Literature DB >> 32778598

Necrotic upper tips1 mimics heat and drought stress and encodes a protoxylem-specific transcription factor in maize.

Zhaobin Dong1, Zhennan Xu2, Ling Xu1, Mary Galli2, Andrea Gallavotti2, Hugo K Dooner3, George Chuck4.   

Abstract

Maintaining sufficient water transport during flowering is essential for proper organ growth, fertilization, and yield. Water deficits that coincide with flowering result in leaf wilting, necrosis, tassel browning, and sterility, a stress condition known as "tassel blasting." We identified a mutant, necrotic upper tips1 (nut1), that mimics tassel blasting and drought stress and reveals the genetic mechanisms underlying these processes. The nut1 phenotype is evident only after the floral transition, and the mutants have difficulty moving water as shown by dye uptake and movement assays. These defects are correlated with reduced protoxylem vessel thickness that indirectly affects metaxylem cell wall integrity and function in the mutant. nut1 is caused by an Ac transposon insertion into the coding region of a unique NAC transcription factor within the VND clade of Arabidopsis NUT1 localizes to the developing protoxylem of root, stem, and leaf sheath, but not metaxylem, and its expression is induced by flowering. NUT1 downstream target genes function in cell wall biosynthesis, apoptosis, and maintenance of xylem cell wall thickness and strength. These results show that maintaining protoxylem vessel integrity during periods of high water movement requires the expression of specialized, dynamically regulated transcription factors within the vasculature.

Entities:  

Keywords:  flowering; maize; protoxylem; vasculature; water transport

Mesh:

Substances:

Year:  2020        PMID: 32778598      PMCID: PMC7456077          DOI: 10.1073/pnas.2005014117

Source DB:  PubMed          Journal:  Proc Natl Acad Sci U S A        ISSN: 0027-8424            Impact factor:   11.205


  63 in total

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Authors:  N G Taylor; W R Scheible; S Cutler; C R Somerville; S R Turner
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2.  Dissection of Maize Drought Tolerance at the Flowering Stage Using Genome-Wide Association Studies.

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4.  A Genome-Wide Association Study Dissects the Genetic Architecture of the Metaxylem Vessel Number in Maize Brace Roots.

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8.  Linkage Mapping Reveals QTL for Flowering Time-Related Traits under Multiple Abiotic Stress Conditions in Maize.

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9.  Transcriptomic and physiological responses of contrasting maize genotypes to drought stress.

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  9 in total

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