Harpel M R, Larimer F W, Hartman F C
Protein Engineering Program, Life Sciences Division, Oak Ridge National Laboratory, Tennessee 37831-8080, USA.
Protein Sci. 1998 Mar;7(3):730-8. doi: 10.1002/pro.5560070322.
Active-site His 287 of Rhodospirillum rubrum ribulose 1,5-bisphosphate (RuBP) carboxylase/oxygenase interacts with the C3-hydroxyl of bound substrate or reaction-intermediate analogue (CABP), water molecules, and ligands for the activator metal-ion (Andersson I, 1996, J Mol Biol 259:160-174; Taylor TC, Andersson I, 1997, J Mol Biol 265:432-444). To test structure-based postulates of catalytic functionality, His 287 was replaced with Asn or Gln. The mutants are not affected adversely in subunit assembly, activation (binding of Mg2+ and carbamylation of Lys 191), or recognition of phosphorylated ligands; they bind CABP with even greater tenacity than does wild-type enzyme. H287N and H287Q are severely impaired in catalyzing overall carboxylation (approximately 10(3)-fold and > 10(5)-fold, respectively) and enolization (each mutant below threshold for detection) of RuBP. H287N preferentially catalyzes decarboxylation of carboxylated reaction intermediate instead of forward processing to phosphoglycerate. Analysis of RuBP turnover that occurs at high concentrations of mutants over extended time periods reveal > 10-fold reduced CO2/O2 specificities, elevated misprotonation of the enediol intermediate, and misprocessing of the oxygenated intermediate of the oxygenase pathway. These results are consistent with multifaceted roles for His 287 in promoting enediol formation, enediol tautomerization, and forward-processing of carboxylated intermediate.
红螺菌的1,5-二磷酸核酮糖羧化酶/加氧酶(RuBP羧化酶/加氧酶)的活性位点组氨酸287与结合的底物或反应中间体类似物(CABP)的C3-羟基、水分子以及激活剂金属离子的配体相互作用(安德森I,1996年,《分子生物学杂志》259:160 - 174;泰勒TC,安德森I,1997年,《分子生物学杂志》265:432 - 444)。为了测试基于结构的催化功能假设,将组氨酸287替换为天冬酰胺或谷氨酰胺。这些突变体在亚基组装、激活(Mg2 + 的结合和赖氨酸191的氨甲酰化)或磷酸化配体的识别方面没有受到不利影响;它们与CABP的结合甚至比野生型酶更牢固。H287N和H287Q在催化RuBP的整体羧化反应(分别约为10³倍和> 10⁵倍)和烯醇化反应(每个突变体低于检测阈值)方面严重受损。H287N优先催化羧化反应中间体的脱羧反应,而不是向前加工生成磷酸甘油酸。对在高浓度突变体下长时间发生的RuBP周转的分析表明,CO2/O2特异性降低了10倍以上,烯二醇中间体的错误质子化增加,加氧酶途径的氧化中间体加工错误。这些结果与组氨酸287在促进烯二醇形成、烯二醇互变异构以及羧化中间体的向前加工中的多方面作用一致。