Department of Medical Physics and Informatics, University of Szeged, Rerrich B. tér 1., 6720, Szeged, Hungary.
LAAS-MEMS - Laboratory for Analysis and Architecture of Systems-Microelectromechanical Systems, 7 avenue du Colonel Roche, 31031, Toulouse, France.
Photochem Photobiol Sci. 2022 Jan;21(1):13-22. doi: 10.1007/s43630-021-00121-y. Epub 2021 Oct 30.
Photosynthetic biomaterials have attracted considerable attention at different levels of the biological organisation, from molecules to the biosphere, due to a variety of artificial application possibilities. During photosynthesis, the first steps of the conversion of light energy into chemical energy take place in a pigment-protein complex, called reaction centre (RC). In our experiments photosynthetic reaction centre protein, purified from Rhodobacter sphaeroides R-26 purple bacteria, was bound to porous silicon pillars (PSiP) after the electropolymerisation of aniline onto the surface. This new type of biohybrid material showed remarkable photoactivity in terms of measured photocurrent under light excitation in an electrochemical cell. The photocurrent was found to increase considerably after the addition of ubiquinone (UQ-0), an e-acceptor mediator of the RC. The photoactivity of the complex was found to decrease by the addition of terbutryn, the chemical which inhibits the e-transport on the acceptor side of the RC. In addition to the generation of sizeable light-induced photocurrents, using the PSiP/RC photoactive hybrid nanocomposite material, the system was found to be sensitive towards RC inhibitors and herbicides. This highly ordered patterned 3D structure opens new solution for designing low-power (bio-)optoelectronic, biophotonic and biosensing devices.
光合生物材料由于其在各种人工应用方面的可能性,在从分子到生物圈的不同生物组织层次上都引起了相当大的关注。在光合作用中,光能转化为化学能的最初步骤发生在一种叫做反应中心 (RC) 的色素-蛋白复合物中。在我们的实验中,从红细菌 Rhodobacter sphaeroides R-26 中纯化的光合反应中心蛋白在苯胺聚合到表面后被绑定到多孔硅柱 (PSiP) 上。这种新型的生物杂化材料在电化学池中的光激发下测量到的光电流方面表现出显著的光活性。发现光电流在添加电子受体介体 RC 上的 UQ-0(泛醌)后大大增加。发现添加 RC 受体侧上的电子传递抑制剂特丁津会降低复合物的光活性。除了产生可观的光诱导光电流外,使用 PSiP/RC 光活性杂化纳米复合材料,该系统对 RC 抑制剂和除草剂也很敏感。这种高度有序的图案化 3D 结构为设计低功耗(生物)光电、生物光子学和生物传感设备开辟了新的解决方案。