Kim Eun J, Amorelli Benjamin, Abdo Mohannad, Thomas Craig J, Love Dona C, Knapp Spencer, Hanover John A
Laboratory of Cell Biochemistry and Biology, NIDDK, National Institute of Health, Bethesda, Maryland 20892, USA.
J Am Chem Soc. 2007 Dec 5;129(48):14854-5. doi: 10.1021/ja076038u. Epub 2007 Nov 10.
O-GlcNAcase (OGA) promotes O-GlcNAc removal, and thereby plays a key role in O-GlcNAc metabolism, a feature of a variety of vital cellular processes. Two splice transcripts of human OGA encode "long OGA", which contains a distinct N-terminal O-GlcNAcase domain and a C-terminal histoneacetylferase (HAT) domain, and "short OGA", which lacks the HAT domain. The functional roles of long OGA are only beginning to be unraveled, and the characteristics of short OGA remain almost unknown. We find that short OGA, which possesses O-GlcNAcase catalysis machinery like that of long OGA, exhibits comparative resistance to previously described potent inhibitors of long OGA and lysosomal hexosaminidases, including PUGNAc and NAG-thiazoline, suggesting a role for the HAT domain in O-GlcNAcase catalysis. We also find that alpha-GlcNAc thiolsulfonate (2) is the most potent inhibitor of short OGA yet described (Ki = 10 microM), and exhibits some degree of selectivity versus long OGA and lysosomal hexosaminidases. In contrast to its mode of inhibition of short OGA, 2 acts as a irreversible inhibitor of long OGA by covalently modifying the enzyme as an S-GlcNAc derivative. Covalent attachment of GlcNAc to the HAT domain of long OGA dramatically changes its properties with respect to enzymatic activity and caspase-3 cleavage.
O-连接的N-乙酰葡糖胺酶(OGA)促进O-连接的N-乙酰葡糖胺(O-GlcNAc)的去除,因此在O-GlcNAc代谢中起关键作用,而O-GlcNAc代谢是多种重要细胞过程的一个特征。人类OGA的两种剪接转录本编码“长OGA”,其包含一个独特的N端O-连接的N-乙酰葡糖胺酶结构域和一个C端组蛋白乙酰转移酶(HAT)结构域,以及“短OGA”,其缺乏HAT结构域。长OGA的功能作用才刚刚开始被揭示,而短OGA的特性几乎仍不为人所知。我们发现,短OGA拥有与长OGA类似的O-连接的N-乙酰葡糖胺酶催化机制,对先前描述的长OGA和溶酶体己糖胺酶的强效抑制剂(包括PUGNAc和NAG-噻唑啉)具有相对抗性,这表明HAT结构域在O-连接的N-乙酰葡糖胺酶催化中起作用。我们还发现,α-GlcNAc硫代磺酸盐(2)是迄今所描述的短OGA最有效的抑制剂(Ki = 10 μM),并且对长OGA和溶酶体己糖胺酶表现出一定程度的选择性。与它对短OGA的抑制模式不同,2通过作为S-GlcNAc衍生物共价修饰该酶而作为长OGA的不可逆抑制剂起作用。GlcNAc与长OGA的HAT结构域的共价连接极大地改变了其关于酶活性和半胱天冬酶-3切割的特性。