Regulated dynamic subcellular GLUT4 localization revealed by proximal proteome mapping in human muscle cells

Author:

Ray Anuttoma1ORCID,Wen Jennifer1,Yammine Lucie1ORCID,Culver Jeff2ORCID,Parida Isabella Supardi1,Garren Jeonifer3,Xue Liang4,Hales Katherine2,Xiang Qing5,Birnbaum Morris J.2ORCID,Zhang Bei B.2,Monetti Mara2,McGraw Timothy E.16ORCID

Affiliation:

1. Weill Cornell Medicine 1 Department of Biochemistry , , New York, NY 10021 , USA

2. , Pfizer Worldwide Research, Development and Medical 2 Internal Medicine Research Unit , Cambridge, MA 02139 , USA

3. , Global Product Development, Pfizer Inc. 3 Global Biometrics and Data Management , Cambridge, MA 02139 , USA

4. , Pfizer Worldwide Research, Development and Medical 4 Early Clinical Development Biomedicine AI , Cambridge, MA 02139 , USA

5. Target Sciences, Pfizer Inc. 5 , New York, NY 10016 , USA

6. Weill Cornell Medicine 6 Department of Cardiothoracic Surgery , , New York, NY 10021 , USA

Abstract

ABSTRACT Regulation of glucose transport, which is central for control of whole-body metabolism, is determined by the amount of GLUT4 glucose transporter (also known as SLC2A4) in the plasma membrane (PM) of fat and muscle cells. Physiologic signals [such as activated insulin receptor or AMP-activated protein kinase (AMPK)] increase PM GLUT4. Here, we show that the distribution of GLUT4 between the PM and interior of human muscle cells is dynamically maintained, and that AMPK promotes PM redistribution of GLUT4 by regulating exocytosis and endocytosis. Stimulation of exocytosis by AMPK is mediated by Rab10 and the Rab GTPase-activating protein TBC1D4. APEX2 proximity mapping reveals that GLUT4 traverses both PM-proximal and PM-distal compartments in unstimulated muscle cells, further supporting retention of GLUT4 by a constitutive retrieval mechanism. AMPK-stimulated translocation involves GLUT4 redistribution among the same compartments traversed in unstimulated cells, with a significant recruitment of GLUT4 from the Golgi and trans-Golgi network compartments. Our comprehensive proximal protein mapping provides an integrated, high-density, whole-cell accounting of the localization of GLUT4 at a resolution of ∼20 nm that serves as a structural framework for understanding the molecular mechanisms regulating GLUT4 trafficking downstream of different signaling inputs in a physiologically relevant cell type.

Funder

National Institutes of Health

Pfizer

Publisher

The Company of Biologists

Subject

Cell Biology

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1. First person – Anuttoma Ray;Journal of Cell Science;2023-12-01

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