Lei Zheng, Mingyu Su, Chao Liu, Liang Chen, Hao Huang, Xiao Wu, Xiaoqing Liu, Fan Yang, Fengqing Gao, Fashui Hong
College of Life Sciences, Suzhou University, Suzhou 215123, People's Republic of China.
Biol Trace Elem Res. 2007 Oct;119(1):68-76. doi: 10.1007/s12011-007-0047-3.
With a photocatalyzed characteristic, nanoanatase TiO2 under light could cause an oxidation-reduction reaction. Our studies had proved that nano-TiO2 could promote photosynthesis and greatly improve spinach growth. However, the mechanism of nano-TiO2 on promoting conversion from light energy to electron energy and from electron energy to active chemistry energy remains largely unclear. In this study, we report that the electron transfer, oxygen evolution, and photophosphorylation of chloroplast (Chl) from nanoanatase-TiO2-treated spinach were greatly increased under visible light and ultraviolet light illumination. It was demonstrated that nanoanatase TiO2 could greatly improve whole chain electron transport, photoreduction activity of photosystem II, O2-evolving and photophosphorylation activity of spinach Chl not only under visible light, but also energy-enriched electron from nanoanatase TiO2, which entered Chl under ultraviolet light and was transferred in photosynthetic electron transport chain and made NADP+ be reduced into NADPH, and coupled to photophosphorylation and made electron energy be transformed to ATP. Moreover, nanoanatase h+, which photogenerated electron holes, captured an electron from water, which accelerated water photolysis and O2 evolution.
纳米锐钛矿型TiO₂具有光催化特性,在光照下可引发氧化还原反应。我们的研究已证明,纳米TiO₂能促进光合作用并极大地促进菠菜生长。然而,纳米TiO₂促进光能向电能以及电能向活性化学能转化的机制仍 largely不清楚。在本研究中,我们报道在可见光和紫外光照射下,经纳米锐钛矿型TiO₂处理的菠菜叶绿体(Chl)的电子传递、放氧和光磷酸化显著增加。结果表明,纳米锐钛矿型TiO₂不仅在可见光下,而且在紫外光下都能极大地改善菠菜Chl的全链电子传递、光系统II的光还原活性、放氧和光磷酸化活性,来自纳米锐钛矿型TiO₂的能量富集电子在紫外光下进入Chl,并在光合电子传递链中传递,使NADP⁺还原为NADPH,并与光磷酸化偶联,使电子能量转化为ATP。此外,光生电子空穴的纳米锐钛矿型h⁺从水中捕获一个电子,加速了水的光解和氧气释放。