School of Forestry and Environmental Studies, Yale University, New Haven, CT, USA.
Department of Environmental Studies, University of California, Santa Cruz, Santa Cruz, CA, USA.
Science. 2018 Dec 7;362(6419). doi: 10.1126/science.aar3213.
Predicting and managing the global carbon cycle requires scientific understanding of ecosystem processes that control carbon uptake and storage. It is generally assumed that carbon cycling is sufficiently characterized in terms of uptake and exchange between ecosystem plant and soil pools and the atmosphere. We show that animals also play an important role by mediating carbon exchange between ecosystems and the atmosphere, at times turning ecosystem carbon sources into sinks, or vice versa. Animals also move across landscapes, creating a dynamism that shapes landscape-scale variation in carbon exchange and storage. Predicting and measuring carbon cycling under such dynamism is an important scientific challenge. We explain how to link analyses of spatial ecosystem functioning, animal movement, and remote sensing of animal habitats with carbon dynamics across landscapes.
预测和管理全球碳循环需要对控制碳吸收和储存的生态系统过程有科学的认识。人们普遍认为,从生态系统植物和土壤库与大气之间的吸收和交换的角度来看,碳循环已经得到了充分的描述。我们表明,动物通过在生态系统和大气之间调节碳交换,也起着重要的作用,有时将生态系统的碳源变成汇,或者反之亦然。动物也在景观中移动,形成一种动态,从而塑造了景观尺度上碳交换和储存的变化。在这种动态下预测和测量碳循环是一个重要的科学挑战。我们解释了如何将对空间生态系统功能、动物运动以及动物栖息地的遥感分析与景观尺度上的碳动态联系起来。