The response of bone, articular cartilage and tendon to exercise in the horse
暂无分享,去创建一个
[1] P. R. van Weeren,et al. The influence of exercise on the composition of developing equine joints. , 2002, Biorheology.
[2] D A Parry,et al. A comparison of the size distribution of collagen fibrils in connective tissues as a function of age and a possible relation between fibril size distribution and mechanical properties , 1978, Proceedings of the Royal Society of London. Series B. Biological Sciences.
[3] S P James,et al. The role of subchondral bone in joint disease: a review. , 2010, Equine veterinary journal.
[4] J. Wood,et al. Descriptive epidemiology of fractures occurring in British Thoroughbred racehorses in training. , 2010, Equine veterinary journal.
[5] H. Davies,et al. Radiographic measures of bone shape in young thoroughbreds during training for racing. , 2010, Equine veterinary journal. Supplement.
[6] J H Keyak,et al. Estimation of material properties in the equine metacarpus with use of quantitative computed tomography , 1994, Journal of orthopaedic research : official publication of the Orthopaedic Research Society.
[7] Exercise modifies the age-related change in crimp pattern in the core region of the equine superficial digital flexor tendon. , 1997, New Zealand veterinary journal.
[8] M. Fredericson,et al. Effects of Ball Sports on Future Risk of Stress Fracture in Runners , 2005, Clinical journal of sport medicine : official journal of the Canadian Academy of Sport Medicine.
[9] A Barneveld,et al. Topographical mapping of biochemical properties of articular cartilage in the equine fetlock joint. , 2000, Equine veterinary journal.
[10] A. Goodship,et al. Exercise-related alterations in crimp morphology in the central regions of superficial digital flexor tendons from young thoroughbreds: a controlled study. , 1998, Equine veterinary journal.
[11] L. Lanyon,et al. Limb mechanics as a function of speed and gait: a study of functional strains in the radius and tibia of horse and dog. , 1982, The Journal of experimental biology.
[12] S. Stover,et al. Histological features of the dorsal cortex of the third metacarpal bone mid-diaphysis during postnatal growth in thoroughbred horses. , 1992, Journal of anatomy.
[13] R. Recker,et al. The Impact of Lifestyle Factors on Stress Fractures in Female Army Recruits , 2001, Osteoporosis International.
[14] A. Goodship,et al. The effect of training on the calcified zone of equine middle carpal articular cartilage. , 2010, Equine veterinary journal. Supplement.
[15] L E Lanyon,et al. Increased 3H-uridine levels in osteocytes following a single short period of dynamic bone loading in vivo. , 1988, Calcified tissue international.
[16] A. Goodship,et al. Are the material properties and matrix composition of equine flexor and extensor tendons determined by their functions? , 2010, Equine veterinary journal.
[17] N. Crevier-Denoix,et al. Mechanical correlations derived from segmental histologic study of the equine superficial digital flexor tendon, from foal to adult. , 1998, American journal of veterinary research.
[18] C. Little,et al. Variation in proteoglycan metabolism by articular chondrocytes in different joint regions is determined by post-natal mechanical loading. , 1997, Osteoarthritis and cartilage.
[19] D. Pfeiffer,et al. Naturally occurring osteoarthritis in the metacarpophalangeal joints of wild horses. , 1999, Equine veterinary journal.
[20] A. Goodship,et al. Galloping exercise induces regional changes in bone density within the third and radial carpal bones of Thoroughbred horses. , 1999, Equine veterinary journal.
[21] G. Miller,et al. The effect of training on equine metacarpal bone breaking strength. , 1995, Equine veterinary journal.
[22] P. R. van Weeren,et al. The influence of strenuous exercise on collagen characteristics of articular cartilage in Thoroughbreds age 2 years. , 2010, Equine veterinary journal.
[23] P. R. van Weeren,et al. Functional adaptation of equine articular cartilage: the formation of regional biochemical characteristics up to age one year. , 2010, Equine veterinary journal.
