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蛋白质组学和代谢组学综合分析为[具体生物名称]胚胎发生能力的获得提供了见解。 (你原文中“. ”处应该有具体生物名称,这里按翻译规则补充完整以便理解)

Integrated Proteomic and Metabolomic Analyses Provide Insights Into Acquisition of Embryogenic Ability in .

作者信息

Yue Jianhua, Dong Yan, Liu Songhu, Jia Yanan, Li Chaoxin, Wang Zhiyong, Gong Shoufu

机构信息

School of Horticulture, Xinyang Agriculture and Forestry University, Xinyang, China.

School of Forestry, Xinyang Agriculture and Forestry University, Xinyang, China.

出版信息

Front Plant Sci. 2022 May 18;13:858065. doi: 10.3389/fpls.2022.858065. eCollection 2022.

Abstract

Somatic embryogenesis (SE) is an ideal model for plant cell totipotency. Transition from somatic cells to embryogenic cells is the key to SE. The poor frequency of embryogenic callus (EC) induction has limited the application of SE in many plants, such as . We performed large-scale, quantitative proteomic and metabolomic analyses with different callus differentiation directions (SE and organogenesis) and stages (initial SE and repetitive SE) to better understand the morphological, physiological, and molecular characteristics of the acquisition of embryogenic ability in . . Integrated proteomic and metabolomic analyses suggested that callus differentiation direction was potentially regulated by pathways related to carbohydrate and energy metabolism (fatty acid metabolism, pyruvate metabolism, glycolysis/gluconeogenesis, pentose and glucuronate interconversions, starch and sucrose metabolism, galactose metabolism, carbon fixation pathways in prokaryotes, carbohydrate digestion and absorption, and fructose and mannose metabolism), chromatin accessibility and DNA methylation, reactive oxygen species responses and resistance (ascorbate and aldarate metabolism), and plant hormonal signaling. As a validation, we found that carbon source combination and plant hormone regulation in the culture medium significantly affected the acquisition of embryogenic ability, thereby inducing EC. Interestingly, plant hormonal signaling-related genes showed different expression patterns significantly when callus cultured with different carbon sources. Thus, our results suggested that energy supply and hormone signal transduction seemed to cooperatively contribute to the activation of embryogenic ability. Altogether, this study revealed valuable information regarding the molecular and biochemical changes that occurred during EC induction and provided valuable foundation for comprehensive understanding of the mechanisms associated with SE and organogenesis in . .

摘要

体细胞胚胎发生(SE)是植物细胞全能性的理想模型。从体细胞向胚性细胞的转变是体细胞胚胎发生的关键。胚性愈伤组织(EC)诱导频率较低限制了体细胞胚胎发生在许多植物中的应用,如……我们对具有不同愈伤组织分化方向(体细胞胚胎发生和器官发生)和阶段(初始体细胞胚胎发生和重复体细胞胚胎发生)进行了大规模、定量蛋白质组学和代谢组学分析,以更好地了解……中胚性能力获得的形态、生理和分子特征。综合蛋白质组学和代谢组学分析表明,愈伤组织分化方向可能受碳水化合物和能量代谢(脂肪酸代谢、丙酮酸代谢、糖酵解/糖异生、戊糖和葡萄糖醛酸相互转化、淀粉和蔗糖代谢、半乳糖代谢、原核生物中的碳固定途径、碳水化合物消化和吸收以及果糖和甘露糖代谢)、染色质可及性和DNA甲基化、活性氧反应和抗性(抗坏血酸和醛糖代谢)以及植物激素信号传导等途径的调节。作为验证,我们发现培养基中的碳源组合和植物激素调节显著影响胚性能力的获得,从而诱导胚性愈伤组织。有趣的是,当愈伤组织用不同碳源培养时,植物激素信号传导相关基因表现出显著不同的表达模式。因此,我们的结果表明能量供应和激素信号转导似乎共同促进了胚性能力的激活。总之,本研究揭示了胚性愈伤组织诱导过程中发生的分子和生化变化的有价值信息,并为全面理解……中与体细胞胚胎发生和器官发生相关的机制提供了有价值的基础。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/8e35/9158531/46781d8c2dfe/fpls-13-858065-g001.jpg

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