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Published on: May 2, 2025
Large slow-growing hydrophytes increase wetland carbon storage
Hao Liu1, Jinquan Li1, Jihua Wu1,2
1State Key Laboratory of Wetland Conservation and Restoration, National Observations and Research Station for Wetland Ecosystems of the Yangtze Estuary, Ministry of Education Key Laboratory for Biodiversity Science and Ecological Engineering, and Institute of Eco-Chongming, School of Life Sciences, Fudan University, Shanghai, China.
Wetland plant diversity minimally impacts soil carbon storage. Instead, wetlands with large, slow-growing, water-loving plants store more carbon, especially with high water levels and low human disturbance.
Area of Science:
- Ecology
- Climate Science
- Conservation Biology
Background:
- Wetlands are critical carbon sinks for climate change mitigation.
- The role of plant diversity in wetland soil carbon storage is not well understood.
- Terrestrial plant diversity often enhances soil carbon, but wetland dynamics differ.
Purpose of the Study:
- To investigate the impact of trait-based plant diversity (functional diversity) and composition (functional identity) on soil carbon storage in natural wetlands.
- To determine factors that modulate these relationships, such as nutrient availability, invasive species, water levels, and human disturbance.
Main Methods:
- Analysis of data from 1,268 natural wetlands in the US National Wetland Condition Assessment (NWCA).
- Examination of how functional diversity and functional identity influence soil carbon stocks.
- Assessment of environmental factors (nutrients, non-native stress, water levels, disturbance) on these relationships.
Main Results:
- Functional diversity showed a minimal effect on wetland carbon stocks.
- Elevated soil nutrients and non-native plant stress reduced the influence of functional diversity.
- Soil carbon storage was higher in wetlands dominated by large, slow-growing, highly hydrophytic plants.
- The positive effects of functional identity were dependent on high water levels and low human disturbance.
Conclusions:
- Wetland plant functional identity, rather than diversity, is a key driver of soil carbon storage.
- Conservation and restoration efforts should prioritize wetlands with specific plant traits (large, conservative, hydrophytic) and favorable conditions (high water, low disturbance) for climate mitigation.
- Understanding these factors is crucial for effective wetland management for climate goals.
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