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Impacts of Temperature on Primary Productivity and Respiration in Naturally Structured Macroalgal Assemblages

机译:温度对天然结构大型藻类组合初级生产力和呼吸的影响

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摘要

Rising global temperatures caused by human-mediated change has already triggered significant responses in organismal physiology, distribution and ecosystem functioning. Although the effects of rising temperature on the physiology of individual organisms are well understood, the effect on community-wide processes has remained elusive. The fixation of carbon via primary productivity is an essential ecosystem function and any shifts in the balance of primary productivity and respiration could alter the carbon balance of ecosystems. Here we show through a series of tests that respiration of naturally structured algal assemblages in southern New Zealand greatly increases with rising temperature, with implications for net primary productivity (NPP). The NPP of in situ macroalgal assemblages was minimally affected by natural temperature variation, possibly through photo-acclimation or temperature acclimation responses, but respiration rates and compensating irradiance were negatively affected. However, laboratory experiments testing the impacts of rising temperature on several photosynthetic parameters showed a decline in NPP, increasing respiration rates and increasing compensating irradiance. The respiration Q10 of laboratory assemblages (the difference in metabolic rates over 10°C) averaged 2.9 compared to a Q10 of 2 often seen in other autotrophs. However, gross primary productivity (GPP) Q10 averaged 2, indicating that respiration was more severely affected by rising temperature. Furthermore, combined high irradiance and high temperature caused photoinhibition in the laboratory, and resulted in 50% lower NPP at high irradiance. Our study shows that communities may be more severely affected by rising global temperatures than would be expected by responses of individual species. In particular, enhanced respiration rates and rising compensation points have the potential to greatly affect the carbon balance of macroalgal assemblages through declines in sub-canopy NPP, the impacts of which may be exacerbated over longer time-scales and could result in declines in sub-canopy species richness and abundance.
机译:由人为介导的变化引起的全球气温上升已经引发了对生物生理,分布和生态系统功能的重大反应。尽管温度升高对单个生物体生理的影响已广为人知,但对整个社区过程的影响仍然难以捉摸。通过初级生产力固定碳是生态系统的基本功能,初级生产力和呼吸平衡的任何变化都可能改变生态系统的碳平衡。在这里,我们通过一系列测试表明,随着温度的升高,新西兰南部天然结构藻类组合的呼吸作用大大增加,这对净初级生产力(NPP)产生了影响。自然温度变化对原位大型藻类组合的NPP的影响很小,可能是通过光适应或温度适应的响应,但是呼吸速率和补偿辐照度受到负面影响。然而,测试温度升高对几种光合参数影响的实验室实验表明,NPP下降,呼吸速率增加和补偿辐照度增加。实验室组合的呼吸Q10(在10°C以上的代谢速率之差)平均为2.9,而在其他自养生物中常见的呼吸Q10为2。但是,总初级生产力(GPP)Q10平均为2,表明呼吸受温度升高的影响更大。此外,高辐照度和高温的共同作用导致实验室的光抑制作用,并导致高辐照度下的NPP降低50%。我们的研究表明,全球气温升高可能比单个物种的反应所预期的要严重得多。尤其是,呼吸频率的提高和补偿点的增加可能会通过亚冠层NPP的下降而极大地影响大型藻类组合的碳平衡,其影响可能会在更长的时间范围内加剧,并可能导致亚冠层NPP的下降。林冠种类丰富而丰富。

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    Leigh W. Tait; David R. Schiel;

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  • 年(卷),期 -1(8),9
  • 年度 -1
  • 页码 e74413
  • 总页数 10
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