Compensation and colonization offset the impacts of biodiversity loss over time in grasslands
Abstract
The biodiversity–productivity relationship (BPR) is crucial for understanding the consequences of biodiversity loss; yet, how this relationship evolves over time in natural ecosystems remains unclear. Several long-term biodiversity experiments with artificially assembled communities suggest that the BPR escalates over time, however, whether this pattern applies to natural ecosystems has not been explored. Here, we present the results of a 15-y removal experiment in the Inner Mongolia grassland, where gradients of plant functional group (PFG) richness and species richness were created through targeted removals from 2006–2009, followed by natural recolonization from 2010 onward. We found that both the PFG richness-based and species richness-based BPRs diminished gradually during the removal period (years 2–4) and decoupled in 9 out of 12 y after the cessation of removal (years 5–16), suggesting that the negative impacts of biodiversity loss do not necessarily escalate over time; rather, they may decrease. We identified that the temporal shift in BPRs resulted first from compensatory growth of remaining species and subsequently from new colonization by external populations. These results highlight that the impacts of biodiversity loss in natural ecosystems are strongly modified by assembly processes such as compensation and colonization. Therefore, models predicting the ecosystem consequences of biodiversity loss should consider these mechanisms. Ignoring them may lead to an overestimation of the long-term impacts of biodiversity loss in natural communities, particularly where surrounding landscapes harbor species pools capable of recolonization.
Article Details
Journal Info
Proceedings of the National Academy of Sciences
National Academy of Sciences
Authors (11)
Jing Wang
Hunan Cancer Hospital Changsha China
Wei Liu
Jiamei Sun
State Key Laboratory of Forage Breeding-by-Design and Utilization, Key Laboratory of Vegetation and Environmental Change, Institute of Botany, Chinese Academy of Sciences
Jianguo Wu
School of Life Sciences and School of Sustainability, Arizona State University
Yongfei Bai
State Key Laboratory of Vegetation and Environmental Change, Institute of Botany, Chinese Academy of Sciences
Jianhui Huang
State Key Laboratory of Vegetation and Environmental Change, Institute of Botany, Chinese Academy of Sciences
Qibing Wang
State Key Laboratory of Forage Breeding-by-Design and Utilization, Key Laboratory of Vegetation and Environmental Change, Institute of Botany, Chinese Academy of Sciences
James J. Elser
Flathead Lake Biological Station, Division of Biological and Biomedical Sciences, University of Montana
Xiaoliang Wang
Department of Chemistry
Xingguo Han
Qingmin Pan
State Key Laboratory of Forage Breeding-by-Design and Utilization, Key Laboratory of Vegetation and Environmental Change, Institute of Botany, Chinese Academy of Sciences