271
Views
11
CrossRef citations to date
0
Altmetric
Original Research Articles

Removal of dentin non-collagenous structures results in the unraveling of microfibril bundles in collagen type I

&
Pages 414-423 | Received 11 May 2016, Accepted 29 Aug 2016, Published online: 01 Nov 2016

References

  • Bertassoni LE, Orgel JP, Antipova O, Swain MV. The dentin organic matrix - limitations of restorative dentistry hidden on the nanometer scale. Acta Biomater 2012;8:2419–2433.
  • Fratzl P. Collagen: Strucutre and mechanics. Boston, MA: Springer; 2008.
  • Orgel JP, Irving TC, Miller A, Wess TJ. Microfibrillar structure of type I collagen in situ. Proc Nat Acad Sci USA 2006;103:9001–9005.
  • Orgel JP, Miller A, Irving TC, Fischetti RF, Hammersley AP, Wess TJ. The in situ supermolecular structure of type I collagen. Structure 2001;9:1061–1069.
  • Petruska JA, Hodge AJ. A subunit model for the tropocollagen macromolecule. Proc Nat Acad Sci USA 1964;51:871–876.
  • Smith JW. Molecular pattern in native collagen. Nature 1968;219:157–158.
  • Katz EP, Wachtel E, Yamauchi M, Mechanic GL. The structure of mineralized collagen fibrils. Connective Tissue Res. 1989;21:149–54; discussion 55–58.
  • Li Y, Aparicio C. Discerning the subfibrillar structure of mineralized collagen fibrils: a model for the ultrastructure of bone. PloS one 2013;8:e76782.
  • Erickson B, Fang M, Wallace JM, Orr BG, Les CM, Banaszak Holl MM. Nanoscale structure of type I collagen fibrils: Quantitative measurement of D-spacing. Biotechnol J 2013;8:117–126.
  • Fang M, Goldstein EL, Matich EK, Orr BG, Holl MM. Type I collagen self-assembly: The roles of substrate and concentration. Langmuir ACS J Surf. Colloids 2013;29:2330–2338.
  • Fang M, Goldstein EL, Turner AS, Les CM, Orr BG, Fisher GJ, Welch KB, Rothman ED, Banaszak Holl MM. Type I collagen D-spacing in fibril bundles of dermis, tendon, and bone: Bridging between nano- and micro-level tissue hierarchy. ACS Nano 2012;6:9503–9514.
  • Beniash E, Traub W, Veis A, Weiner S. A transmission electron microscope study using vitrified ice sections of predentin: structural changes in the dentin collagenous matrix prior to mineralization. J Struct Biol 2000;132:212–225.
  • Bertassoni LE, Marshall GW, Swain MV. Mechanical heterogeneity of dentin at different length scales as determined by AFM phase contrast. Micron 43(12):1364–1371.
  • Reznikov N, Almany-Magal R, Shahar R, Weiner S. Three-dimensional imaging of collagen fibril organization in rat circumferential lamellar bone using a dual beam electron microscope reveals ordered and disordered sub-lamellar structures. Bone 2013;52:676–683.
  • Scott JE. Proteoglycan: Collagen interactions and subfibrillar structure in collagen fibrils. Implications in the development and ageing of connective tissues. J Anat 1990;169:23–35.
  • Graham HK, Holmes DF, Watson RB, Kadler KE. Identification of collagen fibril fusion during vertebrate tendon morphogenesis. The process relies on unipolar fibrils and is regulated by collagen-proteoglycan interaction. J Mol Biol 2000;295:891–902.
  • Holmes DF, Graham HK, Trotter JA, Kadler KE. STEM/TEM studies of collagen fibril assembly. Micron 2001;32:273–285.
  • Yamamoto S, Hashizume H, Hitomi J, Shigeno M, Sawaguchi S, Abe H, Ushiki T. The subfibrillar arrangement of corneal and scleral collagen fibrils as revealed by scanning electron and atomic force microscopy. Arch Histol Cytol 2000;63:127–135.
  • Raspanti M, Viola M, Sonaggere M, Tira ME, Tenni R. Collagen fibril structure is affected by collagen concentration and decorin. Biomacromolecules 2007;8:2087–8091.
  • Habelitz S, Balooch M, Marshall SJ, Balooch G, Marshall GW, Jr. In situ atomic force microscopy of partially demineralized human dentin collagen fibrils. J Struct Biol 2002;138:227–236.
  • Bedran-Russo AK, Pereira PN, Duarte WR, Okuyama K, Yamauchi M. Removal of dentin matrix proteoglycans by trypsin digestion and its effect on dentin bonding. J Biomed Mater Res Part B 2008;85:261–266.
  • Antipova O, Orgel JP. Non-enzymatic decomposition of collagen fibers by a biglycan antibody and a plausible mechanism for rheumatoid arthritis. PloS one 2012;7:e32241.
  • Balooch M, Habelitz S, Kinney JH, Marshall SJ, Marshall GW. Mechanical properties of mineralized collagen fibrils as influenced by demineralization. J Struct Biol 2008;162:404–410.
