The orchestrated cellular and molecular responses of the kidney to endotoxin define a precise sepsis timeline

Author:

Janosevic Danielle1ORCID,Myslinski Jered1,McCarthy Thomas W1ORCID,Zollman Amy1,Syed Farooq2ORCID,Xuei Xiaoling3,Gao Hongyu3,Liu Yun-Long3,Collins Kimberly S1,Cheng Ying-Hua1,Winfree Seth1,El-Achkar Tarek M14,Maier Bernhard1ORCID,Melo Ferreira Ricardo1ORCID,Eadon Michael T1,Hato Takashi1ORCID,Dagher Pierre C14

Affiliation:

1. Department of Medicine, Indiana University School of Medicine, Indianapolis, United States

2. Department of Pediatrics and the Herman B. Wells Center, Indiana University School of Medicine, Indianapolis, United States

3. Department of Medical and Molecular Genetics, Indiana University School of Medicine, Indianapolis, United States

4. Roudebush Indianapolis Veterans Affairs Medical Center, Indianapolis, United States

Abstract

Sepsis is a dynamic state that progresses at variable rates and has life-threatening consequences. Staging patients along the sepsis timeline requires a thorough knowledge of the evolution of cellular and molecular events at the tissue level. Here, we investigated the kidney, an organ central to the pathophysiology of sepsis. Single-cell RNA-sequencing in a murine endotoxemia model revealed the involvement of various cell populations to be temporally organized and highly orchestrated. Endothelial and stromal cells were the first responders. At later time points, epithelial cells upregulated immune-related pathways while concomitantly downregulating physiological functions such as solute homeostasis. Sixteen hours after endotoxin, there was global cell–cell communication failure and organ shutdown. Despite this apparent organ paralysis, upstream regulatory analysis showed significant activity in pathways involved in healing and recovery. This rigorous spatial and temporal definition of murine endotoxemia will uncover precise biomarkers and targets that can help stage and treat human sepsis.

Funder

NIH Office of the Director

U.S. Department of Veterans Affairs

Indiana Clinical and Translational Sciences Institute

Publisher

eLife Sciences Publications, Ltd

Subject

General Immunology and Microbiology,General Biochemistry, Genetics and Molecular Biology,General Medicine,General Neuroscience

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