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利用转基因技术提高光合作用的耐热性。

Transgenic strategies to improve the thermotolerance of photosynthesis.

机构信息

School of Life Sciences, University of Essex, Colchester, CO4 3SQ, UK.

Carl R. Woese Institute for Genomic Biology, University of Illinois, Urbana, IL, 61801, USA.

出版信息

Photosynth Res. 2023 Nov;158(2):109-120. doi: 10.1007/s11120-023-01024-y. Epub 2023 Jun 5.

Abstract

Warming driven by the accumulation of greenhouse gases in the atmosphere is irreversible over at least the next century, unless practical technologies are rapidly developed and deployed at scale to remove and sequester carbon dioxide from the atmosphere. Accepting this reality highlights the central importance for crop agriculture to develop adaptation strategies for a warmer future. While nearly all processes in plants are impacted by above optimum temperatures, the impact of heat stress on photosynthetic processes stand out for their centrality. Here, we review transgenic strategies that show promise in improving the high-temperature tolerance of specific subprocesses of photosynthesis and in some cases have already been shown in proof of concept in field experiments to protect yield from high temperature-induced losses. We also highlight other manipulations to photosynthetic processes for which full proof of concept is still lacking but we contend warrant further attention. Warming that has already occurred over the past several decades has had detrimental impacts on crop production in many parts of the world. Declining productivity presages a rapidly developing global crisis in food security particularly in low income countries. Transgenic manipulation of photosynthesis to engineer greater high-temperature resilience holds encouraging promise to help meet this challenge.

摘要

在未来至少一个世纪内,大气中温室气体的积累所导致的变暖是不可逆转的,除非实用技术能够迅速开发并大规模应用,以从大气中去除和隔离二氧化碳。接受这一现实,凸显了作物农业制定适应未来变暖策略的核心重要性。虽然植物的几乎所有过程都受到最佳温度以上的影响,但热应激对光合作用过程的影响因其核心地位而引人注目。在这里,我们回顾了一些转基因策略,这些策略显示出了在提高光合作用特定子过程的高温耐受性方面的前景,在某些情况下,这些策略已经在现场实验中得到了概念验证,以保护产量免受高温引起的损失。我们还强调了其他对光合作用过程的操纵,这些操纵仍然缺乏充分的概念验证,但我们认为值得进一步关注。过去几十年的变暖已经对世界许多地区的作物生产产生了不利影响。生产力下降预示着全球粮食安全危机迅速发展,特别是在低收入国家。通过转基因手段操纵光合作用以提高高温抗性,为应对这一挑战带来了令人鼓舞的前景。

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