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Oyster farming acts as a marine carbon dioxide removal (mCDR) hotspot for climate change mitigation.


ABSTRACT: Bivalve farming, a vital component of global aquaculture, has been proposed as a potential marine carbon dioxide removal (mCDR) strategy, yet its role remains contentious. Using field mesocosms, we demonstrate that oyster filter-feeding enhances mCDR by accelerating the formation of particulate and dissolved organic carbon in the water column and promoting organic carbon deposition in sediments. This process shifts the water column toward a more autotrophic and alkaline state, effectively sequestering CO2 from the atmosphere. Over the full culture period, the net carbon sequestered by oyster-driven organic carbon production is 2.39 times greater than the CO2 sequestered in oyster shells. These findings position oyster farming as a scalable, nature-based solution for climate change mitigation, offering dual benefits of carbon sequestration and enhanced food security. Our results underscore the potential of oyster farming to address global challenges such as rising food demand and ocean acidification, making it a critical component of sustainable marine resource management.

SUBMITTER: Chen XW 

PROVIDER: S-EPMC12435285 | biostudies-literature | 2025 Sep

REPOSITORIES: biostudies-literature

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Oyster farming acts as a marine carbon dioxide removal (mCDR) hotspot for climate change mitigation.

Chen Xue-Wei-Jie XW   Zhang Zhou Z   Pan Miao-Jun MJ   Liu Yang Y   Li Chang-Lin CL   Zhou Yan-Gen YG   Li Li L   Dong Xuan X   Dong Yun-Wei YW   Li Jing-Yu JY   Liu Su-Mei SM   Wang Xiao-Nan XN   Tian Shuang-Jie SJ   Liu Yi Y   Zhang Ji-Hong JH   Qiu Yan-Guo YG   Wang Xue-Gang XG   Cai Wei-Jun WJ   Tian Xiang-Li XL   Kao Shuh-Ji SJ   Dong Shuang-Lin SL  

Proceedings of the National Academy of Sciences of the United States of America 20250902 36


Bivalve farming, a vital component of global aquaculture, has been proposed as a potential marine carbon dioxide removal (mCDR) strategy, yet its role remains contentious. Using field mesocosms, we demonstrate that oyster filter-feeding enhances mCDR by accelerating the formation of particulate and dissolved organic carbon in the water column and promoting organic carbon deposition in sediments. This process shifts the water column toward a more autotrophic and alkaline state, effectively seques  ...[more]

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