ABSTRACT Diabetic kidney disease (DKD) is characterized by progressive tubular injury, yet the mechanisms linking metabolic stress to organelle dysfunction remain unclear. Here, utilizing human renal biopsies, db/db and high‐fat diet with streptozotocin‐induced diabetic mouse models, and cultured renal tubular epithelial cells (RTECs) exposed to 30 mM glucose, we demonstrate that impaired pexophagy drives peroxisomal dysfunction and tubular damage in DKD. Diabetic conditions induced marked accumulation of the peroxisomal membrane protein PMP70 (encoded by ABCD3/Abcd3) in RTECs, reflecting impaired peroxisomal turnover. We identified ubiquitin‐specific peptidase 30 (USP30) as a contributor of this process. Expression profiling and localization analyses revealed that USP30 expression was significantly elevated in vivo and in vitro under high‐glucose conditions and predominantly localized to RTECs. Global genetic depletion of USP30 restored peroxisomal function and metabolic homeostasis, enhanced pexophagy, and attenuated tubular injury. Mechanistically, USP30 antagonized the ubiquitination of the peroxisomal import receptor PEX5, thereby suppressing pexophagy. Furthermore, deletion of the essential autophagy factor ATG5 abolished the protective effects of USP30 deficiency. These findings reveal a critical role of USP30 mediated regulation of pexophagy in DKD and suggest that USP30 may serve as an experimental intervention target to alleviate tubular injury in DKD.
Jia Li, Chaoyang Hua, Guangpu Li et al.· Advancement of science· 0 citations
The polycystin complex, consisting of one polycystin-1 (PC1) and three polycystin-2 (PC2), forms a cation channel localized to the primary cilium and is critically involved in autosomal dominant polycystic kidney disease (ADPKD). This study reveals an allosteric gating mechanism of the PC1-PC2 channel modulated by specific membrane lipids. In typical membrane environments, phosphatidylglycerol (PG) and phosphatidic acid (PA) bind to the channel central pore, maintaining it in a closed state. Dissociation of these lipids transitions the channel to a pre-open state. The cilia-enriched oxysterol 7β,27-dihydroxycholesterol (7β,27-DHC) stabilizes the channel in a more open but still non-conductive conformation through an allosteric mechanism. Lipid-mediated regulation is coupled to large conformational rearrangements of the TOP and voltage-sensor-like domains (VSDs) of the third PC2 subunit, which eventually leads to pore opening. This lipid-dependent modulation is also observed in a gain-of-function channel. These findings reveal a distinct gating mechanism for the asymmetric 1:3 PC1-PC2 complex. Autosomal dominant polycystic kidney disease involves dysfunction of the PC1–PC2 ion channel. Here the authors reveal lipid-dependent allosteric gating and define multiple structural states showing how specific membrane lipids control channel opening.
Mengying Chen, Zhifei Wang, Yan Shi et al.· Nature Communications· 0 citations