Rajaram V, Bhavani B S, Kaul Purnima, Prakash V, Appaji Rao N, Savithri H S, Murthy M R N
Molecular Biophysics Unit, Indian Institute of Science, Bangalore, India.
FEBS J. 2007 Aug;274(16):4148-60. doi: 10.1111/j.1742-4658.2007.05943.x. Epub 2007 Jul 25.
Serine hydroxymethyltransferase (SHMT) belongs to the alpha-family of pyridoxal 5'-phosphate-dependent enzymes and catalyzes the reversible conversion of L-Ser and tetrahydrofolate to Gly and 5,10-methylene tetrahydrofolate. 5,10-Methylene tetrahydrofolate serves as a source of one-carbon fragment in many biological processes. SHMT also catalyzes the tetrahydrofolate-independent conversion of L-allo-Thr to Gly and acetaldehyde. The crystal structure of Bacillus stearothermophilus SHMT (bsSHMT) suggested that E53 interacts with the substrate, L-Ser and tetrahydrofolate. To elucidate the role of E53, it was mutated to Q and structural and biochemical studies were carried out with the mutant enzyme. The internal aldimine structure of E53QbsSHMT was similar to that of the wild-type enzyme, except for significant changes at Q53, Y60 and Y61. The carboxyl of Gly and side chain of L-Ser were in two conformations in the respective external aldimine structures. The mutant enzyme was completely inactive for tetrahydrofolate-dependent cleavage of L-Ser, whereas there was a 1.5-fold increase in the rate of tetrahydrofolate-independent reaction with L-allo-Thr. The results obtained from these studies suggest that E53 plays an essential role in tetrahydrofolate/5-formyl tetrahydrofolate binding and in the proper positioning of Cbeta of L-Ser for direct attack by N5 of tetrahydrofolate. Most interestingly, the structure of the complex obtained by cocrystallization of E53QbsSHMT with Gly and 5-formyl tetrahydrofolate revealed the gem-diamine form of pyridoxal 5'-phosphate bound to Gly and active site Lys. However, density for 5-formyl tetrahydrofolate was not observed. Gly carboxylate was in a single conformation, whereas pyridoxal 5'-phosphate had two distinct conformations. The differences between the structures of this complex and Gly external aldimine suggest that the changes induced by initial binding of 5-formyl tetrahydrofolate are retained even though 5-formyl tetrahydrofolate is absent in the final structure. Spectral studies carried out with this mutant enzyme also suggest that 5-formyl tetrahydrofolate binds to the E53QbsSHMT-Gly complex forming a quinonoid intermediate and falls off within 4 h of dialysis, leaving behind the mutant enzyme in the gem-diamine form. This is the first report to provide direct evidence for enzyme memory based on the crystal structure of enzyme complexes.
丝氨酸羟甲基转移酶(SHMT)属于磷酸吡哆醛依赖性酶的α家族,催化L-丝氨酸和四氢叶酸可逆转化为甘氨酸和5,10-亚甲基四氢叶酸。5,10-亚甲基四氢叶酸在许多生物过程中作为一碳片段的来源。SHMT还催化L-别苏氨酸不依赖四氢叶酸转化为甘氨酸和乙醛。嗜热栖热芽孢杆菌SHMT(bsSHMT)的晶体结构表明E53与底物L-丝氨酸和四氢叶酸相互作用。为了阐明E53的作用,将其突变为Q,并对突变酶进行了结构和生化研究。E53QbsSHMT的内部醛亚胺结构与野生型酶相似,除了Q53、Y60和Y61处有显著变化。在各自的外部醛亚胺结构中,甘氨酸的羧基和L-丝氨酸的侧链处于两种构象。突变酶对L-丝氨酸依赖四氢叶酸的裂解完全无活性,而与L-别苏氨酸的不依赖四氢叶酸反应速率增加了1.5倍。这些研究结果表明,E53在四氢叶酸/5-甲酰基四氢叶酸结合以及L-丝氨酸的Cβ正确定位以被四氢叶酸的N5直接攻击中起重要作用。最有趣的是,E53QbsSHMT与甘氨酸和5-甲酰基四氢叶酸共结晶得到的复合物结构揭示了与甘氨酸和活性位点赖氨酸结合的磷酸吡哆醛的偕二胺形式。然而,未观察到5-甲酰基四氢叶酸的密度。甘氨酸羧酸盐处于单一构象,而磷酸吡哆醛有两种不同的构象。该复合物与甘氨酸外部醛亚胺结构之间的差异表明,即使最终结构中不存在5-甲酰基四氢叶酸,5-甲酰基四氢叶酸初始结合引起的变化仍被保留。对该突变酶进行的光谱研究还表明,5-甲酰基四氢叶酸与E53QbsSHMT-甘氨酸复合物结合形成醌型中间体,并在透析4小时内脱落,留下偕二胺形式的突变酶。这是第一份基于酶复合物晶体结构提供酶记忆直接证据的报告。