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解锁海藻糖的多功能性:从生物合成到治疗应用的全面探索。

Unlocking Trehalose's versatility: A comprehensive Journey from biosynthesis to therapeutic applications.

机构信息

Department of Biochemistry, Panjab University, Chandigarh, 160014, India.

出版信息

Exp Cell Res. 2024 Oct 1;442(2):114250. doi: 10.1016/j.yexcr.2024.114250. Epub 2024 Sep 10.

Abstract

For over forty years, a sugar of rare configuration known as trehalose (two molecules of glucose linked at their 1-carbons), has been recognised for more than just its roles as a storage compound. The ability of trehalose to protect an extensive range of biological materials, for instance cell lines, tissues, proteins and DNA, has sparked considerable interest in the biotechnology and pharmaceutical industries. Currently, trehalose is now being investigated as a promising therapeutic candidate for human use, as it has shown potential to reduce disease severity in various experimental models. Despite its diverse biological effects, the precise mechanism underlying this observation remain unclear. Therefore, this review delves into the significance of trehalose biosynthesis pathway in the development of novel drug, investigates the inhibitors of trehalose synthesis and evaluates the binding efficiency of T6P with TPS1. Additionally, it also emphasizes the knowledge about the protective effect of trehalose on modulation of autophagy, combating viral infections, addressing the conditions like cancer and neurodegenerative diseases based on the recent advancement. Furthermore, review also highlight the trehalose's emerging role as a surfactant in delivering monoclonal antibodies that will further broadening its potential application in biomedicines.

摘要

四十多年来,一种罕见构型的糖——海藻糖(两个葡萄糖分子在 1 位碳原子上连接),不仅因其作为储存化合物的作用而受到关注。海藻糖能够保护广泛的生物材料,例如细胞系、组织、蛋白质和 DNA,这在生物技术和制药行业引起了相当大的兴趣。目前,海藻糖作为一种有前途的人类治疗候选药物正在被研究,因为它已显示出在各种实验模型中降低疾病严重程度的潜力。尽管具有多种生物学效应,但这种观察结果的确切机制尚不清楚。因此,本综述深入探讨了海藻糖生物合成途径在新型药物开发中的重要性,研究了海藻糖合成抑制剂,并评估了 T6P 与 TPS1 的结合效率。此外,还强调了基于最新进展,海藻糖在调节自噬、对抗病毒感染、解决癌症和神经退行性疾病等方面的保护作用的知识。此外,该综述还强调了海藻糖作为单克隆抗体递送表面活性剂的新兴作用,这将进一步拓宽其在生物医学中的潜在应用。

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