Exploring the role of impedance spectroscopy in assessing 405 nm laser-induced inactivation of saccharomyces cerevisiae

IF 2.7 3区 化学 Q3 BIOCHEMISTRY & MOLECULAR BIOLOGY Photochemical & Photobiological Sciences Pub Date : 2024-04-09 DOI:10.1007/s43630-024-00564-z
Beng Jiong Ang, Nursakinah Suardi, Eugene Boon Beng Ong, Siti Nur Hazieqah Khasim, Sylvester Jande Gemanam, Iskandar Shahrim Mustafa, Jing Heng Fong
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Abstract

Impedance spectroscopy was employed to assess the electrical properties of yeast following 405 nm laser irradiation, exploring the effects of visible, non-ionizing laser-induced inactivation as a more selective and safer alternative for photoinactivation applications compared to the use of DNA targeting, ionizing UV light. Capacitance and impedance spectra were obtained for yeast suspensions irradiated for 10, 20, 30, and 40 min using 100 and 200 mW laser powers. Noticeable differences in capacitance spectra were observed at lower frequencies (40 Hz to 1 kHz), with a significant increase at 40 min for both laser powers. β-dispersion was evident in the impedance spectra in the frequency range of 10 kHz to 10 MHz. The characteristic frequency of dielectric relaxation steadily shifted to higher frequencies with increasing irradiation time, with a drastic change observed at 40 min for both laser powers. These changes signify a distinct alteration in the physical state of yeast. A yeast spot assay demonstrated a decrease in cell viability with increasing laser irradiation dose. The results indicate a correlation between changes in electrical properties, cell viability, and the efficacy of 405 nm laser-induced inactivation. Impedance spectroscopy is shown to be an efficient, non-destructive, label-free method for monitoring changes in cell viability in photobiological effect studies. The development of impedance spectroscopy-based real-time studies in photoinactivation holds promise for advancing our understanding of light-cell interactions in medical applications.

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探索阻抗光谱法在评估 405 纳米激光诱导的酿酒酵母失活中的作用
采用阻抗光谱评估了酵母在 405 nm 激光照射后的电特性,探索了可见光、非电离激光诱导失活的效果,与使用 DNA 靶向、电离紫外线相比,可见光、非电离激光诱导失活是一种选择性更强、更安全的光失活应用替代方法。使用 100 和 200 mW 激光功率对酵母悬浮液照射 10、20、30 和 40 分钟后,获得了电容和阻抗光谱。在较低频率(40 Hz 至 1 kHz)下观察到电容光谱的明显差异,在 40 分钟时,两种激光功率的电容光谱都有显著增加。在 10 kHz 至 10 MHz 的频率范围内,阻抗谱明显存在 β 分散。随着辐照时间的延长,介电弛豫的特征频率逐渐向更高的频率移动,在 40 分钟时,两种激光功率下的频率都发生了急剧变化。这些变化表明酵母的物理状态发生了明显改变。酵母光斑检测表明,随着激光照射剂量的增加,细胞存活率下降。结果表明,电特性变化、细胞存活率和 405 nm 激光诱导失活的效果之间存在相关性。阻抗光谱法是一种高效、无损、无标记的方法,可用于监测光生物效应研究中细胞活力的变化。开发基于阻抗光谱的光失活实时研究有望促进我们对医疗应用中光-细胞相互作用的理解。
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来源期刊
Photochemical & Photobiological Sciences
Photochemical & Photobiological Sciences 生物-生化与分子生物学
CiteScore
5.60
自引率
6.50%
发文量
201
审稿时长
2.3 months
期刊介绍: A society-owned journal publishing high quality research on all aspects of photochemistry and photobiology.
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