Digging deep: lessons learned from meiofaunal responses to a disturbance experiment in the Clarion-Clipperton Zone

被引:0
作者
Nene Lefaible
Lara Macheriotou
Kaveh Purkiani
Matthias Haeckel
Daniela Zeppilli
Ellen Pape
Ann Vanreusel
机构
[1] Marine Biology Research Group,MARUM Centre for Marine Environmental Sciences and Faculty of Geosciences
[2] GEOMAR Helmholtz Centre for Ocean Research Kiel,undefined
[3] University of Bremen,undefined
[4] University Brest,undefined
[5] CNRS,undefined
[6] Ifremer,undefined
[7] UMR6197 Biologie Et Ecologie Des Ecosystèmes Marins Profonds,undefined
来源
Marine Biodiversity | 2023年 / 53卷
关键词
Deep-sea mining; Polymetallic nodules; Meiofauna; Impact studies; Sediment plume; Numerical modelling;
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中图分类号
学科分类号
摘要
The deep-sea mining industry is currently at a point where large-sale, commercial polymetallic nodule exploitation is becoming a more realistic scenario. At the same time, certain aspects such as the spatiotemporal scale of impacts, sediment plume dispersion and the disturbance-related biological responses remain highly uncertain. In this paper, findings from a small-scale seabed disturbance experiment in the German contract area (Clarion-Clipperton Zone, CCZ) are described, with a focus on the soft-sediment ecosystem component. Despite the limited spatial scale of the induced disturbance on the seafloor, this experiment allowed us to evaluate how short-term (< 1 month) soft-sediment changes can be assessed based on sediment characteristics (grain size, nutrients and pigments) and metazoan meiofaunal communities (morphological and metabarcoding analyses). Furthermore, we show how benthic measurements can be combined with numerical modelling of sediment transport to enhance our understanding of meiofaunal responses to increased sedimentation levels. The lessons learned within this study highlight the major issues of current deep-sea mining-related ecological research such as deficient baseline knowledge, unrepresentative impact intensity of mining simulations and challenges associated with sampling trade-offs (e.g., replication).
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