Understory plant biodiversity is inversely related to carbon storage in a high carbon ecosystem

IF 4.6 Q2 MATERIALS SCIENCE, BIOMATERIALS ACS Applied Bio Materials Pub Date : 2024-10-27 DOI:10.1002/ece3.70095
Trevor A. Carter, Brian Buma
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Abstract

Given that terrestrial ecosystems globally are facing the loss of biodiversity from land use conversion, invasive species, and climate change, effective management requires a better understanding of the drivers and correlates of biodiversity. Increasingly, biodiversity is co-managed with aboveground carbon storage because high biodiversity in animal species is observed to correlate with high aboveground carbon storage. Most previous investigations into the relationship of biodiversity and carbon co-management do not focus on the biodiversity of the species rich plant kingdom, which may have tradeoffs with carbon storage. To examine the relationships of plant species richness with aboveground tree biomass carbon storage, we used a series of generalized linear models with understory plant species richness and diversity data from the USDA Forest Service Forest Inventory and Analysis dataset and high-resolution modeled carbon maps for the Tongass National Forest. Functional trait data from the TRY database was used to understand the potential mechanisms that drive the response of understory plants. Understory species richness and community weighted mean leaf dry matter content decreased along an increasing gradient of tree biomass carbon storage, but understory diversity, community weighted mean specific leaf area, and plant height at maturity did not. Leaf dry matter content had little variance at the community level. The decline of understory plant species richness but not diversity to increases in aboveground biomass carbon storage suggests that rare species are excluded in aboveground biomass carbon dense areas. These decreases in understory species richness reflect a tradeoff between the understory plant community and aboveground carbon storage. The mechanisms that are associated with observed plant communities along a gradient of biomass carbon storage in this forest suggest that slower-growing plant strategies are less effective in the presence of high biomass carbon dense trees in the overstory.

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在高碳生态系统中,底层植物的生物多样性与碳储存成反比。
鉴于全球陆地生态系统正面临着土地用途转换、入侵物种和气候变化造成的生物多样性丧失,有效的管理需要更好地了解生物多样性的驱动因素和相关因素。生物多样性越来越多地与地面碳储量共同管理,因为据观察,动物物种的高生物多样性与高地面碳储量相关。以往对生物多样性与碳共同管理关系的研究大多没有关注物种丰富的植物界的生物多样性,而植物界的生物多样性可能与碳储存有权衡关系。为了研究植物物种丰富度与树木地上生物量碳储存的关系,我们使用了一系列广义线性模型,并使用了美国农业部林务局森林资源清查与分析数据集中的林下植物物种丰富度和多样性数据以及汤加斯国家森林的高分辨率模型碳地图。来自 TRY 数据库的功能性状数据被用来了解驱动林下植物响应的潜在机制。林下物种丰富度和群落加权平均叶片干物质含量随着树木生物量碳储量梯度的增加而减少,但林下多样性、群落加权平均比叶面积和成熟株高却没有减少。叶片干物质含量在群落水平上几乎没有差异。地上生物量碳储量增加时,林下植物物种丰富度下降,但多样性却没有下降,这表明稀有物种被排除在地上生物量碳储量高的地区之外。林下物种丰富度的下降反映了林下植物群落与地上碳储量之间的权衡。在这片森林中,沿着生物质碳储量梯度观察植物群落的相关机制表明,在上层存在高生物质碳密度树木的情况下,生长较慢的植物策略不太有效。
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来源期刊
ACS Applied Bio Materials
ACS Applied Bio Materials Chemistry-Chemistry (all)
CiteScore
9.40
自引率
2.10%
发文量
464
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