多形地豆核心细胞周期基因的全基因组鉴定和进化:对冗余、应激和功能进化的见解。

IF 3.6 2区 生物学 Q1 PLANT SCIENCES
Xingguang Chen, Haoran Feng, Mengjuan Liu, Jiahao Cai, Rabia Sarwar, Xueli Li, Mingyue Zhang, Xinyu Li, Xinqiang Lin, Zhonghua Guo, Jinbin Hu, Shuqi Yang, Lulu Wang, Xiaoping Niu, Gang Wang, Boping Tang, Sheng Wang, Yuan Qin, Yan Cheng
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引用次数: 0

摘要

细胞周期是植物生长、发育和繁殖的一个基本过程,细胞周期蛋白依赖性激酶(CDKs)和细胞周期蛋白(CYCs)在细胞周期的各个阶段起着重要的调节作用。这些蛋白质与多个相互作用的伙伴协调,以确保基本生物事件的准确执行,如DNA复制,染色体分离和细胞分裂。多形地豆(Marchantia polymorpha)是最早分化的陆生植物物种之一,已成为探索植物生物学和进化基本机制的重要模型。然而,与拟南芥(Arabidopsis thaliana)和水稻(Oryza sativa)等模式植物相比,M. polymorpha的核心细胞周期基因仍然相对不明确。在本研究中,我们通过全基因组分析鉴定了31个核心细胞周期基因,包括13个CDKs、8个CYCs、5个E2F/DPs、1个ICK、1个RB、1个CKS和2个Wee1基因。我们进一步分析了它们的理化性质、基因结构和保守结构域,并通过Ka/Ks和4DTv分析评估了进化压力。比较基因组分析揭示了基因收缩和扩展的模式。此外,我们预测了顺式调控元件,并进行了不同应激条件下的差异表达分析,以探索其潜在功能和表达谱。最后,构建了蛋白-蛋白相互作用(PPI)网络,并对关键基因进行了实验验证。这些发现为多形霉的核心细胞周期基因家族提供了有价值的见解,有助于加强对植物细胞周期调控及其进化意义的理解。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Genome-Wide Identification and Evolution of Core Cell Cycle Genes in Marchantia polymorpha: Insights Into Redundancy, Stress, and Functional Evolution.

The cell cycle is a fundamental process of plant growth, development, and reproduction, in which cyclin-dependent kinases (CDKs) and cyclins (CYCs) play central roles in regulating the progression through various stages. These proteins are coordinated with multiple interacting partners to ensure the accurate execution of essential biological events such as DNA replication, chromosome segregation, and cell division. Marchantia polymorpha, one of the earliest diverging land plant species, has emerged as a key model for exploring fundamental mechanisms in plant biology and evolution. However, compared with other model plants, such as Arabidopsis thaliana and Oryza sativa, the core cell cycle genes in M. polymorpha remain relatively uncharacterized. In this study, we identified 31 core cell cycle genes in M. polymorpha through genome-wide analysis, including 13 CDKs, 8 CYCs, 5 E2F/DPs, 1 ICK, 1 RB, 1 CKS, and 2 Wee1 genes. We further analyzed their physicochemical properties, gene structures, and conserved domains, along with evolutionary pressures assessed via Ka/Ks and 4DTv analyses. Comparative genomic analysis revealed patterns of gene contraction and expansion. Additionally, we predicted cis-acting regulatory elements and performed differential expression analysis under various stress conditions to explore their potential functions and expression profiles. Finally, a protein-protein interaction (PPI) network was constructed, and key genes were experimentally validated. These findings provide valuable insights into the core cell cycle gene family in M. polymorpha, contributing to an enhanced understanding of cell cycle regulation and its evolutionary significance in plants.

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来源期刊
Physiologia plantarum
Physiologia plantarum 生物-植物科学
CiteScore
11.00
自引率
3.10%
发文量
224
审稿时长
3.9 months
期刊介绍: Physiologia Plantarum is an international journal committed to publishing the best full-length original research papers that advance our understanding of primary mechanisms of plant development, growth and productivity as well as plant interactions with the biotic and abiotic environment. All organisational levels of experimental plant biology – from molecular and cell biology, biochemistry and biophysics to ecophysiology and global change biology – fall within the scope of the journal. The content is distributed between 5 main subject areas supervised by Subject Editors specialised in the respective domain: (1) biochemistry and metabolism, (2) ecophysiology, stress and adaptation, (3) uptake, transport and assimilation, (4) development, growth and differentiation, (5) photobiology and photosynthesis.
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