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低频低压交流电对生物电反应器生物膜中细胞凋亡进程的影响

Effects of Low Frequency-Low Voltage Alternating Electric Current on Apoptosis Progression in Bioelectrical Reactor Biofilm.

作者信息

Hoseinzadeh Edris, Wei Chiang, Farzadkia Mahdi, Rezaee Abbas

机构信息

Department of Environmental Health Engineering, Social Determinants of Health Research Center, Saveh University of Medical Sciences, Saveh, Iran.

The Experimental Forest, College of Bio-Resources and Agriculture, National Taiwan University, Taipei, Taiwan.

出版信息

Front Bioeng Biotechnol. 2020 Jan 22;8:2. doi: 10.3389/fbioe.2020.00002. eCollection 2020.

Abstract

Bioelectrochemical systems have undergone several modifications to promote the enzymes or pathways used to reduce the energy required for microbial metabolism. Changes in dominant bacteria, population, and growth rates occur when an electric current is applied intermittently. Applying electricity to bioelectrical reactor (BER) biofilms can either stimulate cells or lead to cell death; therefore, determining the applied voltage range that leads to viable and stimulated bacteria is crucial. We investigated the progression of apoptosis induced by a low frequency-low voltage alternating electric current (AC) in a BER biofilm and found that biofilms on carbon cloth (CC) and stainless steel (SS) 304 electrodes had pH values of 8.67. The pH of the biofilms increased by two compared to that of the inoculant bacteria mass. Furthermore, the Henderson-Hasselbalch equation reveals that the compositions of cell walls of the biofilms that formed on the CC and SS304 electrodes are very similar. In contrast, the CC and SS304 biofilms differ from the inoculant biomass without the influence of an AC field; this indicates that there are differences in the compositions of the cell walls in the present bacteria. Fourier transform infrared spectroscopy was used to compare spectra of the biofilms with that of the inoculation mass, and there were differences in shape and absorbance intensity, indicating variability in the composition, and quantity of each individual biofilm component. In addition, the dehydrogenase activity (DHA) content varied under different applied voltages; the highest DHA was obtained at 8 Vpp. A flow cytometry analysis showed a relatively low number of apoptotic cells (10.93 ± 5.19%) for the AC amplitudes studied. Thus, a low voltage-low frequency AC likely induces significant changes in bacterial metabolic activity but causes no significant change in their viability.

摘要

生物电化学系统已经历了多次改进,以促进用于降低微生物代谢所需能量的酶或途径。当间歇性施加电流时,优势细菌、种群和生长速率会发生变化。向生物电反应器(BER)生物膜施加电能刺激细胞或导致细胞死亡;因此,确定能使细菌存活并受到刺激的施加电压范围至关重要。我们研究了低频 - 低压交流电(AC)在BER生物膜中诱导的细胞凋亡进程,发现碳布(CC)和不锈钢(SS)304电极上的生物膜pH值为8.67。与接种菌团相比,生物膜的pH值升高了两个单位。此外,亨德森 - 哈塞尔巴尔赫方程表明,在CC和SS304电极上形成的生物膜的细胞壁组成非常相似。相比之下,在没有交流电场影响的情况下,CC和SS304生物膜与接种生物质不同;这表明当前细菌的细胞壁组成存在差异。使用傅里叶变换红外光谱法比较生物膜与接种物的光谱,发现形状和吸光度强度存在差异,表明每个生物膜组分的组成和数量存在变异性。此外,在不同的施加电压下,脱氢酶活性(DHA)含量有所变化;在8 Vpp时获得最高的DHA。流式细胞术分析显示,在所研究的交流振幅下,凋亡细胞数量相对较少(10.93±5.19%)。因此,低电压 - 低频交流电可能会引起细菌代谢活性的显著变化,但不会导致其活力发生显著变化。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/596a/6987302/531b81ea646a/fbioe-08-00002-g0001.jpg

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