An extracellular vesicular mutant KRAS‐associated protein complex promotes lung inflammation and tumor growth

Author:

Sriwastva Mukesh K.1,Teng Yun1,Mu Jingyao1,Xu Fangyi1,Kumar Anil1,Sundaram Kumaran1,Malhotra Rajiv Kumar1,Xu Qingbo1,Hood Joshua L.2ORCID,Zhang Lifeng1,Yan Jun1,Merchant Michael L.3,Park Juw Won45,Dryden Gerald W.125,Egilmez Nejat K.1,Zhang Huang‐Ge16ORCID

Affiliation:

1. Brown Cancer Center, Department of Microbiology & Immunology University of Louisville Louisville Kentucky USA

2. Department of Pharmacology and Toxicology University of Louisville Louisville Kentucky USA

3. Kidney Disease Program and Clinical Proteomics Center University of Louisville Louisville Kentucky USA

4. KBRIN Bioinformatics Core University of Louisville Louisville Kentucky USA

5. Department of Computer Engineering and Computer Science University of Louisville Louisville Kentucky USA

6. Robley Rex Veterans Affairs Medical Center Louisville Kentucky USA

Abstract

AbstractExtracellular vesicles (EVs) contain more than 100 proteins. Whether there are EVs proteins that act as an ‘organiser’ of protein networks to generate a new or different biological effect from that identified in EV‐producing cells has never been demonstrated. Here, as a proof‐of‐concept, we demonstrate that EV‐G12D‐mutant KRAS serves as a leader that forms a protein complex and promotes lung inflammation and tumour growth via the Fn1/IL‐17A/FGF21 axis. Mechanistically, in contrast to cytosol derived G12D‐mutant KRAS complex from EVs‐producing cells, EV‐G12D‐mutant KRAS interacts with a group of extracellular vesicular factors via fibronectin‐1 (Fn1), which drives the activation of the IL‐17A/FGF21 inflammation pathway in EV recipient cells. We show that: (i), depletion of EV‐Fn1 leads to a reduction of a number of inflammatory cytokines including IL‐17A; (ii) induction of IL‐17A promotes lung inflammation, which in turn leads to IL‐17A mediated induction of FGF21 in the lung; and (iii) EV‐G12D‐mutant KRAS complex mediated lung inflammation is abrogated in IL‐17 receptor KO mice. These findings establish a new concept in EV function with potential implications for novel therapeutic interventions in EV‐mediated disease processes.

Funder

National Institutes of Health

National Institute of General Medical Sciences

National Institute of Environmental Health Sciences

Publisher

Wiley

Subject

Cell Biology,Histology

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