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嗜热自养甲烷杆菌中生成氢气的N5,N10-亚甲基四氢甲蝶呤脱氢酶。利用氢同位素研究氢气生成的催化机制。

H2-forming N5,N10-methylenetetrahydromethanopterin dehydrogenase from Methanobacterium thermoautotrophicum. Studies of the catalytic mechanism of H2 formation using hydrogen isotopes.

作者信息

Schwörer B, Fernandez V M, Zirngibl C, Thauer R K

机构信息

Laboratorium für Mikrobiologie des Fachbereichs Biologie, Philipps-Universität Marburg, Federal Republic of Germany.

出版信息

Eur J Biochem. 1993 Feb 15;212(1):255-61. doi: 10.1111/j.1432-1033.1993.tb17657.x.

Abstract

H2-forming N5,N10-methylenetetrahydromethanopterin dehydrogenase is a novel hydrogenase found in most methanogenic archaea. It catalyzes the reversible conversion of N5,N10-methylenetetrahydromethanopterin (CH2 = H4MPT) to N5,N10-methenyltetrahydromethanopterin (CH identical to H4MPT+) and dihydrogen; CH2 = H4MPT + H+<-->CH identical to H4MPT(+) + H2; delta G degrees ' = + 5 kJ/mol. In the following investigation, the formation of H2, HD and D2 was studied in experiments in which either the methylene group of CH2 = H4MPT or water were deuterium labelled. In the case of CD2 = H4MPT and H2O, the dihydrogen formed immediately after the start of the reaction was composed of approximately 50% HD and 50% of H2 at all pH tested. In the case of CH2 = H4MPT and D2O, the dihydrogen generated was composed of approximately 50% HD and 50% D2 at pD 5.7 and of approximately 85% HD and 15% D2 at pD 7.0. Evidence is presented that the enzyme catalyzes a CH identical to H4MPT(+)-dependent isotopic exchange between HD and H2O and between HD and D2O, yielding H2 and D2, respectively. A catalytic mechanism aimed to explain these findings is discussed.

摘要

生成氢气的N5,N10-亚甲基四氢甲蝶呤脱氢酶是一种在大多数产甲烷古菌中发现的新型氢化酶。它催化N5,N10-亚甲基四氢甲蝶呤(CH2 = H4MPT)可逆转化为N5,N10-亚甲酰基四氢甲蝶呤(CH≡H4MPT+)和氢气;CH2 = H4MPT + H+<-->CH≡H4MPT(+) + H2;ΔG°' = + 5 kJ/mol。在接下来的研究中,在对CH2 = H4MPT的亚甲基或水进行氘标记的实验中研究了H2、HD和D2的形成。在CD2 = H4MPT和H2O的情况下,反应开始后立即形成的氢气在所有测试的pH值下均由约50%的HD和约50%的H2组成。在CH2 = H4MPT和D2O的情况下,在pD 5.7时生成的氢气由约50%的HD和约50%的D2组成,在pD 7.0时由约85%的HD和15%的D2组成。有证据表明该酶催化HD与H2O以及HD与D2O之间依赖于CH≡H4MPT(+)的同位素交换,分别产生H2和D2。讨论了旨在解释这些发现的催化机制。

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