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蛋白质组学研究揭示日本落叶松不定根形成的奥秘。

Proteomic insights into adventitious root formation in Larix kaempferi.

机构信息

State Key Laboratory of Tree Genetics and Breeding, College of Biological Sciences and Technology, Beijing Forestry University, 100083 Beijing, China; The Tree and Ornamental Plant Breeding and Biotechnology Laboratory of Chinese Forestry Administration, 100083 Beijing, China.

State Key Laboratory of Tree Genetics and Breeding, College of Biological Sciences and Technology, Beijing Forestry University, 100083 Beijing, China; The Tree and Ornamental Plant Breeding and Biotechnology Laboratory of Chinese Forestry Administration, 100083 Beijing, China.

出版信息

J Proteomics. 2024 Sep 15;307:105288. doi: 10.1016/j.jprot.2024.105288. Epub 2024 Aug 21.

Abstract

The adventitious root formaton (ARF) in excised plant parts is essential for the survival of isolated plant fragments. In this study, we explored the complex mechanisms of ARF in Larix kaempferi by conducting a comprehensive proteomic analysis across three distinct stages: the induction of adventitious root primordia (C1, 0-25 d), the formation of adventitious root primordia (C2, 25-35 d), and the elongation of adventitious roots (C3, 35-45 d). We identified 1976 proteins, with 263 and 156 proteins exhibiting increased abundance in the C2/C1 and C3/C2 transitions, respectively. In contrast, a decrease in the abundance of 106 and 132 proteins suggests a significant demand for metabolic processes during the C2/C1 phase. The abundance of IAA-amino acid hydrolase and S-adenosylmethionine synthase were increased in the C2/C1 phase, underscoring the role of auxin in adventitious root induction. The decrease in abundance of photosynthesis-related proteins during the C2/C1 phase highlights the significance of initial light conditions in adventitious root induction. Moreover, variation in cell wall synthesis and metabolic proteins in the C2/C1 and C3/C2 stages suggests that cell wall metabolism is integral to adventitious root regeneration. Gene Ontology enrichment analysis revealed pathways related to protein modification enzymes, including deubiquitinases and kinases, which are crucial for modulating protein modifications to promote ARF. Furthermore, the increased abundance of antioxidant enzymes, such as peroxidases and glutathione peroxidases, indicates a potential approach for enhancing ARF by supplementing the culture medium with antioxidants. Our study provides insights into metabolic changes during ARF in L. kaempferi, offering strategies to enhance adventitious root regeneration. These findings have the potential to refine plant propagation techniques and expedite breeding processes. SIGNFICANCE: The main challenge in the asexual reproduction technology of Larix kaempferi lies in adventitious root formation (ARF). While numerous studies have concentrated on the efficiency of ARF, proteomic data are currently scarce. In this study, we collected samples from three stages of ARF in L. kaempferi and subsequently performed proteomic analysis. The data generated not only reveal changes in protein abundance but also elucidate key metabolic processes involved in ARF. These insights offer a novel perspective on addressing the challenge of adventurous root regeneration.

摘要

不定根形成(ARF)在离体植物部分对于孤立植物片段的存活至关重要。在这项研究中,我们通过对三个不同阶段的全面蛋白质组学分析来探索日本落叶松 ARF 的复杂机制:不定根原基的诱导(C1,0-25d)、不定根原基的形成(C2,25-35d)和不定根的伸长(C3,35-45d)。我们鉴定了 1976 种蛋白质,其中 263 和 156 种蛋白质在 C2/C1 和 C3/C2 转变中丰度增加,而 106 和 132 种蛋白质的丰度下降表明在 C2/C1 阶段对代谢过程有重大需求。IAA-氨基酸水解酶和 S-腺苷甲硫氨酸合酶的丰度在 C2/C1 阶段增加,强调了生长素在不定根诱导中的作用。在 C2/C1 阶段光合作用相关蛋白丰度的下降突出了初始光照条件在不定根诱导中的重要性。此外,C2/C1 和 C3/C2 阶段细胞壁合成和代谢蛋白的变化表明,细胞壁代谢是不定根再生的关键。基因本体富集分析揭示了与蛋白质修饰酶相关的途径,包括去泛素化酶和激酶,这些酶对于调节蛋白质修饰以促进 ARF 至关重要。此外,过氧化物酶和谷胱甘肽过氧化物酶等抗氧化酶的丰度增加表明,通过在培养基中补充抗氧化剂来增强 ARF 是一种潜在的方法。我们的研究提供了日本落叶松 ARF 过程中代谢变化的见解,为增强不定根再生提供了策略。这些发现有可能改进日本落叶松的无性繁殖技术并加速繁殖过程。意义:日本落叶松无性繁殖技术的主要挑战在于不定根形成(ARF)。虽然许多研究都集中在 ARF 的效率上,但目前蛋白质组学数据还很缺乏。在这项研究中,我们收集了日本落叶松 ARF 的三个阶段的样本,随后进行了蛋白质组学分析。生成的数据不仅揭示了蛋白质丰度的变化,还阐明了 ARF 涉及的关键代谢过程。这些见解为解决不定根再生的挑战提供了新的视角。

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