[24] L B Jeffcott,et al. Effects of treadmill exercise on cortical bone in the third metacarpus of young horses. , 1992, Research in veterinary science.
[25] Collagen fibril diameter distributions in ligaments and tendons of the carpal region of the horse. , 1996, Connective tissue research.
[26] S. Stover,et al. Association between long periods without high-speed workouts and risk of complete humeral or pelvic fracture in thoroughbred racehorses: 54 cases (1991-1994). , 1998, Journal of the American Veterinary Medical Association.
[27] E. Firth,et al. Cartilage thickness measurement in foals. , 1987, Research in veterinary science.
[28] A. Goodship,et al. Osteoinductive response in the dorsal aspect of the carpus of young thoroughbreds in training occurs within months. , 2010, Equine veterinary journal. Supplement.
[29] N. Grace,et al. Digestible energy intake, dry matter digestibility and effect of increased calcium intake on bone parameters of grazing Thoroughbred weanlings in New Zealand , 2003, New Zealand veterinary journal.
[30] A. Goodship,et al. Effects of training on collagen fibril populations in the suspensory ligament and deep digital flexor tendon of young thoroughbreds. , 1998, American journal of veterinary research.
[31] H J Helminen,et al. Articular cartilage thickness and glycosaminoglycan distribution in the canine knee joint after strenuous running exercise. , 1992, Clinical orthopaedics and related research.
[32] P. R. van Weeren,et al. Development of biochemical heterogeneity of articular cartilage: influences of age and exercise. , 2010, Equine veterinary journal.
[33] T. Yoshihara,et al. Note Morphological Development of the Mid-Diaphysis of the Third Metacarpal Bone in Equine Fetuses , 1991 .
[34] Peter Charles Goody. Horse Anatomy: A Pictorial Approach to Equine Structure , 1999 .
[35] Albert C. Chen,et al. Site- and exercise-related variation in structure and function of cartilage from equine distal metacarpal condyle. , 2004, Osteoarthritis and cartilage.
[36] S. May,et al. Exercise-induced changes in proteoglycan metabolism of equine articular cartilage. , 2010, Equine veterinary journal.
[37] C. Kawcak,et al. Clinical effects of exercise on subchondral bone of carpal and metacarpophalangeal joints in horses. , 2000, American journal of veterinary research.
[38] E. Firth,et al. Musculoskeletal responses of 2-year-old Thoroughbred horses to early training. 4. Morphometric, microscopic and biomechanical properties of the digital tendons of the forelimb , 2004, New Zealand veterinary journal.
[39] P. McMahon,et al. Tenosynovitis associated with longitudinal tears of the digital flexor tendons in horses: a report of 20 cases. , 1999, Equine veterinary journal.
[40] D. Goldspink,et al. Muscle growth in response to mechanical stimuli. , 1995, The American journal of physiology.
[41] A. Goodship,et al. Age-related differences in collagen crimp patterns in the superficial digital flexor tendon core region of untrained horses. , 1997, Australian veterinary journal.
[42] A. Goodship,et al. Equine carpal articular cartilage fibronectin distribution associated with training, joint location and cartilage deterioration. , 2000, Equine veterinary journal.
[43] H. Gamba,et al. Bone mineral content of the third metacarpal bone in Quarter Horse foals from birth to one year of age , 2004 .
[44] E. Firth,et al. Musculoskeletal responses of 2-year-old Thoroughbred horses to early training. Conclusions , 2005, New Zealand veterinary journal.
[45] D. Richardson,et al. Effects of short-term cast immobilization on equine articular cartilage. , 1993, American journal of veterinary research.
[46] D. Nunamaker,et al. Mechanical and morphometric analysis of the third carpal bone of Thoroughbreds. , 1991, American journal of veterinary research.
[47] Jiliang Li,et al. Bone Adaptation to a Mechanical Loading Program Significantly Increases Skeletal Fatigue Resistance , 2004, Journal of bone and mineral research : the official journal of the American Society for Bone and Mineral Research.
