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一种糖胺聚糖硫酸化小分子调节剂的发现。

Discovery of a Small-Molecule Modulator of Glycosaminoglycan Sulfation.

作者信息

Cheung Sheldon T, Miller Michelle S, Pacoma Reynand, Roland Jason, Liu Jian, Schumacher Andrew M, Hsieh-Wilson Linda C

机构信息

Division of Chemistry and Chemical Engineering, California Institute of Technology , 1200 East California Boulevard, Pasadena, California 91125, United States.

Genomics Institute of the Novartis Research Foundation , 10675 John Jay Hopkins Drive, San Diego, California 92121, United States.

出版信息

ACS Chem Biol. 2017 Dec 15;12(12):3126-3133. doi: 10.1021/acschembio.7b00885. Epub 2017 Nov 29.

Abstract

Glycosaminoglycans (GAGs) play critical roles in diverse processes ranging from viral infection to neuroregeneration. Their regiospecific sulfation patterns, which are generated by sulfotransferases, are key structural determinants that underlie their biological activity. Small-molecule modulators of these sulfotransferases could serve as powerful tools for understanding the physiological functions of GAGs, as well as potential therapeutic leads for human diseases. Here, we report the development of the first cell-permeable, small-molecule inhibitor selective for GAG sulfotransferases, which was obtained using a high-throughput screen targeted against Chst15, the sulfotransferase responsible for biosynthesis of chondroitin sulfate-E (CS-E). We demonstrate that the molecule specifically inhibits GAG sulfotransferases in vitro, decreases CS-E and overall sulfation levels on cell-surface and secreted chondroitin sulfate proteoglycans (CSPGs), and reverses CSPG-mediated inhibition of axonal growth. These studies pave the way toward a new set of pharmacological tools for interrogating GAG sulfation-dependent processes and may represent a novel therapeutic approach for neuroregeneration.

摘要

糖胺聚糖(GAGs)在从病毒感染到神经再生等多种过程中发挥着关键作用。它们由硫酸转移酶产生的区域特异性硫酸化模式是其生物活性的关键结构决定因素。这些硫酸转移酶的小分子调节剂可作为理解GAGs生理功能的有力工具,以及人类疾病潜在的治疗先导物。在此,我们报告了首个对GAG硫酸转移酶具有选择性的细胞可渗透小分子抑制剂的研发情况,该抑制剂是通过针对Chst15(负责硫酸软骨素-E(CS-E)生物合成的硫酸转移酶)进行高通量筛选获得的。我们证明该分子在体外特异性抑制GAG硫酸转移酶,降低细胞表面和分泌的硫酸软骨素蛋白聚糖(CSPGs)上的CS-E及总体硫酸化水平,并逆转CSPG介导的轴突生长抑制。这些研究为探究GAG硫酸化依赖性过程的一系列新的药理学工具铺平了道路,并且可能代表了一种神经再生的新型治疗方法。

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