a Department of Biochemistry and Molecular Biology , Michigan State University , East Lansing , MI , USA.
b Department of Microbiology and Molecular Genetics , Michigan State University , East Lansing , MI , USA.
Crit Rev Biochem Mol Biol. 2018 Dec;53(6):607-622. doi: 10.1080/10409238.2018.1516728. Epub 2018 Oct 3.
Derived from an ancient ATP-hydrolyzing Rossmann-like fold protein, members of the PP-loop ATP pyrophosphatase family feature an absolutely conserved P-loop-like "SxGxDS/T" motif used for binding and presenting ATP for substrate adenylylation (AMPylation). Since the first family member was reported more than 20 years ago, numerous representatives catalyzing very diverse reactions have been characterized both functionally and structurally. The availability of more than 100 high quality structures in the protein data bank provides an excellent opportunity to gain structural insights into the generally conserved catalytic mechanism and the uniqueness of the reactions catalyzed by family members. In this work, we conducted a thorough database search for the PP-loop ATP pyrophosphatase family members, resulting in the most comprehensive and up-to-date collection that includes 18 enzyme families. Structure comparison of representative family members allowed us to identify common structure features in the core catalytic domain, as well as four highly variable regions that define the unique chemistry for each enzyme family. The newly identified enzymes, particularly those from pathogens, warrant further research to enlarge the scope of this ever-expanding and highly diverse enzyme superfamily for use in potential bioengineering and biomedical applications.
源自一种古老的 ATP 水解罗斯曼样折叠蛋白,PP 环 ATP 焦磷酸酶家族的成员具有一个绝对保守的 P 环样“ SxGxDS/T ”基序,用于结合和呈现 ATP 进行底物腺苷酰化( AMPylation )。自 20 多年前首次报道第一个家族成员以来,已经从功能和结构上对许多催化非常不同反应的代表进行了特征描述。在蛋白质数据库中提供了 100 多个高质量结构,这为深入了解普遍保守的催化机制以及家族成员催化的反应的独特性提供了极好的机会。在这项工作中,我们对 PP 环 ATP 焦磷酸酶家族成员进行了彻底的数据库搜索,得到了最全面和最新的集合,其中包括 18 个酶家族。代表性家族成员的结构比较使我们能够识别核心催化结构域中的常见结构特征,以及定义每个酶家族独特化学性质的四个高度可变区域。新鉴定的酶,特别是来自病原体的酶,需要进一步研究,以扩大这个不断扩展且高度多样化的酶超家族的范围,用于潜在的生物工程和生物医学应用。