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Hydrogen Peroxide-Resistant CotA and YjqC of Bacillus altitudinis Spores Are a Promising Biocatalyst for Catalyzing Reduction of Sinapic Acid and Sinapine in Rapeseed Meal

机译:枯草芽孢杆菌孢子的耐过氧化氢的CotA和YjqC是催化油菜籽粕中芥子酸和芥子碱还原的有前途的生物催化剂

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摘要

For the more efficient detoxification of phenolic compounds, a promising avenue would be to develop a multi-enzyme biocatalyst comprising peroxidase, laccase and other oxidases. However, the development of this multi-enzyme biocatalyst is limited by the vulnerability of fungal laccases and peroxidases to hydrogen peroxide (H2O2)-induced inactivation. Therefore, H2O2-resistant peroxidase and laccase should be exploited. In this study, H2O2-stable CotA and YjqC were isolated from the outer coat of Bacillus altitudinis SYBC hb4 spores. In addition to the thermal and alkali stability of catalytic activity, CotA also exhibited a much higher H2O2 tolerance than fungal laccases from Trametes versicolor and Trametes trogii. YjqC is a sporulation-related manganese (Mn) catalase with striking peroxidase activity for sinapic acid (SA) and sinapine (SNP). In contrast to the typical heme-containing peroxidases, the peroxidase activity of YjqC was also highly resistant to inhibition by H2O2 and heat. CotA could also catalyze the oxidation of SA and SNP. CotA had a much higher affinity for SA than B. subtilis CotA. CotA and YjqC rendered from B. altitudinis spores had promising laccase and peroxidase activities for SA and SNP. Specifically, the B. altitudinis spores could be regarded as a multi-enzyme biocatalyst composed of CotA and YjqC. The B. altitudinis spores were efficient for catalyzing the degradation of SA and SNP in rapeseed meal. Moreover, efficiency of the spore-catalyzed degradation of SA and SNP was greatly improved by the presence of 15 mM H2O2. This effect was largely attributed to synergistic biocatalysis of the H2O2-resistant CotA and YjqC toward SA and SNP.
机译:为了使酚类化合物更有效地排毒,一个有前途的途径将是开发一种包含过氧化物酶,漆酶和其他氧化酶的多酶生物催化剂。然而,这种真菌酶的发展受到真菌漆酶和过氧化物酶对过氧化氢(H2O2)诱导的失活的脆弱性的限制。因此,应利用抗H2O2的过氧化物酶和漆酶。在这项研究中,H2O2稳定的CotA和YjqC是从枯草芽孢杆菌SYBC hb4孢子的外衣中分离出来的。除了具有催化活性的热稳定性和碱稳定性外,CotA还显示出比来自Trametes versicolor和Trametes trogii的真菌漆酶更高的H2O2耐受性。 YjqC是与孢子形成有关的锰(Mn)过氧化氢酶,对芥子酸(SA)和芥子碱(SNP)具有明显的过氧化物酶活性。与典型的含血红素的过氧化物酶相反,YjqC的过氧化物酶活性也高度抗H2O2和热的抑制。 CotA还可以催化SA和SNP的氧化。 CotA对SA的亲和力比枯草芽孢杆菌CotA高。从alt。B.孢子孢子产生的CotA和YjqC对SA和SNP具有有希望的漆酶和过氧化物酶活性。具体地说,可以认为altitudinis孢子孢子是由CotA和YjqC组成的多酶生物催化剂。 B. altitudinis孢子可有效催化菜籽粕中SA和SNP的降解。此外,由于存在15 mM H2O2,大大提高了孢子催化SA和SNP降解的效率。这种作用主要归因于抗H2O2的CotA和YjqC对SA和SNP的协同生物催化作用。

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