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Updated: Oct 26, 2025

Preclinical Model of Hind Limb Ischemia in Diabetic Rabbits
Published on: June 2, 2019
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.
Objective:
Critical limb ischemia is a major complication of diabetes characterized by insufficient collateral vessel development and proper growth factor signaling unresponsiveness. Although mainly deactivated by hypoxia, phosphatases are important players in the deregulation of proangiogenetic pathways. Previously, SHP-1 (Scr homology 2-containing phosphatase-1) was found to be associated with the downregulation of growth factor actions in the diabetic muscle. Thus, we aimed to gain further understanding of the impact of SHP-1 on smooth muscle cell (SMC) function under hypoxic and diabetic conditions.
Approach And Results:
Despite being inactivated under hypoxic conditions, high glucose level exposure sustained SHP-1 phosphatase activity in SMC and increased its interaction with PDGFR (platelet-derived growth factor receptor)-β, thus reducing PDGF proangiogenic actions. Overexpression of an inactive form of SHP-1 fully restored PDGF-induced proliferation, migration, and signaling pathways in SMC exposed to high glucose and hypoxia. Nondiabetic and diabetic mice with deletion of SHP-1 specifically in SMC were generated. Ligation of the femoral artery was performed, and blood flow was measured for 4 weeks. Blood flow reperfusion, vascular density and maturation, and limb survival were all improved while vascular apoptosis was attenuated in diabetic SMC-specific SHP-1 null mice as compared to diabetic mice.
Conclusions:
Diabetes and high glucose level exposure maintained SHP-1 activity preventing hypoxia-induced PDGF actions in SMC. Specific deletion of SHP-1 in SMC partially restored blood flow reperfusion in the diabetic ischemic limb. Therefore, local modulation of SHP-1 activity in SMC could represent a potential therapeutic avenue to improve the proangiogenic properties of SMC under ischemia and diabetes.
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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