Institute for Biological Systems, National Research Council, Via Salaria Km 29.300, 00015, Monterotondo Stazione, Rome, Italy.
Institute of Plant Biology, Biological Research Centre, Temesvári Krt. 62, 6726, Szeged, Hungary.
Photochem Photobiol Sci. 2023 Jul;22(7):1625-1635. doi: 10.1007/s43630-023-00403-7. Epub 2023 Mar 19.
The distinct photochemical and electrochemical properties of single-walled carbon nanotubes (SWCNTs) boosted the research interest in nanomaterial utilization in different in vivo and in vitro photosynthetic biohybrid setups. Aiming to unravel the yet not fully understood energetic interactions between the nanotubes and photosynthetic pigment-protein assemblies in an aqueous milieu, we studied SWCNT effects on the photochemical reactions of isolated thylakoid membranes (TMs), Photosystem II (PSII)-enriched membrane fragments and light-harvesting complexes (LHCII). The SWCNTs induced quenching of the steady-state chlorophyll fluorescence in the TM-biohybrid systems with a corresponding shortening of the average fluorescence lifetimes. The effect was not related to changes in the integrity and macroorganization of the photosynthetic membranes. Moreover, we found no evidence for direct excitation energy exchange between the SWCNTs and pigment-protein complexes, since neither the steady-state nor time-resolved fluorescence of LHCII-biohybrid systems differed from the corresponding controls. The attenuation of the fluorescence signal in the TM-biohybrid systems indicates possible leakage of photosynthetic electrons toward the nanotubes that most probably occurs at the level of the PSII acceptor site. Although it is too early to speculate on the nature of the involved electron donors and intermediate states, the observed energetic interaction could be exploited to increase the photoelectron capture efficiency of natural biohybrid systems for solar energy conversion.
单壁碳纳米管 (SWCNT) 的独特光化学和电化学性质激发了人们对纳米材料在不同体内和体外光合生物混合装置中应用的研究兴趣。为了揭示纳米管与水相中的光合色素 - 蛋白复合物之间尚未完全理解的能量相互作用,我们研究了 SWCNT 对分离类囊体膜 (TM)、富含 PSII 的膜片段和光捕获复合物 (LHCII) 的光化学反应的影响。SWCNT 诱导 TM-生物混合系统中的稳态叶绿素荧光猝灭,相应地缩短了平均荧光寿命。这种效应与光合膜的完整性和宏观组织没有关系。此外,我们没有发现 SWCNT 和色素 - 蛋白复合物之间直接激发能量交换的证据,因为 LHCII-生物混合系统的稳态和时间分辨荧光与相应的对照没有区别。TM-生物混合系统中荧光信号的衰减表明,光合电子可能向纳米管泄漏,这很可能发生在 PSII 受体位点的水平。虽然现在推测涉及的电子供体和中间态的性质还为时过早,但观察到的能量相互作用可以被利用来提高天然生物混合系统对太阳能转换的光电子捕获效率。