Please use this identifier to cite or link to this item: http://earsiv.odu.edu.tr:8080/xmlui/handle/11489/5355
Title: Arabinose biosynthesis is critical for salt stress tolerance in Arabidopsis
Authors: Zhao, Chunzhao
Zayed, Omar
Zeng, Fansuo
Liu, Chaoxian
Zhang, Ling
Zhu, Peipei
Hsu, Chuan-Chih
Tuncil, Yunus E.
Tao, W. Andy
Carpita, Nicholas C.
Zhu, Jian-Kang
Ordu Üniversitesi
0000-0002-7100-1401
0000-0002-9421-2332
0000-0001-5134-731X
0000-0003-0770-314X
0000-0003-0284-2095
0000-0003-1388-1903
0000-0003-4508-022X
0000-0002-3237-4651
0000-0002-2708-1176
Keywords: Arabidopsis, arabinogalactan protein, arabinose, cell wall integrity, root elongation, salt stress
UDP-SUGAR PYROPHOSPHORYLASE, CELL-WALL, ARABINOGALACTAN-PROTEINS, RHAMNOGALACTURONAN-II, REB1-1 MUTATION, GENE FAMILY, GALACTOSE, ROOT, IDENTIFICATION, KINASE
Issue Date: 2019
Publisher: WILEY-HOBOKEN
Citation: Zhao, CZ., Zayed, O., Zeng, FS., Liu, CX., Zhang, L., Zhu, PP., Hsu, CC., Tuncil, YE., Tao, WA., Carpita, NC., Zhu, JK. (2019). Arabinose biosynthesis is critical for salt stress tolerance in Arabidopsis. New Phytol., 224(1), 274-290. https://doi.org/10.1111/nph.15867
Abstract: The capability to maintain cell wall integrity is critical for plants to adapt to unfavourable conditions. l-Arabinose (Ara) is a constituent of several cell wall polysaccharides and many cell wall-localised glycoproteins, but so far the contribution of Ara metabolism to abiotic stress tolerance is still poorly understood. Here, we report that mutations in the MUR4 (also known as HSR8) gene, which is required for the biosynthesis of UDP-Arap in Arabidopsis, led to reduced root elongation under high concentrations of NaCl, KCl, NaNO3, or KNO3. The short root phenotype of the mur4/hsr8 mutants under high salinity is rescued by exogenous Ara or gum arabic, a commercial product of arabinogalactan proteins (AGPs) from Acacia senegal. Mutation of the MUR4 gene led to abnormal cell-cell adhesion under salt stress. MUR4 forms either a homodimer or heterodimers with its isoforms. Analysis of the higher order mutants of MUR4 with its three paralogues, MURL, DUR, MEE25, reveals that the paralogues of MUR4 also contribute to the biosynthesis of UDP-Ara and are critical for root elongation. Taken together, our work revealed the importance of the Ara metabolism in salt stress tolerance and also provides new insights into the enzymes involved in the UDP-Ara biosynthesis in plants.
Description: WoS Categories: Plant Sciences
Web of Science Index: Science Citation Index Expanded (SCI-EXPANDED)
Research Areas: Plant Sciences
URI: http://dx.doi.org/10.1111/nph.15867
https://www.webofscience.com/wos/woscc/full-record/WOS:000482928700025
http://earsiv.odu.edu.tr:8080/xmlui/handle/11489/5355
ISSN: 0028-646X
1469-8137
Appears in Collections:Gıda Mühendisliği

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