The gapless genome assembly and multi-omics analyses unveil a pivotal regulatory mechanism of oil biosynthesis in the olive tree

Olive is a valuable oil-bearing tree with fruits containing high levels of fatty acids. Oil production is a multifaceted process involving intricate interactions between fatty acid biosynthesis and other metabolic pathways that are affected by genetics and the developmental stages of the fruit. Howe...

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Veröffentlicht in:Horticulture research 2024-08, Vol.11 (8), p.uhae168
Hauptverfasser: Lv, Jiaojiao, Jiang, Chengying, Wu, Wenjun, Mao, Kaili, Wei, Qianqian, Zheng, Yuming, Gao, Chengyu, Niu, Zhiming, Jin, Gaoming, Zhang, Rong, Mao, Juan, Chen, Baihong, Ren, Guangpeng, Yang, Yongzhi, Wan, Dongshi
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Sprache:eng
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Zusammenfassung:Olive is a valuable oil-bearing tree with fruits containing high levels of fatty acids. Oil production is a multifaceted process involving intricate interactions between fatty acid biosynthesis and other metabolic pathways that are affected by genetics and the developmental stages of the fruit. However, a comprehensive understanding of the underlying regulatory mechanisms is still lacking. Here, we generated a gap-free telomere-to-telomere assembly for cv. Leccino', representing an olive genome with the highest contiguity and completeness to date. The combination of time-course metabolomics and transcriptomics datasets revealed a negative correlation between fatty acid and flavonoid biosynthesis in the initial phase of olive fruit development, which was subject to an opposing regulatory mechanism mediated by the hub transcription factor MYC2. Multifaceted molecular assays demonstrated that MYC2 is a repressor of fatty acid biosynthesis by downregulating the expression of ( ), while it acts as an activator of ( ), leading to an increase in flavonoid synthesis. Furthermore, the expression of is regulated by fluctuations of methyl jasmonate content during olive fruit development. Our study completes a high-quality gapless genome of an olive cultivar, and provides new insight into the regulatory mechanisms underlying the biosynthesis of fatty acids and flavonoids in its fruit.
ISSN:2662-6810
2052-7276
2052-7276
DOI:10.1093/hr/uhae168