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首页> 外文期刊>Global change biology >Exposure to preindustrial, current and future atmospheric CO and temperature differentially affects growth and photosynthesis in Eucalyptus
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Exposure to preindustrial, current and future atmospheric CO and temperature differentially affects growth and photosynthesis in Eucalyptus

机译:暴露于工业前,当前和未来大气中的CO和温度差异地影响桉树的生长和光合作用

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To investigate if Eucalyptus species have responded to industrial-age climate change, and how they may respond to a future climate, we measured growth and physiology of fast- (E. saligna) and slow-growing (E. sideroxylon) seedlings exposed to preindustrial (290), current (400) or projected (650 oL Lp#) CO concentration ([CO]) and to current or projected (current +4 pC) temperature. To evaluate maximum potential treatment responses, plants were grown with nonlimiting soil moisture. We found that: (1) E. sideroxylon responded more strongly to elevated [CO] than to elevated temperature, while E. saligna responded similarly to elevated [CO] and elevated temperature; (2) the transition from preindustrial to current [CO] did not enhance eucalypt plant growth under ambient temperature, despite enhancing photosynthesis; (3) the transition from current to future [CO] stimulated both photosynthesis and growth of eucalypts, independent of temperature; and (4) warming enhanced eucalypt growth, independent of future [CO], despite not affecting photosynthesis. These results suggest large potential carbon sequestration by eucalypts in a future world, and highlight the need to evaluate how future water availability may affect such responses.
机译:为了调查桉树物种是否对工业时代的气候变化做出了响应,以及它们如何响应未来的气候,我们测量了暴露于工业化前的速生(E. saligna)和慢生(E. sideroxylon)幼苗的生长和生理状况。 (290),当前(400)或预计的(650 oL Lp#)CO浓度([CO])以及当前或预计的(当前+4 pC)温度。为了评估最大的潜在处理响应,使植物在非限制性土壤湿度下生长。我们发现:(1)铁丹参隆克对升高的[CO]的响应比对升高的温度更强,而对粘枝大肠杆菌对升高[CO]和升高的温度的响应相似; (2)尽管增强了光合作用,但从工业化前的二氧化碳到当前的[CO]的转化并没有促进桉树植物在环境温度下的生长; (3)从当前[CO]到将来的[CO]的转换刺激了桉树的光合作用和生长,而与温度无关; (4)尽管不影响光合作用,但变暖促进了桉树的生长,而不受未来[CO]的影响。这些结果表明,在未来的世界中桉树可能存在大量的碳固存,并强调需要评估未来的水可利用量如何影响这种反应。

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