Proteomic characterization of the different stages of seed germination in Cupressus gigantea

IF 4.6 Q2 MATERIALS SCIENCE, BIOMATERIALS ACS Applied Bio Materials Pub Date : 2024-05-03 DOI:10.1017/s0960258524000126
Jianxin Li, Subin Zhang, Pei Lei, Tong-Ju Eh, Yu Zhang, Guangze Jin, Kun Dong, Qijiang Xu, Qiuxiang Luo, Fanjuan Meng
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Abstract

Seed germination is a pivotal period of plant growth and development. This process can be divided into four major stages, swelling absorption, seed coat dehiscence, radicle emergence and radicle elongation. Cupressus gigantea, a tree native to Tibet, China, is characterized by its resistance to stresses such as cold, and drought, and has a high economic and ecological value. Nevertheless, given its unique geographic location, its seeds are difficult to germinate. Therefore, it is crucial to explore the mechanisms involved in seed germination in this species to improve the germination efficiency of its seeds, thereby protecting this high-quality resource. Here, our findings indicate that seed germination was enhanced when exposed to a 6-h/8-h light/dark photoperiod, coupled with a temperature of 20°C. Furthermore, the application of exogenous GA3 (1 mg/ml, about 2.9 mM) stimulated the germination of C. gigantea seeds. Subsequently, proteomics was used to detect changes in protein expression during the four stages of seed germination. We identified 34 differentially expressed proteins (DEPs), including 13 at the radicle pre-emergence stage, and 17 at the radicle elongation stage. These DEPs were classified into eight functional groups, cytoskeletal proteins, energy metabolism, membrane transport, stress response, molecular chaperones, amino acid metabolism, antioxidant system and ABA signalling pathway. Most of them were found to be closely associated with amino acid metabolism. Combined, these findings indicate that, along with temperature and light, exogenous GA3 can increase the germination efficiency of C. gigantea seeds. Our study also offers insights into the changes in protein expression patterns in C. gigantea seeds during germination.

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千层塔种子萌发不同阶段的蛋白质组特征分析
种子萌发是植物生长和发育的关键时期。这一过程可分为膨胀吸收、种皮开裂、胚根萌发和胚根伸长四个主要阶段。千层塔是一种原产于中国西藏的树种,其特点是抗寒、抗旱,具有很高的经济和生态价值。然而,由于其独特的地理位置,其种子很难发芽。因此,探索该物种种子萌发的相关机制对提高其种子萌发效率,从而保护这一优质资源至关重要。在此,我们的研究结果表明,在 6 小时/8 小时的光照/黑暗光周期和 20°C 的温度条件下,种子的萌发率会提高。此外,施用外源 GA3(1 毫克/毫升,约 2.9 毫摩尔)可刺激千层塔种子的萌发。随后,我们利用蛋白质组学检测了种子萌发四个阶段中蛋白质表达的变化。我们发现了 34 个差异表达蛋白(DEPs),其中 13 个在胚根萌发前阶段,17 个在胚根伸长阶段。这些差异表达蛋白被分为细胞骨架蛋白、能量代谢、膜转运、胁迫反应、分子伴侣、氨基酸代谢、抗氧化系统和 ABA 信号通路八个功能组。其中大部分与氨基酸代谢密切相关。综合上述发现,外源 GA3 与温度和光照一起可提高千层塔种子的萌发效率。我们的研究还有助于深入了解千层塔种子在萌发过程中蛋白质表达模式的变化。
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来源期刊
ACS Applied Bio Materials
ACS Applied Bio Materials Chemistry-Chemistry (all)
CiteScore
9.40
自引率
2.10%
发文量
464
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