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Identification of Stress-Related Genes and a Comparative Analysis of the Amino Acid Compositions of Translated Coding Sequences Based on Draft Genome Sequences of Antarctic Yeasts

机译:基于南极酵母草案基因组序列的转化编码序列氨基酸组成的鉴定及基于南极酵母草案的氨基酸组成

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摘要

Microorganisms inhabiting cold environments have evolved strategies to tolerate and thrive in those extreme conditions, mainly the low temperature that slow down reaction rates. Among described molecular and metabolic adaptations to enable functioning in the cold, there is the synthesis of cold-active proteins/enzymes. In bacterial cold-active proteins, reduced proline content and highly flexible and larger catalytic active sites than mesophylls counterparts have been described. However, beyond the low temperature, microorganisms’ physiological requirements may differ according to their growth velocities, influencing their global protein compositions. This hypothesis was tested in this work using eight cold-adapted yeasts isolated from Antarctica, for which their growth parameters were measured and their draft genomes determined and bioinformatically analyzed. The optimal temperature for yeasts’ growth ranged from 10 to 22°C, and yeasts having similar or same optimal temperature for growth displayed significative different growth rates. The sizes of the draft genomes ranged from 10.7 (Tetracladium sp.) to 30.7 Mb (Leucosporidium creatinivorum), and the GC contents from 37 (Candida sake) to 60% (L. creatinivorum). Putative genes related to various kinds of stress were identified and were especially numerous for oxidative and cold stress responses. The putative proteins were classified according to predicted cellular function and subcellular localization. The amino acid composition was compared among yeasts considering their optimal temperature for growth and growth rates. In several groups of predicted proteins, correlations were observed between their contents of flexible amino acids and both the yeasts’ optimal temperatures for growth and their growth rates. In general, the contents of flexible amino acids were higher in yeasts growing more rapidly as their optimal temperature for growth was lower. The contents of flexible amino acids became lower among yeasts with higher optimal temperatures for growth as their growth rates increased.
机译:微生物居住在寒冷的环境中具有耐受性和在这些极端条件下培养和茁壮成长的策略,主要是降低反应速率的低温。其中描述了分子和代谢适应在寒冷中起作用,存在冷活性蛋白/酶的合成。在细菌冷活性蛋白质中,已经描述了比蛋白质鱼对应物的降低的脯氨酸含量和高度柔性且较大的催化活性位点。然而,除了低温之外,微生物的生理需求可能根据其生长速度而不同,影响其全球蛋白质组合物。这一假设在使用八个冷适应酵母从南极洲分离,其中测量了它们的生长参数和它们的基因组草案确定和生物信息学分析了该工作测试。酵母生长的最佳温度范围为10至22℃,并且具有相似或相同的酵母的生长温度显示出明显的不同生长速率。草案基因组的尺寸范围为10.7(四裂解物SP。)至30.7mb(菌孢菌菌),GC含量为37(Candida缘故)至60%(L. Creatinivorum)。鉴定了与各种应激相关的推定基因,特别是氧化和冷应激反应特别多。根据预测的细胞功能和亚细胞定位对推定的蛋白质进行分类。考虑到生长和生长速率的最佳温度,比较氨基酸组合物比较酵母。在几组预测的蛋白质中,在它们的柔性氨基酸含量和酵母的增长温度和生长速率之间观察到相关性。通常,随着它们的最佳增长的最佳温度较低,柔性氨基酸的含量越快越来越快。由于其生长率增加,酵母在酵母中,柔性氨基酸的含量变低,并且由于其生长率增加,但增长较高。

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