AI Article Synopsis

  • Regulation of glucose transport into muscle and fat cells is crucial for overall metabolism, primarily influenced by the presence of the GLUT4 transporter on the plasma membrane.
  • AMP-activated kinase (AMPK) plays a significant role in promoting GLUT4 relocation to the membrane by managing both its exocytosis and endocytosis, similar to insulin's action in fat cells.
  • Advanced mapping techniques reveal that GLUT4 exists in a dynamic equilibrium within muscle cells, shedding light on pathways that could be targeted for therapies to enhance glucose uptake in muscle tissues.

Article Abstract

Regulation of glucose transport into muscle and adipocytes, central for control of whole-body metabolism, is determined by the amount of GLUT4 glucose transporter in the plasma membrane ( ). Physiologic signals (activated insulin receptor or AMP kinase [ ]), acutely increase PM GLUT4 to enhance glucose uptake. Here we show in kinetic studies that intracellular GLUT4 is in equilibrium with the PM in unstimulated cultured human skeletal muscle cells, and that AMPK promotes GLUT4 redistribution to the PM by regulating both exocytosis and endocytosis. AMPK-stimulation of exocytosis requires Rab10 and Rab GTPase activating protein TBC1D4, requirements shared with insulin control of GLUT4 in adipocytes. Using APEX2 proximity mapping, we identify, at high-density and high-resolution, the GLUT4 proximal proteome, revealing GLUT4 traverses both PM proximal and distal compartments in unstimulated muscle cells. These data support intracellular retention of GLUT4 in unstimulated muscle cells by a dynamic mechanism dependent on the rates of internalization and recycling. AMPK promoted GLUT4 translocation to the PM involves redistribution of GLUT4 among the same compartments traversed in unstimulated cells, with a significant redistribution of GLUT4 from the PM distal Trans Golgi Network Golgi compartments. The comprehensive proximal protein mapping provides an integrated, whole cell accounting of GLUT4's localization at a resolution of ∼20 nm, a structural framework for understanding the molecular mechanisms regulating GLUT4 trafficking downstream of different signaling inputs in physiologically relevant cell type and as such, sheds new light on novel key pathways and molecular components as potential therapeutic approaches to modulate muscle glucose uptake.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC10274730PMC
http://dx.doi.org/10.1101/2023.06.06.543897DOI Listing

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