Potassium availability influences the mesophyll structure to coordinate the conductance of CO2 and H2O during leaf expansion

光合作用 木质部 电导 叶绿体 生物 植物 气孔导度 维管束 芸苔属 生物物理学 导水率 化学 园艺 生物化学 生态学 物理 土壤水分 有机化学 基因 凝聚态物理
作者
Wenshi Hu,Zhifeng Lu,Hehe Gu,Xiaolei Ye,Xiaokun Li,Rihuan Cong,Tao Ren,Jianwei Lu
出处
期刊:Plant Cell and Environment [Wiley]
卷期号:45 (10): 2987-3000 被引量:9
标识
DOI:10.1111/pce.14405
摘要

Leaf growth relies on photosynthesis and hydraulics to provide carbohydrates and expansion power; in turn, leaves intercept light and construct organism systems for functioning. Under potassium (K) deficiency stress, leaf area, photosynthesis and hydraulics are all affected by alterations in leaf structure. However, the connection between changes in leaf growth and function caused by the structure under K regulation is unclear. Consequently, the leaf hydraulic conductance (Kleaf ) and photosynthetic rate (A) combined with leaf anatomical characteristics of Brassica napus were continuously observed during leaf growth under different K supply levels. The results showed that Kleaf and A decreased simultaneously after leaf area with the increasing K deficiency stress. K deficiency significantly increased longitudinal mesophyll cell investment, leading to a reduced volume fraction of intercellular air-space (fias ) and decreased leaf expansion rate. Furthermore, reduced fias decreased mesophyll and chloroplast surfaces exposed to intercellular airspace and gas phase H2 O transport, which induced coordinated changes in CO2 mesophyll conductance and hydraulic conductance in extra-xylem pathways. Adequate K supply facilitated higher fias through smaller palisade tissue cell density (loose mesophyll cell arrangement) and smaller spongy tissue cell size, which coordinated CO2 and H2 O conductance and promoted leaf area expansion.
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