嗜极菌酶活性实验室:利用钙化梭菌的过氧化氢酶突出温度敏感性和恒温酶活性

Joseph W. Scott, J. J. Steel
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摘要

摘要 地球上有些地方被认为具有与生命相关的极端物理化学特征。令人惊讶的是,有一些微生物采取了各种策略,使它们能够在这些环境中形成强大的群落。生活在这些环境中的微生物被称为嗜极微生物,它们被描述为嗜热、嗜心理、嗜卤、嗜酸、嗜碱、嗜气等。鉴于嗜极生物直到最近才被发现,是因为有人认为它们栖息的环境不利于生命的生存,因此我们有理由认为,学生可能很难掌握嗜极生物的概念。本文介绍的实验练习改编自利用嗜中性过氧化氢酶的实验练习,以说明物理化学参数对酶活性的影响。过氧化氢酶是一种能加速过氧化氢降解为水和氧气的酶。除了中嗜性过氧化氢酶外,我们还使用了嗜热菌(Pyrobaculum calidifontis)的过氧化氢酶,这种嗜热菌的最佳生长温度为 90°C,以突出一种酶对极端环境的适应性。通过对高温加热后嗜热酶和嗜中酶产生气泡情况的直观比较,我们可以清楚地看到两者在耐热性方面的差异,这很可能会强化实验前讲座中的概念,该讲座不仅讨论了嗜极生物本身,还讨论了它们在生物技术中的应用以及在天体生物学领域可能发挥的作用。
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Extremophile enzyme activity lab: using catalase from Pyrobaculum calidifontis to highlight temperature sensitivity and thermostable enzyme activity
ABSTRACT There are places on earth that are considered to possess extreme physico-chemical characteristics as they relate to life. Surprisingly, there are microbes that have adapted various strategies that enable them to form robust communities in these environments. The microbes that live in these environments, called extremophiles, are described as being thermophilic, psychrophilic, halophilic, acidophilic, alkaliphilic, barophilic, and so on. Given that extremophiles were not discovered until relatively recently due to a view point that the environments in which they inhabited were not conducive to life, it is reasonable to conclude that the concept of extremophiles may be hard to grasp for students. Herein is described a laboratory exercise adapted from laboratory exercises that use mesophilic catalase enzymes to illustrate the influence of physico-chemical parameters on enzyme activity. Catalase is an enzyme that accelerates the degradation of hydrogen peroxide to water and oxygen gas. In addition to mesophilic catalases, the catalase from Pyrobaculum calidifontis, a hyperthermophile with an optimal growth temperature of 90°C, is used to highlight the adaptation of an enzyme to an extreme environment. A visual comparison of bubble production by the hyperthermophilic and mesophilic enzymes after heating at high temperatures dramatically illustrates differences in thermostability that will likely reinforce concepts that are given in a pre-laboratory lecture that discusses not only the extremophiles themselves but also their applications in biotechnology and possible role in the field of astrobiology.
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