Attachment strength is a key factor in the selection of surfaces by barnacle cyprids (Balanus amphitrite) during settlement
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Nick Aldred | Rocky de Nys | R. de Nys | A. Clare | N. Aldred | Andrew Scardino | Anthony S Clare | Andreia Cavaco | A. Scardino | Andreia Cavaco
[1] Jan Genzer,et al. Recent developments in superhydrophobic surfaces and their relevance to marine fouling: a review , 2006, Biofouling.
[2] D. Sandeman,et al. Morphology of the Nervous System of the Barnacle Cypris Larva (Balanus amphitrite Darwin) Revealed by Light and Electron Microscopy. , 1999, The Biological bulletin.
[3] Nick Aldred,et al. Species-specific engineered antifouling topographies: correlations between the settlement of algal zoospores and barnacle cyprids , 2007, Biofouling.
[4] J. Thomason,et al. A comparative study of the anti-settlement properties of mytilid shells , 2006, Biology Letters.
[5] A J Scardino,et al. Testing attachment point theory: diatom attachment on microtextured polyimide biomimics , 2006, Biofouling.
[6] M. Chaudhury,et al. The influence of elastic modulus and thickness on the release of the soft-fouling green alga Ulva linza (syn. Enteromorpha linza ) from poly(dimethylsiloxane) (PDMS) model networks , 2005, Biofouling.
[7] Maureen E. Callow,et al. Adhesion Strength of Settled Spores of the Green Alga Enteromorpha , 2002 .
[8] A. Clare,et al. The adhesive strategies of cyprids and development of barnacle-resistant marine coatings , 2008, Biofouling.
[9] R. Nys,et al. Attachment point theory revisited: the fouling response to a microtextured matrix , 2008, Biofouling.
[10] Walter Federle,et al. Why are so many adhesive pads hairy? , 2006, Journal of Experimental Biology.
[11] D. Crisp,et al. THE ORIENTATION AND DISTRIBUTION OF BARNACLES AT SETTLEMENT WITH PARTICULAR REFERENCE TO SURFACE CONTOUR , 1954 .
[12] J. Russell,et al. An in vivo study of exocytosis of cement proteins from barnacle Balanus improvisus (D.) cyprid larva , 2006, Journal of Experimental Biology.
[13] J. Callow,et al. Effect of background colour on growth and adhesion strength of Ulva sporelings , 2008, Biofouling (Print).
[14] M. Schultz,et al. The testing and evaluation of non-toxic antifouling coatings. , 1996, Biofouling.
[15] Anne Meyer,et al. Silicone Foul Release Coatings: Effect of the Interaction of Oil and Coating Functionalities on the Magnitude of Macrofouling Attachment Strengths , 2003, Biofouling.
[16] E. Holm. Effects of density-dependent mortality on the relationship between recruitment and larval settlement , 1990 .
[17] E. Bourget,et al. Substratum heterogeneity and complexity influence micro-habitat selection of Balanus sp. and Tubularia crocea larvae , 1996 .
[18] G. Walker,et al. A study of the cement apparatus of the cypris larva of the barnacle Balanus balanoides , 1971 .
[19] P. Gatenholm,et al. Design and microstructuring of PDMS surfaces for improved marine biofouling resistance , 2000, Journal of biomaterials science. Polymer edition.
[20] M. Grunze,et al. In Situ Imaging of Barnacle (Balanus amphitrite) Cyprid Cement Using Confocal Raman Microscopy , 2009 .
[21] Pierre Legendre,et al. An integrated study of the factors influencing the choice of the settling site of balanus crenatus cyprid larvae , 1983 .
[22] Martin Wahl,et al. The Influence of Natural Surface Microtopographies on Fouling , 2004, Biofouling.
[23] J. Thomason,et al. The relative magnitude of the effects of biological and physical settlement cues for cypris larvae of the acorn barnacle, Semibalanus balanoides L. , 2009, Biofouling.
[24] J. Thomason,et al. Field-based video observations of wild barnacle cyprid behaviour in response to textural and chemical settlement cues , 2008, Biofouling.
