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嗜热球形脲芽孢杆菌中耐热NADP(+)依赖性内消旋二氨基庚二酸脱氢酶的结构解析

Structural insight into the thermostable NADP(+)-dependent meso-diaminopimelate dehydrogenase from Ureibacillus thermosphaericus.

作者信息

Akita Hironaga, Seto Tomonari, Ohshima Toshihisa, Sakuraba Haruhiko

机构信息

Applied Molecular Microbiology and Biomass Chemistry, Bioscience and Biotechnology, Faculty of Agriculture, Kyushu University, 6-10-1 Hakozaki, Higashi-ku, Fukuoka 812-8581, Japan.

Division of Rare Sugar Science, Faculty of Agriculture, Kagawa University, 2393 Ikenobe, Miki-cho, Kita-gun, Kagawa 761-0795, Japan.

出版信息

Acta Crystallogr D Biol Crystallogr. 2015 May;71(Pt 5):1136-46. doi: 10.1107/S1399004715003673. Epub 2015 Apr 24.

Abstract

Crystal structures of the thermostable meso-diaminopimelate dehydrogenase (DAPDH) from Ureibacillus thermosphaericus were determined for the enzyme in the apo form and in complex with NADP(+) and N-tris(hydroxymethyl)methyl-2-aminoethanesulfonic acid. The main-chain coordinates of the enzyme showed notable similarity to those of Symbiobacterium thermophilum DAPDH. However, the subunit arrangement of U. thermosphaericus DAPDH (a dimer) was totally different from that of the S. thermophilum enzyme (a hexamer). Structural comparison with the dimeric enzyme from the mesophile Corynebacterium glutamicum revealed that the presence of large numbers of intrasubunit and intersubunit hydrophobic interactions, as well as the extensive formation of intersubunit ion-pair networks, were likely to be the main factors contributing to the higher thermostability of U. thermosphaericus DAPDH. This differs from S. thermophilum DAPDH, within which the unique hexameric assembly is likely to be responsible for its high thermostability. Analysis of the active site of U. thermosphaericus DAPDH revealed the key factors responsible for the marked difference in substrate specificity between DAPDH and the D-amino acid dehydrogenase recently created from DAPDH by introducing five point mutations [Akita et al. (2012). Biotechnol. Lett. 34, 1693-1699; 1701-1702].

摘要

测定了嗜热球形脲芽孢杆菌中耐热性中-二氨基庚二酸脱氢酶(DAPDH)的晶体结构,该酶分别处于脱辅基形式以及与NADP(+)和N-三(羟甲基)甲基-2-氨基乙磺酸形成的复合物形式。该酶的主链坐标与嗜热共生菌DAPDH的主链坐标显示出显著的相似性。然而,嗜热球形脲芽孢杆菌DAPDH(二聚体)的亚基排列与嗜热共生菌酶(六聚体)的亚基排列完全不同。与嗜温性谷氨酸棒杆菌的二聚体酶进行结构比较发现,大量亚基内和亚基间疏水相互作用的存在,以及亚基间离子对网络的广泛形成,可能是导致嗜热球形脲芽孢杆菌DAPDH具有更高热稳定性的主要因素。这与嗜热共生菌DAPDH不同,在嗜热共生菌DAPDH中,独特的六聚体组装可能是其高热稳定性的原因。对嗜热球形脲芽孢杆菌DAPDH活性位点的分析揭示了导致DAPDH与最近通过引入五个点突变从DAPDH产生的D-氨基酸脱氢酶之间底物特异性存在显著差异的关键因素[秋田等人(2012年)。生物技术通讯。34,1693 - 1699;1701 - 1702]。

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