IF 3.2 3区 生物学 Q1 BIOLOGY
Life-Basel Pub Date : 2025-02-14 DOI:10.3390/life15020299
Xiangyi Yuan, Xuejing Xu, Xuemin Gao, Xiangxiao Liu, Bo Liang, Guodong Luan, Xuefeng Lu
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引用次数: 0

摘要

太阳能光伏技术一直被视为未来清洁能源系统发展的重要方向。生物光伏(BPV)作为一种新兴的太阳能利用技术,主要是基于光自养生物的光合作用过程,通过胞外电子转移将太阳能转化为电能并输出光电流。作为生物光伏系统的基本单元,光合微生物在波动和应激光热条件下的稳定性很可能对生物光伏装置的效率产生重要影响。然而,在以往的生物光伏研究中,这方面的研究往往被忽视。本研究以一种重要的蓝藻底盘菌株 Synechoc elongatus PCC 7942 为模式生物,探讨了生理稳健性优化对其作为生物光伏功能单元性能的影响。这项工作组装了两种生物光电系统,即悬浮模式和生物膜附着模式,以评估Synechococcus细胞的发电活性。总的来说,后者的光电输出性能非常显著。当通过 FoF1-ATP 合成酶工程增强其耐光性和耐温性时,优化后的 Synechococcus 菌株表现出更强的光合生理功能和光电输出活性。在光照强度为 2400 μmol 光子/平方米/秒的条件下,基于 Synechococcus 的 BPV 设备的最大光电流输出比基于野生型对照菌株的系统显著提高了 41%。这项研究结果为生物光电技术的未来发展和优化提供了新的视角。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Enhancing the Cellular Robustness of Cyanobacteria to Improve the Stability and Efficiency of Bio-Photovoltaics.

Solar photovoltaic technology has consistently been regarded as a crucial direction for the development of clean energy systems in the future. Bio-photovoltaics (BPV), an emerging solar energy utilization technology, is mainly based on the photosynthesis process of photoautotrophic organisms to convert solar energy into electrical energy and output a photocurrent via extracellular electron transfer. As the fundamental unit of the bio-photovoltaic system, the stability of photosynthetic microorganisms under fluctuating and stressful light and heat conditions is likely to have a significant influence on the efficiency of bio-photovoltaic devices. However, this aspect has often been overlooked in previous bio-photovoltaics research. This study took an important cyanobacteria chassis strain, Synechococ elongatus PCC 7942, as the model organism and explored the impact of physiological robustness optimization on its performance as a bio-photovoltaic functional unit. In this work, two types of BPV systems, namely the suspension mode and the biofilm attachment mode, were assembled to evaluate the electricity-generating activity of Synechococcus cells. Overall, the latter demonstrated a remarkable photoelectric output performance. When its light and temperature tolerance was enhanced through FoF1-ATP synthase engineering, the optimized Synechococcus strain exhibited stronger photosynthetic physiology and photoelectric output activity. Under the condition of a light intensity of 2400 μmol photons/m2/s, the maximum photocurrent output of the Synechococcus-based BPV device was increased significantly by 41% over the system based on the wild-type control strain. The results of this study provided a new perspective for the future development and optimization of bio-photovoltaics.

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来源期刊
Life-Basel
Life-Basel Biochemistry, Genetics and Molecular Biology-General Biochemistry,Genetics and Molecular Biology
CiteScore
4.30
自引率
6.20%
发文量
1798
审稿时长
11 weeks
期刊介绍: Life (ISSN 2075-1729) is an international, peer-reviewed open access journal of scientific studies related to fundamental themes in Life Sciences, especially those concerned with the origins of life and evolution of biosystems. Our aim is to encourage scientists to publish their experimental and theoretical results in as much detail as possible. There is no restriction on the length of the papers.
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