[25] Patrick Flammang,et al. Morphology and tenacity of the tube foot disc of three common European sea urchin species: a comparative study , 2006, Biofouling.
[26] Rocky de Nys,et al. Fouling Deterrence on the Bivalve Shell Mytilus galloprovincialis: A Physical Phenomenon? , 2004, Biofouling.
[27] Mehmet Atlar,et al. The development of foul-release coatings for seagoing vessels , 2003 .
[28] R. Nys,et al. Biomimetic characterisation of key surface parameters for the development of fouling resistant materials , 2009, Biofouling.
[29] C. Hellio,et al. Isethionic Acid and Floridoside Isolated from the Red Alga, Grateloupia turuturu, Inhibit Settlement of Balanus amphitrite Cyprid Larvae , 2004, Biofouling.
[30] W. O'Connor,et al. Microtopography and antifouling properties of the shell surface of the bivalve molluscs mytilus galloprovincialis and pinctada imbricata , 2003, Biofouling.
[31] R. de Nys,et al. Surface microtopographies of tropical sea stars: lack of an efficient physical defence mechanism against fouling , 2007, Biofouling.
[32] P. Gatenholm,et al. Reduction of barnacle recruitment on micro‐textured surfaces: Analysis of effective topographic characteristics and evaluation of skin friction , 2000 .
[33] A. Clare,et al. Mechanisms and Principles Underlying Temporary Adhesion, Surface Exploration and Settlement Site Selection by Barnacle Cyprids: A Short Review , 2009 .
[34] Janek von Byern,et al. Adhesive mechanisms in cephalopods: a review , 2006, Biofouling.
[35] J. Hills,et al. The effect of scales of surface roughness on the settlement of barnacle (Semibalanus balanoides) cyprids , 1998 .
[36] Anthony S. Clare,et al. Surface colonisation by marine organisms and its impact on antifouling research , 2009 .
[37] Sheelagh L. Conlan,et al. Evaluation of a fully automated method to measure the critical removal stress of adult barnacles , 2008, Biofouling.
[38] D. Wethey. Ranking of settlement cues by barnacle larvae: influence of surface contour , 1986 .
[39] J. Hills,et al. Settlement of barnacle larvae is governed by Euclidean and not fractal surface characteristics , 1999 .
[40] J. Callow,et al. An in situ study of the nanomechanical properties of barnacle (Balanus amphitrite) cyprid cement using atomic force microscopy (AFM) , 2006, Biofouling.
[41] M. Hadfield,et al. Microbial Biofilms Facilitate Adhesion in Biofouling Invertebrates , 2008, The Biological Bulletin.
[42] A. Clare,et al. Balanus amphitrite or Amphibalanus amphitrite? A note on barnacle nomenclature , 2008, Biofouling.
[43] G. Swain,et al. The use of barnacle adhesion measurements for the field evaluation of non‐toxic foul release surfaces , 1992 .
[44] Erol C. Harvey,et al. Fabrication techniques and their application to produce novel micromachined structures and devices using excimer laser projection , 1997, Photonics West - Micro and Nano Fabricated Electromechanical and Optical Components.
[45] A. Clare,et al. Interaction of conspecific cues in Balanus amphitrite Darwin (Cirripedia) settlement assays: Continued argument for the single-larva assay , 2008, Biofouling.
[46] A. B. Yule,et al. Temporary adhesion of the barnacle cyprid: the existence of an antennular adhesive secretion , 1984, Journal of the Marine Biological Association of the United Kingdom.
[47] Berntsson,et al. Analysis of behavioural rejection of micro-textured surfaces and implications for recruitment by the barnacle Balanus improvisus. , 2000, Journal of experimental marine biology and ecology.
[48] Maureen E. Callow,et al. Microtopographic Cues for Settlement of Zoospores of the Green Fouling Alga Enteromorpha , 2002 .
[49] H. Elwing,et al. Surface wettability as a determinant in the settlement of the barnacle Balanus Improvisus (DARWIN) , 2004 .
[50] W. Quinn,et al. The Drosophila memory mutant amnesiac , 1979, Nature.