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The function of kidney podocytes is closely associated with actin cytoskeleton regulated by Rho small GTPases. Loss of actin-driven cell adhesions and processes is connected to podocyte dysfunction, proteinuria, and kidney diseases. FilGAP, a GTPase-activating protein for Rho small GTPase Rac1, is abundantly expressed in kidney podocytes, and its gene is linked to diseases in a family with focal segmental glomerulosclerosis. In this study, we have studied the role of FilGAP in podocytes in vitro. Depletion of FilGAP in cultured podocytes induced loss of actin stress fibers and increased Rac1 activity. Conversely, forced expression of FilGAP increased stress fiber formation whereas Rac1 activation significantly reduced its formation. FilGAP localizes at the focal adhesion (FA), an integrin-based protein complex closely associated with stress fibers, that mediates cell-extracellular matrix (ECM) adhesion, and FilGAP depletion decreased FA formation and impaired attachment to the ECM. Moreover, in unique podocyte cell cultures capable of inducing the formation of highly organized processes including major processes and foot process-like projections, FilGAP depletion or Rac1 activation decreased the formation of these processes. The reduction of FAs and process formations in FilGAP-depleted podocyte cells was rescued by inhibition of Rac1 or P21-activated kinase 1 (PAK1), a downstream effector of Rac1, and PAK1 activation inhibited their formations. Thus, FilGAP contributes to both cell-ECM adhesion and process formation of podocytes by suppressing Rac1/PAK1 signaling.
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http://dx.doi.org/10.1096/fj.202301691RR | DOI Listing |
Turk J Pediatr
September 2025
West China School of Public Health and West China Fourth Hospital, Sichuan University, Chengdu, Sichuan, China.
Background: The α-actinin-4 (ACTN4) gene encodes an actin-binding protein, which plays a crucial role in maintaining the structure and function of podocytes. Previous studies have confirmed that ACTN4 mutations can lead to focal segmental glomerulosclerosis-1 (FSGS1), a rare disease primarily manifesting in adolescence or adulthood, characterized by mild to moderate proteinuria, with some cases progressing slowly to end-stage renal disease.
Case Presentation: We report a 12.
Gen Physiol Biophys
September 2025
The Second Department of Nephrology, The First Affiliated Hospital of Kunming Medical University, Kunming, China.
Diabetic nephropathy (DN) is a major complication of diabetes, imposing substantial socioeconomic and public health challenges. N6-methyladenosine (m6A) modification, a prevalent epigenetic mechanism, influences cellular processes and disease progression. Wilms' tumor 1-associating protein (WTAP), an m6A methyltransferase subunit, was investigated for its role in DN.
View Article and Find Full Text PDFCureus
August 2025
Department of Nephrology, Georgian American University, Tbilisi, GEO.
This case report describes a 38-year-old female patient with type 1 diabetes who developed collapsing-type glomerulonephritis (CTGN), a rare but severe kidney injury. The patient presented with nephrotic syndrome symptoms, including edema and hypertension. Laboratory tests showed significant proteinuria with normal serum creatinine and glomerular filtration rate.
View Article and Find Full Text PDFPLoS One
September 2025
Department of Nephrology, Chungnam National University, Daejeon, Republic of Korea.
Diabetic kidney disease (DKD) involves oxidative stress-driven damage to glomeruli (Gloms) and proximal convoluted tubules (PCT). NAD(P)H: quinone oxidoreductase 1 (NQO1) regulates redox balance, but its compartment-specific role remains unclear. Streptozotocin (STZ)-induced hyperglycemia increased albuminuria and foot process effacement, with NQO1 KO (NKO) mice exhibiting greater podocyte injury than WT, indicating exacerbated glomerular damage.
View Article and Find Full Text PDFEvol Med Public Health
August 2025
Department of Pediatrics, University of Virginia, Charlottesville, VA, USA.
Primitive emunctory functions to expel harmful substances from cells and the interstitial space of multicellular organisms evolved over the past billion and a half years into the complex physiology of the metanephric kidney. Integrative biology allows empirical testing of hypotheses of the origins of renal structures from homologous single-celled precursors. Emunctory cell complexes called nephridia evolved in metazoan (cnidarian) ancestors 750 million years ago (mya).
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