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Study on Antioxidant Enzymatic Activities of Trichosporon asahii

机译:细孢曲霉抗氧化酶活性的研究

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摘要

Superoxide dismutase (SOD) and catalase are considered the most important antioxidant enzymes which protect fungus from the oxidant damage of reactive oxygen species. In this study, we collected 44 strains of Trichosporon asahii (T. asahii) from different sources and investigated their SOD and catalase activities. The results showed that the SOD and catalase activities of Clinical group were significantly higher than those of Environment group (p < 0.01). The SOD and catalase activities of T. asahii in Internal passage group went up gradually after passage in mice, and were significantly higher in 5th generation of Internal passage group (p < 0.05). The SOD and catalase activities of Fluconazole-resistant group strains also increased after resistant induction, and the SOD and catalase activities were significantly higher in the 10th generation of Fluconazole-resistant group (p < 0.05). This implied that T. asahii has stronger antioxidant ability. The strains of T. asahii from different sources have different antioxidant abilities, which mainly manifest in the difference of antioxidant enzymatic activities. Clinical group strains have the strongest antioxidant capacity; Internal passage group strains and Fluconazole resistant group strains better; Environmental group strains the lowest. These results also suggested that the antioxidant defensive response of T. asahii might be relevant to its infection mechanism and drug resistance mechanism.
机译:超氧化物歧化酶(SOD)和过氧化氢酶被认为是最重要的抗氧化酶,可保护真菌免受活性氧的氧化损伤。在这项研究中,我们收集了来自不同来源的44株细孢曲霉(T. asahii)菌株,并研究了它们的SOD和过氧化氢酶活性。结果显示,临床组的SOD和过氧化氢酶活性显着高于环境组(p <0.01)。内部传代组中的旭细线虫的SOD和过氧化氢酶活性在小鼠传代后逐渐升高,并且在第五代内部传代组中显着更高(p <0.05)。耐药诱导后,耐氟康唑耐药组菌株的SOD和过氧化氢酶活性也增加,在耐氟康唑第10代组中,SOD和过氧化氢酶活性显着更高(p <0.05)。这暗示麻黄木霉具有更强的抗氧化能力。不同来源的细叶天竺葵菌株具有不同的抗氧化能力,主要表现为抗氧化酶活性的差异。临床组菌株具有最强的抗氧化能力;内部传代组菌株和氟康唑耐药组菌株更好;环境组的菌株最低。这些结果还表明,天麻的抗氧化防御反应可能与其感染机制和耐药机制有关。

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