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Salidroside analogue C-30 promotes neovascularization in diabetic hindlimb ischemic mice by inducing macrophage M2
Jiahao Wang1, Lei Zhang1, Wei Duan1
1Key Laboratory of Biorheological Science and Technology, Ministry of Education, College of Bioengineering, Chongqing University, Chongqing 400044, China; The 111 Project Laboratory of Biomechanics and Tissue Repair, College of Bioengineering, Chongqing University, Chongqing 400044, China.
Abstract:
Hindlimb ischemia (HLI) is a disease caused by the obstruction of blood vessels, and is a major complication of diabetes. Therapeutic angiogenesis, which aims to promote angiogenesis and blood perfusion recovery, is a potential therapeutic strategy for HLI. However, hyperglycemia systematically impairs intrinsic angiogenesis potential, including macrophage polarization from M1 to M2, thereby impeding efficient therapeutic angiogenesis. Salidroside-derived glycoside analogue C-30 (C20H24O7), which was synthesized in our previous study, has markedly enhanced the therapeutic angiogenesis potential in diabetic HLI mice; however, the underlying molecular mechanism remains unknown, and whether it could induce macrophage M2 polarization under hyperglycemia remains unclear. Herein, we revealed that C-30 could significantly promote macrophage M2 polarization under hyperglycemia. Through transcriptomic analysis and validation at cellular level, we revealed that C-30 could suppress hyperglycemia-induced NF-κB signaling pathway activation in macrophages, thereby enhancing oxidative phosphorylation, and eventually, M2 polarization. This in turn facilitates macrophage-blood vessel-forming cells crosstalk and augments angiogenic potential under hyperglycemia. Importantly, intramuscular administration of the NF-κB activator CU-T12-9 abolished C-30-mediated upregulation of macrophage polarization and homeostasis, and eventually, angiogenesis in diabetic HLI mice. Together, these findings clearly show that C-30 could enhance neovascularization and functional blood vessel formation by inducing macrophage M2 polarization in diabetic hindlimb ischemia mice. This study highlights the potential of intramuscularly injected salidroside-derived glycoside analogue in treating diabetic HLI by targeting macrophage M2 polarization.

