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气体等离子体低温灭菌:实验综述与失活机制分析

Low-temperature sterilization using gas plasmas: a review of the experiments and an analysis of the inactivation mechanisms.

作者信息

Moisan M, Barbeau J, Moreau S, Pelletier J, Tabrizian M, Yahia L H

机构信息

Groupe de Physique des Plasmas, Département de Physique, Université de Montréal, C.P. 6128, Succursale Centre-ville, Montréal, Québec, Canada H3C 3J7.

出版信息

Int J Pharm. 2001 Sep 11;226(1-2):1-21. doi: 10.1016/s0378-5173(01)00752-9.

Abstract

Utilizing an ionized gas (plasma) to achieve sterilization is an alternative to conventional sterilization means as far as sterilization of heat-sensitive materials and innocuity of sterilizing agents are concerned. The literature on plasma sterilization is reviewed. A major issue of plasma sterilization is the respective roles of UV photons and reactive species such as atomic and radicals. Insight into this matter is obtained by analyzing the survival curves of microorganisms. In contrast to classical sterilization where such plots show a unique straight line, plasma sterilization yields survival diagrams with two or three different linear segments. Three basic mechanisms are involved in the plasma inactivation of microorganisms: (A) direct destruction by UV irradiation of the genetic material of microorganisms; (B) erosion of the microorganisms atom by atom, through intrinsic photodesorption by UV irradiation to form volatile compounds combining atoms intrinsic to the microorganisms; (C) erosion of the microorganisms, atom by atom, through etching to form volatile compounds as a result of slow combustion using oxygen atoms or radicals emanating from the plasma. In some cases, etching is further activated by UV photons, increasing the elimination rate of microorganisms. These mechanisms make plasma sterilization totally different from classical sterilization techniques and suggest its use to inactivate nonconventional infectious agents such as the abnormal prions.

摘要

就热敏材料的灭菌和灭菌剂的无害性而言,利用电离气体(等离子体)实现灭菌是传统灭菌方法的一种替代方案。本文综述了有关等离子体灭菌的文献。等离子体灭菌的一个主要问题是紫外线光子与诸如原子和自由基等活性物种各自所起的作用。通过分析微生物的存活曲线可以深入了解这一问题。与传统灭菌不同,传统灭菌的此类曲线呈现为一条独特的直线,而等离子体灭菌产生的存活图具有两到三个不同的线性段。微生物的等离子体失活涉及三种基本机制:(A)通过紫外线照射直接破坏微生物的遗传物质;(B)通过紫外线照射的固有光解吸作用,逐个原子地侵蚀微生物,形成结合微生物固有原子的挥发性化合物;(C)利用等离子体产生的氧原子或自由基通过缓慢燃烧逐个原子地侵蚀微生物,形成挥发性化合物。在某些情况下,紫外线光子会进一步激活蚀刻作用,提高微生物的消除率。这些机制使等离子体灭菌与传统灭菌技术完全不同,并表明可将其用于使诸如异常朊病毒等非常规传染因子失活。

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