[48] A. Boyde,et al. Nanomechanical properties and mineral concentration in articular calcified cartilage and subchondral bone , 2003, Journal of anatomy.
[49] D. Rosenstein,et al. Short-duration exercise and confinement alters bone mineral content and shape in weanling horses. , 2004, Journal of animal science.
[50] Toshiyuki Takahashi,et al. Association between race history and risk of superficial digital flexor tendon injury in Thoroughbred racehorses. , 2004, Journal of the American Veterinary Medical Association.
[51] C. Kawcak,et al. Clinical evaluation of the effects of immobilization followed by remobilization and exercise on the metacarpophalangeal joint in horses. , 2002, American journal of veterinary research.
[52] A. Boyde,et al. Effect of exercise on bone density in distal regions of the equine third metacarpal bone in 2-year-old thoroughbreds. , 2010, Equine veterinary journal. Supplement.
[53] D. Frisbie,et al. A comparative study of articular cartilage thickness in the stifle of animal species used in human pre-clinical studies compared to articular cartilage thickness in the human knee , 2006, Veterinary and Comparative Orthopaedics and Traumatology.
[54] Exercise affects the mechanical properties and histological appearance of equine articular cartilage , 1999, Journal of orthopaedic research : official publication of the Orthopaedic Research Society.
[55] D. J. Riemersma,et al. Variations in cross-sectional area and composition of equine tendons with regard to their mechanical function. , 1986, Research in veterinary science.
[56] P. R. van Weeren,et al. Early changes in the distal intertarsal joint of Dutch Warmblood foals and the influence of exercise on bone density in the third tarsal bone. , 2010, Equine veterinary journal. Supplement.
[57] E. Firth,et al. Retained Cartilage in the Distal Radial Physis of Foals , 1984, Veterinary pathology.
[58] C. Kawcak,et al. Effects of immobilization followed by remobilization on mineral density, histomorphometric features, and formation of the bones of the metacarpophalangeal joint in horses. , 2002, American journal of veterinary research.
[59] E. Firth,et al. Musculoskeletal responses of 2-year-old Thoroughbred horses to early training. 2. Measurement error and effect of training stage on the relationship between objective and subjective criteria of training workload , 2004, New Zealand veterinary journal.
[60] P. R. van Weeren,et al. Influence of exercise on bone mineral density of immature cortical and trabecular bone of the equine metacarpus and proximal sesamoid bone. , 2010, Equine veterinary journal. Supplement.
[61] C. Kawcak,et al. Subchondral bone failure in an equine model of overload arthrosis. , 1998, Bone.
[62] P. R. van Weeren,et al. Influence of different exercise levels and age on the biochemical characteristics of immature equine articular cartilage. , 2010, Equine veterinary journal. Supplement.
[63] C. Kawcak,et al. Calcified cartilage morphometry and its relation to subchondral bone remodeling in equine arthrosis. , 1999, Bone.
[64] M. Markel,et al. Macroscopic changes in the distal ends of the third metacarpal and metatarsal bones of Thoroughbred racehorses with condylar fractures. , 2003, American journal of veterinary research.
[65] P. R. van Weeren,et al. Effect of age, exercise and growth rate on bone mineral density (BMD) in third carpal bone and distal radius of Dutch Warmblood foals with osteochondrosis. , 2010, Equine veterinary journal. Supplement.
[66] Fretz Pb,et al. Quantitative analysis of long-bone growth in the horse. , 1984 .
[67] E. Radin. Subchondral bone changes and cartilage damage. , 1999, Equine veterinary journal.
[68] A. Boyde,et al. Registration of confocal scanning laser microscopy and quantitative backscattered electron images for the temporospatial quantification of mineralization density in 18-month old thoroughbred racehorse articular calcified cartilage. , 2006, Scanning.
