Abstract
The "problematic ligament" of sea urchins is a connective tissue which crosses the ball-and-socket joint between spine and body wall. The problem of this ligament is that it is composed of parallel collagen fibrils, yet normally undergoes rapid and dramatic alterations in mechanical properties and in length. Previous work has suggested that the collagen fibrils of the ligament are able to slide past one another during length changes but are inhibited from sliding when the ligament is in "catch". In this model of the ligament both the collagen fibrils and the interfibrillar matrix are mechanically important. We have found that the collagen fibrils of the spine ligament of the pencil urchin Eucidaris tribuloides are discontinuous and end by tapering within the body of the ligament. Intact fibrils that have been isolated from the ligament vary by more than an order of magnitude in length and in radius but have a constant length/radius (aspect) ratio of about 5,300. This is the first determination of the aspect ratio of collagen fibrils from any source. The constant aspect ratio of the fibrils is consistent with their functioning as the discontinuous fiber phase in a fiber-reinforced composite material, while the high value of the aspect ratio indicates that the nonfibrillar matrix, which must act to transfer stress between fibrils, can produce a stiff and strong ligament even if it is several orders of magnitude weaker and more compliant than the fibrils. Moreover, the tensile properties of the ligament may be determined by the properties of the matrix. A prominent component of the interfibrillar matrix is a proteoglycan which associates with specific bands at the surface of the collagen fibrils through noncovalent binding of its core protein. The glycosaminoglycan moiety of this proteoglycan is partly comprised of chondroitin sulfate/dermatan sulfate polymers. These results are consistent with the "sliding fibril" hypothesis and suggest that the proteoglycan may be an important component of the stress-transfer matrix.
MeSH Terms
Animals
Biomechanical Phenomena
Collagen/ultrastructure
Ligaments, Articular/physiology,ultrastructure
Microscopy, Electron
Microscopy, Electron, Scanning
Proteoglycans/ultrastructure
Sea Urchins/anatomy & histology
Tensile Strength
Chemicals
Proteoglycans
Collagen
Authors & Affiliations
2 authors, click to expand affiliations / ORCID
Trotter J A
Department of Anatomy, University of New Mexico, Albuquerque 87131.
Koob T J
References (20)
20 references, click to expand
-
Ultrastructural localization of proteoglycans in tissue using cuprolinic blue according to the critical electrolyte concentration method: comparison with biochemical data from the literature.
Histochem J. 1987 Sep;19(9):520-6
PMID: 3440762
-
Structural features associated with movement and 'catch' of sea-urchin spines.
Tissue Cell. 1981;13(2):299-320
PMID: 7198306
-
An X-ray diffraction analysis of rat tail tendons treated with Cupromeronic Blue.
J Microsc. 1985 Aug;139(Pt 2):205-19
PMID: 2413214
-
The role of the fibrous components and ground substance in the mechanical properties of biological tissues: a preliminary investigation.
J Biomech. 1973 Mar;6(2):153-65
PMID: 4632628
-
Occurrence of a unique fucose-branched chondroitin sulfate in the body wall of a sea cucumber.
J Biol Chem. 1988 Dec 5;263(34):18176-83
PMID: 3142869
-
Fibre reinforcement and mechanical stability in articular cartilage.
Eng Med. 1984 Jul;13(3):153-6
PMID: 6542886
-
Dermatan sulphate-rich proteoglycan associates with rat tail-tendon collagen at the d band in the gap region.
Biochem J. 1981 Jul 1;197(1):213-6
PMID: 7317031
-
The role of non-collagen components in the mechanical behaviour of tendon fibres.
Biochim Biophys Acta. 1963 Mar 5;69:485-95
PMID: 13941615
-
Proteoglycans: their structure, interactions and molecular organization in cartilage.
Biochem Soc Trans. 1981 Dec;9(6):489-97
PMID: 7308557
-
Proteoglycan-fibrillar collagen interactions.
Biochem J. 1988 Jun 1;252(2):313-23
PMID: 3046606
-
Proteoglycans of developing bone.
J Biol Chem. 1983 May 25;258(10):6588-94
PMID: 6189828
-
The effect of chelating agents on collagen interfibrillar matrix interactions in connective tissue.
Biochim Biophys Acta. 1967 Aug 15;140(3):522-8
PMID: 4963601
-
Comparisons of antibody reactivity and enzyme sensitivity between small proteoglycans from bovine tendon, bone, and cartilage.
J Biol Chem. 1986 Aug 25;261(24):11334-40
PMID: 3525567
-
Collagen--proteoglycan interactions. Localization of proteoglycans in tendon by electron microscopy.
Biochem J. 1980 Jun 1;187(3):887-91
PMID: 7188429
-
Distribution of sulfated mucopolysaccharides in invertebrates.
J Biol Chem. 1977 Apr 10;252(7):2254-61
PMID: 14959
-
Disaggregation of connective tissue: preparation of fibrous components from sea cucumber body wall and calf skin.
J Biochem. 1973 Jan;73(1):155-62
PMID: 4570368
-
Collagen cross-linking: distribution of hydroxypyridinium cross-links among invertebrate phyla and tissues.
Comp Biochem Physiol B. 1988;91(3):531-4
PMID: 3233929
-
Collagen fibrils of the sea cucumber, Stichopus japonicus: purification and morphological study.
Connect Tissue Res. 1974;2(2):117-25
PMID: 4278035
-
A decalification method for ultrastructure of echinoderm tissues.
Stain Technol. 1975 Sep;50(5):351-4
PMID: 813335
-
Stress-induced molecular rearrangement in tendon collagen.
J Mol Biol. 1985 Apr 20;182(4):589-96
PMID: 4009715