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Cheval, L.

Publications and source records attributed to Cheval, L..

4 recordsLinked to original sources

Cilia to basement membrane signalling is a biomechanical driver of autosomal dominant polycystic kidney disease

Autosomal dominant polycystic kidney disease (ADPKD), which affects around 4 million patients worldwide, is characterized by the formation of multiple tubule derived cysts, which grossly enlarge both kidneys and progressively compromise renal function. ADPKD mainly results from mutations in PKD1, leading to the loss of polycystin-1 protein, which localizes to primary cilia. Primary cilia are required for cyst formation but the biomechanical changes underlying cystogenesis upon loss of polycytin-1 are unknown. We find that cilia and polycystin-1 shape the tubular basement membrane (TBM). Combining orthologous mouse models with a tubule-on-chip approach allowing manipulations of TBM stiffness, we find that cilia regulate the composition and biomechanical properties of the TBM. In the setting of polycytin-1 loss, reduced TBM stiffness and increased luminal pressure act as biomechanical drivers of cyst formation. These findings suggest a novel biomechanical model for ADPKD and unveil that cilia to TBM signalling controls kidney shape.

physiology↗

Low exposure to lithium does not induce nephrogenic diabetes insipidus but microcystic dilations of collecting ducts in a long-term rat model

Lithium induces nephrogenic diabetes insipidus (NDI) and microcystic chronic kidney disease (CKD). As clinical studies suggested that NDI is dose-dependent and CKD time-dependent, we investigated the effects of low exposure to lithium in a long-term rat model. Sprague-Dawley rats were randomly fed during six months with normal diet (controls), addition of lithium to diet, or addition of lithium and amiloride to diet, allowing reaching low steady-state plasma lithium concentrations (0.25{+/-}0.06 and 0.43{+/-}0.16 mmol/L, respectively). Exposure to low plasma lithium concentrations did not induce NDI but microcystic dilations of kidney tubules, identified as collecting ducts (CDs) using immunofluorescent staining. Both hypertrophy, characterized by an increase in the ratio of nuclei per tubular area, and microcystic dilations were observed. Principal cell-to-intercalated cell ratio was higher in dilated than in hypertrophied tubules. There was no correlation between aquaporin-2 mRNA levels and cellular remodelling of CDs. Amiloride/lithium co-administration did not allow significant consistent morphometric and cellular composition changes compared to lithium administration. To conclude, rat low exposure to lithium did not induce overt NDI but microcystic dilations of CDs, which include a marked alteration in cell composition of hypertrophied and dilated CDs, suggesting two distinct underlying pathophysiological mechanisms.

pharmacology and toxicology↗

GDF15 mediates renal cell plasticity in response to potassium depletion

A low potassium (K+) intake is a common situation in the population of the Westernized countries where processed food is prevalent in the diet. Here, we show that expression of GDF15, a TGF{beta}-related growth factor, is increased in renal tubular segments and gut parts of mice in response to low-K+ diet leading to a systemic elevation of its plasma and urine concentration. In human, under mild dietary K+ restriction, we observed that urine GDF15 excretion is correlated with plasma K+ level. Conversely to WT mice, adaptation to K+ restriction of GDF15-KO mice is not optimal, they do not increase their number of type A intercalated cell, responsible for K+ retention, and have a delayed renal K+ retention, leading to early development of hypokalemia. This renal effect of GDF15 depends on ErBb2 receptor, whose expression is increased in the kidney collecting ducts. We also observe that, in the absence of GDF15, the release of K+ by the muscles is blunted which is compensated by a loss of muscle mass. Thus, in this study, we showed that GDF15 plays a central role in the response to K+ restriction by orchestrating the modification of the cell composition of the collecting duct.

physiology↗

Claudin-4, a core component of the tight-junctional complex along the collecting system, is induced in nephrotic syndrome

BackgroundNephrotic syndrome (NS) is characterized by massive sodium chloride retention. Along the kidney tubule, sodium and chloride reabsorption are coupled via a combination of transcellular and paracellular transport pathways. The mechanism of sodium retention in NS has been extensively studied, but the associated chloride transport pathway has not been elucidated. MethodsTo investigate the pathway of chloride retention in NS, we assessed the expression levels of both paracellular and transcellular components of chloride transport in the CD of POD-ATTAC mice and PAN rats, two rodent models of NS. We also used cultured mouse cortical collecting duct cells to see how overexpression or silencing of claudin-4 affect paracellular permeability. Finally, human renal biopsies were used to confirm our in vivo results. ResultsIn control animals, claudin-4 was expressed at low levels in collecting duct (CD). In POD-ATTAC mice and PAN rats, claudin-4 expression was strongly increased in CD beta-intercalated cells (B-IC) and to a lesser extent in CD principal cells and was also induced in connecting tubules. Similarly, we found that claudin-4 was expressed at low levels in normal human kidneys and was dramatically increased in CD cells of nephrotic human kidneys (focal and segmental glomerulosclerosis). In parallel, the expression of pendrin, which exchanges chloride for bicarbonates in B-IC, was decreased in nephrotic compared to control animals. However, the increase in claudin-4 expression observed in NS is likely independent of pendrin abundance. Increased claudin-4 abundance is coupled with increased ENaC-dependent sodium transport. Overexpression or silencing of claudin-4 in mCCDcl1 cells confirmed the preferential permeability of claudin-4 to chloride over sodium. ConclusionsThese results suggest that during NS, transcellular Cl-/HCO - transport decreases while paracellular chloride transport via claudin-4 may increase along the collecting system. Paracellular chloride permeability may constitute a chloride shunt that favors Na+ reabsorption and opposes K+ secretion along the CD in NS. Significance StatementNephrotic syndrome is a common disease characterized by massive proteinuria, hypoalbuminemia and edema due to renal sodium-chloride retention. We demonstrate for the first time an induction of claudin-4 expression indicating a partial shift from transcellular to paracellular chloride transport in the renal collecting system of nephrotic rodents. We confirmed the increased expression of claudin-4 in kidney biopsies of nephrotic patients, highlighting the translational significance of these results. Whether the paracellular pathway may represent a novel target to treat edema in nephrotic syndrome remains to be elucidated.

physiology↗