...
首页> 外文期刊>Journal of Environmental Radioactivity >A new era of radiation resistance bacteria in bioremediation and production of bioactive compounds with therapeutic potential and other aspects: An in-perspective review
【24h】

A new era of radiation resistance bacteria in bioremediation and production of bioactive compounds with therapeutic potential and other aspects: An in-perspective review

机译:生物修复中的辐射抗菌细菌的新时代和具有治疗潜力的生物活性化合物和其他方面的生物活性化合物:一个透视程评论

获取原文
获取原文并翻译 | 示例
   

获取外文期刊封面封底 >>

       

摘要

Microorganisms that survive in extreme environmental conditions are known as 'extremophiles'. Recently, extremophiles draw an impression in biotechnology/pharmaceutical researches/industries because of their novel molecules, known as 'extremolytes'. The intriguing phenomenon of microbial radiation resistance probably arose independently throughout their evolution of selective pressures (e.g. UV, X-ray, Gamma radiation etc.). Radia-tion produces multiple types of damage/oxidation to nucleic acids, proteins and other crucial cellular compo-nents. Most of the literature on microbial radiation resistance is based on acute gamma-irradiation experiments performed in the laboratory, typically involving pure cultures isolation and their application on bioremediation/ therapeutic field. There is much less information other than bioremediation and therapeutic application of such promising microbes we called as 'new era'. Here we discus origin and diversity of radiation resistance bacteria as well as selective mechanisms by which microorganisms can sustain in radiation rich environment. Potential uses of these radiations resistant microbes in the field of bioremediation, bioactive compounds and therapeutic in-dustry. Last but not the least, which is the new aspect of radiation resistance microbes. Our review suggest that resistance to chronic radiation is not limited to rare specialized strains from extreme environments, but can occur among common microbial taxa, perhaps due to overlap molecular mechanisms of resistance to radiation and other stressors. These stress tolerance potential make them potential for radionuclides remediation, their extremolytes can be useful as anti-oxidant and anti-proliferative agents. In current scenario they can be useful in various fields from natural dye synthesis to nanoparticles production and anti-cancer treatment.
机译:在极端环境条件下存活的微生物被称为“极值蹄”。最近,Exrophophiles因为他们的新分子而引起了生物技术/制药研究/行业的印象,称为“极端水解”。微生物辐射抗性的有趣现象可能在整个选择性压力(例如UV,X射线,γ辐射等)的过程中独立地出现。 Radia-Tion为核酸,蛋白质和其他关键的细胞组合物产生多种类型的损伤/氧化。关于微生物辐射抗性的大多数文献基于实验室进行的急性γ-辐照实验,通常涉及纯培养物分离及其对生物修复/治疗田的应用。除了生物修复和治疗应用的信息之外的信息远远较少,我们称之为“新时代”。在这里,我们对抗菌细菌的起源和多样性以及微生物可以维持富含辐射环境的选择性机制。这些辐射的潜在用途在生物修复,生物活性化合物和治疗中的抗体中抗微生物。最后但不是最少的,这是辐射抗性微生物的新方面。我们的评论表明,对慢性辐射的抵抗不仅限于极端环境的稀有专门菌株,而且可能在普通的微生物分类群中发生,也许是由于抗辐射和其他压力源的分子机制重叠。这些应力耐受性使其成为放射性核素修复的可能性,它们的极端溶剂可用作抗氧化剂和抗增殖剂。在目前的情况下,它们可以在从天然染料合成到纳米颗粒生产和抗癌治疗的各个领域中有用。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号