Aging enhances a mechanically-induced reduction in tendon strength by an active process involving matrix metalloproteinase activity
Jayesh Dudhia
Department of Veterinary Clinical Sciences, Royal Veterinary College, Hawkshead Lane, North Mymms, Hatfield, Herts AL9 7TA, UK
Search for more papers by this authorCharlotte M. Scott
Department of Veterinary Clinical Sciences, Royal Veterinary College, Hawkshead Lane, North Mymms, Hatfield, Herts AL9 7TA, UK
Cobra Biomanufacturing Plc, County Trading Estate, Watlington Road, Oxford OX4 6LX, UK
Search for more papers by this authorEdward R. C. Draper
Department of Veterinary Clinical Sciences, Royal Veterinary College, Hawkshead Lane, North Mymms, Hatfield, Herts AL9 7TA, UK
Search for more papers by this authorDick Heinegård
Department of Experimental Medical Science, Section for Cell and Matrix Biology, University of Lund, BMC, Plan C12, SE-22184 Lund, Sweden
Search for more papers by this authorAndrew A. Pitsillides
Department of Veterinary Basic Sciences, Royal Veterinary College, London NW1 0TU, UK
Search for more papers by this authorRoger K. Smith
Department of Veterinary Clinical Sciences, Royal Veterinary College, Hawkshead Lane, North Mymms, Hatfield, Herts AL9 7TA, UK
Search for more papers by this authorJayesh Dudhia
Department of Veterinary Clinical Sciences, Royal Veterinary College, Hawkshead Lane, North Mymms, Hatfield, Herts AL9 7TA, UK
Search for more papers by this authorCharlotte M. Scott
Department of Veterinary Clinical Sciences, Royal Veterinary College, Hawkshead Lane, North Mymms, Hatfield, Herts AL9 7TA, UK
Cobra Biomanufacturing Plc, County Trading Estate, Watlington Road, Oxford OX4 6LX, UK
Search for more papers by this authorEdward R. C. Draper
Department of Veterinary Clinical Sciences, Royal Veterinary College, Hawkshead Lane, North Mymms, Hatfield, Herts AL9 7TA, UK
Search for more papers by this authorDick Heinegård
Department of Experimental Medical Science, Section for Cell and Matrix Biology, University of Lund, BMC, Plan C12, SE-22184 Lund, Sweden
Search for more papers by this authorAndrew A. Pitsillides
Department of Veterinary Basic Sciences, Royal Veterinary College, London NW1 0TU, UK
Search for more papers by this authorRoger K. Smith
Department of Veterinary Clinical Sciences, Royal Veterinary College, Hawkshead Lane, North Mymms, Hatfield, Herts AL9 7TA, UK
Search for more papers by this authorCurrent address: Cobra Biomanufacturing Plc, County Trading Estate, Watlington Road, Oxford OX4 6LX, UK.
Summary
Age-associated and degenerative loss of functional integrity in soft tissues develops from effects of cumulative and subtle changes in their extracellular matrix (ECM). The highly ordered tendon ECM provides the tissue with its tensile strength during loading. As age and exercise collude in the high incidence of tendinopathies, we hypothesized that aged tendons fail due to cumulative damage resulting from a combination of diminished matrix repair and fragmentation of ECM proteins induced by prolonged cyclical loading, and that this is an active cell-mediated process. We developed an equine tendon explant model to examine the effect of age on the influence of prolonged cyclical loading at physiologically relevant strain rates (5% strain, 1 Hz for 24 h) on tissue mechanical properties, loss of ECM protein and matrix metalloproteinase (MMP) expression. We show significantly diminished mechanical strength of cyclically loaded tissue compared to controls (39.7 ± 12%, P ≤ 0.05) this reduction was dependent on the presence of both viable cells and metalloproteinase activity. Furthermore, tendon from older specimens was more susceptible to weakening (11–30 years, 50%P ≤ 0.05) compared to immature and young mature tissue (1–3 years, 34%; 4–10 years, 35%, respectively). Cyclical load also induced release of degraded cartilage oligomeric matrix protein, an integral ECM protein, an effect that could be mimicked by culture with fibronectin fragments. These findings indicate prolonged cyclical loading of physiological magnitude decreases tendon tensile strength by an active process, and that MMPs may contribute to loss of functional competence, exaggerated by age, via load-induced proteolytic disruption of the ECM.
References
- Alexander RM (2002) Tendon elasticity and muscle function. Comp. Biochem. Physiol., Part A Mol. Integr. Physiol. 133, 1001–1011.
- Almekinders LC, Banes AJ, Ballenger CA (1993) Effects of repetitive motion on human fibroblasts. Med. Sci. Sports Exerc. 25, 603–607.
- Almekinders LC, Baynes AJ, Bracey LW (1995) An in vitro investigation into the effects of repetitive motion and nonsteroidal antiinflammatory medication on human tendon fibroblasts. Am. J. Sports Med. 23, 119–123.
