胰蛋白酶和弹性蛋白酶消化技术在分离小鼠视网膜血管方面的比较评估。

IF 2.9 4区 医学 Q2 PERIPHERAL VASCULAR DISEASE
Anamika Sharma, Dhiraj Kumar Gupta, Shivantika Bisen, Nikhlesh K. Singh
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引用次数: 0

摘要

周细胞功能失调以及粘附或紧密连接的破坏与包括糖尿病视网膜病变在内的许多微血管疾病有关。在这种情况下,视网膜血管结构的可视化对于了解视网膜血管疾病的病理生理学至关重要。虽然平板装片能显示视网膜血管,但往往无法清晰观察微动脉瘤和毛细血管结构。胰蛋白酶和弹性蛋白酶消化是在大鼠、小鼠和其他动物模型中分离视网膜血管的两种技术。本研究的观察结果表明,胰蛋白酶消化会影响周细胞和内皮细胞之间的联系。相比之下,弹性蛋白酶消化则有效地保留了血管中的这些特征。此外,胰蛋白酶消化会破坏内皮粘连和紧密连接,而弹性蛋白酶消化不会。因此,弹性蛋白酶消化是一种分离视网膜血管的卓越技术,可用于收集可靠、一致的数据,以了解涉及微血管结构的疾病的病理生理学。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Comparative evaluation of trypsin and elastase digestion techniques for isolation of murine retinal vasculature

Dysfunctional pericytes and disruption of adherens or tight junctions are related to many microvascular diseases, including diabetic retinopathy. In this context, visualizing retinal vascular architecture becomes essential for understanding retinal vascular disease pathophysiology. Although flat mounts provide a demonstration of the retinal blood vasculature, they often lack a clear view of microaneurysms and capillary architecture. Trypsin and elastase digestion are the two techniques for isolating retinal vasculatures in rats, mice, and other animal models. Our observations in the present study reveal that trypsin digestion impacts the association between pericytes and endothelial cells. In contrast, elastase digestion effectively preserves these features in the blood vessels. Furthermore, trypsin digestion disrupts endothelial adherens and tight junctions that elastase digestion does not. Therefore, elastase digestion emerges as a superior technique for isolating retinal vessels, which can be utilized to collect reliable and consistent data to comprehend the pathophysiology of disorders involving microvascular structures.

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来源期刊
Microvascular research
Microvascular research 医学-外周血管病
CiteScore
6.00
自引率
3.20%
发文量
158
审稿时长
43 days
期刊介绍: Microvascular Research is dedicated to the dissemination of fundamental information related to the microvascular field. Full-length articles presenting the results of original research and brief communications are featured. Research Areas include: • Angiogenesis • Biochemistry • Bioengineering • Biomathematics • Biophysics • Cancer • Circulatory homeostasis • Comparative physiology • Drug delivery • Neuropharmacology • Microvascular pathology • Rheology • Tissue Engineering.
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