Hindlimb unloading rodent model: technical aspects.
暂无分享,去创建一个
[1] M Epstein. Renal, endocrine and hemodynamic effects of water immersion in man. , 1984, Contributions to nephrology.
[2] X. J. Musacchia,et al. A model for hypokinesia: effects on muscle atrophy in the rat. , 1980, Journal of applied physiology: respiratory, environmental and exercise physiology.
[3] E Park,et al. A simple hindlimb suspension apparatus. , 1993, Aviation, space, and environmental medicine.
[4] C. Wade,et al. Influence of centrifugation and hindlimb suspension on testosterone and corticosterone excretion in rats. , 1999, Aviation, space, and environmental medicine.
[5] E. Morey,et al. Spaceflight and Bone Turnover: Correlation with a New Rat Model of Weightlessness , 1979 .
[6] Novikov Ve,et al. Stand for modelling the physiological effects of weightlessness in laboratory experiments with rats , 1980 .
[7] M W Luttges,et al. Skeletal unloading causes organ-specific changes in immune cell responses. , 1993, Journal of applied physiology.
[8] J M Steffen,et al. A suspension model for hypokinetic/hypodynamic and antiorthostatic responses in the mouse. , 1984, Aviation, space, and environmental medicine.
[9] R. Globus,et al. The temporal response of bone to unloading. , 1986, Endocrinology.
[10] C M Tipton,et al. Influence of single hindlimb support during simulated weightlessness in the rat. , 1990, Journal of applied physiology.
[11] D. Bikle,et al. Glucocorticoids and inhibition of bone formation induced by skeletal unloading. , 1988, The American journal of physiology.
[12] J. Vernikos. Human physiology in space. , 1996, BioEssays : news and reviews in molecular, cellular and developmental biology.
[13] L. I. Kakurin,et al. Antiorthostatic hypokinesia as a method of weightlessness simulation. , 1976, Aviation, space, and environmental medicine.
[14] R. Recker,et al. Genetic Variations in Bone Density, Histomorphometry, and Strength in Mice , 2000, Calcified Tissue International.
[15] J. McCarthy,et al. beta-MHC transgene expression in suspended and mechanically overloaded/suspended soleus muscle of transgenic mice. , 1997, The American journal of physiology.
[16] L. Vico,et al. Bone histomorphometric comparison of rat tibial metaphysis after 7-day tail suspension vs. 7-day spaceflight. , 1991, Aviation, space, and environmental medicine.
[17] R. Globus,et al. Hindlimb unloading of growing rats: a model for predicting skeletal changes during space flight. , 1998, Bone.
[18] J S Harper,et al. Metabolic cages for a space flight model in the rat. , 1994, Laboratory animal science.
[19] J W Armstrong,et al. The effects of rM-CSF and rIL-6 therapy on immunosuppressed antiorthostatically suspended mice. , 1995, Journal of applied physiology.
[20] Christopher J. Gordon,et al. Temperature Regulation in Laboratory Rodents , 1993 .
[21] Toshiyuki Hirano,et al. Electrical resistivities of single‐crystalline transition‐metal disilicides , 1990 .
[22] Alan R. Hargens,et al. Tissue fluid shift, forelimb loading, and tail tension in tail-suspended rats , 1984 .
[23] R Müller,et al. Genetic Regulation of Cortical and Trabecular Bone Strength and Microstructure in Inbred Strains of Mice , 2000, Journal of bone and mineral research : the official journal of the American Society for Bone and Mineral Research.
[24] R E Grindeland,et al. Interactive effects of growth hormone and exercise on muscle mass in suspended rats. , 1994, The American journal of physiology.
[25] R. R. Roy,et al. Is limb immobilization a model of muscle disuse? , 1983, Experimental Neurology.
[26] D M Klaus,et al. Clinostats and bioreactors. , 2007, Gravitational and space biology bulletin : publication of the American Society for Gravitational and Space Biology.
[27] G Gauquelin,et al. Restraint vs. hindlimb suspension on fluid and electrolyte balance in rats. , 1996, Journal of applied physiology.
[28] M W Luttges,et al. Age dependent development of osteopenia in the long bones of tail-suspended mice. , 1990, Biomedical sciences instrumentation.
[29] R. Recker,et al. Bone Response to In Vivo Mechanical Loading in Two Breeds of Mice , 1998, Calcified Tissue International.
[30] E. Morey-Holton,et al. Skeletal response to simulated weightlessness: a comparison of suspension techniques. , 1987, Aviation, space, and environmental medicine.
[31] R. Globus,et al. Skeletal response to dietary calcium in a rat model simulating weightlessness , 1986, Journal of bone and mineral research : the official journal of the American Society for Bone and Mineral Research.
[32] COSMOS 2044 mission. , 1992, Journal of applied physiology.
[33] S. Doty,et al. Alendronate increases skeletal mass of growing rats during unloading by inhibiting resorption of calcified cartilage , 1994, Journal of bone and mineral research : the official journal of the American Society for Bone and Mineral Research.
[34] L. Donahue,et al. Cortical tibial bone volume in two strains of mice: effects of sciatic neurectomy and genetic regulation of bone response to mechanical loading. , 1999, Bone.
[35] R J Schwartz,et al. Overexpression of IGF-I in skeletal muscle of transgenic mice does not prevent unloading-induced atrophy. , 1998, The American journal of physiology.
[36] 石島 旨章,et al. Enhancement of osteoclastic bone resorption and suppression of osteoblastic bone formation in response to reduced mechanical stress do not occur in the absence of osteopontin , 2002 .
[37] J M Steffen,et al. Disuse atrophy, plasma corticosterone, and muscle glucocorticoid receptor levels. , 1987, Aviation, space, and environmental medicine.
[38] X. J. Musacchia,et al. Model for antiorthostatic hypokinesia: head-down tilt effects on water and salt excretion. , 1980, Journal of applied physiology: respiratory, environmental and exercise physiology.
[39] M W Luttges,et al. The physical and mechanical effects of suspension-induced osteopenia on mouse long bones. , 1992, Journal of biomechanics.
[40] G Sonnenfeld,et al. Antiorthostatic suspension as a model for the effects of spaceflight on the immune system , 1993, Journal of leukocyte biology.
[41] M Viso,et al. A restraining system for rhesus monkeys used in space research , 1995, Journal of medical primatology.
[42] Nello Pace,et al. Weightlessness: a matter of gravity. , 1977 .
[43] F. W. Booth,et al. Comparison of the Physiology of the Spaceflight and Hindlimb Suspended Rat , 1994 .
[44] F. Plum. Handbook of Physiology. , 1960 .
[45] C. Stump,et al. Spaceflight on STS-48 and earth-based unweighting produce similar effects on skeletal muscle of young rats. , 1993, Journal of applied physiology.
[46] S Ellis,et al. Muscle sarcomere lesions and thrombosis after spaceflight and suspension unloading. , 1992, Journal of applied physiology.
[47] M W Luttges,et al. Contribution of dietary and loading changes to the effects of suspension on mouse femora. , 1994, The Journal of experimental zoology.