- Archambault J, Tsuzaki M, Herzog W, Banes AJ (2002) Stretch and interleukin-1β induce matrix metalloproteinases in rabbit tendon cells in vitro. J. Orthop. Res. 20, 36–39.
- Arnoczky SP, Tian T, Lavagnino M, Gardner K (2004) Ex vivo static tensile loading inhibits MMP-1 expression in rat tail tendon cells through a cytoskeletally based mechanotransduction mechanism. J. Orthop. Res. 22, 328–333.
- Atkinson TS, Ewers BJ, Haut RC (1999) The tensile and stress relaxation responses of human patellar tendon varies with specimen cross-sectional area. J. Biomech. 32, 907–914.
- Ferri A, Scaglioni G, Pousson M, Capodaglio P, Van Hoecke J, Narici MV (2003) Strength and power changes of the human plantar flexors and knee extensors in response to resistance training in old age. Acta Physiol. Scand. 177, 69–78.
- Goodman SA, May SA, Heinegård D, Smith RK (2004) Tenocyte response to cyclical strain and transforming growth factor β is dependent upon age and site of origin. Biorheology 41, 613–628.
- Goodship AE, Birch HL, Wilson AM (1994) The pathobiology and repair of tendon and ligament injury. Vet. Clin. North Am. Equine Pract. 10, 323–349.
- Homandberg GA, Wen C, Hui F (1998) Cartilage damaging activities of fibronectin fragments derived from cartilage and synovial fluid. Osteoarthr. Cartil. 6, 231–244.
- Ireland D, Harrall R, Curry V, Holloway G, Hackney R, Hazleman B, Riley G (2001) Multiple changes in gene expression in chronic human Achilles tendinopathy. Matrix Biol. 20, 159–169.
- Jarvinen M, Jozsa L, Kannus P, Jarvinen TL, Kvist M, Leadbetter W (1997) Histopathological findings in chronic tendon disorders. Scand. J. Med. Sci. Sports 7, 86–95.
- Jarvinen TA, Kannus P, Maffulli N, Khan KM (2005) Achilles tendon disorders: etiology and epidemiology. Foot Ankle Clin. 10, 255–266.
- Johnson A, Smith R, Saxne T, Hickery M, Heinegård D (2004) Fibronectin fragments cause release and degradation of collagen-binding molecules from equine explant cultures. Osteoarthr. Cartil. 12, 149–159.
- Kannus P (2000) Structure of the tendon connective tissue. Scand. J. Med. Sci. Sports 10, 312–320.
- Kannus P, Jozsa L, Natri A, Jarvinen M (1997) Effects of training, immobilization and remobilization on tendons. Scand. J. Med. Sci. Sports 7, 67–71.
- Kasashima Y, Takahashi T, Smith RK, Goodship AE, Kuwano A, Ueno T, Hirano S (2004) Prevalence of superficial digital flexor tendonitis and suspensory desmitis in Japanese Thoroughbred flat racehorses in 1999. Equine Vet. J. 36, 346–350.
- Koskinen SO, Heinemeier KM, Olesen JL, Langberg H, Kjaer M (2004) Physical exercise can influence local levels of matrix metalloproteinases and their inhibitors in tendon-related connective tissue. J. Appl. Physiol. 96, 861–864.
- Labat-Robert J (2004) Cell-matrix interactions in aging: role of receptors and matricryptins. Ageing Res. Rev. 3, 233–247.
- Lanyon LE, Rubin CT (1984) Static vs dynamic loads as an influence on bone remodelling. J. Biomech. 17, 897–905.
- Lavagnino M, Arnoczky SP (2005) In vitro alterations in cytoskeletal tensional homeostasis control gene expression in tendon cells. J. Orthop. Res. 23, 1211–1218.
- Lavagnino M, Arnoczky SP, Egerbacher M, Gardner KL, Burns ME (2006) Isolated fibrillar damage in tendons stimulates local collagenase mRNA expression and protein synthesis. J. Biomech. 39, 2355–2362.
- Maffulli N (1999) Rupture of the Achilles tendon. J. Bone Joint Surg. Am. 81, 1019–1036.
- Maffulli N, Waterston SW, Squair J, Reaper J, Douglas AS (1999) Changing incidence of Achilles tendon rupture in Scotland: a 15-year study. Clin. J. Sport Med. 9, 157–160.
- Maganaris CN, Reeves ND, Rittweger J, Sargeant AJ, Jones DA, Gerrits K, De Haan A (2006) Adaptive response of human tendon to paralysis. Muscle Nerve 33, 85–92.
- Magnusson SP, Beyer N, Abrahamsen H, Aagaard P, Neergaard K, Kjaer M (2003) Increased cross-sectional area and reduced tensile stress of the Achilles tendon in elderly compared with young women. J. Gerontol. A Biol. Sci. Med. Sci. 58, 123–127.
- Majima T, Yasuda K, Fujii T, Yamamoto N, Hayashi K, Kaneda K (1996) Biomechanical effects of stress shielding of the rabbit patellar tendon depend on the degree of stress reduction. J. Orthop. Res. 14, 377–383.
