2-PGC-1α axis, and WWP2 deficiency protects against renal fibrosis in CKD.

Funder

Ministry of Education - Singapore

National Natural Science Foundation of China

National Research Foundation Singapore

the European Union – NextGenerationEU

Duke-NUS Medical School

Publisher

Ovid Technologies (Wolters Kluwer Health)

Reference103 articles.

1. A national registry study of patient and renal survival in adult nephrotic syndrome;Kolb;Kidney Int Rep.,2021

2. Extracellular matrix in kidney fibrosis: more than just a scaffold;Bulow;J Histochem Cytochem.,2019

3. Role of fibroblast activation in inducing interstitial fibrosis;Zeisberg;J Nephrol.,2000

4. Functional heterogeneity of resident fibroblasts in the kidney;Sato;Proc Jpn Acad Ser B Phys Biol Sci.,2019

5. Metabolic reprogramming heterogeneity in chronic kidney disease;Miguel;FEBS Open Bio.,2023

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