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首页> 外文期刊>Amino acids >Improving the acidic stability of Staphylococcus aureus alpha-acetolactate decarboxylase in Bacillus subtilis by changing basic residues to acidic residues
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Improving the acidic stability of Staphylococcus aureus alpha-acetolactate decarboxylase in Bacillus subtilis by changing basic residues to acidic residues

机译:通过将碱性残基更改为酸性残基来提高金黄色葡萄球菌α-乙酰乳酸脱羧酶在枯草芽孢杆菌中的酸稳定性

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摘要

The alpha-acetolactate decarboxylase (ALDC) can reduce diacetyl fleetly to promote mature beer. A safe strain Bacillus subtilis WB600 for high-yield production of ALDC was constructed with the ALDC gene saald from Staphylococcus aureus L3-15. SDS-PAGE analysis revealed that S. aureus alpha-acetolactate decarboxylase (SaALDC) was successfully expressed in recombinant B. siutilis strain. The enzyme SaALDC was purified using Ni-affinity chromatography and showed a maximum activity at 45 A degrees C and pH 6.0. The values of K (m) and V (max) were 17.7 mu M and 2.06 mM min(-1), respectively. Due to the unstable property of SaALDC at low pH conditions that needed in brewing process, site-directed mutagenesis was proposed for improving the acidic stability of SaALDC. Homology comparative modeling analysis showed that the mutation (K52D) gave rise to the negative-electrostatic potential on the surface of protein while the numbers of hydrogen bonds between the mutation site (N43D) and the around residues increased. Taken together the effect of mutation N43D-K52D, recombinant SaALDC(N43D-K52D) showed dramatically improved acidic stability with prolonged half-life of 3.5 h (compared to the WT of 1.5 h) at pH 4.0. In a 5-L fermenter, the recombinant B. subtilis strain that could over-express SaALDC(N43D-K52D) exhibited a high yield of 135.8 U mL(-1) of SaALDC activity, about 320 times higher comparing to 0.42 U mL(-1) of S. aureus L3-15. This work proposed a strategy for improving the acidic stability of SaALDC in the B. subtilis host.
机译:α-乙酰乳酸脱羧酶(ALDC)可以迅速减少二乙酰基,从而促进啤酒的成熟。用金黄色葡萄球菌L3-15的ALDC基因saald构建了用于高产ALDC的安全菌株枯草芽孢杆菌WB600。 SDS-PAGE分析表明,金黄色葡萄球菌α-乙酰乳酸脱羧酶(SaALDC)在重组枯草芽孢杆菌菌株中成功表达。使用Ni-亲和色谱纯化SaALDC酶,并在45 A摄氏度和pH 6.0下显示最大活性。 K(m)和V(max)的值分别为17.7μM和2.06 mM min(-1)。由于在酿造过程中需要在低pH条件下SaALDC的不稳定特性,提出了定点诱变以提高SaALDC的酸性稳定性。同源性比较建模分析表明,突变(K52D)在蛋白质表面产生负静电电位,而突变位点(N43D)与周围残基之间的氢键数目增加。结合突变N43D-K52D的影响,重组SaALDC(N43D-K52D)在pH 4.0下显示出显着改善的酸性稳定性,延长了3.5 h的半衰期(相较于WT的1.5 h)。在5升发酵罐中,可以过度表达SaALDC(N43D-K52D)的重组枯草芽孢杆菌菌株显示出135.8 U mL(-1)的SaALDC活性,比0.42 U mL高出320倍(金黄色葡萄球菌L3-15的-1)。这项工作提出了提高枯草芽孢杆菌宿主中SaALDC酸性稳定性的策略。

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