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Transcriptomic Analysis of a Diabetic Skin-Humanized Mouse Model Dissects Molecular Pathways Underlying the Delayed Wound Healing Response

机译:糖尿病皮肤 - 人源化小鼠模型的转录组分析剖析了延迟伤口愈合反应的分子途径

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摘要

Defective healing leading to cutaneous ulcer formation is one of the most feared complications of diabetes due to its consequences on patients’ quality of life and on the healthcare system. A more in-depth analysis of the underlying molecular pathophysiology is required to develop effective healing-promoting therapies for those patients. Major architectural and functional differences with human epidermis limit extrapolation of results coming from rodents and other small mammal-healing models. Therefore, the search for reliable humanized models has become mandatory. Previously, we developed a diabetes-induced delayed humanized wound healing model that faithfully recapitulated the major histological features of such skin repair-deficient condition. Herein, we present the results of a transcriptomic and functional enrichment analysis followed by a mechanistic analysis performed in such humanized wound healing model. The deregulation of genes implicated in functions such as angiogenesis, apoptosis, and inflammatory signaling processes were evidenced, confirming published data in diabetic patients that in fact might also underlie some of the histological features previously reported in the delayed skin-humanized healing model. Altogether, these molecular findings support the utility of such preclinical model as a valuable tool to gain insight into the molecular basis of the delayed diabetic healing with potential impact in the translational medicine field.
机译:由于对患者的生活质量和医疗保健系统的后果而导致皮肤溃疡形成的缺陷愈合是糖尿病最令人担忧的并发症之一。需要更深入地分析潜在的分子病理生理学,以便为这些患者制定有效的愈合促进疗法。具有来自啮齿动物和其他小型哺乳动物愈合模型的人体表皮的主要建筑和功能差异。因此,寻求可靠的人性化模型已成为强制性。以前,我们开发了一种糖尿病诱导的延迟人源化伤口愈合模型,忠实地概括了这种皮肤修复缺乏条件的主要组织学特征。在此,我们介绍转录组和功能性富集分析的结果,然后在这种人源化伤口愈合模型中进行机械分析。关于诸如血管生成,细胞凋亡和炎症信号传导过程的功能中致力于血管生成,细胞凋亡和炎症信号传导过程的探测,证实了糖尿病患者的公开数据实际上也可能提出了先前在延迟皮肤 - 人源化愈合模型中报道的一些组织学特征。总共,这些分子发现支持这种临床前模型的效用,作为有价值的工具,以了解延迟糖尿病愈合的分子基础,在翻译医学领域的潜在影响。

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