Saga Yoshitaka, Hamanishi Kohei, Yamamoto Tetsuya, Hinago Kazuki, Nagasawa Yutaka
Department of Chemistry, Faculty of Science and Engineering, Kindai University, Higashio̅saka 577-8502, Osaka, Japan.
Graduate School of Life Sciences, Ritsumeikan University, Kusatsu 525-8577, Shiga, Japan.
J Phys Chem B. 2023 Mar 30;127(12):2683-2689. doi: 10.1021/acs.jpcb.2c08887. Epub 2023 Mar 15.
The spectral features of energy donors and acceptors and the relationship between them in photosynthetic light-harvesting proteins are crucial for photofunctions of these proteins. Engineering energy donors and acceptors in light-harvesting proteins affords the means to increase our understanding of their photofunctional mechanisms. Herein, we demonstrate the conversion of energy-donating B800 bacteriochlorophyll (BChl) to 3-acetyl chlorophyll (AcChl) in light-harvesting complex 3 (LH3) from by oxidation with 2,3-dichloro-5,6-dicyano-1,4-benzoquinone. AcChl in the B800 site exhibited a Q band that was 111 nm blue-shifted with respect to BChl in oxidized LH3. The structure of LH3 was barely influenced by the oxidation process, based on circular dichroism spectroscopy and size-exclusion chromatography evidence. In oxidized LH3, AcChl transferred excitation energy to B820 BChl , but the rate of excitation energy transfer (EET) was lower than in native LH3. The intracomplex EET in oxidized LH3 was slightly faster than in oxidized light-harvesting complex 2 (LH2). This difference is rationalized by an increase in overlap of the luminescence band of AcChl with the long tail of the B820 absorption band in oxidized LH3 compared with that of the B850 band in oxidized LH2.
光合捕光蛋白中能量供体和受体的光谱特征及其相互关系对于这些蛋白的光功能至关重要。对捕光蛋白中的能量供体和受体进行工程改造为增进我们对其光功能机制的理解提供了手段。在此,我们展示了通过用2,3 - 二氯 - 5,6 - 二氰基 - 1,4 - 苯醌氧化,将捕光复合物3(LH3)中供能的B800细菌叶绿素(BChl)转化为3 - 乙酰基叶绿素(AcChl)。B800位点的AcChl呈现出一个Q带,相对于氧化型LH3中的BChl,该Q带发生了111 nm的蓝移。基于圆二色光谱和尺寸排阻色谱证据,LH3的结构几乎未受氧化过程的影响。在氧化型LH3中,AcChl将激发能转移至B820 BChl,但激发能转移(EET)速率低于天然LH3。氧化型LH3中的复合物内EET比氧化型捕光复合物2(LH2)中的略快。与氧化型LH2中的B850带相比,氧化型LH3中AcChl的发光带与B820吸收带的长尾巴的重叠增加,这解释了这种差异。