A Cross-Climate Comparison of Molecular Phenology in Three Tropical and Temperate Trees.

Q3 Agricultural and Biological Sciences
Plant-environment interactions (Hoboken, N.J.) Pub Date : 2026-04-09 eCollection Date: 2026-04-01 DOI:10.1002/pei3.70146
Atsuko Miyawaki-Kuwakado, Nakata Taichi, Yuka Ikezaki, Naoki Tani, Yoshiko Kosugi, Kevin Kit Siong Ng, Soon Leong Lee, Akiko Satake
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Abstract

Latitudinal gradients in temperature seasonality shape the evolution of thermal tolerance and acclimation capacity in organisms. According to Janzen's climate variability hypothesis, tropical species experiencing stable temperatures evolve narrower thermal niches than temperate counterparts. To test whether this principle extends to gene expression dynamics, we compared annual transcriptome profiles of the tropical tree Rubroshorea leprosula and the temperate evergreen trees Lithocarpus edulis and Quercus glauca under natural field conditions. Time-series RNA-seq analyses revealed that R. leprosula exhibited sporadic transcriptional shifts triggered by slight cooling events (minimum temperatures of 21°C-22°C), whereas the temperate species showed clear annual cycles characterized by winter-specific expression patterns. Mild temperature decline in the tropical tree triggered widespread down-regulation of photosynthesis-related genes and activation of stress-response and jasmonate-associated signaling pathways, suggesting coordinated responses even to mild temperature declines. Cross-species comparison of 3793 single-copy orthologs showed that the sensitivity to temperature and dynamic range of gene expression were substantially larger relative to the narrow dynamic range of temperature in the tropics, indicating amplified transcriptional responses per unit of temperature variation. Conversely, temperate species displayed broad but proportionate transcriptomic shifts that paralleled large seasonal temperature fluctuations. These results demonstrate that transcriptional sensitivity to temperature is exaggerated in tropical species and buffered in temperate ones, extending Janzen's climate variability hypothesis from physiological tolerance to its molecular basis.

三种热带和温带树木分子物候的跨气候比较。
温度季节的纬度梯度决定了生物的热耐受性和驯化能力的演变。根据Janzen的气候变异假说,经历稳定温度的热带物种比温带物种进化出更窄的热生态位。为了验证这一原理是否适用于基因表达动力学,我们比较了热带树木麻风树与温带常绿树木毛石栎(Lithocarpus edulis)和蓝栎(Quercus glauca)在自然野外条件下的年转录组谱。时间序列RNA-seq分析显示,麻风菌在轻微的降温事件(最低温度为21°C-22°C)下表现出零星的转录变化,而温带物种表现出明显的年周期,以冬季特异性表达模式为特征。热带树木的温和温度下降引发了光合作用相关基因的广泛下调,以及应激反应和茉莉酸相关信号通路的激活,表明即使对温和温度下降也有协调的反应。对3793个单拷贝同源植物的跨种比较表明,相对于热带地区较窄的温度动态范围,热带地区对温度和基因表达动态范围的敏感性要大得多,表明单位温度变化的转录响应放大。相反,温带物种表现出广泛但成比例的转录组变化,与大的季节性温度波动相对应。这些结果表明,热带物种对温度的转录敏感性被夸大,而温带物种对温度的转录敏感性被缓冲,将Janzen的气候变异假说从生理耐受性扩展到其分子基础。
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
CiteScore
2.70
自引率
0.00%
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审稿时长
15 weeks
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