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Intravital imaging reveals glomerular capillary distension and endothelial and immune cell activation early in Alport syndrome
Georgina Gyarmati, Urvi Nikhil Shroff, Audrey Izuhara, Xiaogang Hou, Stefano Da Sacco, Sargis Sedrakyan, Kevin V. Lemley, Kerstin Amann, Laura Perin, János Peti-Peterdi
Georgina Gyarmati, Urvi Nikhil Shroff, Audrey Izuhara, Xiaogang Hou, Stefano Da Sacco, Sargis Sedrakyan, Kevin V. Lemley, Kerstin Amann, Laura Perin, János Peti-Peterdi
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Research Article Nephrology

Intravital imaging reveals glomerular capillary distension and endothelial and immune cell activation early in Alport syndrome

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Abstract

Alport syndrome (AS) is a genetic disorder caused by mutations in type IV collagen that lead to defective glomerular basement membrane, glomerular filtration barrier (GFB) damage, and progressive chronic kidney disease. While the genetic basis of AS is well known, the molecular and cellular mechanistic details of disease pathogenesis have been elusive, hindering the development of mechanism-based therapies. Here, we performed intravital multiphoton imaging of the local kidney tissue microenvironment in a X-linked AS mouse model to directly visualize the major drivers of AS pathology. Severely distended glomerular capillaries and aneurysms were found accompanied by numerous microthrombi, increased glomerular endothelial surface layer (glycocalyx) and immune cell homing, GFB albumin leakage, glomerulosclerosis, and interstitial fibrosis by 5 months of age, with an intermediate phenotype at 2 months. Renal histology in mouse or patient tissues largely failed to detect capillary aberrations. Treatment of AS mice with hyaluronidase or the ACE inhibitor enalapril reduced the excess glomerular endothelial glycocalyx and blocked immune cell homing and GFB albumin leakage. This study identified central roles of glomerular mechanical forces and endothelial and immune cell activation early in AS, which could be therapeutically targeted to reduce mechanical strain and local tissue inflammation and improve kidney function.

Authors

Georgina Gyarmati, Urvi Nikhil Shroff, Audrey Izuhara, Xiaogang Hou, Stefano Da Sacco, Sargis Sedrakyan, Kevin V. Lemley, Kerstin Amann, Laura Perin, János Peti-Peterdi

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Figure 2

Intravital MPM imaging of glomerular endothelial and immune cell features in control and AS mice.

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Intravital MPM imaging of glomerular endothelial and immune cell feature...
Glomerular endothelial (A–D) and immune cell features (E–H). The endothelial surface layer (glycocalyx) was labeled with FITC-WGA lectin (green; linear pattern along capillary lumen), while circulating immune cells were identified with anti-CD44–Alexa Fluor 488 antibodies (green; round single cell pattern), both injected i.v. (A–D) Representative images and statistical summary of the significantly increased FITC-WGA intensity and thickness of the GEC glycocalyx (arrowheads) compared with controls (A), in a segmental pattern in early-stage AS mice (B), and in a global, homogenous pattern in late-stage AS mice (C). (E–H) Representative images and statistical summary of the increased number of CD44+ immune cells (arrows) in control and AS mice. Tissue autofluorescence is shown in orange. Note the lack of CD44+ cells in peritubular capillaries. (G) An overlay of anti-CD44–Alexa Fluor 488 (green; left inset) and anti-CD–Alexa Fluor 594 antibody labeling (red; right inset). G, glomerulus. Scale bar: 20 μm (throughout, insets represent 3-fold reduction in full frame). Data are shown as the mean ± SEM. *P < 0.05, **P < 0.01, ***P < 0.001, ****P < 0.0001, using 1-way ANOVA with Tukey’s multiple-comparison test. Data points represent the average of multiple measurements/mouse for n = 8 mice in each group.

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