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大肠杆菌的磁敏感性:磁同位素和磁场效应。

Magnetosensitivity of bacteria E. coli: Magnetic isotope and magnetic field effects.

作者信息

Letuta Ulyana G, Berdinskiy Vitaly L

机构信息

Orenburg State University, Orenburg, Russia.

出版信息

Bioelectromagnetics. 2017 Dec;38(8):581-591. doi: 10.1002/bem.22073. Epub 2017 Aug 7.

DOI:10.1002/bem.22073
PMID:28782834
Abstract

The biological effects of a Mg nuclear spin and weak magnetic fields have been found and studied by using bacterial cells of Escherichia coli (E. coli) grown on standard M9 nutrient media with different isotopes of magnesium: Mg, Mg, Mg, and a natural mixture of Mg isotopes. Among these isotopes only Mg has a nuclear spin I = 5/2 and nuclear magnetic moment which have been known to affect enzymatic processes in vitro due to hyperfine interactions with uncoupled electrons of substrates. Other non-magnetic magnesium isotopes, Mg and Mg, have neither a nuclear spin (I = 0) nor a nuclear magnetic moment. Bacterial cells grown on Mg-media and enriched with this isotope manifest a higher growth rate and colony-forming units (CFU) compared with cells grown on media containing nonmagnetic Mg and Mg isotopes. Magnetic field dependencies of CFU cells enriched with different magnesium isotopes have been obtained. The observed isotope-dependent differences are explained by intracellular enzymatic ion-radical reactions which are magnetic field and nuclear spin sensitive. Enzymatic synthesis of ATP is considered as the most probable magnetosensitive biochemical process in vivo as far as effectiveness of ATP production is concerned; it determines the viability of cells and was shown in vitro as a nuclear spin-dependent reaction. Bioelectromagnetics. 38:581-591, 2017. © 2017 Wiley Periodicals, Inc.

摘要

利用在含有不同镁同位素((^{24}Mg)、(^{25}Mg)、(^{26}Mg)以及镁同位素的天然混合物)的标准M9营养培养基上生长的大肠杆菌(E. coli)细菌细胞,已经发现并研究了镁核自旋和弱磁场的生物效应。在这些同位素中,只有(^{25}Mg)具有核自旋(I = 5/2)和核磁矩,已知由于与底物未耦合电子的超精细相互作用,它们会在体外影响酶促过程。其他非磁性镁同位素(^{24}Mg)和(^{26}Mg)既没有核自旋((I = 0))也没有核磁矩。与在含有非磁性(^{24}Mg)和(^{26}Mg)同位素的培养基上生长的细胞相比,在(^{25}Mg)培养基上生长并富集该同位素的细菌细胞表现出更高的生长速率和菌落形成单位(CFU)。已经获得了富含不同镁同位素的CFU细胞的磁场依赖性。观察到的同位素依赖性差异可以通过对磁场和核自旋敏感的细胞内酶促离子 - 自由基反应来解释。就ATP产生的有效性而言,ATP的酶促合成被认为是体内最可能的磁敏生化过程;它决定了细胞的活力,并且在体外已被证明是一种核自旋依赖性反应。生物电磁学。38:581 - 591,2017。©2017威利期刊公司。

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