- Mann HH, Ozbek S, Engel J, Paulsson M, Wagener R (2004) Interactions between the cartilage oligomeric matrix protein and matrilins. Implications for matrix assembly and the pathogenesis of chondrodysplasias. J. Biol. Chem. 279, 25294–25298.
- Miller BF, Olesen JL, Hansen M, Dossing S, Crameri RM, Welling RJ, Langberg H, Flyvbjerg A, Kjaer M, Babraj JA, Smith K, Rennie MJ (2005) Coordinated collagen and muscle protein synthesis in human patella tendon and quadriceps muscle after exercise. J. Physiol. 567 (Pt 3), 1021–1033.
- Moller A, Astron M, Westlin N (1996) Increasing incidence of Achilles tendon rupture. Acta Orthop. Scand. 67, 479–481.
- Nakagawa Y, Hayashi K, Yamamoto N, Nagashima K (1996) Age-related changes in biomechanical properties of the Achilles tendon in rabbits. Eur. J. Appl. Physiol. Occup. Physiol. 73, 7–10.
- Onambele GL, Narici MV, Maganaris CN (2006) Calf muscle-tendon properties and postural balance in old age. J. Appl. Physiol. 100, 2048–2056.
- Reeves ND, Maganaris CN, Narici MV (2003) Effect of strength training on human patella tendon mechanical properties of older individuals. J. Physiol. 548, 971–981.
- Riley GP, Curry V, DeGroot J, Van El B, Verzijl N, Hazleman BL, Bank RA (2002) Matrix metalloproteinase activities and their relationship with collagen remodelling in tendon pathology. Matrix Biol. 21, 185–195.
- Riley GP, Goddard MJ, Hazleman BL (2001) Histopathological assessment and pathological significance of matrix degeneration in supraspinatus tendons. Rheumatology 40, 229–230.
- Riley GP, Harrall RL, Constant CR, Chard MD, Cawston TE, Hazleman BL (1994) Tendon degeneration and chronic shoulder pain: changes in the collagen composition of the human rotator cuff tendons in rotator cuff tendinitis. Ann. Rheum. Dis. 53, 359–366.
- Rosenberg K, Olsson H, Morgelin M, Heinegård D (1998) Cartilage oligomeric matrix protein shows high affinity zinc-dependent interaction with triple helical collagen. J. Biol. Chem. 273, 20397–20403.
- Smith RK, Birch HL, Goodman S, Heinegård D, Goodship AE (2002a) The influence of ageing and exercise on tendon growth and degeneration – hypotheses for the initiation and prevention of strain-induced tendinopathies. Comp. Biochem. Physiol. A Mol. Integr. Physiol. 133, 1039–1050.
- Smith RK, Birch H, Patterson-Kane J, Firth EC, Williams L, Cherdchutham W, Van Weeren WR, Goodship AE (1999) Should equine athletes commence training during skeletal development? changes in tendon matrix associated with development, ageing, function and exercise. Equine Vet. J. Suppl. 30, 201–209.
- Smith RK, Gerard M, Dowling B, Dart AJ, Birch HL, Goodship AE (2002b) Correlation of cartilage oligomeric matrix protein (COMP) levels in equine tendon with mechanical properties: a proposed role for COMP in determining function-specific mechanical characteristics of locomotor tendons. Equine Vet. J. Suppl. (34), 241–244.
- Smith RK, Zunino L, Webbon PM, Heinegård D (1997) The distribution of cartilage oligomeric matrix protein (COMP) in tendon and its variation with tendon site, age and load. Matrix Biol. 16, 255–271.
- Stephens PR, Nunamaker DM, Butterweck DM (1989) Application of a Hall-effect transducer for measurement of tendon strains in horses. Am. J. Vet. Res. 50, 1089–1095.
- Tillander B, Franzen L, Norlin R (2002) Fibronectin, MMP-1 and histologic changes in rotator cuff disease. J. Orthop. Res. 20, 1358–1364.
- Tsuzaki M, Bynum D, Almekinders L, Yang X, Faber J, Banes AJ (2003) ATP modulates load-inducible IL-1beta, COX 2, and MMP-3 gene expression in human tendon cells. J. Cell. Biochem. 89, 556–562.
- Vogel HG (1983) Age dependence of mechanical properties of rat tail tendons (hysteresis experiments). Aktuelle Gerontol. 13, 22–27.
- Wang JH, Jia F, Yang G, Yang S, Campbell BH, Stone D, Woo SL (2003) Cyclic mechanical stretching of human tendon fibroblasts increases the production of prostaglandin E2 and levels of cyclooxygenase expression: a novel in vitro model study. Connect. Tissue Res. 44, 128–133.
- Webbon PM (1977) A post mortem study of equine digital flexor tendons. Equine Vet. J. 9, 61–67.
- Webbon PM (1978) A histological study of macroscopically normal equine digital flexor tendons. Equine Vet. J. 10, 253–259.