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Enhanced Drought and Salt Stress Tolerance in Arabidopsis by Flavobacterium crocinum HYN0056T

Authors
Kim, Jeong‑eunWoo, Og‑GeumBae, YoowonKeum, Hye LimChung, SunglanSul, Woo JunLee, Jae‑Hoon
Issue Date
Feb-2020
Publisher
Springer
Keywords
Arabidopsis; Drought stress; Flavobacterium crocinum HYN0056T; PGPB; Salt stress
Citation
Journal of Plant Biology, v.63, no.1, pp 63 - 71
Pages
9
Journal Title
Journal of Plant Biology
Volume
63
Number
1
Start Page
63
End Page
71
URI
https://scholarworks.bwise.kr/cau/handle/2019.sw.cau/38596
DOI
10.1007/s12374-020-09236-8
ISSN
1226-9239
1867-0725
Abstract
Plant growth-promoting bacteria (PGPB) are indigenous to the plant rhizosphere and largely affect many events occurring during the plant life cycle, through either a direct or an indirect mechanism such as regulation of hormonal balance, facilitation of nutrients uptake and improvement of stress tolerance. Since drought stress, a representative abiotic stress, is one of the main reasons limiting plant growth, the identification of useful PGPB involved in drought stressresistance in plants and its application into the agricultural field could be utilized as a strategy to facilitate crop productivity. To obtain a useful PGPB that is involved in drought stress resistance, we checked the expression patterns of drought-inducible marker genes such as RD29A and RAB18 in Arabidopsis after application of 16 Flavobateria obtained from various environmental sources. After screening, a PGPB known as Flavobacterium crocinum HYN0056T, which contributes to more than twofold upregulation of drought-inducible marker genes, was finally selected for this study. Application of HYN0056T enhanced the tolerance against both drought stress, possibly via induction of stomatal closure, the highly related salt stress, in the presence of HYN0056T. Moreover, treatment of HYN0056T under drought and salt stresses resulted in enhanced upregulation of various drought- and salt-inducible genes in Arabidopsis. HYN0056T was responsible for the development of lateral roots under nonstress condition, implying that it may be involved in effective uptake of water/inorganic nutrients. Based on these results, we suggest that this bacterium could be used as a useful biocontrol agent to improve plant productivity, especially under drought/salt stress conditions. © 2020, Korean Society of Plant Biologists and Springer-Verlag GmbH Germany, part of Springer Nature.
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생명공학대학 (시스템생명공학과)
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