热解耦可促进高山植物降温,避免热胁迫。

IF 4 2区 生物学 Q1 PLANT SCIENCES
Loreto V Morales, Angela Sierra-Almeida, Catalina Sandoval-Urzúa, Mary T K Arroyo
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引用次数: 0

摘要

在低温占主导地位的高山生态系统中,匍匐生长形式通过使热与环境条件脱钩,从而创造更温暖的小气候,在热抗力中起着至关重要的作用。然而,在气候变化导致的频繁热浪中,这种策略可能不适应。本研究结合小气候和植物特征、红外热成像和叶片光失活来评估热解耦(TD)如何影响智利中南部安第斯山脉Chillán火山复群内华达山脉6种高山物种的耐热性(LT50)。结果表明,植物温度随太阳辐射、空气和土壤温度的升高而升高,随湿度的增加而降低。大多数物种表现为负TD,比气温低6.7 K,在物种、时间和生长形式之间存在差异;短而圆的植株负TD较强。值得注意的是,尽管TD为负,但所有物种都表现出较高的耐热性(平均LT50 = 46°C),其中LT50与TD呈正相关。这些发现强调了热去耦、环境因素和植物性状之间形成耐热性的复杂关系。该研究揭示了高山植物如何应对与气候变化相关的日益增加的热胁迫,强调了热去耦在这些环境中的适应意义。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Thermal Decoupling May Promote Cooling and Avoid Heat Stress in Alpine Plants.

In alpine ecosystems, where low temperatures predominate, prostrate growth forms play a crucial role in thermal resistance by enabling thermal decoupling from ambient conditions, thereby creating a warmer microclimate. However, this strategy may be maladaptive during frequent heatwaves driven by climate change. This study combined microclimatic and plant characterization, infrared thermal imaging, and leaf photoinactivation to evaluate how thermal decoupling (TD) affects heat resistance (LT50) in six alpine species from the Nevados de Chillán volcano complex in the Andes of south-central Chile. Results showed that plants' temperatures increased with solar radiation, air, and soil temperatures, but decreased with increasing humidity. Most species exhibited negative TD, remaining 6.7 K cooler than the air temperature, with variation across species, time of day, and growth form; shorter, rounded plants showed stronger negative TD. Notably, despite negative TD, all species exhibited high heat resistance (Mean LT50 = 46 °C), with LT50 positively correlated with TD in shrubs. These findings highlight the intricate relationships between thermal decoupling, environmental factors, and plant traits in shaping heat resistance. This study provides insights into how alpine plants may respond to the increasing heat stress associated with climate change, emphasizing the adaptive significance of thermal decoupling in these environments.

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来源期刊
Plants-Basel
Plants-Basel Agricultural and Biological Sciences-Ecology, Evolution, Behavior and Systematics
CiteScore
6.50
自引率
11.10%
发文量
2923
审稿时长
15.4 days
期刊介绍: Plants (ISSN 2223-7747), is an international and multidisciplinary scientific open access journal that covers all key areas of plant science. It publishes review articles, regular research articles, communications, and short notes in the fields of structural, functional and experimental botany. In addition to fundamental disciplines such as morphology, systematics, physiology and ecology of plants, the journal welcomes all types of articles in the field of applied plant science.
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