Characterization of Properties and Transglycosylation Abilities of Recombinant α-Galactosidase from Cold-Adapted Marine Bacterium Pseudoalteromonas KMM 701 and Its C494N and D451A Mutants.

IF 5.4 2区 医学 Q1 CHEMISTRY, MEDICINAL Marine Drugs Pub Date : 2018-09-24 DOI:10.3390/md16100349
Irina Bakunina, Lubov Slepchenko, Stanislav Anastyuk, Vladimir Isakov, Galina Likhatskaya, Natalya Kim, Liudmila Tekutyeva, Oksana Son, Larissa Balabanova
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Abstract

A novel wild-type recombinant cold-active α-d-galactosidase (α-PsGal) from the cold-adapted marine bacterium Pseudoalteromonas sp. KMM 701, and its mutants D451A and C494N, were studied in terms of their structural, physicochemical, and catalytic properties. Homology models of the three-dimensional α-PsGal structure, its active center, and complexes with D-galactose were constructed for identification of functionally important amino acid residues in the active site of the enzyme, using the crystal structure of the α-galactosidase from Lactobacillus acidophilus as a template. The circular dichroism spectra of the wild α-PsGal and mutant C494N were approximately identical. The C494N mutation decreased the efficiency of retaining the affinity of the enzyme to standard p-nitrophenyl-α-galactopiranoside (pNP-α-Gal). Thin-layer chromatography, matrix-assisted laser desorption/ionization mass spectrometry, and nuclear magnetic resonance spectroscopy methods were used to identify transglycosylation products in reaction mixtures. α-PsGal possessed a narrow acceptor specificity. Fructose, xylose, fucose, and glucose were inactive as acceptors in the transglycosylation reaction. α-PsGal synthesized -α(1→6)- and -α(1→4)-linked galactobiosides from melibiose as well as -α(1→6)- and -α(1→3)-linked p-nitrophenyl-digalactosides (Gal₂-pNP) from pNP-α-Gal. The D451A mutation in the active center completely inactivated the enzyme. However, the substitution of C494N discontinued the Gal-α(1→3)-Gal-pNP synthesis and increased the Gal-α(1→4)-Gal yield compared to Gal-α(1→6)-Gal-pNP.

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冷适应海洋细菌假交替单胞菌 KMM 701 及其 C494N 和 D451A 突变体重组 α-半乳糖苷酶的性质和转糖基化能力的表征
本研究从结构、理化和催化特性等方面研究了一种新型野生型重组冷活性α-D-半乳糖苷酶(α-PsGal),该酶来自适应冷环境的海洋假交替单胞菌 KMM 701 及其突变体 D451A 和 C494N。以嗜酸乳杆菌的α-半乳糖苷酶晶体结构为模板,构建了α-PsGal的三维结构、活性中心以及与D-半乳糖的复合物的同源模型,以确定该酶活性位点中具有重要功能的氨基酸残基。野生 α-PsGal 和突变体 C494N 的圆二色光谱大致相同。C494N 突变降低了酶与标准对硝基苯基-α-半乳糖苷(pNP-α-Gal)的亲和力。采用薄层色谱法、基质辅助激光解吸电离质谱法和核磁共振波谱法鉴定反应混合物中的转糖基化产物。果糖、木糖、岩藻糖和葡萄糖在转糖基化反应中作为受体不活跃。α-PsGal能从瓜糖合成-α(1→6)-和-α(1→4)-连接的半乳糖苷,也能从pNP-α-Gal合成-α(1→6)-和-α(1→3)-连接的对硝基苯基二半乳糖苷(Gal₂-pNP)。 活性中心的D451A突变使酶完全失活。然而,与 Gal-α(1→6)-Gal-pNP相比,取代 C494N 会中断 Gal-α(1→3)-Gal-pNP的合成,并增加 Gal-α(1→4)-Gal的产量。
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来源期刊
Marine Drugs
Marine Drugs 医学-医药化学
CiteScore
9.60
自引率
14.80%
发文量
671
审稿时长
1 months
期刊介绍: Marine Drugs (ISSN 1660-3397) publishes reviews, regular research papers and short notes on the research, development and production of drugs from the sea. Our aim is to encourage scientists to publish their experimental and theoretical research in as much detail as possible, particularly synthetic procedures and characterization information for bioactive compounds. There is no restriction on the length of the experimental section.
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