Su Mingyu, Hong Fashui, Liu Chao, Wu Xiao, Liu Xiaoqing, Chen Liang, Gao Fengqing, Yang Fan, Li Zhongrui
College of Life Sciences, Suzhou University, Suzhou, PR China.
Biol Trace Elem Res. 2007 Aug;118(2):120-30. doi: 10.1007/s12011-007-0006-z.
The effects of nano-anatase TiO2 on light absorption, distribution, and conversion, and photoreduction activities of spinach chloroplast were studied by spectroscopy. Several effects of nano-anatase TiO2 were observed: (1) the absorption peak intensity of the chloroplast was obviously increased in red and blue region, the ratio of the Soret band and Q band was higher than that of the control; (2) the great enhancement of fluorescence quantum yield near 680 nm of the chloroplast was observed, the quantum yield under excitation wavelength of 480 nm was higher than the excitation wavelength of 440 nm; (3) the excitation peak intensity near 440 and 480 nm of the chloroplast significantly rose under emission wavelength of 680 nm, and F 480 / F 440 ratio was reduced; (4) when emission wavelength was at 720 nm, the excitation peaks near 650 and 680 nm were obviously raised, and F 650 / F 680 ratio rose; (5) the rate of whole chain electron transport, photochemical activities of PSII DCPIP photoreduction and oxygen evolution were greatly improved, but the photoreduction activities of PSI were a little changed. Together, the studies of the experiments showed that nano-anatase TiO2 could increase absorption of light on spinach chloroplast and promote excitation energy to be absorbed by LHCII and transferred to PSII and improve excitation energy from PSI to be transferred to PSII, thus, promote the conversion from light energy to electron energy and accelerate electron transport, water photolysis, and oxygen evolution.
采用光谱法研究了纳米锐钛矿型TiO₂对菠菜叶绿体光吸收、分布、转化及光还原活性的影响。观察到纳米锐钛矿型TiO₂的几种效应:(1)叶绿体在红、蓝区域的吸收峰强度明显增加,Soret带与Q带的比值高于对照;(2)观察到叶绿体在680nm附近的荧光量子产率大幅提高,480nm激发波长下的量子产率高于440nm激发波长;(3)在680nm发射波长下,叶绿体在440和480nm附近的激发峰强度显著升高,F 480 / F 440比值降低;(4)当发射波长为720nm时,650和680nm附近的激发峰明显升高,F 650 / F 680比值升高;(5)全链电子传递速率、PSII DCPIP光还原和放氧的光化学活性大大提高,但PSI的光还原活性略有变化。总之,实验研究表明,纳米锐钛矿型TiO₂可以增加菠菜叶绿体对光的吸收,促进激发能被LHCII吸收并转移到PSII,提高从PSI到PSII的激发能转移,从而促进光能向电子能的转化,加速电子传递、水光解和放氧。