Diabetes Impaired Ischemia-Induced PDGF (Platelet-Derived Growth Factor) Signaling Actions and Vessel Formation

Clément Mercier1, Tristan Brazeau1, Jérémy Lamoureux1

  • 1Research Center of the Centre Hospitalier Universitaire de Sherbrooke (C.M., T.B., J.L., E.B., S.R., V.B., M.P., A.G., F.L., P.G.), Université de Sherbrooke, Québec, Canada.

Abstract

Insights

Scr homology 2-containing phosphatase-1 (SHP-1) activity in smooth muscle cells (SMC) impairs blood flow recovery in diabetic limb ischemia. Deleting SHP-1 in SMC improved vascularization and limb survival in diabetic mice, suggesting SHP-1 as a therapeutic target.

Area of Science:

  • Vascular biology
  • Diabetic complications
  • Molecular signaling

Background:

  • Critical limb ischemia (CLI) in diabetes involves impaired collateral vessel growth and growth factor unresponsiveness.
  • Phosphatases, like SHP-1 (Scr homology 2-containing phosphatase-1), can disrupt proangiogenic pathways, especially under diabetic conditions.
  • SHP-1 has been implicated in downregulating growth factor signaling in diabetic muscle.

Purpose of the Study:

  • To investigate the role of SHP-1 in smooth muscle cell (SMC) function under diabetic and hypoxic conditions.
  • To understand how SHP-1 impacts proangiogenic signaling pathways relevant to limb ischemia.

Main Methods:

  • Assessed SHP-1 activity and its interaction with platelet-derived growth factor receptor-β (PDGFR-β) in SMC under high glucose and hypoxia.
  • Utilized overexpression of inactive SHP-1 to evaluate its effect on PDGF-induced SMC responses.
  • Generated and studied diabetic mice with SMC-specific SHP-1 deletion, assessing femoral artery ligation and reperfusion outcomes.

Main Results:

  • High glucose sustained SHP-1 activity in SMC, inhibiting PDGF-mediated proangiogenic actions.
  • Overexpression of inactive SHP-1 rescued PDGF-induced SMC proliferation, migration, and signaling.
  • SMC-specific SHP-1 deletion in diabetic mice improved limb blood flow, vascular density, and limb survival while reducing apoptosis.

Conclusions:

  • SHP-1 activity, maintained by high glucose, counteracts hypoxia-induced PDGF actions in SMC.
  • Targeting SHP-1 in SMC offers a potential therapeutic strategy for improving vascular repair in diabetic ischemic limbs.

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