Literature DB >> 22248452

Three-dimensional structure of the shell plate assembly of the chiton Tonicella marmorea and its biomechanical consequences.

Matthew J Connors1, Hermann Ehrlich, Martin Hog, Clemence Godeffroy, Sergio Araya, Ilan Kallai, Dan Gazit, Mary Boyce, Christine Ortiz.   

Abstract

This study investigates the three-dimensional structure of the eight plate exoskeletal (shell) assembly of the chiton Tonicella marmorea. X-ray micro-computed tomography and 3D printing elucidate the mechanism of conformational change from a passive (slightly curved, attached to surface) to a defensive (rolled, detached from surface) state of the plate assembly. The passive and defensive conformations exhibited differences in longitudinal curvature index (0.43 vs. 0.70), average plate-to-plate overlap (∼62% vs. ∼48%), cross-sectional overlap heterogeneity (60-82.5% vs. 0-90%, fourth plate), and plate-to-plate separation distance (100% increase in normalized separation distance between plates 4 and 5), respectively. The plate-to-plate interconnections consist of two rigid plates joined by a compliant, actuating muscle, analogous to a geometrically structured shear lap joint. This work provides an understanding of how T. marmorea achieves the balance between mobility and protection. In the passive state, the morphometry of the plates and plate-to-plate interconnections results in an approximately continuous curvature and constant armor thickness, resulting in limited mobility but maximum protection. In the defensive state, the underlying soft tissues gain protection and the chiton gains mobility through tidal flow, but regions of vulnerability open dorsally, due to the increase in plate-to-plate separation and decrease in plate-to-plate overlap. Lastly, experiments using optical and scanning electron microscopy, mercury porosimetry, and Fourier-transform infrared spectroscopy explore the microstructure and spatial distribution of the six layers within the intermediate plates, the role of multilayering in resisting predatory attacks, and the detection of chitin as a major component of the intra-plate organic matrix and girdle. Copyright Â
© 2012 Elsevier Inc. All rights reserved.

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Year:  2012        PMID: 22248452     DOI: 10.1016/j.jsb.2011.12.019

Source DB:  PubMed          Journal:  J Struct Biol        ISSN: 1047-8477            Impact factor:   2.867


  12 in total

1.  Why do chitons curl into a ball?

Authors:  Julia D Sigwart; Geerat J Vermeij; Peter Hoyer
Journal:  Biol Lett       Date:  2019-10-02       Impact factor: 3.703

2.  Emergence, development, and maturity of the gonad of two species of chitons "sea cockroach" (Mollusca: Polyplacophora) through the early life stages.

Authors:  Omar Hernando Avila-Poveda; Quetzalli Yasú Abadia-Chanona
Journal:  PLoS One       Date:  2013-08-02       Impact factor: 3.240

3.  First Report on Chitin in a Non-Verongiid Marine Demosponge: The Mycale euplectellioides Case.

Authors:  Sonia Żółtowska-Aksamitowska; Lamiaa A Shaala; Diaa T A Youssef; Sameh S Elhady; Mikhail V Tsurkan; Iaroslav Petrenko; Marcin Wysokowski; Konstantin Tabachnick; Heike Meissner; Viatcheslav N Ivanenko; Nicole Bechmann; Yvonne Joseph; Teofil Jesionowski; Hermann Ehrlich
Journal:  Mar Drugs       Date:  2018-02-20       Impact factor: 5.118

4.  Chitin from the Mollusc Chiton: Extraction, Characterization and Chitosan Preparation.

Authors:  Hashem Rasti; Kazem Parivar; Javad Baharara; Mehrdad Iranshahi; Farideh Namvar
Journal:  Iran J Pharm Res       Date:  2017       Impact factor: 1.696

5.  Electrochemical Approach for Isolation of Chitin from the Skeleton of the Black Coral Cirrhipathes sp. (Antipatharia).

Authors:  Krzysztof Nowacki; Izabela Stępniak; Enrico Langer; Mikhail Tsurkan; Marcin Wysokowski; Iaroslav Petrenko; Yuliya Khrunyk; Andriy Fursov; Marzia Bo; Giorgio Bavestrello; Yvonne Joseph; Hermann Ehrlich
Journal:  Mar Drugs       Date:  2020-06-02       Impact factor: 5.118

6.  Sustainable ecofriendly phytoextract mediated one pot green recovery of chitosan.

Authors:  Judy Gopal; Manikandan Muthu; Thirumalai Dhakshanamurthy; Ki Jun Kim; Nazim Hasan; Seong Jung Kwon; Sechul Chun
Journal:  Sci Rep       Date:  2019-09-25       Impact factor: 4.379

Review 7.  Forced Biomineralization: A Review.

Authors:  Hermann Ehrlich; Elizabeth Bailey; Marcin Wysokowski; Teofil Jesionowski
Journal:  Biomimetics (Basel)       Date:  2021-07-12

8.  Ediacaran skeletal metazoan interpreted as a lophophorate.

Authors:  A Yu Zhuravlev; R A Wood; A M Penny
Journal:  Proc Biol Sci       Date:  2015-11-07       Impact factor: 5.349

9.  Discovery of chitin in skeletons of non-verongiid Red Sea demosponges.

Authors:  Hermann Ehrlich; Lamiaa A Shaala; Diaa T A Youssef; Sonia Żółtowska-Aksamitowska; Mikhail Tsurkan; Roberta Galli; Heike Meissner; Marcin Wysokowski; Iaroslav Petrenko; Konstantin R Tabachnick; Viatcheslav N Ivanenko; Nicole Bechmann; Yvonne Joseph; Teofil Jesionowski
Journal:  PLoS One       Date:  2018-05-15       Impact factor: 3.240

10.  3D Chitin Scaffolds of Marine Demosponge Origin for Biomimetic Mollusk Hemolymph-Associated Biomineralization Ex-Vivo.

Authors:  Marcin Wysokowski; Tomasz Machałowski; Iaroslav Petrenko; Christian Schimpf; David Rafaja; Roberta Galli; Jerzy Ziętek; Snežana Pantović; Alona Voronkina; Valentine Kovalchuk; Viatcheslav N Ivanenko; Bert W Hoeksema; Cristina Diaz; Yuliya Khrunyk; Allison L Stelling; Marco Giovine; Teofil Jesionowski; Hermann Ehrlich
Journal:  Mar Drugs       Date:  2020-02-19       Impact factor: 5.118

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