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Journal Article

Ocean acidification locks algal communities in a species‐poor early successional stage

Ben P. Harvey; Koetsu Kon; Sylvain Agostini; Shigeki Wada; Jason M. Hall‐Spencer
Global Change Biology · Vol. 27, Issue 10 · pp. 2174-2187 · 2021

Abstract

Long‐term exposure to CO 2 ‐enriched waters can considerably alter marine biological community development, often resulting in simplified systems dominated by turf algae that possess reduced biodiversity and low ecological complexity. Current understanding of the underlying processes by which ocean acidification alters biological community development and stability remains limited, making the management of such shifts problematic. Here, we deployed recruitment tiles in reference (pH T 8.137 ± 0.056 SD) and CO 2 ‐enriched conditions (pH T 7.788 ± 0.105 SD) at a volcanic CO 2 seep in Japan to assess the underlying processes and patterns of algal community development. We assessed (i) algal community succession in two different seasons (Cooler months: January–July, and warmer months: July–January), (ii) the effects of initial community composition on subsequent community succession (by reciprocally transplanting preestablished communities for a further 6 months), and (iii) the community production of resulting communities, to assess how their functioning was altered (following 12 months recruitment). Settlement tiles became dominated by turf algae under CO 2 ‐enrichment and had lower biomass, diversity and complexity, a pattern consistent across seasons. This locked the community in a species‐poor early successional stage. In terms of community functioning, the elevated p CO 2 community had greater net community production, but this did not result in increased algal community cover, biomass, biodiversity or structural complexity. Taken together, this shows that both new and established communities become simplified by rising CO 2 levels. Our transplant of preestablished communities from enriched CO 2 to reference conditions demonstrated their high resilience, since they became indistinguishable from communities maintained entirely in reference conditions. This shows that meaningful reductions in p CO 2 can enable the recovery of algal communities. By understanding the ecological processes responsible for driving shifts in community composition, we can better assess how communities are likely to be altered by ocean acidification.

Bibliographic Information

JournalGlobal Change Biology
PublisherWiley
Publication Date2021-05-01
Publication Year2021
Volume27
Issue10
Pages2174-2187
Document TypeJournal Article
Print ISSN1354-1013
eISSN1365-2486
DOI10.1111/gcb.15455
SubjectConservation Science

Access Information

NARA Access Coverage1997-01-01~Current
Journal Homepagehttps://onlinelibrary.wiley.com/loi/13652486
Publisher PageOpen Publisher Page
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