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Proc Biol Sci. 2018 Feb 14;285(1872). doi: 10.1098/rspb.2017.1957.
2
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本文引用的文献

1
Automated tracking and classification of the settlement behaviour of barnacle cyprids.藤壶无节幼体附着行为的自动跟踪与分类
J R Soc Interface. 2017 Mar;14(128). doi: 10.1098/rsif.2016.0957.
2
Instantaneous Flow Structures and Opportunities for Larval Settlement: Barnacle Larvae Swim to Settle.瞬时流动结构与幼体附着的机会:藤壶幼虫游动以实现附着。
PLoS One. 2016 Jul 27;11(7):e0158957. doi: 10.1371/journal.pone.0158957. eCollection 2016.
3
Mini-review: Assessing the drivers of ship biofouling management--aligning industry and biosecurity goals.小型综述:评估船舶生物污损管理的驱动因素——使行业目标与生物安全目标保持一致
Biofouling. 2016;32(4):411-28. doi: 10.1080/08927014.2016.1149572.
4
Classification of the pre-settlement behaviour of barnacle cyprids.藤壶无节幼体附着前行为的分类。
J R Soc Interface. 2015 Jan 6;12(102):20141104. doi: 10.1098/rsif.2014.1104.
5
Correlation between surface chemistry and settlement behaviour in barnacle cyprids (Balanus improvisus).藤壶无节幼虫(Balanus improvisus)表面化学与附着行为之间的相关性。
Biofouling. 2014 Feb;30(2):143-52. doi: 10.1080/08927014.2013.852541. Epub 2013 Dec 6.
6
Three-dimensional tracking of small aquatic organisms using fluorescent nanoparticles.利用荧光纳米粒子对小型水生生物进行三维跟踪。
PLoS One. 2013 Nov 7;8(11):e78498. doi: 10.1371/journal.pone.0078498. eCollection 2013.
7
Three dimensional tracking of exploratory behavior of barnacle cyprids using stereoscopy.利用立体视觉对藤壶幼体的探索行为进行三维跟踪。
Biointerphases. 2012 Dec;7(1-4):50. doi: 10.1007/s13758-012-0050-x. Epub 2012 Aug 21.
8
Fouling release coatings: a nontoxic alternative to biocidal antifouling coatings.防污释放涂层:杀生型防污涂层的无毒替代品。
Chem Rev. 2012 Aug 8;112(8):4347-90. doi: 10.1021/cr200350v. Epub 2012 May 11.
9
Surface exploration of Amphibalanus amphitrite cyprids on microtextured surfaces.藤壶幼体在微纹理表面上的表面探索。
Biofouling. 2011 Apr;27(4):413-22. doi: 10.1080/08927014.2011.577210.
10
Video observation of surface exploration in cyprids of Balanus amphitrite: the movements of antennular sensory setae.视频观察藤壶幼体的表面探索:触角感觉刚毛的运动。
Biofouling. 2011 Feb;27(2):225-39. doi: 10.1080/08927014.2011.555534.

定量分析完整的幼虫附着过程证实了藤壶的表面选择性crisp 模型。

Quantitative analysis of the complete larval settlement process confirms Crisp's model of surface selectivity by barnacles.

机构信息

School of Natural and Environmental Sciences, Newcastle University, Newcastle upon Tyne NE1 7RU, UK.

School of Natural and Environmental Sciences, Newcastle University, Newcastle upon Tyne NE1 7RU, UK

出版信息

Proc Biol Sci. 2018 Feb 14;285(1872). doi: 10.1098/rspb.2017.1957.

DOI:10.1098/rspb.2017.1957
PMID:29445024
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC5829194/
Abstract

For barnacle cypris larvae at the point of settlement, selection of an appropriate surface is critical. Since post-settlement relocation is usually impossible, barnacles have evolved finely tuned surface-sensing capabilities to identify suitable substrata, and a temporary adhesion system for extensive surface exploration. The pattern of exploratory behaviour appears complex and may last for several hours, imposing significant barriers to quantitative measurement. Here, we employ a novel tracking system that enables simultaneous analysis of the larval body movement of multiple individuals over their entire planktonic phase. For the first time, to our knowledge, we describe quantitatively the complete settlement process of cyprids as they explore and select surfaces for attachment. We confirm the 'classic' behaviours of wide searching, close searching and inspection that comprise a model originally proposed by Prof. Dennis Crisp FRS. Moreover, a short-term assay of cyprid body movement has identified inspection behaviour as the best indicator of propensity to settle, with more inspection-related movements occurring in conditions that also promote higher settlement. More than half a century after the model was first proposed by Crisp, there exists a precise method for quantifying cyprid settlement behaviour in wide-ranging investigations of barnacle ecology and applied studies of fouling management.

摘要

对于即将附着的藤壶幼体而言,选择合适的表面至关重要。由于附着后通常无法重新定位,藤壶进化出了精细的表面感应能力,以识别合适的基质,并具有广泛的表面探索临时附着系统。探索行为的模式似乎很复杂,可能持续数小时,这给定量测量带来了重大障碍。在这里,我们采用了一种新颖的跟踪系统,能够同时分析多个个体在整个浮游阶段的幼虫身体运动。据我们所知,这是首次定量描述了幼体在探索和选择附着表面时的完整附着过程。我们证实了“经典”的广泛搜索、近距离搜索和检查行为,这些行为构成了丹尼斯·克里斯普教授(Dennis Crisp FRS)最初提出的模型。此外,对藤壶幼体身体运动的短期检测表明,检查行为是最能预示附着倾向的指标,在促进附着的条件下,与检查相关的运动发生得更多。在克里斯普首次提出该模型半个多世纪后,现在有了一种精确的方法来量化藤壶幼体的附着行为,从而广泛开展藤壶生态学研究和防污管理的应用研究。