The chromatin landscape of healthy and injured cell types in the human kidney

Author:

Gisch Debora L.,Brennan Michelle,Lake Blue B.,Basta Jeannine,Keller Mark,Ferreira Ricardo Melo,Akilesh Shreeram,Ghag Reetika,Lu Charles,Cheng Ying-Hua,Collins Kimberly S.,Parikh Samir V.,Rovin Brad H.,Robbins Lynn,Conklin Kimberly Y.,Diep Dinh,Zhang Bo,Knoten Amanda,Barwinska Daria,Asghari Mahla,Sabo Angela R.,Ferkowicz Michael J.,Sutton Timothy A,Kelly Katherine J,Boer Ian H. De,Rosas Sylvia E.,Kiryluk Krzysztof,Hodgin Jeffrey B.,Alakwaa Fadhl,Jefferson Nichole,Gaut Joseph P.,Gehlenborg NilsORCID,Phillips Carrie L.,El-Achkar Tarek M.,Dagher Pierre C.,Hato Takashi,Zhang Kun,Himmelfarb Jonathan,Kretzler Matthias,Mollah ShamimORCID,Jain SanjayORCID,Rauchman Michael,Eadon Michael T.,

Abstract

AbstractThere is a need to define regions of gene activation or repression that control human kidney cells in states of health, injury, and repair to understand the molecular pathogenesis of kidney disease and design therapeutic strategies. However, comprehensive integration of gene expression with epigenetic features that define regulatory elements remains a significant challenge. We measured dual single nucleus RNA expression and chromatin accessibility, DNA methylation, and H3K27ac, H3K4me1, H3K4me3, and H3K27me3 histone modifications to decipher the chromatin landscape and gene regulation of the kidney in reference and adaptive injury states. We established a comprehensive and spatially-anchored epigenomic atlas to define the kidney’s active, silent, and regulatory accessible chromatin regions across the genome. Using this atlas, we noted distinct control of adaptive injury in different epithelial cell types. A proximal tubule cell transcription factor network ofELF3,KLF6, andKLF10regulated the transition between health and injury, while in thick ascending limb cells this transition was regulated byNR2F1. Further, combined perturbation ofELF3,KLF6, andKLF10distinguished two adaptive proximal tubular cell subtypes, one of which manifested a repair trajectory after knockout. This atlas will serve as a foundation to facilitate targeted cell-specific therapeutics by reprogramming gene regulatory networks.

Publisher

Cold Spring Harbor Laboratory

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