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A novel assessment of the traction forces upon settlement of two typical marine fouling invertebrates using PDMS micropost arrays
Author(s) -
Kang Xiao,
Wenbin Cao,
Cu-Huang Rong,
Lian-Guo Chen,
XiaoXue Yang,
Weijia Wen,
PeiYuan Qian,
Zhangli Hu,
Ying Xu,
Yu Zhang
Publication year - 2017
Publication title -
biology open
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.936
H-Index - 41
ISSN - 2046-6390
DOI - 10.1242/bio.030262
Subject(s) - biofouling , barnacle , biology , marine invertebrates , metamorphosis , fouling , larva , settling , balanus , aquaculture , settlement (finance) , ecology , invertebrate , traction (geology) , fishery , environmental engineering , engineering , fish <actinopterygii> , genetics , membrane , world wide web , computer science , payment , paleontology
Marine biofouling poses a severe threat to maritime and aquaculture industries. To prevent the attachment of marine biofouling organisms on man-made structures, countless cost and effort was spent annually. In particular, most attention has been paid on the development of efficient and environmentally friendly fouling-resistant coatings, as well as larval settlement mechanism of several major biofouling invertebrates. In this study, polydimethylsiloxane (PDMS) micropost arrays were utilized as the settlement substrata and opposite tractions were identified during early settlement of the barnacle Amphibalanus amphitrite and the bryozoan Bugula neritina The settling A. amphitrite pushed the periphery microposts with an average traction force of 376.2 nN, while settling B. neritina pulled the periphery microposts with an average traction force of 205.9 nN. These micropost displacements are consistent with the body expansion of A. amphitrite during early post-settlement metamorphosis stage and elevation of wall epithelium of B. neritina during early pre-ancestrula stage, respectively. As such, the usage of micropost array may supplement the traditional histological approach to indicate the early settlement stages or even the initiation of larval settlement of marine fouling organisms, and could finally aid in the development of automatic monitoring platform for the real-time analysis on this complex biological process.

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