地热环境中古细菌主要碱基核酸内切酶的生物学作用。

IF 4.6 Q2 MATERIALS SCIENCE, BIOMATERIALS
Rupal Jain, Dennis W Grogan
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引用次数: 0

摘要

据预测,地热环境中的古细菌和细菌在体内会遭受高速率的DNA去嘌呤化,这就提出了关于它们的基本位点修复酶的生物学作用的问题。基因缺失和酶促实验表明,酸根Sulfolobus acidocalarius saci_0015基因编码AP内切酶(Apn),占细胞提取物中可测定活性的95%,并不是生存所必需的。为了鉴定该酶的遗传功能,对缺失菌株(ΔApn)的生长、自发突变、含有基本位点的ssDNA转化和偶联进行了检测。与等基因对照相比,ΔApn菌株在生长速度或最终细胞密度、自发突变速率或谱、含有基本位点的DNA转化、DNA转移和重组效率方面没有任何变化。去除主要的AP内切酶没有明显的遗传影响,这是出乎意料的,这表明酸藻的DNA聚合酶很少直接绕过碱基位点。在几种试验条件下,AP内切酶缺乏对酸藻的存活无明显影响,但在4℃光照下加速了细胞的死亡。我们的研究结果表明,酸藻的AP内切酶的正常水平远高于生长和细胞分裂所需的最低水平,但不是从长时间暴露于某些低温条件下恢复所需的最低水平。这种情况说明了在极端微生物的实验研究中没有强调的生物学挑战,即在“非极端”条件下长期生存的问题。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Biological role of the major AP (abasic site) endonuclease of an archaeon from geothermal environments.

Biological role of the major AP (abasic site) endonuclease of an archaeon from geothermal environments.

Archaea and bacteria in geothermal environments are predicted to suffer DNA depurination in vivo at high rates, which raises questions regarding the biological roles of their abasic-site-repair enzymes. Gene deletion and enzymatic assay demonstrated that the saci_0015 gene of Sulfolobus acidocaldarius encodes an AP endonuclease (Apn) accounting for as much as 95% of the assayable activity in cell extracts and is not essential for viability. To identify genetic functions of this enzyme, deletion (ΔApn) strains were examined with respect to growth, spontaneous mutation, transformation by ssDNA containing an abasic site, and conjugation. Relative to its isogenic control, the ΔApn strain did not exhibit any change in growth rate or final cell density, rate or spectrum of spontaneous mutation, transformation by DNA containing an abasic site, or efficiency of DNA transfer and recombination. The apparent lack of genetic impact of removing the major AP endonuclease was unexpected and indicated that abasic sites are rarely bypassed directly by DNA polymerases in S. acidocaldarius. AP endonuclease deficiency had no obvious effect on survival of S. acidocaldarius under several test conditions, but it accelerated the death of cells at 4º C under illumination. Our results suggest that the normal level of AP endonuclease in S. acidocaldarius is well above the minimum required for growth and cell division but not for recovery from prolonged exposure to certain low-temperature conditions. This situation illustrates a biological challenge that has not been emphasized in experimental studies of extremophiles, i.e., the problem of long-term survival under "non-extreme" conditions.

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来源期刊
ACS Applied Bio Materials
ACS Applied Bio Materials Chemistry-Chemistry (all)
CiteScore
9.40
自引率
2.10%
发文量
464
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