  • Bertassoni LE, Stankoska K, Swain MV. Insights into the structure and composition of the peritubular dentin organic matrix and the lamina limitans. Micron 2012;43:229–236.
  • Bertassoni LE, Swain MV. Influence of hydration on nanoindentation induced energy expenditure of dentin. J. Biomech 2012;45:1679–1683.
  • Pereira PN, Bedran-de-Castro AK, Duarte WR, Yamauchi M. Removal of noncollagenous components affects dentin bonding. J Biomed Mater Res Part B 2007;80:86–91.
  • Berg A, Singer T, Moser E. High-resolution diffusivity imaging at 3.0 T for the detection of degenerative changes: a trypsin-based arthritis model. Invest Radiol 2003;38:460–466.
  • Scott JE. Supramolecular organization of extracellular matrix glycosaminoglycans, in vitro and in the tissues. FASEB J Off Publ Federation Am Soc Exp Biol 1992;6:2639–2645.
  • Scott JE. Elasticity in extracellular matrix ‘shape modules’ of tendon, cartilage, etc. A sliding proteoglycan-filament model. J Physiol 2003;553:335–343.
  • Bertassoni LE, Kury M, Rathsam C, Little CB, Swain MV. The role of proteoglycans in the nanoindentation creep behavior of human dentin. J Mech Behav Biomed Mater 2015;55:264–270.
  • Risteli L, Risteli J, Moniz C. Measuring collagen degradation. Eur J Clin Invest 1993;23:339–240.
  • Sassi ML, Eriksen H, Risteli L, Niemi S, Mansell J, Gowen M, et al. Immunochemical characterization of assay for carboxyterminal telopeptide of human type I collagen: Loss of antigenicity by treatment with cathepsin K. Bone 2000;26:367–373.
  • Sassi M, Jukkola A, Riekki R, Hoyhtya M, Risteli L, Oikarinen A, et al. Type I collagen turnover and cross-linking are increased in irradiated skin of breast cancer patients. Radiother Oncol 2001;58:317–323.
  • Tjaderhane L, Buzalaf MA, Carrilho M, Chaussain C. Matrix metalloproteinases and other matrix proteinases in relation to cariology: the era of ‘dentin degradomics’. Caries Res 2015;49:193–208.
  • Orgel JP, Eid A, Antipova O, Bella J, Scott JE. Decorin core protein (decoron) shape complements collagen fibril surface structure and mediates its binding. PloS one 2009;4:e7028.
  • Perumal S, Antipova O, Orgel JP. Collagen fibril architecture, domain organization, and triple-helical conformation govern its proteolysis. Proc Nat Acad Sci USA 2008;105:2824–2829.
  • Weinstock M, Leblond CP. Formation of collagen. Fed Proc 1974;33:1205–1218.
  • Weinstock M, Leblond CP. Synthesis, migration, and release of precursor collagen by odontoblasts as visualized by radioautography after (3H)proline administration. J Cell Biol 1974;60:92–127.
  • Iozzo RV. Matrix proteoglycans: from molecular design to cellular function. Ann Rev Biochem 1998;67:609–652.
  • Goldberg M, Takagi M. Dentine proteoglycans: composition, ultrastructure and functions. Histochemical J 1993;25:781–806.
  • Danielson KG, Baribault H, Holmes DF, Graham H, Kadler KE, Iozzo RV. Targeted disruption of decorin leads to abnormal collagen fibril morphology and skin fragility. J Cell Biol 1997;136:729–743.
  • Angker L, Nijhof N, Swain MV, Kilpatrick NM. Influence of hydration and mechanical characterization of carious primary dentine using an ultra-micro indentation system (UMIS). Eur J Oral Sci 2004;112:231–236.
  • Ameye L, Young MF. Mice deficient in small leucine-rich proteoglycans: novel in vivo models for osteoporosis, osteoarthritis, Ehlers-Danlos syndrome, muscular dystrophy, and corneal diseases. Glycobiology 2002;12:107R–116R.
  • Xu T, Bianco P, Fisher LW, Longenecker G, Smith E, Goldstein S, Bonadio J, Boskey A, Heegaard AM, Sommer B, Satomura K, Dominguez P, Zhao C, Kulkarni AB, Robey PG, Young MF. Targeted disruption of the biglycan gene leads to an osteoporosis-like phenotype in mice. Nat Genet 1998;20:78–82.
  • Bertassoni LE, Swain MV. The contribution of proteoglycans to the mechanical behavior of mineralized tissues. J Mech Behav Biomed Mater 2014;38:91–104.

Reprints and Corporate Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

To request a reprint or corporate permissions for this article, please click on the relevant link below:

Academic Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

Obtain permissions instantly via Rightslink by clicking on the button below:

If you are unable to obtain permissions via Rightslink, please complete and submit this Permissions form. For more information, please visit our Permissions help page.