De-novo reefs: fish habitat provision by oyster aquaculture varies with farming method

IF 2.2 2区 农林科学 Q2 FISHERIES Aquaculture Environment Interactions Pub Date : 2022-01-01 DOI:10.3354/aei00431
F. Martínez-Baena, BS Lanham, I. Mcleod, M. Taylor, S. Mcorrie, MJ Bishop
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引用次数: 2

Abstract

: Aquaculture industries have the capacity to produce positive ecosystem service benefits, such as the provision of habitat to wild animals. Oyster cultivation is the oldest and largest aquaculture industry in south-eastern Australia. Oyster spat are grown to marketable size in rack-and-rail (‘racks’) or longline-and-basket (‘baskets’) configurations, which add structure to estuarine waters. This study assessed: (1) how the fish communities associated with oyster farms vary with production method; (2) how communities of fish utilise oyster infrastructure, as compared to adjacent natural habitats; and (3) whether oyster infrastructure can serve as de facto oyster reefs by supporting similar fish communities. Remote underwater video surveys, conducted during summer and winter of 2 study years, revealed that fish observations and species richness were generally greater for rack than basket cultivation. Both types of oyster farms supported at least as many species of fish as adjacent natural habitats, including oyster reef, seagrass, mangrove and bare sediment. Fish communities were, in general, most similar between racks and baskets and most dissimilar between racks and bare sediments. Oyster farms supported species of fish otherwise limited to habitats with wild oysters, and unique harvested fish species were ob served more frequently at racks. Fish use of oyster-growing infrastructure for foraging and shelter mirrored use of natural biogenic habitats. Overall, this study suggests that the oyster aquaculture infrastructure can support fish communities with species composition similar to those of natural biogenic habitats, although this service is dependent on farming method. Ecosystem services provided by aqua-culture should be considered in estuarine habitat enhancement, conservation and restoration
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新生珊瑚礁:牡蛎养殖提供的鱼类栖息地因养殖方法而异
:水产养殖业有能力产生积极的生态系统服务效益,例如为野生动物提供栖息地。牡蛎养殖是澳大利亚东南部历史最悠久、规模最大的水产养殖业。牡蛎苗生长到可销售的大小,采用架轨(“架”)或长绳篮(“筐”)的方式,为河口水域增添结构。本研究评估了:(1)与牡蛎养殖场相关的鱼类群落如何随生产方式的不同而变化;(2)与邻近的自然生境相比,鱼类群落如何利用牡蛎基础设施;(3)牡蛎基础设施是否可以通过支持类似的鱼类群落而成为事实上的牡蛎礁。在2个研究年的夏季和冬季进行的远程水下视频调查显示,网架栽培的鱼类观测值和物种丰富度普遍大于篮式栽培。这两种牡蛎养殖场所支持的鱼类种类至少与邻近的自然栖息地一样多,包括牡蛎礁、海草、红树林和裸露的沉积物。一般来说,鱼群落在架子和篮子之间最相似,在架子和裸露的沉积物之间最不相似。牡蛎养殖场支持的鱼类种类,否则仅限于野生牡蛎的栖息地,而独特的收获鱼类则更频繁地在货架上出售。鱼类利用牡蛎养殖基础设施觅食和庇护,反映了自然生物栖息地的使用。总体而言,本研究表明,牡蛎养殖基础设施可以支持与自然生物栖息地相似的物种组成的鱼类群落,尽管这种服务依赖于养殖方法。在河口生境的改善、保护和恢复中应考虑水产养殖所提供的生态系统服务
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来源期刊
Aquaculture Environment Interactions
Aquaculture Environment Interactions FISHERIES-MARINE & FRESHWATER BIOLOGY
CiteScore
4.90
自引率
13.60%
发文量
15
审稿时长
>12 weeks
期刊介绍: AEI presents rigorously refereed and carefully selected Research Articles, Reviews and Notes, as well as Comments/Reply Comments (for details see MEPS 228:1), Theme Sections and Opinion Pieces. For details consult the Guidelines for Authors. Papers may be concerned with inter­actions between aquaculture and the environment from local to ecosystem scales, at all levels of organisation and investigation. Areas covered include: -Pollution and nutrient inputs; bio-accumulation and impacts of chemical compounds used in aquaculture. -Effects on benthic and pelagic assemblages or pro­cesses that are related to aquaculture activities. -Interactions of wild fauna (invertebrates, fishes, birds, mammals) with aquaculture activities; genetic impacts on wild populations. -Parasite and pathogen interactions between farmed and wild stocks. -Comparisons of the environmental effects of traditional and organic aquaculture. -Introductions of alien species; escape and intentional releases (seeding) of cultured organisms into the wild. -Effects of capture-based aquaculture (ranching). -Interactions of aquaculture installations with biofouling organisms and consequences of biofouling control measures. -Integrated multi-trophic aquaculture; comparisons of re-circulation and ‘open’ systems. -Effects of climate change and environmental variability on aquaculture activities. -Modelling of aquaculture–environment interactions; ­assessment of carrying capacity. -Interactions between aquaculture and other industries (e.g. tourism, fisheries, transport). -Policy and practice of aquaculture regulation directed towards environmental management; site selection, spatial planning, Integrated Coastal Zone Management, and eco-ethics.
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