Exogenous PP2A inhibitor exacerbates the progression of nonalcoholic fatty liver disease via NOX2-dependent activation of miR21

Author:

Albadrani Muayad12,Seth Ratanesh K.1,Sarkar Sutapa1,Kimono Diana1,Mondal Ayan1,Bose Dipro1,Porter Dwayne E.3,Scott Geoff I.3,Brooks Bryan4,Raychoudhury Samir5,Nagarkatti Mitzi6,Nagarkatti Prakash6,Jule Yvon7,Diehl Anna Mae8,Chatterjee Saurabh1

Affiliation:

1. Environmental Health and Disease Laboratory, Department of Environmental Health Sciences, Arnold School of Public Health, University of South Carolina, Columbia, South Carolina

2. Department of Family and Community Medicine, College of Medicine, Taibah University, Madinah, Saudi Arabia

3. Center for Oceans and Human Health on Climate Change Interactions, Department of Environmental Health Sciences, University of South Carolina, Columbia, South Carolina

4. Department of Environmental Science, Baylor University, Waco, Texas

5. Departments of Biology, Chemistry, and Environmental Health Science, Benedict College, Columbia, South Carolina

6. Department of Pathology, Microbiology and Immunology, University of South Carolina School of Medicine, Columbia, South Carolina

7. Biocellvia, Marseille, France

8. Division of Gastroenterology, Duke University, Durham, North Carolina

Abstract

Nonalcoholic fatty liver disease (NAFLD) is an emerging global pandemic. Though significant progress has been made in unraveling the pathophysiology of the disease, the role of protein phosphatase 2A (PP2A) and its subsequent inhibition by environmental and genetic factors in NAFLD pathophysiology remains unclear. The present report tests the hypothesis that an exogenous PP2A inhibitor leads to hepatic inflammation and fibrogenesis via an NADPH oxidase 2 (NOX2)-dependent pathway in NAFLD. Results showed that microcystin (MC) administration, a potent PP2A inhibitor found in environmental exposure, led to an exacerbation of NAFLD pathology with increased CD68 immunoreactivity, the release of proinflammatory cytokines, and stellate cell activation, a process that was attenuated in mice that lacked the p47phox gene and miR21 knockout mice. Mechanistically, leptin-primed immortalized Kupffer cells (a mimicked model for an NAFLD condition) treated with apocynin or nitrone spin trap 5,5 dimethyl-1- pyrroline N-oxide (DMPO) had significantly decreased CD68 and decreased miR21 and α-smooth muscle actin levels, suggesting the role of NOX2-dependent reactive oxygen species in miR21-induced Kupffer cell activation and stellate cell pathology. Furthermore, NOX2-dependent peroxynitrite generation was primarily responsible for cellular events observed following MC exposure since incubation with phenylboronic acid attenuated miR21 levels, Kupffer cell activation, and inflammatory cytokine release. Furthermore, blocking of the AKT pathway attenuated PP2A inhibitor-induced NOX2 activation and miR21 upregulation. Taken together, we show that PP2A may have protective roles, and its inhibition exacerbates NAFLD pathology via activating NOX2-dependent peroxynitrite generation, thus increasing miR21-induced pathology. NEW & NOTEWORTHY Protein phosphatase 2A inhibition causes nonalcoholic steatohepatitis (NASH) progression via NADPH oxidase 2. In addition to a novel emchanism of action, we describe a new tool to describe NASH histopathology.

Funder

HHS | NIH | National Center for Complementary and Alternative Medicine

HHS | NIH | National Institute of Environmental Health Sciences

HHS | NIH | National Institute of General Medical Sciences

Publisher

American Physiological Society

Subject

Physiology (medical),Gastroenterology,Hepatology,Physiology

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