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Miller, R. T.

Publications and source records attributed to Miller, R. T..

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WNK1 kinase activity is required for maintenance of podocyte structure

The filtration-function of glomeruli requires slit diaphragms formed by interdigitating podocyte foot processes, which are actin-based membrane protrusions. Dysregulation of mechanisms that maintain these membrane extensions lead to foot process effacement, proteinuria, and progression to chronic kidney disease. Building on our previous work that showed WNK1 kinase activity is necessary for the maintenance of normal biomechanical properties of glomeruli and podocyte foot process architecture, we tested the hypothesis that WNK1 kinase activity affects the structure of podocyte foot processes through modulation of actomyosin activity and focal adhesion complexes. Using a WNK1 kinase specific inhibitor, we determined by immunofluorescence microscopy of nascent focal adhesions, podocyte membrane spreading/extensions, and NMII paralog localization and extent of activation calculated from quantification of phosphorylated myosin, that all were sensitive to WNK1 kinase activity. Moreover, biochemical evidence of WNK1 kinase activity-dependent signalosomes supports a role for WNK1 in the maintenance of podocyte foot processes, and sarcomere-like structures (SLSs) that are induced in models of podocyte injury. Using primary and immortalized podocyte cell lines developed from control and Col4a3-/-Alport Syndrome model mice, we measured WNK1 kinase activity-dependent improvement in properties of injured podocytes in vitro. Physiological relevance of WNK1 kinase activity-dependent structural maintenance of podocyte foot processes was confirmed by significant acute proteinuria measured in response to WNK1 inhibition in vivo. Collectively, the results provide evidence that WNK1 kinase signalosome activity that includes formation of nascent focal adhesions and regulation of NMII localization and activity at membrane protrusions and extensions, are necessary for physiological maintenance of slit diaphragms. SignificanceTerminally differentiated podocytes are arborized cells with interdigitating foot processes that form the renal filtration barrier. Loss of foot process structural integrity causes progressive proteinuria, which can lead to irreversible renal injury, but the mechanisms that maintain foot process structure are incompletely understood. We report evidence that WNK1 kinase activity is required for maintenance of normal glomerular filtration in vivo, and this is mediated in part through WNK1 activity-dependent modulation of non-muscle myosin II activity, and formation of nascent focal adhesions that are necessary for lamellipodial extensions. Using glomeruli and podocyte cell lines developed from an Alport Syndrome podocyte injury model, we show that aspects of abnormal podocyte structure associated with chronic kidney disease can be suppressed through increased WNK1 activation.

cell biology↗

Glomerular Elasticity and Gene Expression Patterns Define Two Phases of Alport Nephropathy

Alport syndrome (AS), caused by COL4A3,4,5 mutations, leads to progressive glomerular disease and eventual kidney failure. In Col43-/- mice (C57BL/6 background), we found that increased glomerular capillary deformability (reduced Youngs modulus, E) appears 2-3 months before detectable proteinuria or elevated serum creatinine. This early change indicates that podocyte injury precedes traditional clinical markers of disease and corresponds to reduced podocyte adhesion and loss. Bulk and podocyte-enriched RNA-seq data, obtained from deconvoluting bulk RNA sequencing data, showed that starting at 4 months, endoplasmic reticulum (ER) stress and the unfolded protein response (UPR) steadily rise while extracellular matrix remodeling, inflammation, epithelial-mesenchymal transition, and maladaptive repair begin. By 7 months, pathology shifts toward widespread parenchymal fibrosis, interleukin, cytokine, and chemokine signaling, cytoskeleton disruption, metabolic failure, and podocyte dedifferentiation. Notably, administration of the chemical chaperone Tauro-Urso-Deoxcycholic Acid (TUDCA) from weaning reduced ER stress, preserved glomerular stiffness, minimized podocyte detachment and loss, normalized inflammatory, injury, and fibrotic gene expression, and halved proteinuria and serum creatinine at 7 months, preserving kidney structure. Differentially expressed podocyte enriched genes from 4-month Col43-/- (vs WT) mice were mapped to human orthologs in the NEPTUNE cohort. Four genes (CRB2, GPC6, NKD1, STX11) were associated with End Stage Renal Disease or 40% loss of eGFR (ESRD40). Collectively, our results identify these four genes and ER stress/UPR as key and treatable drivers of podocyte injury and disease progression in Alport syndrome, well before overt proteinuria, and highlight UPR activation and several genes as promising targets for disease-modifying therapies.

cell biology↗