植物光合作用的新兴研究。

IF 3.4 Q2 BIOCHEMISTRY & MOLECULAR BIOLOGY
Thomas D Sharkey
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引用次数: 11

摘要

光合作用包括捕获光能,并将其转化为化学能,以还原碳的形式储存。它是食物、燃料和纤维的来源,人们对光合作用的基础研究重新产生了兴趣。植物能很好地利用可见光能量;叶子非常适合优化光的利用,因为每投入的材料面积很大,而且叶子的角度也很大,可以优化光的利用。人们认为植物不利用绿光,但事实上,在某些条件下,植物利用绿光比利用蓝光要好。树叶也有防止过度光照的机制,这些机制如何在随机光照环境中发挥作用是目前研究的一个非常活跃的领域。最近,科学家们对叶片首次暴露于光下时光合作用开始的速度、保护机制的诱导速度,以及当光照水平下降时保护机制消散的速度进行了探索。研究还集中在减少浪费的过程,如光呼吸,当氧气而不是二氧化碳被使用。据报道,在改变光呼吸过程中碳的路径方面取得了一些成功,但仔细观察,似乎有一些不可预见的影响促成了这一好消息。光反应与碳代谢相互作用的化学计量学是刚性的,时间常数变化很大,对调节机制提出了很大的挑战。调控机制将是未来一段时间光合作用研究的主题。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Emerging research in plant photosynthesis.

Photosynthesis involves capturing light energy and, most often, converting it to chemical energy stored as reduced carbon. It is the source of food, fuel, and fiber and there is a resurgent interest in basic research on photosynthesis. Plants make excellent use of visible light energy; leaves are ideally suited to optimize light use by having a large area per amount of material invested and also having leaf angles to optimize light utilization. It is thought that plants do not use green light but in fact they use green light better than blue light under some conditions. Leaves also have mechanisms to protect against excess light and how these work in a stochastic light environment is currently a very active area of current research. The speed at which photosynthesis can begin when leaves are first exposed to light and the speed of induction of protective mechanisms, as well as the speed at which protective mechanisms dissipate when light levels decline, have recently been explored. Research is also focused on reducing wasteful processes such as photorespiration, when oxygen instead of carbon dioxide is used. Some success has been reported in altering the path of carbon in photorespiration but on closer inspection there appears to be unforeseen effects contributing to the good news. The stoichiometry of interaction of light reactions with carbon metabolism is rigid and the time constants vary tremendously presenting large challenges to regulatory mechanisms. Regulatory mechanisms will be the topic of photosynthesis research for some time to come.

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来源期刊
CiteScore
7.70
自引率
0.00%
发文量
94
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