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Three-dimensional organization of fibroblasts and collagen fibrils in rat tail tendon

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Summary

The orderly arrangement of fibroblasts and collagen in tendons and ligaments suggests that these cells may have precise relationships with one another and with the collagen fibrils. The spatial organization of rat tail tendon was therefore examined using scanning and transmission electron microscopy and by reconstructing a 35-μm long segment of tendon from serial transmission electron micrographs. Fibroblasts were regularly arranged in columns and showed more intimate association in the longitudinal than in the transverse plane. Thin cytoplasmic sheets extended up to 3 μm transversely, frequently forming junctional attachments with similar processes from adjacent cells or from the same cell. Longitudinal processes were longer, often extending for more than 20 μm and forming junctional attachments with other cells in the same column. Such processes often exhibited invaginations in which there were single fibrils or small groups of fibrils; this arrangement may be indicative of fibril elongation or may serve to transmit tension between the fibroblast and the collagen fibrils. This organization has interesting implications for the growth and function of other fibrous connective tissue, such as the periodontal ligament.

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References

  • Arey LB (1974) Human histology: A textbook in outline form. 4th ed. WB Saunders Co, Philadelphia, pp 48–58

    Google Scholar 

  • Berkovitz BKB (1972) The effect of demecolcine and triethanolenine on the unimpeded eruption rate of normal and root resected incisor teeth in rats. Arch Oral Biol 17:937–947

    Google Scholar 

  • Bloom W, Fawcett D (1968) A textbook of histology. 9th ed. WB Saunders Co, Philadelphia, pp 156–160

    Google Scholar 

  • Chiba M, Takizawa K, Ohshima S (1980) Dose response effects of colchicine and vinblastine on unimpeded eruption rates of the rat mandibular incisor. Arch Oral Biol 25:115–120

    Google Scholar 

  • Christophers E (1971) Cellular architecture of the stratum corneum. J Invest Dermatol 56:165–169

    Google Scholar 

  • Cho MI, Garant PR (1981) Sequential events in the formation of collagen secretion granules with special reference to the development of segment-long-spacing like aggregates. Anat Rec 199:309–320

    Google Scholar 

  • Elliott DH (1965) Structure and function of mammalian tendon. Biol Rev 40:392–421

    Google Scholar 

  • Farquhar MG, Palade GE (1963) Junctional complexes in various epithelia. J Cell Biol 17:375–412

    Google Scholar 

  • Fawcett D (1954) In: Greep R (ed) Histology. The Blackiston Co, Inc, New York, pp 105–106

    Google Scholar 

  • Greenlee TK, Ross R (1967) The development of the rat flexor digital tendon, a fine structure study. J Ultrastruct Res 18:353–376

    Google Scholar 

  • Heck T, Hempel K, Lange NW, Romen W (1981) Studies on collagen metabolism in rats. I. Age related changes in turnover and amino acid compositon of the collagen of glomerular basement membrane and tail tendon. Virchows Arch [Cell Pathol] 36:303–311

    Google Scholar 

  • Hume WJ, Potten CS (1976) The ordered columnar structure of mouse filiform papillae. J Cell Sci 22:149–160

    Google Scholar 

  • Humphreys WJ, Spurlock B, Johnson JS (1974) Critical point drying of ethanol-infiltrated, cryofractured biological specimens for SEM. In: Scanning electron microscopy. Vol I. Scanning Electron Microscopy Inc, Illinois, pp 275–282

    Google Scholar 

  • Junqueira LC, Carneiro J, Contopoulos AH (1977) Basic histology. Lange Medical Publications, Los Altos, CA, pp 80–83

    Google Scholar 

  • Karnovsky MJ (1965) A formaldehyde-glutaraldehyde fixative of high osmolality for use in electron microscopy. J Cell Biol 27:137A

    Google Scholar 

  • Kastelic J, Galeski A, Baer E (1978) The multicomposite structure of tendon. Connect Tissue Res 6:11–23

    Google Scholar 

  • Mackenzie IC (1969) The ordered structure of the stratum corneum of mammalian skin. Nature 222:881–882

    Google Scholar 

  • Mackenzie IC (1984) Epithelial-connective tissue relationships and the development and maintenance of structure. In: Meyer J, Squier CA, Gerson SJ (eds) Structure and function of oral mucosa. Pergamon Press, Oxford, pp 119–139

    Google Scholar 

  • Maximow A (1930) In: Bloom W (ed) A textbook of histology. WB Saunders Co, Philadelphia, pp 91–93

    Google Scholar 

  • Moxham BJ, Berkovitz BKB (1982) The periodontal ligament and physiological tooth movements. In: Berkovitz BKB, Moxham BJ, Newman HW (eds) The periodontal ligament in health and disease, pp 215–247

  • Parry DAD, Craig AS (1977) Quantitative electron microscope observations of the collagen fibrils in rat-tail tendon. Biopolymers 16:1015–1031

    Google Scholar 

  • Parry DAD, Craig AS (1978) Collagen fibrils and elastic fibers in rat-tail tendon: an electron microscopic investigation. Biopolymers 17:843–855

    Google Scholar 

  • Perera KAS, Tonge CH (1981) Fibroblast cell population kinetics in the mouse molar and tooth eruption. J Anat 133:77–90

    Google Scholar 

  • Peterfi T (1921) Eine beschleunigte Celloidin-Paraffin-Einbettung mit Nelkenöloder Methylbenzoatcelloidin. Z Wissensch Mikrosc Lepiz 38:342–345

    Google Scholar 

  • Robert L, Derouette S, Moczar E (1971) Biochemical studies on the aging of rat tail tendon. Gerontologia 17:65–74

    Google Scholar 

  • Scott JE, Oxford C, Hughes EW (1981) Proteoglycan collagen arrangements in developing rat tail tendon. Biochem J 195:573–581

    CAS  PubMed  Google Scholar 

  • Sloan P (1979) Collagen fibre architecture in the periodontal ligament. J R Soc Med 72:188–191

    Google Scholar 

  • Spurr AR (1969) A low-viscosity epoxy resin embedding medium for electron microscopy. J Ultrastruct Res 26:31–43

    CAS  PubMed  Google Scholar 

  • Squier CA, Magnes C (1983) Spatial relationships between fibroblasts during the growth of rat-tail tendon. Cell Tissue Res 234:17–29

    Google Scholar 

  • Torp S, Arridge RGC, Ameniades CD, Baer E (1975) Structureproperty relationships in tendon as a function of age. In: Atkins EDT, Keller A (eds) Structure of fibrous biopolymers (Vol 2 of the Colston Papers) Butterworths, London, pp 197–221

    Google Scholar 

  • Trelstad FL, Hayashi K (1979) Tendon collagen fibrillogenesis: Intracellular subassemblies and cell surface changes associated with fibril growth. Dev Biol 71:228–242

    Google Scholar 

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Squier, C.A., Bausch, W.H. Three-dimensional organization of fibroblasts and collagen fibrils in rat tail tendon. Cell Tissue Res. 238, 319–327 (1984). https://doi.org/10.1007/BF00217304

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