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Updated: Oct 7, 2026

Implementing Patch Clamp and Live Fluorescence Microscopy to Monitor Functional Properties of Freshly Isolated PKD Epithelium
Published on: September 1, 2015
RhoA through its various effectors mediate mitochondrial fragmentation in polycystic kidney disease
Rohankrishna Harikumar1, Zsuzsanna Lichner1, Chen Tuo1,2
1Keenan Research Centre for Biomedical Science of the St. Michael's Hospital, University of Toronto, Toronto, ON M5B 1T8, Canada.
Abstract:
Polycystic kidney disease (PKD), the most common genetic nephropathy, is caused by the loss/loss of function of polycystin-1 (PC1) or 2 (PC2) and characterized by cyst formation and fibrosis. A key feature of PKD is mitochondrial fragmentation, but the underlying mechanism is unknown. Since PC1/PC2 loss induces RhoA activation and fibrogenesis, we hypothesized that RhoA might also trigger general and/or PC1/2 loss-induced mitochondrial fragmentation. We show that RhoA activation is sufficient to induce DRP1-mediated mitochondrial fission in tubular cells. Importantly, genetic or pharmacologic inhibition of RhoA or its effectors (ROCK/LIM kinase/cofilin, phospho-myosin or formins) prevents/reverses PC1/PC2 loss-provoked fragmentation. Fragmentation by active formins requires F-actin polymerizing capacity but not binding to INF2, a RhoA-independent, fission-mediating formin. PC1 re-expression or RhoA/RhoA effector inhibition restores mitochondrial morphology in human PKD cells. Mitochondrial fragmentation facilitates fibrogenesis. Thus, RhoA regulates mitochondrial shape, and RhoA-mediated actin polymerization/myosin activation is a central mechanism of PKD-associated mitochondrial fragmentation.

