A Method for Evaluating the Efficacy of Antifouling Paints Using Mytilus galloprovincialis in the Laboratory in a Flow-Through System
A laboratory test with a flow-through system was designed and its applicability for testing antifouling paints of varying efficacies was investigated. Six different formulations of antifouling paints were prepared to have increasing contents (0 to 40 wt.%) of Cu2O, which is the most commonly used an...
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Published in | PloS one Vol. 11; no. 12; p. e0168172 |
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Main Authors | , , , , , , |
Format | Journal Article |
Language | English |
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13.12.2016
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Abstract | A laboratory test with a flow-through system was designed and its applicability for testing antifouling paints of varying efficacies was investigated. Six different formulations of antifouling paints were prepared to have increasing contents (0 to 40 wt.%) of Cu2O, which is the most commonly used antifouling substance, and each formulation of paint was coated on just one surface of every test plate. The test plates were aged for 45 days by rotating them at a speed of 10 knots inside a cylinder drum. A behavioral test was then conducted using five mussels (Mytilus galloprovincialis) that were pasted onto the coated surface of each aged test plate. The number of the byssus threads produced by each mussel generally decreased with increasing Cu2O content of the paint. The newly designed method was considered valid owing to the high consistency of its results with observations from the field experiment. |
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AbstractList | A laboratory test with a flow-through system was designed and its applicability for testing antifouling paints of varying efficacies was investigated. Six different formulations of antifouling paints were prepared to have increasing contents (0 to 40 wt.%) of Cu.sub.2 O, which is the most commonly used antifouling substance, and each formulation of paint was coated on just one surface of every test plate. The test plates were aged for 45 days by rotating them at a speed of 10 knots inside a cylinder drum. A behavioral test was then conducted using five mussels (Mytilus galloprovincialis) that were pasted onto the coated surface of each aged test plate. The number of the byssus threads produced by each mussel generally decreased with increasing Cu.sub.2 O content of the paint. The newly designed method was considered valid owing to the high consistency of its results with observations from the field experiment. A laboratory test with a flow-through system was designed and its applicability for testing antifouling paints of varying efficacies was investigated. Six different formulations of antifouling paints were prepared to have increasing contents (0 to 40 wt.%) of Cu2O, which is the most commonly used antifouling substance, and each formulation of paint was coated on just one surface of every test plate. The test plates were aged for 45 days by rotating them at a speed of 10 knots inside a cylinder drum. A behavioral test was then conducted using five mussels (Mytilus galloprovincialis) that were pasted onto the coated surface of each aged test plate. The number of the byssus threads produced by each mussel generally decreased with increasing Cu2O content of the paint. The newly designed method was considered valid owing to the high consistency of its results with observations from the field experiment. A laboratory test with a flow-through system was designed and its applicability for testing antifouling paints of varying efficacies was investigated. Six different formulations of antifouling paints were prepared to have increasing contents (0 to 40 wt.%) of Cu 2 O, which is the most commonly used antifouling substance, and each formulation of paint was coated on just one surface of every test plate. The test plates were aged for 45 days by rotating them at a speed of 10 knots inside a cylinder drum. A behavioral test was then conducted using five mussels ( Mytilus galloprovincialis ) that were pasted onto the coated surface of each aged test plate. The number of the byssus threads produced by each mussel generally decreased with increasing Cu 2 O content of the paint. The newly designed method was considered valid owing to the high consistency of its results with observations from the field experiment. A laboratory test with a flow-through system was designed and its applicability for testing antifouling paints of varying efficacies was investigated. Six different formulations of antifouling paints were prepared to have increasing contents (0 to 40 wt.%) of Cu 2 O, which is the most commonly used antifouling substance, and each formulation of paint was coated on just one surface of every test plate. The test plates were aged for 45 days by rotating them at a speed of 10 knots inside a cylinder drum. A behavioral test was then conducted using five mussels ( Mytilus galloprovincialis ) that were pasted onto the coated surface of each aged test plate. The number of the byssus threads produced by each mussel generally decreased with increasing Cu 2 O content of the paint. The newly designed method was considered valid owing to the high consistency of its results with observations from the field experiment. |
