Literature DB >> 35312771

Impaired auxin signaling increases vein and stomatal density but reduces hydraulic efficiency and ultimately net photosynthesis.

Moab T Andrade1, Leonardo A Oliveira1, Talitha S Pereira1, Amanda A Cardoso2, Willian Batista-Silva1, Fábio M DaMatta1, Agustín Zsögön1, Samuel C V Martins1.   

Abstract

Auxins are known to regulate xylem development in plants, but their effects on water transport efficiency are poorly known. Here we used tomato plants with the diageotropica mutation (dgt), which has impaired function of a cyclophilin 1 cis-trans isomerase involved in auxin signaling, and the corresponding wild type (WT) to explore the mutation's effects on plant hydraulics and leaf gas exchange. The xylem of the dgt mutant showed a reduced hydraulically weighted vessel diameter (Dh) (24-43%) and conduit number (25-58%) in petioles and stems, resulting in lower theoretical hydraulic conductivities (Kt); on the other hand, no changes in root Dh and Kt were observed. The measured stem and leaf hydraulic conductances of the dgt mutant were lower (up to 81%), in agreement with the Kt values; however, despite dgt and WT plants showing similar root Dh and Kt, the measured root hydraulic conductance of the dgt mutant was 75% lower. The dgt mutation increased the vein and stomatal density, which could potentially increase photosynthesis. Nevertheless, even though it had the same photosynthetic capacity as WT plants, the dgt mutant showed a photosynthetic rate c. 25% lower, coupled with a stomatal conductance reduction of 52%. These results clearly demonstrate that increases in minor vein and stomatal density only result in higher leaf gas exchange when accompanied by higher hydraulic efficiency.
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Keywords:  zzm321990 Solanum lycopersicumzzm321990 ; Auxin perception; gas exchange; water transport; xylem anatomy

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Year:  2022        PMID: 35312771     DOI: 10.1093/jxb/erac119

Source DB:  PubMed          Journal:  J Exp Bot        ISSN: 0022-0957            Impact factor:   7.298


  1 in total

1.  Consequences of saline-dry conditions to the soil-plant-air continuum.

Authors:  Amanda A Cardoso
Journal:  Plant Physiol       Date:  2022-09-28       Impact factor: 8.005

  1 in total

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