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Research paper | Open Access

Additional far-red light promotes adventitious rooting of double-root-cutting grafted watermelon seedlings

Xue WuaXiaoyan ZhangbYaya WangcCuinan WuaYudong SundYi ZhangcYongran JieEncai BaoaLiru XiaaZhonghua Bianf( )Kai Caoa,e( )
The Agriculture Ministry Key Laboratory of Agricultural Engineering in the Middle and Lower Reaches of Yangtze River, Institute of Agricultural Facilities and Equipment, Jiangsu Academy of Agricultural Sciences, Nanjing, Jiangsu 210014, China
Institute of Industrial Crops, Jiangsu Academy of Agricultural Sciences, Nanjing, Jiangsu 210014, China
College of Horticulture, Shanxi Agricultural University, Taigu, Shanxi 030801, China
Huaiyin Institute of Agricultural Science in Xuhuai District, Huaian, Jiangsu 223001, China
Horticulture and Product Physiology, Department of Plant Sciences, Wageningen University & Research, Wageningen 6700AA, the Netherlands
Institute of Urban Agriculture, Chinese Academy of Agricultural Sciences, Chengdu, Sichuan 610299, China

Peer review under responsibility of Chinese Society of Horticultural Science (CSHS) and Institute of Vegetables and Flowers (IVF), Chinese Academy of Agricultural Sciences (CAAS)

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Abstract

Root regeneration is an important factor influencing the healing rate of graft union and the survival of double-root-cutting grafting. To date, little information is available on how to enhance root regeneration of rootstock in grafted watermelon (Citrullus lanatus) seedlings. In this study, the effects of different light treatments on root regeneration were determined. This revealed that addition of far-red light (Fr) could significantly expedite root formation in the rootstock. Moreover, the results of transcriptome analysis revealed that plant hormone pathway and auxin-related genes were greatly induced by Fr, especially for auxin-response proteins (including CmIAA11, CmIAA17, and CmAUX28), Small auxin-up RNA genes (including CmSAUR20 and CmSAUR50) and the auxin efflux transporter (CmPIN3). In addition, the expression of Phytochrome Interacting Factor (PIFs), such as CmPIF1, CmPIF3 and CmPIF7, was remarkably increased by Fr. These genes may act together to activate auxin-related pathways under Fr treatment. Based on the results of HPLC-MS/MS analysis, the concentrations of different auxin-types in adventitious root were significantly influenced by Fr. Furthermore, the better growth of rootstock root displayed superior vasculature transport activity of the graft union with Fr treatment, which was determined by the acid magenta dyeing experiment. Therefore, all the results suggested that Fr could induce AR formation in rootstocks, which may be associated with the auxin accumulation by regulating the transcriptional level of auxin-related and PIF genes. The findings of this study demonstrated a practicable way to shorten the healing period of graftings and improve the quality of grafted watermelon seedlings, which will provide a theoretical basis for the speeding development of industrialized seedlings production.

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Horticultural Plant Journal
Pages 1424-1436

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Cite this article:
Wu X, Zhang X, Wang Y, et al. Additional far-red light promotes adventitious rooting of double-root-cutting grafted watermelon seedlings. Horticultural Plant Journal, 2024, 10(6): 1424-1436. https://doi.org/10.1016/j.hpj.2022.11.012

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Received: 08 December 2022
Revised: 15 January 2023
Accepted: 26 April 2023
Published: 02 November 2023
© 2024 Chinese Society for Horticultural Science (CSHS) and Institute of Vegetables and Flowers (IVF), Chinese Academy of Agricultural Sciences (CAAS).

This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/).