4F2hc stabilizes GLUT1 protein and increases glucose transport activity

Author:

Ohno Haruya1,Nakatsu Yusuke1,Sakoda Hideyuki2,Kushiyama Akifumi3,Ono Hiraku2,Fujishiro Midori2,Otani Yuichiro1,Okubo Hirofumi1,Yoneda Masayasu1,Fukushima Toshiaki1,Tsuchiya Yoshihiro1,Kamata Hideaki1,Nishimura Fusanori4,Kurihara Hiroki5,Katagiri Hideki6,Oka Yoshitomo6,Asano Tomoichiro1

Affiliation:

1. Department of Medical Science, Graduate School of Medicine, University of Hiroshima, Hiroshima, Japan;

2. Department of Internal Medicine, Graduate School of Medicine, University of Tokyo, Tokyo, Japan;

3. Institute for Adult Disease, Asahi Life Foundation, Tokyo, Japan;

4. Department of Dental Science for Health Promotion, Hiroshima University Graduate School of Biomedical Sciences, Hiroshima, Japan;

5. Department of Physiological Chemistry and Metabolism, Graduate School of Medicine, University of Tokyo, Tokyo, Japan; and

6. Division of Molecular Metabolism and Diabetes, Tohoku University Graduate School of Medicine, Sendai, Japan

Abstract

Glucose transporter 1 (GLUT1) is widely distributed throughout various tissues and contributes to insulin-independent basal glucose uptake. Using a split-ubiquitin membrane yeast two-hybrid system, we newly identified 4F2 heavy chain (4F2hc) as a membrane protein interacting with GLUT1. Though 4F2hc reportedly forms heterodimeric complexes between amino acid transporters, such as LAT1 and LAT2, and regulates amino acid uptake, we investigated the effects of 4F2hc on GLUT1 expression and the associated glucose uptake. First, FLAG-tagged 4F2hc and hemagglutinin-tagged GLUT1 were overexpressed in human embryonic kidney 293 cells and their association was confirmed by coimmunoprecipitation. The green fluorescent protein-tagged 4F2hc and DsRed-tagged GLUT1 showed significant, but incomplete, colocalization at the plasma membrane. In addition, an endogenous association between GLUT1 and 4F2hc was demonstrated using mouse brain tissue and HeLa cells. Interestingly, overexpression of 4F2hc increased the amount of GLUT1 protein in HeLa and HepG2 cells with increased glucose uptake. In contrast, small interfering RNA (siRNA)-mediated 4F2hc gene suppression markedly reduced GLUT1 protein in both cell types, with reduced glucose uptake. While GLUT1 mRNA levels were not affected by overexpression or gene silencing of 4F2hc, GLUT1 degradation after the addition of cycloheximide was significantly suppressed by 4F2hc overexpression and increased by 4F2hc siRNA treatment. Taken together, these observations indicate that 4F2hc is likely to be involved in GLUT1 stabilization and to contribute to the regulation of not only amino acid but also glucose metabolism.

Publisher

American Physiological Society

Subject

Cell Biology,Physiology

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