Photosynthesis of rice leaves with a parallel venation is highly tolerant to vein severing

Author:

Du Tingting1ORCID,Ling Xiaoxia1,Huang Jianliang1ORCID,Peng Shaobing1,Xiong Dongliang1ORCID

Affiliation:

1. National Key Laboratory of Crop Genetic Improvement, Hubei Hongshan Laboratory, MOA Key Laboratory of Crop Ecophysiology and Farming System in the Middle Reaches of the Yangtze River College of Plant Science and Technology, Huazhong Agricultural University Wuhan Hubei China

Abstract

AbstractVein severing in plants caused by leaf damage is common in fields where crops are cultivated. It is hypothesized that leaves with complex reticulate venation can withstand hydraulic disturbances caused by vein severing, thereby preserving leaf carbon assimilation. However, limited research focuses on vein damage of leaves with parallel venation. We studied how vein‐severing affected the photosynthetic traits of rice (Oryza sativa) leaves in seconds, minutes and days, under varying water‐demand conditions and differing extents of water supply disruption. Rice leaves completely lost their photosynthetic capacity within 2.5 minutes after excision. Severing the midrib resulted in reduced light‐saturated photosynthetic rate (A), stomatal conductance (gsw) and transpiration rate (E) by 2.6, 6.8 and 5.9%, respectively, already after thirty minutes. We further investigated the photosynthetic trait responses to various extents of leaf width severing, while keeping the midrib functional. Surprisingly, A, gsw and E in the downstream area of the severed leaves largely remained stable, showing minimal variation across different leaf width severing ratios. These traits declined only slightly even under increased ambient light intensity and leaf‐to‐air vapor pressure deficit. This sustained photosynthesis post‐severing is attributed to the efficient lateral water transport. Long‐term leaf damage slightly but not significantly, impacted the downstream photosynthetic traits within five days post‐severing. However, a more pronounced reduction in gas exchange during leaf senescence was observed nine days after severing. These findings suggested that rice leaves can tolerate hydraulic disturbances from vein severing and maintain functionality under various conditions, which is crucial for crop yield stability. However, long‐term consequences require further investigation.

Funder

National Natural Science Foundation of China

China Agricultural Research System

Publisher

Wiley

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