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Far-Red-Light-Induced Morphology Changes, Phytohormone, and Transcriptome Reprogramming of Chinese Kale (Brassica alboglabra Bailey)

With far-red-light supplementation (3 W·m(−2), and 6 W·m(−2)), the flower budding rate, plant height, internode length, plant display, and stem diameter of Chinese kale were largely elevated, as well as the leaf morphology such as leaf length, leaf width, petiole length, and leaf area. Consequently,...

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Detalles Bibliográficos
Autores principales: Li, Yamin, Jiang, Haozhao, Gao, Meifang, He, Rui, Liu, Xiaojuan, Su, Wei, Liu, Houcheng
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10053878/
https://www.ncbi.nlm.nih.gov/pubmed/36982639
http://dx.doi.org/10.3390/ijms24065563
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author Li, Yamin
Jiang, Haozhao
Gao, Meifang
He, Rui
Liu, Xiaojuan
Su, Wei
Liu, Houcheng
author_facet Li, Yamin
Jiang, Haozhao
Gao, Meifang
He, Rui
Liu, Xiaojuan
Su, Wei
Liu, Houcheng
author_sort Li, Yamin
collection PubMed
description With far-red-light supplementation (3 W·m(−2), and 6 W·m(−2)), the flower budding rate, plant height, internode length, plant display, and stem diameter of Chinese kale were largely elevated, as well as the leaf morphology such as leaf length, leaf width, petiole length, and leaf area. Consequently, the fresh weight and dry weight of the edible parts of Chinese kale were markedly increased. The photosynthetic traits were enhanced, and the mineral elements were accumulated. To further explore the mechanism that far-red light simultaneously promoted the vegetative growth and reproductive growth of Chinese kale, this study used RNA sequencing to gain a global perspective on the transcriptional regulation, combining it with an analysis of composition and content of phytohormones. A total of 1409 differentially expressed genes were identified, involved mainly in pathways related to photosynthesis, plant circadian rhythm, plant hormone biosynthesis, and signal transduction. The gibberellins GA(9), GA(19), and GA(20) and the auxin ME-IAA were strongly accumulated under far-red light. However, the contents of the gibberellins GA(4) and GA(24), the cytokinins IP and cZ, and the jasmonate JA were significantly reduced by far-red light. The results indicated that the supplementary far-red light can be a useful tool to regulate the vegetative architecture, elevate the density of cultivation, enhance the photosynthesis, increase the mineral accumulation, accelerate the growth, and obtain a significantly higher yield of Chinese kale.
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spelling pubmed-100538782023-03-30 Far-Red-Light-Induced Morphology Changes, Phytohormone, and Transcriptome Reprogramming of Chinese Kale (Brassica alboglabra Bailey) Li, Yamin Jiang, Haozhao Gao, Meifang He, Rui Liu, Xiaojuan Su, Wei Liu, Houcheng Int J Mol Sci Article With far-red-light supplementation (3 W·m(−2), and 6 W·m(−2)), the flower budding rate, plant height, internode length, plant display, and stem diameter of Chinese kale were largely elevated, as well as the leaf morphology such as leaf length, leaf width, petiole length, and leaf area. Consequently, the fresh weight and dry weight of the edible parts of Chinese kale were markedly increased. The photosynthetic traits were enhanced, and the mineral elements were accumulated. To further explore the mechanism that far-red light simultaneously promoted the vegetative growth and reproductive growth of Chinese kale, this study used RNA sequencing to gain a global perspective on the transcriptional regulation, combining it with an analysis of composition and content of phytohormones. A total of 1409 differentially expressed genes were identified, involved mainly in pathways related to photosynthesis, plant circadian rhythm, plant hormone biosynthesis, and signal transduction. The gibberellins GA(9), GA(19), and GA(20) and the auxin ME-IAA were strongly accumulated under far-red light. However, the contents of the gibberellins GA(4) and GA(24), the cytokinins IP and cZ, and the jasmonate JA were significantly reduced by far-red light. The results indicated that the supplementary far-red light can be a useful tool to regulate the vegetative architecture, elevate the density of cultivation, enhance the photosynthesis, increase the mineral accumulation, accelerate the growth, and obtain a significantly higher yield of Chinese kale. MDPI 2023-03-14 /pmc/articles/PMC10053878/ /pubmed/36982639 http://dx.doi.org/10.3390/ijms24065563 Text en © 2023 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Li, Yamin
Jiang, Haozhao
Gao, Meifang
He, Rui
Liu, Xiaojuan
Su, Wei
Liu, Houcheng
Far-Red-Light-Induced Morphology Changes, Phytohormone, and Transcriptome Reprogramming of Chinese Kale (Brassica alboglabra Bailey)
title Far-Red-Light-Induced Morphology Changes, Phytohormone, and Transcriptome Reprogramming of Chinese Kale (Brassica alboglabra Bailey)
title_full Far-Red-Light-Induced Morphology Changes, Phytohormone, and Transcriptome Reprogramming of Chinese Kale (Brassica alboglabra Bailey)
title_fullStr Far-Red-Light-Induced Morphology Changes, Phytohormone, and Transcriptome Reprogramming of Chinese Kale (Brassica alboglabra Bailey)
title_full_unstemmed Far-Red-Light-Induced Morphology Changes, Phytohormone, and Transcriptome Reprogramming of Chinese Kale (Brassica alboglabra Bailey)
title_short Far-Red-Light-Induced Morphology Changes, Phytohormone, and Transcriptome Reprogramming of Chinese Kale (Brassica alboglabra Bailey)
title_sort far-red-light-induced morphology changes, phytohormone, and transcriptome reprogramming of chinese kale (brassica alboglabra bailey)
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10053878/
https://www.ncbi.nlm.nih.gov/pubmed/36982639
http://dx.doi.org/10.3390/ijms24065563
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