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Effects of Strain Level and Proteoglycan Depletion on Preconditioning and Viscoelastic Responses of Rat Dorsal Skin

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Abstract

The mechanical response of rat dorsal skin was experimentally studied under cyclic uniaxial ramp stretches to various strain levels. Special emphasis was paid to the effects of the preconditioning protocol on the stress–strain relationship, and to the effects of ramp strain level and proteoglycan (PG) depletion, on viscoelasticity and preconditioning responses. The results show that preconditioning significantly reduced both the slope of the low strain stress–strain relationship, and the stress levels at consecutive stretch cycles. Following a short rest there was a significant partial recovery. Stress decay due to preconditioning was significant at all strain levels, and increased with strain. Stress relaxation was significant at all strain levels, but varied little with strain. Recovery following a 10 min rest was minor at all strain levels and varied little with strain. PG-depleted samples manifested similar response patterns. These results are consistent with the following notion: (1) skin consists of three mechanical components: elastin and proteoglycan which dominate the low strain response and are effected by preconditioning and (PG) depletion, and collagen which dominates the high strain response and is unaffected by preconditioning and PG depletion; (2) that the viscoelasticity of elastin and PG vs that of collagen are similar, so that rat dorsal skin can be regarded quasilinear viscoelastic. © 2001 Biomedical Engineering Society.

PAC01: 8719Rr, 4635+z, 8380Lz, 8385St

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REFERENCES

  1. Abrahams, M. Mechanical behavior of tendon in vitro. A preliminary report. Med. Biol. Eng. 5:433–443, 1967.

    Google Scholar 

  2. Belkoff, S. M., and R. C. Haut. A structural model used to evaluate the changing microstructure of maturing rat skin. J. Biomech. 24:711–720, 1991.

    Google Scholar 

  3. Black, J. Dead or alive: The problem of in vitro tissue mechanics. J. Biomed. Mater. Res. 10:377–389, 1976.

    Google Scholar 

  4. Brody, G. S., T. J. Peng, and R. F. Landel. The rheological properties of human skin and scar tissue. In: Bioengineering and the Skin, edited by R. Marks and P. A. Payne. Lancaster: MTP, 1981, pp. 147–158.

    Google Scholar 

  5. Brown, I. A. Structural Aspects of the Biomechanical Properties of Human Skin, Glasgow: University of Strathclyde, PhD thesis, 1971.

    Google Scholar 

  6. Brown, D. C., and K. G. Vogel. Characteristics of the in vitro interaction of a small proteoglycan (PGII) of bovine tendon with type I collagen. Matrix 9:468–478, 1989.

    Google Scholar 

  7. Cho, B. M., W. G. Frasher, and H. Wayland. Hysteretic behavior of soft living animal tissue. Ann. Biomed. Eng. 1:182–203, 1972.

    Google Scholar 

  8. Chun, L. E., T. J. Koob, and D. R. Eyre. Sequential enzymic dissection of the proteoglycan complex from articular cartilage. Ann. ORS 32:96, 1986.

    Google Scholar 

  9. Cohen, R. E., C. J. Hooley, and N. G. McCrum. Viscoelastic creep of collagenous tissue. J. Biomech. 9:175–184, 1976.

    Google Scholar 

  10. Daly, C. H., and G. F. Odland. Age-related changes in the 171 Effects of Strain and Proteoglycans on Skin Mechanics mechanical properties of human skin. J. Invest. Dermat. 73:84–87, 1979.

    Google Scholar 

  11. Daly, C. H. Biomechanical properties of dermis. J. Invest. Dermat. 79:17s–20s, 1982.

    Google Scholar 

  12. Dunn, M. G., and F. H. Silver. Viscoelastic behavior of human connective tissues: Relative contribution of viscous and elastic components. Connect. Tissue Res. 12:59–70, 1983.

    Google Scholar 

  13. Emery, J. L., J. H. Omens, and A. D. McCulloch. Strain softening in rat left ventricular myocardium. ASME Trans. J. Biomech. Eng. 119:6–8, 1997.

    Google Scholar 

  14. Finlay, B. Dynamic mechanical testing of human skin in vivo. J. Biomech. 3:557–568, 1970.

    Google Scholar 

  15. Flint, M. H., A. S. Craig, H. C. Reilly, G. C. Gillard, and D. A. D. Parry. Collagen fibril diameters and glycosaminoglycan content of skins indices of tissue maturity and function. Connect. Tissue Res. 13:69–81, 1984.

    Google Scholar 

  16. Fung, Y. C. Biomechanics: Mechanical Properties of Living Tissues. 2nd ed., New York: Springer, 1993.

    Google Scholar 

  17. Graf, B. K., R. Vanderby, M. J. Ulm, R. P. Rogalski, and R. J. Thielke. Effect of preconditioning on the viscoelastic response of primate patellar tendon. J. Arthros. Surg. 10:90–96, 1994.

