Ammonia transporter RhBG initiates downstream signaling and functional responses by activating NFκB

Author:

Mishra Saurabh1,Welch Nicole12,Singh Shashi Shekhar1,Singh Khuraijam Dhanachandra3ORCID,Bellar Annette1,Kumar Avinash1,Deutz Lars N.1,Hanlon Maxmillian D.1,Kant Sashi1,Dastidar Sumitava4,Patel Hailee5,Agrawal Vandana1,Attaway Amy H.16,Musich Ryan1,Stark George R.7ORCID,Tedesco Francesco Saverio4,Truskey George A.5ORCID,Weiner I. David89,Karnik Sadashiva S.3,Dasarathy Srinivasan12ORCID

Affiliation:

1. Department of Inflammation and Immunity, Lerner Research Institute, Cleveland, OH 44195

2. Gastroenterology and Hepatology, Lerner Research Institute, Cleveland, OH 44195

3. Cardiovascular and Metabolic Diseases, Lerner Research Institute, Cleveland, OH 44195

4. Department of Cell and Developmental Biology, University College London & The Francis Crick Institute, London WC1E6DE, UK

5. Duke Biomedical Engineering, Duke University, Durham, NC 27708

6. Pulmonary Medicine, Lerner Research Institute, Cleveland, OH 44195

7. Cancer Biology, Lerner Research Institute, Cleveland, OH 44195

8. Division of Nephrology Hypertension, and Renal Transplantation, University of Florida, Gainesville, FL 32610

9. Nephrology and Hypertension Section, Gainesville, FL 32610

Abstract

Transceptors, solute transporters that facilitate intracellular entry of molecules and also initiate intracellular signaling events, have been primarily studied in lower-order species. Ammonia, a cytotoxic endogenous metabolite, is converted to urea in hepatocytes for urinary excretion in mammals. During hyperammonemia, when hepatic metabolism is impaired, nonureagenic ammonia disposal occurs primarily in skeletal muscle. Increased ammonia uptake in skeletal muscle is mediated by a membrane-bound, 12 transmembrane domain solute transporter, Rhesus blood group-associated B glycoprotein (RhBG). We show that in addition to its transport function, RhBG interacts with myeloid differentiation primary response-88 (MyD88) to initiate an intracellular signaling cascade that culminates in activation of NFκB. We also show that ammonia-induced MyD88 signaling is independent of the canonical toll-like receptor-initiated mechanism of MyD88-dependent NFκB activation. In silico, in vitro, and in situ experiments show that the conserved cytosolic J-domain of the RhBG protein interacts with the Toll-interleukin-1 receptor (TIR) domain of MyD88. In skeletal muscle from human patients, human-induced pluripotent stem cell-derived myotubes, and myobundles show an interaction of RhBG–MyD88 during hyperammonemia. Using complementary experimental and multiomics analyses in murine myotubes and mice with muscle-specific RhBG or MyD88 deletion, we show that the RhBG–MyD88 interaction is essential for the activation of NFkB but not ammonia transport. Our studies show a paradigm of substrate-dependent regulation of transceptor function with the potential for modulation of cellular responses in mammalian systems by decoupling transport and signaling functions of transceptors.

Funder

HHS | NIH | National Institute of Diabetes and Digestive and Kidney Diseases

HHS | NIH | National Institute on Alcohol Abuse and Alcoholism

Publisher

Proceedings of the National Academy of Sciences

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