Overproduction of inter-α-trypsin inhibitor heavy chain 1 after loss of Gα<sub>13</sub> in liver exacerbates systemic insulin resistance in mice.

Kim, Tae Hyun; Koo, Ja Hyun; Heo, Mi Jeong; Han, Chang Yeob; Kim, Yong-In; Park, Shi-Young; Cho, Il Je; Lee, Chang Ho et al. · Sci Transl Med · 2019

basic_science · Level V

Where this comes from

Abstract

The impact of liver disease on whole-body glucose homeostasis is largely attributed to dysregulated release of secretory proteins in response to metabolic stress. The molecular cues linking liver to whole-body glucose metabolism remain elusive. We found that expression of G protein α-13 (Gα<sub>13</sub>) was decreased in the liver of mice and humans with diabetes. Liver-specific deletion of the <i>Gna13</i> gene in mice resulted in systemic glucose intolerance. Comparative secretome analysis identified inter-α-trypsin inhibitor heavy chain 1 (ITIH1) as a protein secreted by liver that was responsible for systemic insulin resistance in <i>Gna13-</i>deficient mice. Liver expression of ITIH1 positively correlated with surrogate markers for diabetes in patients with impaired glucose tolerance or overt diabetes. Mechanistically, a decrease in hepatic Gα<sub>13</sub> caused ITIH1 oversecretion by liver through induction of <i>O</i>-GlcNAc transferase expression, facilitating ITIH1 deposition on the hyaluronan surrounding mouse adipose tissue and skeletal muscle. Neutralization of secreted ITIH1 ameliorated glucose intolerance in obese mice. Our findings demonstrate systemic insulin resistance in mice resulting from liver-secreted ITIH1 downstream of Gα<sub>13</sub> and its reversal by ITIH1 neutralization.

Medical subject headings