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Transcriptome analysis reveals the key pathways and candidate genes involved in salt stress responses in Cymbidium ensifolium leaves.
Li, Xiang; Liu, Lanlan; Sun, Shixian; Li, Yanmei; Jia, Lu; Ye, Shili; Yu, Yanxuan; Dossa, Komivi; Luan, Yunpeng.
Afiliación
  • Li X; The First Affiliated Hospital of Yunnan University of Traditional Chinese Medicine, 650021, Kunming, China.
  • Liu L; Key Laboratory for Forest Resources Conservation and Utilization in the Southwest Mountains of China, Ministry of Education, Southwest Forestry University, 650224, Kunming, China.
  • Sun S; Yunnan Key Laboratory of Plateau Wetland Conservation, Restoration and Ecological Services, Southwest Forestry University, 650224, Kunming, China.
  • Li Y; Department of Life Technology Teaching and Research, School of Life Science, Southwest Forestry University, 650224, Kunming, China.
  • Jia L; Department of Life Technology Teaching and Research, School of Life Science, Southwest Forestry University, 650224, Kunming, China.
  • Ye S; Faculty of Mathematics and Physics, Southwest Forestry University, 650224, Kunming, China.
  • Yu Y; Key Laboratory for Forest Resources Conservation and Utilization in the Southwest Mountains of China, Ministry of Education, Southwest Forestry University, 650224, Kunming, China.
  • Dossa K; CIRAD, UMR AGAP Institute, F-34398, Montpellier, France.
  • Luan Y; The First Affiliated Hospital of Yunnan University of Traditional Chinese Medicine, 650021, Kunming, China. 1820059756@qq.com.
BMC Plant Biol ; 23(1): 64, 2023 Feb 01.
Article en En | MEDLINE | ID: mdl-36721093
ABSTRACT

BACKGROUND:

Cymbidium ensifolium L. is known for its ornamental value and is frequently used in cosmetics. Information about the salt stress response of C. ensifolium is scarce. In this study, we reported the physiological and transcriptomic responses of C. ensifolium leaves under the influence of 100 mM NaCl stress for 48 (T48) and 96 (T96) hours.

RESULTS:

Leaf Na+ content, activities of the antioxidant enzymes i.e., superoxide dismutase, glutathione S-transferase, and ascorbate peroxidase, and malondialdehyde content were increased in salt-stressed leaves of C. ensifolium. Transcriptome analysis revealed that a relatively high number of genes were differentially expressed in CKvsT48 (17,249) compared to CKvsT96 (5,376). Several genes related to salt stress sensing (calcium signaling, stomata closure, cell-wall remodeling, and ROS scavenging), ion balance (Na+ and H+), ion homeostasis (Na+/K+ ratios), and phytohormone signaling (abscisic acid and brassinosteroid) were differentially expressed in CKvsT48, CKvsT96, and T48vsT96. In general, the expression of genes enriched in these pathways was increased in T48 compared to CK while reduced in T96 compared to T48. Transcription factors (TFs) belonging to more than 70 families were differentially expressed; the major families of differentially expressed TFs included bHLH, NAC, MYB, WRKY, MYB-related, and C3H. A Myb-like gene (CenREV3) was further characterized by overexpressing it in Arabidopsis thaliana. CenREV3's expression was decreased with the prolongation of salt stress. As a result, the CenREV3-overexpression lines showed reduced root length, germination %, and survival % suggesting that this TF is a negative regulator of salt stress tolerance.

CONCLUSION:

These results provide the basis for future studies to explore the salt stress response-related pathways in C. ensifolium.
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Texto completo: 1 Bases de datos: MEDLINE Asunto principal: Arabidopsis / Estrés Salino Idioma: En Revista: BMC Plant Biol Asunto de la revista: BOTANICA Año: 2023 Tipo del documento: Article País de afiliación: China

Texto completo: 1 Bases de datos: MEDLINE Asunto principal: Arabidopsis / Estrés Salino Idioma: En Revista: BMC Plant Biol Asunto de la revista: BOTANICA Año: 2023 Tipo del documento: Article País de afiliación: China