한빛사논문
POSTECH
Jimin Choi1,‡, Sejin Lee2,3,‡, Kousaku Ohkawa4, Dong Soo Hwang1,2,5,*
1School of Interdisciplinary Bioscience and Bioengineering Pohang University of Science and Technology, Pohang, 37673, Republic of Korea.
2Division of Environmental Science and Engineering, Pohang University of Science and Technology, Pohang, 37673, Republic of Korea.
3School of Life Science, Handong Global University, Pohang, 791-708, Republic of Korea.
4Institute for Fiber Engineering, Shinshu University (IFES), Tokida 3-15-1, Ueda 386-8567, Nagano Prefecture, JAPAN
5Institute for Convergence Research and Education in Advanced Technology, Yonsei University, Incheon, 21983, South Korea
‡These authors contributed equally to this work.
*Corresponding Author
Abstract
Marine organisms react to various factors when building colonies for survival; however, severe accumulation of diverse organisms on artificial structures located close to water causes large industrial losses. Herein, we identify a concept in the development of antifouling surfaces based on understanding the surface stiffness recognition procedure of mussel adhesion at the genetic level. It was found that on a soft surface the combination of decreased adhesive plaque size, adhesion force, and plaque protein downregulation synergistically weakens mussel wet adhesion and sometimes prevents mussels from anchoring, mainly due to transcriptional changes within the mechanosensing pathway and the adhesive proteins in secretory glands. In addition, the use of soft substrates or antagonists of surface mechanosensing behavior suppresses mussel fouling significantly.
KEYWORDS: antifouling, mussel adhesion, mechanosensing, biofouling, antagonist, antagonist-based antifouling
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