A high-resolution model of gene expression during Gossypium hirsutum (cotton) fiber development.

IF 3.7 2区 生物学 Q2 BIOTECHNOLOGY & APPLIED MICROBIOLOGY BMC Genomics Pub Date : 2025-03-06 DOI:10.1186/s12864-025-11360-z
Corrinne E Grover, Josef J Jareczek, Sivakumar Swaminathan, Youngwoo Lee, Alexander H Howell, Heena Rani, Mark A Arick, Alexis G Leach, Emma R Miller, Pengcheng Yang, Guanjing Hu, Xianpeng Xiong, Eileen L Mallery, Daniel G Peterson, Jun Xie, Candace H Haigler, Olga A Zabotina, Daniel B Szymanski, Jonathan F Wendel
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Abstract

Background: Cotton fiber development relies on complex and intricate biological processes to transform newly differentiated fiber initials into the mature, extravagantly elongated cellulosic cells that are the foundation of this economically important cash crop. Here we extend previous research into cotton fiber development by employing controlled conditions to minimize variability and utilizing time-series sampling and analyses to capture daily transcriptomic changes from early elongation through the early stages of secondary wall synthesis (6 to 24 days post anthesis; DPA).

Results: A majority of genes are expressed in fiber, largely partitioned into two major coexpression modules that represent genes whose expression generally increases or decreases during development. Differential gene expression reveals a massive transcriptomic shift between 16 and 17 DPA, corresponding to the onset of the transition phase that leads to secondary wall synthesis. Subtle gene expression changes are captured by the daily sampling, which are discussed in the context of fiber development. Coexpression and gene regulatory networks are constructed and associated with phenotypic aspects of fiber development, including turgor and cellulose production. Key genes are considered in the broader context of plant secondary wall synthesis, noting their known and putative roles in cotton fiber development.

Conclusions: The analyses presented here highlight the importance of fine-scale temporal sampling on understanding developmental processes and offer insight into genes and regulatory networks that may be important in conferring the unique fiber phenotype.

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棉花纤维发育过程中基因表达的高分辨率模型。
背景:棉花纤维的发育依赖于复杂而复杂的生物过程,将新分化的纤维首字母转化为成熟的、细长的纤维素细胞,这是这种经济上重要的经济作物的基础。在这里,我们扩展了之前对棉纤维发育的研究,采用受控条件最小化变异,并利用时间序列采样和分析来捕获从早期伸长到次级壁合成早期(开花后6至24天)的每日转录组变化;DPA)。结果:大多数基因在纤维中表达,主要分为两个主要的共表达模块,代表在发育过程中表达普遍增加或减少的基因。差异基因表达揭示了16和17 DPA之间的大量转录组转移,对应于导致次级壁合成的过渡阶段的开始。细微的基因表达变化被捕获的日常采样,这是在纤维发育的背景下讨论。共表达和基因调控网络的构建与纤维发育的表型方面有关,包括膨胀和纤维素的产生。关键基因在植物次生壁合成的更广泛背景下被考虑,注意到它们在棉纤维发育中的已知和假定的作用。结论:本文提出的分析强调了小尺度时间采样对理解发育过程的重要性,并提供了对基因和调控网络的见解,这些基因和调控网络可能是赋予独特纤维表型的重要因素。
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来源期刊
BMC Genomics
BMC Genomics 生物-生物工程与应用微生物
CiteScore
7.40
自引率
4.50%
发文量
769
审稿时长
6.4 months
期刊介绍: BMC Genomics is an open access, peer-reviewed journal that considers articles on all aspects of genome-scale analysis, functional genomics, and proteomics. BMC Genomics is part of the BMC series which publishes subject-specific journals focused on the needs of individual research communities across all areas of biology and medicine. We offer an efficient, fair and friendly peer review service, and are committed to publishing all sound science, provided that there is some advance in knowledge presented by the work.
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