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在高蒸汽压亏缺(VPD)胁迫下,光照强度通过优化光系统机制来调节光合作用。

Light intensity moderates photosynthesis by optimizing photosystem mechanisms under high VPD stress.

作者信息

Wang Wei, Li Bo, Zhao Xiaofan, Zhang Shuhui, Li Jianming

机构信息

College of Horticulture, Northwest A&F University, Yangling, Shaanxi, 712100, China; Key Laboratory of Protected Horticultural Engineering in Northwest, Ministry of Agriculture, Yangling, Shaanxi, 712100, China; Shaanxi Protected Agriculture Research Centre, Yangling, Shaanxi, 712100, China.

出版信息

Plant Physiol Biochem. 2025 Jan;218:109322. doi: 10.1016/j.plaphy.2024.109322. Epub 2024 Nov 20.

Abstract

In recent decades, the global increase in vapor pressure deficit (VPD) has significantly inhibited plant growth and photosynthesis. Light intensity, a crucial environmental regulator, plays a vital role in stress response and photosynthetic adjustment. This study investigated whether increasing light intensity under high VPD conditions could optimise the photosystem and thereby enhance photosynthesis. We designed experiments using factorial combinations of two VPD levels (HVPD; high VPD, AVPD; appropriate VPD) and two irradiance gradients (L300; 300 μmol photons m s, L600; 600 μmol photons m s). Under high VPD, plants protect their photosystems by reducing light energy absorption and limiting photosynthetic electron flow, which results in reduced photosynthesis. However, when exposed to HVPD + L600, plants exhibited increased light energy absorption, as evidenced by elevated chlorophyll b and carotenoid levels, enhanced response to irradiance, and decreased NPQ and Y(NO). This regimen also enhanced photosynthetic electron transport by increasing the total driving force and plastoquinone pool, consequently improving the photochemical efficiency of the photosystem and ultimately boosting the net photosynthetic rate by 46.9%. This study confirmed that modulating light intensity under high VPD stress can improve photosynthesis by optimizing the photosystem. This novel approach can be utilized to enhance tomato production in arid regions.

摘要

近几十年来,全球蒸汽压亏缺(VPD)的增加显著抑制了植物生长和光合作用。光强作为一个关键的环境调节因子,在胁迫响应和光合调节中起着至关重要的作用。本研究调查了在高VPD条件下增加光强是否能优化光系统,从而增强光合作用。我们设计了实验,采用两种VPD水平(HVPD;高VPD,AVPD;适宜VPD)和两个辐照度梯度(L300;300 μmol光子·m⁻²·s⁻¹,L600;600 μmol光子·m⁻²·s⁻¹)的析因组合。在高VPD条件下,植物通过减少光能吸收和限制光合电子流来保护其光系统,这导致光合作用降低。然而,当暴露于HVPD + L600时,植物表现出光能吸收增加,叶绿素b和类胡萝卜素水平升高、对辐照度的响应增强以及非光化学淬灭(NPQ)和Y(NO)降低证明了这一点。该处理方案还通过增加总驱动力和质体醌库增强了光合电子传递,从而提高了光系统的光化学效率,并最终使净光合速率提高了46.9%。本研究证实,在高VPD胁迫下调节光强可以通过优化光系统来提高光合作用。这种新方法可用于提高干旱地区的番茄产量。

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