Audience | Academic |
Author | Ando, Hirotomo Katsuyama, Ichiro Kobayashi, Seiji Seki, Yasuyuki Kojima, Ryuji Satuito, Cyril Glenn Perez Senda, Tetsuya |
AuthorAffiliation | 4 Hiroshima R&D Centre, Chugoku Marine Paints, Ltd, Otake, Hiroshima, Japan 3 Graduate School of Fisheries Science and Environmental Studies, Nagasaki University, Nagasaki, Japan 1 Department of Marine Environment and Engine System, National Maritime Research Institute, Mitaka, Tokyo, Japan VIT University, INDIA 2 Department of Environmental Risk Consulting, Japan NUS Co., Ltd, Shinjuku, Tokyo, Japan |
AuthorAffiliation_xml | – name: 2 Department of Environmental Risk Consulting, Japan NUS Co., Ltd, Shinjuku, Tokyo, Japan – name: VIT University, INDIA – name: 4 Hiroshima R&D Centre, Chugoku Marine Paints, Ltd, Otake, Hiroshima, Japan – name: 3 Graduate School of Fisheries Science and Environmental Studies, Nagasaki University, Nagasaki, Japan – name: 1 Department of Marine Environment and Engine System, National Maritime Research Institute, Mitaka, Tokyo, Japan |
Author_xml | – sequence: 1 givenname: Ryuji orcidid: 0000-0001-9340-9718 surname: Kojima fullname: Kojima, Ryuji organization: Department of Marine Environment and Engine System, National Maritime Research Institute, Mitaka, Tokyo, Japan – sequence: 2 givenname: Seiji surname: Kobayashi fullname: Kobayashi, Seiji organization: Department of Environmental Risk Consulting, Japan NUS Co., Ltd, Shinjuku, Tokyo, Japan – sequence: 3 givenname: Cyril Glenn Perez surname: Satuito fullname: Satuito, Cyril Glenn Perez organization: Graduate School of Fisheries Science and Environmental Studies, Nagasaki University, Nagasaki, Japan – sequence: 4 givenname: Ichiro surname: Katsuyama fullname: Katsuyama, Ichiro organization: Department of Environmental Risk Consulting, Japan NUS Co., Ltd, Shinjuku, Tokyo, Japan – sequence: 5 givenname: Hirotomo surname: Ando fullname: Ando, Hirotomo organization: Department of Marine Environment and Engine System, National Maritime Research Institute, Mitaka, Tokyo, Japan – sequence: 6 givenname: Yasuyuki surname: Seki fullname: Seki, Yasuyuki organization: Hiroshima R&D Centre, Chugoku Marine Paints, Ltd, Otake, Hiroshima, Japan – sequence: 7 givenname: Tetsuya surname: Senda fullname: Senda, Tetsuya organization: Department of Marine Environment and Engine System, National Maritime Research Institute, Mitaka, Tokyo, Japan |
BackLink | https://www.ncbi.nlm.nih.gov/pubmed/27959916$$D View this record in MEDLINE/PubMed |
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CitedBy_id | crossref_primary_10_3390_md19010005 crossref_primary_10_1007_s00244_021_00868_6 crossref_primary_10_1016_j_apor_2023_103860 crossref_primary_10_5988_jime_54_879 crossref_primary_10_1007_s00244_021_00907_2 crossref_primary_10_1080_08927014_2017_1349897 crossref_primary_10_3390_jmse10060792 crossref_primary_10_1021_acsfoodscitech_2c00148 crossref_primary_10_3390_jmse8110848 crossref_primary_10_1016_j_watres_2020_116383 crossref_primary_10_3390_coatings9020112 crossref_primary_10_1021_acs_est_0c08014 |
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DocumentTitleAlternate | Efficacy of AF Paints Using Mussel in a Flow-Through System |
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Notes | ObjectType-Article-1 SourceType-Scholarly Journals-1 ObjectType-Feature-2 content type line 23 Competing Interests: SK and IK are employed by Japan NUS Co., Ltd. YS is employed by Chugoku Marine Paints, Ltd. There are no patents, products in development or marketed products to declare. This does not alter our adherence to all the PLOS ONE policies on sharing data and materials, as detailed online in the guide for authors. These authors also contributed equally to this work. Conceptualization: IK TS HA.Data curation: SK CGPS YS.Formal analysis: RK SK.Funding acquisition: HA TS.Investigation: RK SK CGPS YS.Methodology: SK RK HA IK.Project administration: HA.Resources: RK SK CGPS IK YS.Supervision: HA TS.Validation: SK RK CGPS YS.Visualization: RK.Writing – original draft: RK SK.Writing – review & editing: RK CGPS HA. |
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Snippet | A laboratory test with a flow-through system was designed and its applicability for testing antifouling paints of varying efficacies was investigated. Six... |
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SubjectTerms | Analysis Animals Antifouling coatings Antifouling paints Antifouling substances Bioassays Biofouling - prevention & control Biological Assay Biological assays Biology and Life Sciences Copper - chemistry Copper oxides Cylinders Drum Earth Sciences Efficiency Engineering and Technology Experiments Formulations Hydrogen-Ion Concentration Laboratories Materials Testing Models, Statistical Mollusks Mussels Mytilus Mytilus edulis Mytilus galloprovincialis Paint - analysis Paints Physical Sciences Polyvinyl Chloride - chemistry Protective coatings Reproducibility of Results Rotating cylinders Seawater Water quality bioassay |
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Title | A Method for Evaluating the Efficacy of Antifouling Paints Using Mytilus galloprovincialis in the Laboratory in a Flow-Through System |
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