The single-cell transcriptomic landscape of early human diabetic nephropathy

Parker C. Wilson(Washington University in St. Louis), Hao Wu(Washington University in St. Louis), Yuhei Kirita(Washington University in St. Louis), Kohei Uchimura(Washington University in St. Louis), Nicolas Ledru(Washington University in St. Louis), Helmut G. Rennke(Brigham and Women's Hospital), Paul A. Welling(University of Maryland, Baltimore), Sushrut S. Waikar(Brigham and Women's Hospital), Benjamin D. Humphreys(Washington University in St. Louis)
Proceedings of the National Academy of Sciences
September 10, 2019
Cited by 538Open Access
Full Text

Abstract

Diabetic nephropathy is characterized by damage to both the glomerulus and tubulointerstitium, but relatively little is known about accompanying cell-specific changes in gene expression. We performed unbiased single-nucleus RNA sequencing (snRNA-seq) on cryopreserved human diabetic kidney samples to generate 23,980 single-nucleus transcriptomes from 3 control and 3 early diabetic nephropathy samples. All major cell types of the kidney were represented in the final dataset. Side-by-side comparison demonstrated cell-type–specific changes in gene expression that are important for ion transport, angiogenesis, and immune cell activation. In particular, we show that the diabetic thick ascending limb, late distal convoluted tubule, and principal cells all adopt a gene expression signature consistent with increased potassium secretion, including alterations in Na + /K + -ATPase, WNK1 , mineralocorticoid receptor, and NEDD4L expression, as well as decreased paracellular calcium and magnesium reabsorption. We also identify strong angiogenic signatures in glomerular cell types, proximal convoluted tubule, distal convoluted tubule, and principal cells. Taken together, these results suggest that increased potassium secretion and angiogenic signaling represent early kidney responses in human diabetic nephropathy.


Related Papers

No related papers found

Powered by citation graph analysis