bioRxiv Science⌕ Search

Biology subjects

Cabrita, I.

Publications and source records attributed to Cabrita, I..

2 recordsLinked to original sources

Renal proximal tubules are sensitive to metabolic acidosis

Patients suffering from distal renal tubular acidosis (dRTA) are sometimes diagnosed with proximal tubule dysfunction with leaks of phosphate, uric acid, amino acids, and low-molecular-weight proteins, also known as Fanconi-like syndrome. The underlying molecular basis is largely elusive. We previously reported on Atp6v0a4 knockout (KO) mice, which exhibit severe metabolic acidosis in combination with proximal tubule dysfunction as evidenced by phosphaturia and proteinuria. Here, we show that Rab7, a key regulator of endo-lysosomal trafficking and lysosomal biogenesis, is strongly diminished in proximal tubules of Atp6v0a4 KO mice, while the number of abnormal Ist1-labelled Lamp1-positive vesicles is increased. This is accompanied by the accumulation of autophagosomes, autolysosomes and autophagic substrates. Importantly, correction of metabolic acidosis with bicarbonate therapy resolves proximal tubule dysfunction and trafficking defects in Atp6v0a4 KO mice. Acid-challenged wildtype mice also show trafficking defects with Rab7-downregulation and an increase in Ist1-labeled Lamp1-positive vesicles and develop proximal tubule damage in the long-term. Similar acidosis-induced alterations also occur in human kidney organoids. Altogether, our data provide insights, why patients suffering from severe dRTA may develop a Fanconi-like syndrome, which may contribute to the progression of chronic kidney failure. Translational StatementPatients with renal acidosis caused by impaired proton secretion in the collecting duct (distal renal tubular acidosis - dRTA) sometimes show unexplained symptoms of proximal tubule dysfunction such as proteinuria and phosphaturia. Here, we show that proximal tubules are particularly sensitive to acidosis as evidenced by impaired trafficking, lysosomal damage and accumulation of autophagic substrates. We also show that early treatment of dRTA by alkali supplementation can prevent proximal tubule dysfunction. Because metabolic acidosis represents a well-known risk factor for the progression of chronic kidney disease (CKD), our findings highlight the potential clinical importance of early alkali supplementation to delay disease progression.

molecular biology↗

The FSGS disease gene product and nuclear pore protein NUP205 regulates nuclear localization and activity of the transcriptional regulators YAP and TAZ in podocytes

BackgroundMutations in genes encoding nuclear pore proteins (NUPs) cause steroid-resistant nephrotic syndrome (SRNS) and focal and segmental glomerulosclerosis (FSGS). The mechanisms of how NUP deficiency may cause podocyte dysfunction and failure of the kidney filtration barrier are elusive. The tightly controlled activity of the transcriptional effectors of the evolutionarily conserved Hippo pathway YAP and TAZ is essential for podocyte homeostasis. Here we analyze the role of NUPs in controlling YAP/TAZ nuclear import and activity in podocytes. MethodsWe used quantitative label-free mass spectrometry to characterize the YAP/TAZ interactomes in podocytes, particularly identifying NUP interactions. Moreover, we specifically studied NUP205 in controlling YAP/TAZ nuclear import and YAP/TAZ-dependent target gene expression. ResultsHere we identify the disease-causing nuclear pore proteins NUP107, NUP133, NUP205, and XPO5 as components of YAP and TAZ protein complexes in podocytes. We demonstrate that NUP205 is essential for YAP/TAZ nuclear import. The nuclear interaction of YAP/TAZ with TEAD1 and their transcriptional activity were dependent on NUP205 expression. Furthermore, we identify a feedback regulatory mechanism that controls YAP activity depending on TAZ-mediated NUP205 expression. ConclusionThis study links the disease protein NUP205 with the activity of the transcriptional regulators and Hippo effectors YAP and TAZ and suggests a pathogenic role of YAP/TAZ-deregulation in podocytes in patients with NUP205 mutations. Moreover, this study suggests an important role of YAP/TAZ signaling in human FSGS. SIGNIFICANCE STATEMENTUnderstanding the interference of signaling pathways in genetic diseases is essential to finally develop tailored treatment strategies. The increasing number of pathogenic variants causing focal-segmental glomerulosclerosis (FSGS) comprises genes encoding for proteins of the nuclear-cytoplamic shuttling machinery. We here found several of these proteins in an unbiased interactome analysis of the Hippo signaling effector proteins YAP and TAZ in podocytes, pointing to a connection between nucleoporins and the Hippo pathway. Further analyses confirmed that NUP205 is essential for correct YAP/TAZ shuttling; depletion of NUP205 resulted in cytoplasmic retention and inactivation of YAP/TAZ. We suggest the nuclear pore and hippo signaling as a pathogenic module in FSGS.

cell biology↗