Cell-Type-Specific Heat-Induced Changes in the Proteomes of Pollen Mother Cells and Microspores Provide New Insights into Tomato Pollen Production Under Elevated Temperature.

IF 4 Q2 BIOCHEMISTRY & MOLECULAR BIOLOGY
Priya Thapa, Jun Guo, Kajol Pradhan, Dibya Thapa, Sudhakar Madhavarapu, Jing Zou, Jesse Potts, Hui Li, Joshua O'Hair, Chen Wang, Suping Zhou, Yong Yang, Tara Fish, Theodore W Thannhauser
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引用次数: 0

Abstract

Background: Tomatoes are self-pollinating plants, and successful fruit set depends on the production of functional pollen within the same flower. Our previous studies have shown that the 'Black Vernissage' tomato variety exhibits greater resilience to heat stress in terms of pollen productivity compared to the 'Micro-Tom' variety. Pollen productivity is determined by meiotic activity during microsporogenesis and the development of free microspores during gametogenesis. This study focused on identifying heat stress (HS)-induced proteomes in pollen mother cells (PMCs) and microspores.

Methods: Tomato plants were grown under two temperature conditions: 26 °C (non-heat-treated control) and 37 °C (heat-treated). Homogeneous cell samples of meiotic PMCs (prior to the tetrad stage) and free microspores were collected using laser capture microdissection (LCM). The heat-induced proteomes were identified using tandem mass tag (TMT)-quantitative proteomics analysis.

Results: The enrichment of the meiotic cell cycle in PMCs and the pre-mitotic process in free microspores confirmed the correlation between proteome expression and developmental stage. Under HS, PMCs in both tomato varieties were enriched with heat shock proteins (HSPs). However, the 'Black Vernissage' variety exhibited a greater diversity of HSP species and a higher level of enrichment compared to the 'Micro-Tom' variety. Additionally, several proteins involved in gene expression and protein translation were downregulated in PMCs and microspores of both varieties. In the PMC proteomes, the relative abundance of proteins showed no significant differences between the two varieties under normal conditions, with very few exceptions. However, HS induced significant differential expression both within and between the varieties. More importantly, these heat-induced differentially abundant proteins (DAPs) in PMCs are directly involved in meiotic cell division, including the meiosis-specific protein ASY3 (Solyc01g079080), the cell division protein kinase 2 (Solyc11g070140), COP9 signalosome complex subunit 1 (Solyc01g091650), the kinetochore protein ndc80 (Solyc01g104570), MORC family CW-type zinc finger 3 (Solyc02g084700), and several HSPs that function in protecting the fidelity of the meiotic processes, including the DNAJ chaperone (Solyc04g009770, Solyc05g055160), chaperone protein htpG (Solyc04g081570), and class I and class II HSPs. In the microspores, most of the HS-induced DAPs were consistently observed across both varieties, with only a few proteins showing significant differences between them under heat stress. These HS-induced DAPs include proteases, antioxidant proteins, and proteins related to cell wall remodeling and the generation of pollen exine.

Conclusions: HS induced more dynamic proteomic changes in meiotic PMCs compared to microspores, and the inter-varietal differences in the PMC proteomes align with the effects of HS on pollen productivity observed in the two varieties. This research highlights the importance of the cell-type-specific proteomics approach in identifying the molecular mechanisms that are critical for the pollen developmental process under elevated temperature conditions.

花粉母细胞和小孢子蛋白质组的细胞类型特异性热诱导变化为高温下番茄花粉产生提供了新见解。
背景:番茄是自花授粉植物,成功的坐果取决于同一朵花内产生的功能性花粉。我们之前的研究表明,与“Micro-Tom”品种相比,“Black Vernissage”品种在花粉产量方面对热胁迫表现出更大的弹性。花粉产量是由小孢子发生过程中的减数分裂活性和配子体发生过程中游离小孢子的发育决定的。本研究主要研究热应激诱导花粉母细胞和小孢子的蛋白质组学。方法:番茄植株在26℃(未热处理对照)和37℃(热处理对照)两种温度条件下生长。采用激光捕获显微解剖技术(LCM)收集了减数分裂PMCs(四分体期前)和游离小孢子的均匀细胞样本。采用串联质量标签(TMT)-定量蛋白质组学方法鉴定热诱导蛋白质组。结果:PMCs中减数分裂细胞周期的富集和游离小孢子的有丝分裂前过程证实了蛋白质组表达与发育阶段的相关性。在高温胁迫下,两个番茄品种的pmc都富含热休克蛋白(HSPs)。然而,与“微汤姆”品种相比,“黑Vernissage”品种表现出更大的HSP物种多样性和更高的富集水平。此外,在两个品种的pmc和小孢子中,一些参与基因表达和蛋白质翻译的蛋白质被下调。在PMC蛋白质组中,在正常条件下,两个品种之间蛋白质的相对丰度没有显著差异,只有极少数例外。然而,HS诱导了品种内和品种间的显著差异表达。更重要的是,PMCs中这些热诱导的差异丰富蛋白(DAPs)直接参与减数分裂细胞分裂,包括减数分裂特异性蛋白ASY3 (Solyc01g079080)、细胞分裂蛋白激酶2 (Solyc11g070140)、COP9信号体复合物亚基1 (Solyc01g091650)、着丝点蛋白ndc80 (Solyc01g104570)、MORC家族cw型锌指3 (Solyc02g084700)和一些保护减数分裂过程保真度的热休克蛋白(HSPs)。包括DNAJ伴侣蛋白(Solyc04g009770, Solyc05g055160),伴侣蛋白htpG (Solyc04g081570),以及I类和II类热敏感蛋白。在小孢子中,大多数hs诱导的DAPs在两个品种中一致观察到,只有少数蛋白质在热胁迫下表现出显著差异。这些hs诱导的DAPs包括蛋白酶、抗氧化蛋白以及与细胞壁重塑和花粉外壁生成相关的蛋白。结论:与小孢子相比,HS诱导的减数分裂PMC蛋白质组学变化更动态,PMC蛋白质组学的品种间差异与HS对两个品种花粉产量的影响一致。这项研究强调了细胞类型特异性蛋白质组学方法在鉴定高温条件下花粉发育过程的关键分子机制中的重要性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Proteomes
Proteomes Biochemistry, Genetics and Molecular Biology-Clinical Biochemistry
CiteScore
6.50
自引率
3.00%
发文量
37
审稿时长
11 weeks
期刊介绍: Proteomes (ISSN 2227-7382) is an open access, peer reviewed journal on all aspects of proteome science. Proteomes covers the multi-disciplinary topics of structural and functional biology, protein chemistry, cell biology, methodology used for protein analysis, including mass spectrometry, protein arrays, bioinformatics, HTS assays, etc. Our aim is to encourage scientists to publish their experimental and theoretical results in as much detail as possible. Therefore, there is no restriction on the length of papers. Scope: -whole proteome analysis of any organism -disease/pharmaceutical studies -comparative proteomics -protein-ligand/protein interactions -structure/functional proteomics -gene expression -methodology -bioinformatics -applications of proteomics
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