    Google Scholar 

  18. Gregersen, H., J. L. Emery, and A. D. McCulloch. History-dependent mechanical behavior of guinea-pig small intestine. Ann. Biomed. Eng. 26:850–858, 1998.

    Google Scholar 

  19. Hsu, S., A. M. Jamieson, and J. Blackwell. Viscoelastic studies of extracellular matrix interactions in a model native collagen gel system. Biorheology 31:21–36, 1994.

    Google Scholar 

  20. Kronick, P. L., and M. S. Sacks. Matrix macromolecules that affect the viscoelasticity of calfskin. ASME Trans. J. Biomech. Eng. 116:140–145, 1994.

    Google Scholar 

  21. Lanir, Y. Biaxial stress relaxation in skin. Ann. Biomed. Eng. 4:250–270, 1976.

    Google Scholar 

  22. Lanir, Y. A structural theory for the homogeneous biaxial stress–strain relationship in flat collagenous tissues. J. Bio-mech. 12:423–436, 1979.

    Google Scholar 

  23. Lanir, Y. The rheological behavior of the skin: Experimental results and a structural model. Biorheology 16:191–202, 1979.

    Google Scholar 

  24. Lanir, Y. Constitutive equations for fibrous connective tissues. J. Biomech. 16:1–12, 1983.

    Google Scholar 

  25. Lanir, Y., and Y. C. Fung. Two-dimensional mechanical properties of rabbit skin. II. Experimental results. J. Biomech. 7:171–182, 1974.

    Google Scholar 

  26. Lokshin, O. Tissue Viscoelasticity and Preconditioning: Microstructural Simulation and Parameter Estimation. Research Thesis, Haifa: Technion, 1995.

  27. Manschot, J. F. M., and A. J. M. Brakkee. The measurements and modeling of the mechanical properties of human skin in vivo. I. The measurements. J. Biomech. 19:511–515, 1986.

    Google Scholar 

  28. Mansour, J. M., B. R. Davis, M. Srour, and R. Theberge. Effects of ribose on the tensile behavior of skin: Application to a theory of aging. AMD Biomech. Sym. 120:299–302, 1991.

    Google Scholar 

  29. Mansour, J. M., B. R. Davis, M. Srour, and R. Theberge. A method for obtaining repeatable measurements of the tensile properties of skin at low strain. J. Biomech. 26:211–216, 1993.

    Google Scholar 

  30. Morgan, F. R. The mechanical properties of collagen fibers: Stress–Strain curves. J. Soc. Leather Trades Chem. 44:170–182, 1960.

    Google Scholar 

  31. Oxlund, H., and T. T. Andreassen. The role of hyaluronic acid, collagen and elastin in the mechanical properties of connective tissues. J. Anat. 131:611–620, 1980.

    Google Scholar 

  32. Oxlund, H., J. Manschot, and V. Viidik. The role of elastin in the mechanical properties of skin. J. Biomech. 3:213–218, 1988.

    Google Scholar 

  33. Reihsner, R., and E. J. Menzel. Two-dimensional stress relaxation behavior of human skin as influenced by nonenzymatic glycation and the inhibitory agent aminoguanidine. J. Biomech. 31:985–993, 1998.

    Google Scholar 

  34. Sanjeevi, R. A viscoelastic model for the mechanical properties of biological materials. J. Biomech. 15:107–109, 1982.

    Google Scholar 

  35. Searle, S. R., G. Casella G, and C. E. McCulloch. Variance Components, New York: John Wiley, 1992.

    Google Scholar 

  36. Shoemaker, P. A., D. Schneider, M. C. Lee, and Y. C. Fung. A constitutive model for two-dimensional soft tissues and its application to experimental data. J. Biomech. 19:695–702, 1986.

    Google Scholar 

  37. Smith, L. T., K. A. Holbrook, and P. H. Byers. Structure of the dermal matrix during development and in the adult. J. Invest. Dermat. 79:93s–104s, 1982.

    Google Scholar 

  38. Tong, P., and Y. C. Fung. The stress–strain relationship for the skin. J. Biomech. 9:649–657, 1976.

    Google Scholar 

  39. Torp, S., R. G. C. Arridge, C. D. Armeniades, and E. Bear. Structure-property relationship in tendon as a function of age. Colston Papers 26:197–221, 1975.

    Google Scholar 

  40. Vlasblom, D. C. Skin Elasticity. Utrecht: University of Utrecht, PhD thesis, 1967.

    Google Scholar 

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Eshel, H., Lanir, Y. Effects of Strain Level and Proteoglycan Depletion on Preconditioning and Viscoelastic Responses of Rat Dorsal Skin. Annals of Biomedical Engineering 29, 164–172 (2001). https://doi.org/10.1114/1.1349697

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