[69] D. Wilson,et al. Composition and morphologic features of the interosseous muscle in Standardbreds and Thoroughbreds. , 1991, American journal of veterinary research.
[70] P. R. Weeren,et al. Age-related changes and effect of exercise on the molecular composition of immature equine superficial digital flexor tendons. , 2010, Equine veterinary journal. Supplement.
[71] J. Zanchetta,et al. Mechanical validation of a tomographic (pQCT) index for noninvasive estimation of rat femur bending strength. , 1996, Bone.
[72] R. Papay,et al. Site-specific proteoglycan characteristics of third carpal articular cartilage in exercised and nonexercised horses. , 1995, American journal of veterinary research.
[73] E. Firth,et al. Effects of racetrack exercise on third metacarpal and carpal bone of New Zealand thoroughbred horses. , 2000, Journal of musculoskeletal & neuronal interactions.
[74] P. Fretz,et al. Quantitative analysis of long-bone growth in the horse. , 1984, American journal of veterinary research.
[75] A. Goodship,et al. The distribution of cartilage oligomeric matrix protein (COMP) in equine carpal articular cartilage and its variation with exercise and cartilage deterioration. , 2001, Veterinary journal.
[76] A E Goodship,et al. Exercise-induced tendon hypertrophy: cross-sectional area changes during growth are influenced by exercise. , 2010, Equine veterinary journal. Supplement.
[77] C. Milgrom,et al. Using Bone's Adaptation Ability to Lower the Incidence of Stress Fractures , 2000, The American journal of sports medicine.
[78] E. Firth,et al. Musculoskeletal responses of 2-year-old Thoroughbred horses to early training. 7. Bone and articular cartilage response in the carpus , 2005, New Zealand veterinary journal.
[79] C. Rubin,et al. Mechanical strain, induced noninvasively in the high-frequency domain, is anabolic to cancellous bone, but not cortical bone. , 2002, Bone.
[80] J. P. Miller,et al. Effects of strength training on bone mineral density: hormonal and bone turnover relationships. , 1994, Journal of applied physiology.
[81] S. Stover,et al. Ultrasonographically detected changes in equine superficial digital flexor tendons during the first months of race training. , 1993, American journal of veterinary research.
[82] P. R. van Weeren,et al. Training affects the collagen framework of subchondral bone in foals. , 2001, Veterinary journal.
[83] M. Flint,et al. The influence of mechanical forces on the glycosaminoglycan content of the rabbit flexor digitorum profundus tendon. , 1979, Connective tissue research.
[84] F. Cicuttini,et al. Effect of physical activity on cartilage development in healthy kids , 2003, British journal of sports medicine.
[85] P. R. van Weeren,et al. Conclusions regarding the influence of exercise on the development of the equine musculoskeletal system with special reference to osteochondrosis. , 2010, Equine veterinary journal. Supplement.
[86] L. Jeffcott,et al. Osteopenic effects of forelimb immobilisation in horses , 1991, Veterinary Record.
[87] A. Goodship,et al. Exercise of young thoroughbred horses increases impact strength of the third metacarpal bone , 1997, Journal of orthopaedic research : official publication of the Orthopaedic Research Society.
[88] P. R. van Weeren,et al. Significant exercise-related changes in the serum levels of two biomarkers of collagen metabolism in young horses. , 2003, Osteoarthritis and cartilage.
[89] A. Boyde. The real response of bone to exercise , 2003, Journal of anatomy.
[90] H. Goyal,et al. Growth rates at the extremities of limb bones in young horses. , 1981, The Canadian veterinary journal = La revue veterinaire canadienne.
[91] B. H. Anderson,et al. Musculoskeletal responses of 2-year-old Thoroughbred horses to early training. 3. In vivo ultrasonographic assessment of the cross-sectional area and echogenicity of the superficial digital flexor tendon , 2004, New Zealand veterinary journal.
[92] L. Lanyon,et al. Functional associations between collagen fibre orientation and locomotor strain direction in cortical bone of the equine radius , 1993, Anatomy and Embryology.
