Coordination between catch connective tissue and muscles through nerves in the spine joint of the sea urchin Diadema setosum
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[1] T. Bullock. COMPARATIVE ASPECTS OF SUPERFICIAL CONDUCTION SYSTEMS IN ECHINOIDS AND ASTEROIDS. , 1965, American zoologist.
[2] T. Motokawa. Mechanical properties and structure of the spine‐joint central ligament of the sea urchin, Diadema setosum (Echinodermata, Echinoidea) , 2009 .
[3] T. Motokawa,et al. Low Oxygen Consumption and High Body Content of Catch Connective Tissue Contribute to Low Metabolic Rate of Sea Cucumbers , 2009, The Biological Bulletin.
[4] Stephen A. Wainwright,et al. Mechanical Design in Organisms , 2020 .
[5] Y. Kobayakawa,et al. Localization of the neuropeptide NGIWYamide in the holothurian nervous system and its effects on muscular contraction , 1999, Proceedings of the Royal Society of London. Series B: Biological Sciences.
[6] M. Byrne. The morphology of autotomy structures in the sea cucumber Eupentacta quinquesemita before and during evisceration. , 2001, The Journal of experimental biology.
[7] S. Wainwright,et al. Structural features associated with movement and 'catch' of sea-urchin spines. , 1981, Tissue & cell.
[8] Nobuhiro Takemae,et al. Mechanical Properties of the Isolated Catch Apparatus of the Sea Urchin Spine Joint: Muscle Fibers Do Not Contribute to Passive Stiffness Changes , 2005, The Biological Bulletin.
[9] S. Kawaguti,et al. Electron Microscopic Study on the Integument of the Echinoid,Diadema setosum , 1964 .
[10] Trotter,et al. Morphology and biomechanics of the microfibrillar network of sea cucumber dermis , 1996, The Journal of experimental biology.
[11] T. Motokawa. Cholinergic control of the mechanical properties of the catch connective tissue in the holothurian body wall. , 1987, Comparative biochemistry and physiology. C, Comparative pharmacology and toxicology.
[12] J. Cobb. Enigmas of Echinoderm Nervous Systems , 1989 .
[13] J. Trotter,et al. Purification, characterization and cloning of tensilin, the collagen-fibril binding and tissue-stiffening factor from Cucumaria frondosa dermis. , 2002, Matrix biology : journal of the International Society for Matrix Biology.
[14] M. Hidaka,et al. Fine Structure and Mechanical Properties of the Catch Apparatus of the Sea-Urchin Spine, a Collagenous Connective Tissue with Muscle-Like Holding Capacity , 1983 .
[15] J. García-Arrarás,et al. Identification of Nerve Plexi in Connective Tissues of the Sea Cucumber Holothuria glaberrima by Using a Novel Nerve-Specific Antibody , 2007, The Biological Bulletin.
[16] T. Motokawa,et al. Softenin, a Novel Protein That Softens the Connective Tissue of Sea Cucumbers through Inhibiting Interaction between Collagen Fibrils , 2014, PloS one.
[17] B. H. Peters. The innervation of spines in the sea-urchin Echinus esculentus L. , 2004, Cell and Tissue Research.
[18] C. Shingyoji,et al. Effects of acetylcholine, octopamine, ATP, dopamine, and electrical stimulation on the spine muscle of the sea urchin, Anthocidaris crassispina , 1995 .
[19] I. Wilkie,et al. The juxtaligamental cells of Ophiocomina nigra (Abildgaard) (Echinodermata: Ophiuroidea) and their possible role in mechano-effector function of collagenous tissue , 1979, Cell and Tissue Research.
[20] Tatsuo Motokawa,et al. Energy Expenditure Associated With Softening and Stiffening of Echinoderm Connective Tissue , 2012, The Biological Bulletin.
[21] I. Wilkie,et al. Mutable collagenous tissue: overview and biotechnological perspective. , 2005, Progress in molecular and subcellular biology.
[22] Keiichi Takahashi. Electrical Responses to Light Stimuli in the Isolated Radial Nerve of the Sea Urchin, Diadema setosum (Leske) , 1964, Nature.
[23] M. Yoshida,et al. The Shadow Reaction of Diadema Antillarum Philippi : III. Re-Examination of the Spectral Sensitivity , 1960 .
[24] K. Oiwa,et al. A novel stiffening factor inducing the stiffest state of holothurian catch connective tissue , 2010, Journal of Experimental Biology.
[25] M. Hidaka. Effects of Certain Physico-Chemical Agents on the Mechanical Properties of the Catch Apparatus of the Sea-Urchin Spine , 1983 .
[26] M. Yoshida,et al. THE SHADOW REACTION OF DIADEMA ANTILLARUM PH 1 LIPPI , 2005 .
[27] R. Birenheide,et al. Morphological basis and mechanics of arm movement in the stalked crinoid Metacrinus rotundus (Echinodermata, Crinoida) , 1994 .
[28] Keiichi Takahashi,et al. The shadow reaction of Diadema antillarum Philippi. IV. Spine movements and their implications , 1963, Philosophical Transactions of the Royal Society of London. Series B, Biological Sciences.
[29] Tatsuo Motokawa,et al. Dynamic Mechanical Properties of Body-Wall Dermis in Various Mechanical States and Their Implications for the Behavior of Sea Cucumbers , 2003, The Biological Bulletin.
[30] H. Fricke. Fische als Feinde tropischer Seeigel , 1971 .