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Perea-Atienzar, M.

Publications and source records attributed to Perea-Atienzar, M..

2 recordsLinked to original sources

Sodium tungstate promotes vascularization to support beta bell replacement in diabetes

Insufficient vascularization remains a major obstacle to the success of cell-based therapies for diabetes. Building on prior findings that loss of the phosphatase PTP1B enhances VEGFA production and improves graft vascularization, we investigated sodium tungstate (NaW), a pharmacological phosphatase inhibitor, as a strategy to improve transplantation outcomes. Using human fibroblast-derived insulin-producing cells and human stem cell-derived islets transplanted into the anterior chamber of the eye in immunodeficient mice, we show that NaW treatment significantly increases both vascularized area and insulin-positive tissue area, while reducing apoptosis within transplanted cells. Mechanistically, NaW upregulates VEGFA expression in transplanted cells and amplifies VEGFA-induced endothelial cell proliferation, migration, and tubulogenesis via MAPK/ERK signalling. These dual effects, which encompass stimulating both endocrine and endothelial compartments, lead to enhanced integration and function of transplanted cells. Importantly, the pro-angiogenic effects of NaW occur independently of exogenous endothelial cell supplementation, relying solely on the hosts endogenous endothelial cells. These findings position NaW, and potentially other phosphatase inhibitors, as promising adjuncts to improve vascularization, survival, and therapeutic efficacy in clinical cell-based transplantation protocols for diabetes. One-sentence summaryProangiogenic role of sodium tungstate in transplantation

physiology↗

Uncovering the function of Wisp1 in whole-body glucose homeostasis: insights from Wisp1 knockout mice

WNT1-inducible signaling pathway protein 1 (Wisp1/CCN4) is a matricellular protein implicated in inflammation and metabolic dysfunction in obesity, yet its role in whole-body glucose metabolism remains unclear. In this study, Wisp1 knockout (KO) mice were analysed under physiological and high-fat (HF) diet conditions to define its impact on metabolic regulation. Neither physiological nor HF diet conditions revealed an effect of Wisp1 deficiency on whole-body glucose tolerance. However, male KO mice on a HF diet exhibited enhanced insulin sensitivity, lower insulin levels, and a marked reduction in adipose tissue inflammation, as evidenced by diminished macrophage infiltration and decreased pro-inflammatory cytokine expression in visceral fat. Additionally, beta cell mass expansion was attenuated in KO mice under HF diet, aligning with lower macrophage infiltration in islets. These findings suggest that improved insulin sensitivity in KO mice occurs independently of changes in glucose tolerance, likely due to mitigated adipose tissue inflammation. Thus, Wisp1 primarily modulates local adipose inflammatory responses, indirectly affecting islet adaptation to metabolic stress, rather than serving as a direct regulator of systemic glucose homeostasis.

physiology↗