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PMID: 26966698 已发表 · epublish 英语

Construction of a hybrid β-hexosaminidase subunit capable of forming stable homodimers that hydrolyze GM2 ganglioside in vivo.

Tropak Michael B, Yonekawa Sayuri, Karumuthil-Melethil Subha, Thompson Patrick, Wakarchuk Warren, Gray Steven J, Walia Jagdeep S, Mark Brian L, Mahuran Don

摘要

Tay-Sachs or Sandhoff disease result from mutations in either the evolutionarily related HEXA or HEXB genes encoding respectively, the α- or β-subunits of β-hexosaminidase A (HexA). Of the three Hex isozymes, only HexA can interact with its cofactor, the GM2 activator protein (GM2AP), and hydrolyze GM2 ganglioside. A major impediment to establishing gene or enzyme replacement therapy based on HexA is the need to synthesize both subunits. Thus, we combined the critical features of both α- and β-subunits into a single hybrid µ-subunit that contains the α-subunit active site, the stable β-subunit interface and unique areas in each subunit needed to interact with GM2AP. To facilitate intracellular analysis and the purification of the µ-homodimer (HexM), CRISPR-based genome editing was used to disrupt the HEXA and HEXB genes in a Human Embryonic Kidney 293 cell line stably expressing the µ-subunit. In association with GM2AP, HexM was shown to hydrolyze a fluorescent GM2 ganglioside derivative both in cellulo and in vitro. Gene transfer studies in both Tay-Sachs and Sandhoff mouse models demonstrated that HexM expression reduced brain GM2 ganglioside levels.

文献信息
期刊
Molecular therapy. Methods & clinical development
期刊简称
Mol Ther Methods Clin Dev
发表日期
2016-03-11
收录日期
2016-03-11
更新日期
2016-03-13
语言
英语
国家/地区
United States
NLM ID
101624857
分析服务
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