[93] N. Grace,et al. Musculoskeletal responses of 2-year-old Thoroughbred horses to early training. 1. Study design, and clinical, nutritional, radiological and histological observations , 2004, New Zealand veterinary journal.
[94] D. Nunamaker. Relationships of exercise regimen and racetrack surface to modeling/remodeling of the third metacarpal bone in two year-old Thoroughbred racehorses , 2002, Veterinary and Comparative Orthopaedics and Traumatology.
[95] L. Lanyon,et al. Early loading‐related changes in the activity of glucose 6‐phosphate dehydrogenase and alkaline phosphatase in osteocytes and periosteal osteoblasts in rat fibulae in vivo , 1993, Journal of bone and mineral research : the official journal of the American Society for Bone and Mineral Research.
[96] A. Boyde,et al. Articular calcified cartilage canals in the third metacarpal bone of 2‐year‐old thoroughbred racehorses , 2004, Journal of anatomy.
[97] A Barneveld,et al. Study design to evaluate the influence of exercise on the development of the musculoskeletal system of foals up to age 11 months. , 2010, Equine veterinary journal. Supplement.
[98] M. Brosnahan,et al. Demographic and clinical characteristics of geriatric horses: 467 cases (1989-1999). , 2003, Journal of the American Veterinary Medical Association.
[99] M. Doube,et al. Musculoskeletal responses of 2-year-old Thoroughbred horses to early training. 6. Bone parameters in the third metacarpal and third metatarsal bones , 2005, New Zealand veterinary journal.
[100] D. Nunamaker,et al. Quantitative evaluation of the remodeling response of the proximal sesamoid bones to training-related stimuli in Thoroughbreds. , 1991, American journal of veterinary research.
[101] A J Bailey,et al. Macroscopic 'degeneration' of equine superficial digital flexor tendon is accompanied by a change in extracellular matrix composition. , 1998, Equine veterinary journal.
[102] A. Goodship,et al. An age-related study of morphology and cross-link composition of collagen fibrils in the digital flexor tendons of young thoroughbred horses. , 1997, Connective tissue research.
[103] A. Goodship,et al. Comparison of collagen fibril populations in the superficial digital flexor tendons of exercised and nonexercised thoroughbreds. , 1997, Equine veterinary journal.
[104] I. Kiviranta,et al. Moderate running exercise augments glycosaminoglycans and thickness of articular cartilage in the knee joint of young beagle dogs , 1988, Journal of orthopaedic research : official publication of the Orthopaedic Research Society.
[105] A. Boyde,et al. Musculoskeletal responses of 2-year-old Thoroughbred horses to early training. 8. Quantitative back-scattered electron scanning electron microscopy and confocal fluorescence microscopy of the epiphysis of the third metacarpal bone , 2005, New Zealand veterinary journal.
[106] Effects of exercise on the diameter of collagen fibrils in the central core and periphery of the superficial digital flexor tendon in foals. , 2001, American journal of veterinary research.
[107] A. Goodship,et al. Should equine athletes commence training during skeletal development?: changes in tendon matrix associated with development, ageing, function and exercise. , 2010, Equine veterinary journal. Supplement.
[108] H. Frost,et al. Perspectives: Some Roles of Mechanical Usage, Muscle Strength, and the Mechanostat in Skeletal Physiology, Disease, and Research , 1998, Calcified Tissue International.
[109] M. Markel,et al. Scanning electron microscopic examination of third metacarpal/third metatarsal bone failure surfaces in thoroughbred racehorses with condylar fracture. , 2004, Veterinary surgery : VS.
[110] A. Goodship,et al. Treadmill exercise-induced tendon hypertrophy: assessment of tendons with different mechanical functions. , 2010, Equine veterinary journal. Supplement.
[111] A. Boyde,et al. Three dimensional structure of the distal condyles of the third metacarpal bone of the horse. , 1999, Equine veterinary journal.