Mesophyll conductance limits photosynthesis and relates to anatomical traits in high-elevation plants in the Andes

IF 4.5 2区 生物学 Q2 ENVIRONMENTAL SCIENCES Environmental and Experimental Botany Pub Date : 2024-07-26 DOI:10.1016/j.envexpbot.2024.105916
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Abstract

Plants face harsher conditions with increasing elevation, including shorter growing seasons, lower temperatures, and reduced gas pressure. This often leads to increased leaf mass per area, suggesting greater limitation to photosynthesis due to decreased mesophyll conductance. However, some species maintain consistent photosynthetic rates at higher elevations, suggesting compensatory mechanisms. In the central Chile Andes, high-elevation habitats present cold temperatures with no soil moisture deficits, whereas low-elevations experience warm temperatures and summer droughts. Zonal plants adapt to these changes, whereas azonal plants grow near water sources and avoid drought. We assessed how elevation affects photosynthesis and its limitations in these plant-types, together with the role of leaf internal anatomy. This was done with gas exchange and chlorophyll fluorescence analyses, along with measurements of leaf inner structure, on zonal and azonal species growing at 2600 and 3550 m a.s.l. Results showed that whilst photosynthesis decreased with elevation in azonal plants, zonal plants showed no change, with mesophyll conductance being a primary limitation, influenced by chloroplast arrangement rather that cell wall thickness. This affects carbon acquisition in high-elevation plants due to low gas pressure and light availability.

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叶绿体中层传导限制光合作用,与安第斯山脉高海拔植物的解剖特征有关
随着海拔的升高,植物面临的条件会更加恶劣,包括生长季节缩短、温度降低和气压降低。这通常会导致单位面积叶片质量增加,表明由于叶肉传导性降低,光合作用受到更大限制。不过,有些物种在海拔较高的地方仍能保持稳定的光合速率,这表明它们具有补偿机制。在智利安第斯山脉中部,高海拔栖息地气温寒冷,但土壤不缺水,而低海拔地区气温温暖,夏季干旱。带状植物适应这些变化,而偶氮植物则生长在水源附近,避免干旱。我们评估了海拔如何影响这些植物类型的光合作用及其局限性,以及叶片内部解剖结构的作用。我们对生长在海拔 2600 米和 3550 米的地带性和偶氮类植物进行了气体交换和叶绿素荧光分析,并对叶片内部结构进行了测量。结果表明,虽然偶氮类植物的光合作用会随着海拔的升高而降低,但地带性植物的光合作用没有变化,叶绿体间质传导是主要的限制因素,受叶绿体排列而非细胞壁厚度的影响。由于气体压力低和光照不足,这影响了高海拔植物的碳获取。
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来源期刊
Environmental and Experimental Botany
Environmental and Experimental Botany 环境科学-环境科学
CiteScore
9.30
自引率
5.30%
发文量
342
审稿时长
26 days
期刊介绍: Environmental and Experimental Botany (EEB) publishes research papers on the physical, chemical, biological, molecular mechanisms and processes involved in the responses of plants to their environment. In addition to research papers, the journal includes review articles. Submission is in agreement with the Editors-in-Chief. The Journal also publishes special issues which are built by invited guest editors and are related to the main themes of EEB. The areas covered by the Journal include: (1) Responses of plants to heavy metals and pollutants (2) Plant/water interactions (salinity, drought, flooding) (3) Responses of plants to radiations ranging from UV-B to infrared (4) Plant/atmosphere relations (ozone, CO2 , temperature) (5) Global change impacts on plant ecophysiology (6) Biotic interactions involving environmental factors.
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