Time-Course Transcriptome and Phytohormonal Analysis of Blue-Light-Induced Adventitious Root Development of Tea Cuttings (Camellia sinensis (L.) Kuntze)
Author:
Shen Yaozong12, Wang Hui3, Han Xiao2, Fan Kai2, Shen Jiazhi1, Li He2, Ding Shibo3, Song Dapeng3, Wang Yu2, Ding Zhaotang1
Affiliation:
1. Tea Research Institute, Shandong Academy of Agricultural Sciences, Jinan 250100, China 2. Tea Research Institute, Qingdao Agricultural University, Qingdao 266109, China 3. Tea Research Institute, Rizhao Academy of Agricultural Sciences, Rizhao 276800, China
Abstract
C. sinensis is an economically important crop for tea production that experiences increasing demand and good export potential. Therefore, crops need to be expanded, and high-quality planting material is required. Vegetative propagation by cuttings is the prevalent method; therefore, this paper explored its optimization potential modeled on cultivar ‘Jiukengzao’. This study wanted to deeply explore blue-light-induced adventitious root formation and development of tea cuttings, so we conducted short-term (0 h, 8 h, and 16 h) and long-term (30 d, 60 d, and 90 d) time-course analyses on tea cutting seedlings. Short-term, full-length transcriptome analysis showed that the expression of genes related to plant hormone signal transduction and auxin transport was highest at 16 h. Sixteen hours of light was considered as suitable for adventitious root growth and development of tea cuttings. Long-term phytohormone analysis showed that the trend of indole-3-carboxylic acid (ICA) change was: 60 d > 90 d > 30 d. Long-term, full-length transcriptome analysis showed that the gene expression trends in K2, K5, K6, and K8 clusters were: 90 d > 60 d > 30 d, and the opposite was observed in K1, K4, and K11 clusters. Kyoto Encyclopedia of Genes and Genomes (KEGG) analysis showed that most of the genes in these seven clusters are involved in “plant hormone signal transduction (ko04075)”. This includes auxin early responsive protein AUX/IAA, auxin response factor ARF, auxin-responsive protein SAUR, etc. In addition, genes related to auxin transport and synthesis were identified as PIN1, 3, 4, PILS2, 6, 7, flavin-containing monooxygenase YUC9, and YUC10, and the expression trend of these genes was mostly consistent with the change trend of ICA content. This study further explained the molecular mechanism of blue-light-induced adventitious root formation and development of tea cuttings. It is recommended that blue light can be used to promote the adventitious root growth and development of tea cuttings in practical production.
Funder
Technology System of Modern Agricultural Industry in Shandong Province Special Foundation for Distinguished Taishan Scholar of Shandong Province Project of Agricultural Science and Technology Fund in Shandong Province Shandong Agricultural Seed Improvement Project Project of Rizhao Natural Science Foundation Youth Fund Livelihood Project of Qingdao City Agricultural Science and Technology Innovation Project of Shandong Academy of Agricultural Sciences
Subject
Agronomy and Crop Science
Reference57 articles.
1. Wei, K., Ruan, L., Wang, L., and Cheng, H. (2019). Auxin-Induced Adventitious Root Formation in Nodal Cuttings of Camellia sinensis. Int. J. Mol. Sci., 20. 2. Wang, Y., Pang, D., Ruan, L., Liang, J., Zhang, Q., Qian, Y., Zhang, Y., Bai, P., Wu, L., and Cheng, H. (2022). Integrated transcriptome and hormonal analysis of naphthalene acetic acid-induced adventitious root formation of tea cuttings (Camellia sinensis). BMC Plant Biol., 22. 3. Plant Propagation: Principles and Practices;Proebsting;For. Sci.,1984 4. Red and Blue Light Affect the Formation of Adventitious Roots of Tea Cuttings (Camellia sinensis) by Regulating Hormone Synthesis and Signal Transduction Pathways of Mature Leaves;Shen;Front. Plant Sci.,2022 5. Ye, J.H., Lv, Y.Q., Liu, S.R., Jin, J., Wang, Y.F., Wei, C.L., and Zhao, S.Q. (2021). Effects of Light Intensity and Spectral Composition on the Transcriptome Profiles of Leaves in Shade Grown Tea Plants (Camellia sinensis L.) and Regulatory Network of Flavonoid Biosynthesis. Molecules, 26.
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