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首页> 外文期刊>Plant Molecular Biology >Temperature-driven plasticity in growth cessation and dormancy development in deciduous woody plants: A working hypothesis suggesting how molecular and cellular function is affected by temperature during dormancy induction
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Temperature-driven plasticity in growth cessation and dormancy development in deciduous woody plants: A working hypothesis suggesting how molecular and cellular function is affected by temperature during dormancy induction

机译:落叶木本植物在停止生长和休眠发育中由温度驱动的可塑性:一个可行的假设表明休眠诱导过程中温度如何影响分子和细胞功能

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摘要

The role of temperature during dormancy development is being reconsidered as more research emerges demonstrating that temperature can significantly influence growth cessation and dormancy development in woody plants. However, there are seemingly contradictory responses to warm and low temperature in the literature. This research/review paper aims to address this contradiction. The impact of temperature was examined in four poplar clones and two dogwood ecotypes with contrasting dormancy induction patterns. Under short day (SD) conditions, warm night temperature (WT) strongly accelerated timing of growth cessation leading to greater dormancy development and cold hardiness in poplar hybrids. In contrast, under long day (LD) conditions, low night temperature (LT) can completely bypass the short photoperiod requirement in northern but not southern dogwood ecotypes. These findings are in fact consistent with the literature in which both coniferous and deciduous woody plant species' growth cessation, bud set or dormancy induction are accelerated by temperature. The contradictions are addressed when photoperiod and ecotypes are taken into account in which the combination of either SD/WT (northern and southern ecotypes) or LD/LT (northern ecotypes only) are separated. Photoperiod insensitive types are driven to growth cessation by LT. Also consistent is the importance of night temperature in regulating these warm and cool temperature responses. However, the physiological basis for these temperature effects remain unclear. Changes in water content, binding and mobility are factors known to be associated with dormancy induction in woody plants. These were measured using non-destructive magnetic resonance micro-imaging (MRMI) in specific regions within lateral buds of poplar under SD/WT dormancing inducing conditions. Under SD/WT, dormancy was associated with restrictions in inter- or intracellular water movement between plant cells that reduces water mobility during dormancy development. Northern ecotypes of dogwood may be more tolerant to photoinhibition under the dormancy inducing LD/LT conditions compared to southern ecotypes. In this paper, we propose the existence of two separate, but temporally connected processes that contribute to dormancy development in some deciduous woody plant: one driven by photoperiod and influenced by moderate temperatures; the other driven by abiotic stresses, such as low temperature in combination with long photoperiods. The molecular changes corresponding to these two related but distinct responses to temperature during dormancy development in woody plants remains an investigative challenge.
机译:随着越来越多的研究表明温度可以显着影响木本植物的生长停止和休眠发育,正在重新考虑温度在休眠发育中的作用。但是,在文献中似乎对温暖和低温有矛盾的反应。本研究/综述文件旨在解决这一矛盾。在四个杨树无性系和两个山茱eco生态型中以不同的休眠诱导模式研究了温度的影响。在短日(SD)条件下,温暖的夜晚温度(WT)大大加快了停止生长的时间,从而导致了杨树杂种更大的休眠发育和抗寒性。相反,在漫长的一天(LD)条件下,较低的夜间温度(LT)可以完全绕过北部的山茱eco生态型的短光周期要求,而不能满足南部的山茱eco生态型。这些发现实际上与文献一致,在文献中,温度促进了针叶和落叶木本植物物种的生长停止,芽集或休眠诱导。当考虑光周期和生态型时,将SD / WT(北部和南部生态型)或LD / LT(仅北部生态型)的组合分开考虑,就可以解决这些矛盾。光周期不敏感类型被LT驱使停止生长。夜间温度在调节这些温暖和凉爽的温度响应中的重要性也是一致的。然而,这些温度影响的生理基础仍然不清楚。水分含量,结合力和迁移率的变化是已知与木本植物中休眠诱导有关的因素。这些是在SD / WT休眠诱导条件下,在杨树的侧芽内特定区域中使用非破坏性磁共振显微成像(MRMI)进行测量的。在SD / WT下,休眠与植物细胞之间细胞间或细胞内水分运动的限制相关联,从而降低了休眠过程中水分的流动性。与南方生态型相比,北方生态型的山茱wood在休眠诱导的LD / LT条件下可能更耐光抑制。在本文中,我们提出了两个独立的但在时间上相互联系的过程的存在,这些过程在某些落叶木本植物中促进了休眠的发展:一个是受光周期驱动,受中等温度影响;另一个则受温度影响。另一种是由非生物胁迫驱动的,例如低温与长光周期的组合。在木本植物休眠发育过程中,与温度相关的这两个相关但截然不同的响应所对应的分子变化仍然是一项研究挑战。

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