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红海束毛藻在生物光电化学电池中产生的光电流高于其他蓝藻物种。

Trichodesmium erythraeum produces a higher photocurrent than other cyanobacterial species in bio-photo electrochemical cells.

机构信息

Grand Technion Energy Program, Technion, Haifa 32000, Israel; Schulich Faculty of Chemistry, Technion, Haifa 320000, Israel.

Department of Marine Biology, Leon H. Charney School of Marine Sciences, University of Haifa, Haifa, Israel.

出版信息

Biochim Biophys Acta Bioenerg. 2022 Nov 1;1863(8):148910. doi: 10.1016/j.bbabio.2022.148910. Epub 2022 Aug 6.

DOI:10.1016/j.bbabio.2022.148910
PMID:35944660
Abstract

The increase in world energy consumption, and the worries from potential future disasters that may derive from climate change have stimulated the development of renewable energy technologies. One promising method is the utilization of whole photosynthetic cyanobacterial cells to produce photocurrent in a bio-photo electrochemical cell (BPEC). The photocurrent can be derived from either the respiratory or photosynthetic pathways, via the redox couple NADP/NADPH mediating cyclic electron transport between photosystem I inside the cells, and the anode. In the past, most studies have utilized the fresh-water cyanobacterium Synechocystis sp. PCC 6803 (Syn). Here, we show that the globally important marine cyanobacterium Trichodesmium erythraeum flourishing in the subtropical oceans can provide improved currents as compared to Syn. We applied 2D-fluorescence measurements to detect the secretion of NADPH and show that the resulting photocurrent production is enhanced by increasing the electrolyte salinity, Further enhancement of the photocurrent can be obtained by the addition of electron mediators such as NAD, NADP, cytochrome C, vitamin B1, or potassium ferricyanide. Finally, we produce photocurrent from additional cyanobacterial species: Synechocystis sp. PCC6803, Synechococcus elongatus PCC7942, Acaryochloris marina MBIC 11017, and Spirulina, using their cultivation media as electrolytes for the BPEC.

摘要

世界能源消耗的增加,以及气候变化可能带来的潜在未来灾难的担忧,刺激了可再生能源技术的发展。一种很有前途的方法是利用整个光合蓝细菌细胞在生物光电化学电池(BPEC)中产生光电流。光电流可以来自呼吸或光合作用途径,通过在细胞内的光合系统 I 和阳极之间的氧化还原偶联 NADP/NADPH 介导循环电子传递。过去,大多数研究都利用淡水蓝藻集胞藻 PCC 6803(Syn)。在这里,我们表明,在亚热带海洋中大量存在的海洋蓝藻红海束毛藻可以提供比 Syn 更高的电流。我们应用 2D-荧光测量来检测 NADPH 的分泌,并表明通过增加电解质盐度可以增强光电流的产生。通过添加电子介体,如 NAD、NADP、细胞色素 C、维生素 B1 或铁氰化钾,可以进一步增强光电流。最后,我们使用其他蓝藻物种的培养液作为 BPEC 的电解质,从集胞藻 PCC6803、聚球藻 PCC7942、海杆菌 MBIC 11017 和螺旋藻中产生光电流。

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