NARA Discovery
Article Details
← Back to Search Results
Journal Article

Increased connectivity and depth improve the effectiveness of marine reserves

Jordan S. Goetze; Shaun Wilson; Ben Radford; Rebecca Fisher; Tim J. Langlois; Jacquomo Monk; Nathan A. Knott; Hamish Malcolm; Leanne M. Currey‐Randall; Daniel Ierodiaconou; David Harasti; Neville Barrett; Russell C. Babcock; Nestor E. Bosch; Danny Brock; Joachim Claudet; Jock Clough; David V. Fairclough; Michelle R. Heupel; Thomas H. Holmes; Charlie Huveneers; Alan R. Jordan; Dianne McLean; Mark Meekan; David Miller; Stephen J. Newman; Matthew J. Rees; Kelsey E. Roberts; Benjamin J. Saunders; Conrad W. Speed; Michael J. Travers; Eric Treml; Sasha K. Whitmarsh; Corey B. Wakefield; Euan S. Harvey
Global Change Biology · Vol. 27, Issue 15 · pp. 3432-3447 · 2021

Abstract

Marine reserves are a key tool for the conservation of marine biodiversity, yet only ~2.5% of the world's oceans are protected. The integration of marine reserves into connected networks representing all habitats has been encouraged by international agreements, yet the benefits of this design has not been tested empirically. Australia has one of the largest systems of marine reserves, providing a rare opportunity to assess how connectivity influences conservation success. An Australia‐wide dataset was collected using baited remote underwater video systems deployed across a depth range from 0 to 100 m to assess the effectiveness of marine reserves for protecting teleosts subject to commercial and recreational fishing. A meta‐analytical comparison of 73 fished species within 91 marine reserves found that, on average, marine reserves had 28% greater abundance and 53% greater biomass of fished species compared to adjacent areas open to fishing. However, benefits of protection were not observed across all reserves (heterogeneity), so full subsets generalized additive modelling was used to consider factors that influence marine reserve effectiveness, including distance‐based and ecological metrics of connectivity among reserves. Our results suggest that increased connectivity and depth improve the aforementioned marine reserve benefits and that these factors should be considered to optimize such benefits over time. We provide important guidance on factors to consider when implementing marine reserves for the purpose of increasing the abundance and size of fished species, given the expected increase in coverage globally. We show that marine reserves that are highly protected (no‐take) and designed to optimize connectivity, size and depth range can provide an effective conservation strategy for fished species in temperate and tropical waters within an overarching marine biodiversity conservation framework.

Bibliographic Information

JournalGlobal Change Biology
PublisherWiley
Publication Date2021-08-01
Publication Year2021
Volume27
Issue15
Pages3432-3447
Document TypeJournal Article
Print ISSN1354-1013
eISSN1365-2486
DOI10.1111/gcb.15635
SubjectConservation Science

Access Information

NARA Access Coverage1997-01-01~Current
Journal Homepagehttps://onlinelibrary.wiley.com/loi/13652486
Publisher PageOpen Publisher Page
Full-text access depends on NARA's subscribed coverage and institutional access.