Mechanical loading causes site-specific anabolic effects on bone following exposure to ionizing radiation.
暂无分享,去创建一个
Ruth K. Globus | Joshua S. Alwood | Yasaman Shirazi-Fard | Ann-Sofie Schreurs | A. Schreurs | Y. Shirazi‐Fard | R. Globus | J. Alwood | A. Castillo | Alesha B. Castillo | Y. Shirazi-Fard
[1] Felix Eckstein,et al. Non-invasive axial loading of mouse tibiae increases cortical bone formation and modifies trabecular organization: a new model to study cortical and cancellous compartments in a single loaded element. , 2005, Bone.
[2] Erik Tryggestad,et al. Erratum: Irradiation induces bone injury by damaging bone marrow microenvironment for stem cells (Proceedings of the National Academy of Sciences of the United States of America (2011) 108 (1609-1614) DOI:10.1073/pnas. 1015350108) , 2011 .
[3] H. Genant,et al. Cortical and Trabecular Bone Mineral Loss From the Spine and Hip in Long‐Duration Spaceflight , 2004, Journal of bone and mineral research : the official journal of the American Society for Bone and Mineral Research.
[4] J. Koenderink. Q… , 2014, Les noms officiels des communes de Wallonie, de Bruxelles-Capitale et de la communaute germanophone.
[5] Ralph Müller,et al. Guidelines for assessment of bone microstructure in rodents using micro–computed tomography , 2010, Journal of bone and mineral research : the official journal of the American Society for Bone and Mineral Research.
[6] J. Stockman,et al. Chronic Health Conditions in Adult Survivors of Childhood Cancer , 2008 .
[7] T. Lang,et al. Adaptation of the Proximal Femur to Skeletal Reloading After Long‐Duration Spaceflight , 2006, Journal of bone and mineral research : the official journal of the American Society for Bone and Mineral Research.
[8] J. Harrison,et al. ICRP Publication 131: Stem cell biology with respect to carcinogenesis aspects of radiological protection , 2016, Annals of the ICRP.
[9] R. Zhao,et al. Senescence-unrelated impediment of osteogenesis from Flk1+ bone marrow mesenchymal stem cells induced by total body irradiation and its contribution to long-term bone and hematopoietic injury. , 2007, Haematologica.
[10] G A Nelson,et al. Bone Architectural and Structural Properties after 56Fe26+ Radiation-Induced Changes in Body Mass , 2008, Radiation research.
[11] P. Logan,et al. Radiation-induced changes in bone. , 1998, Radiographics : a review publication of the Radiological Society of North America, Inc.
[12] V S Oganov,et al. Recovery of spaceflight-induced bone loss: bone mineral density after long-duration missions as fitted with an exponential function. , 2007, Bone.
[13] M. Longaker,et al. The Effects of Ionizing Radiation on Osteoblast-Like Cells in Vitro , 2000, Plastic and reconstructive surgery.
[14] Adam J Branscum,et al. Acute exposure to high dose γ-radiation results in transient activation of bone lining cells. , 2013, Bone.
[15] Y. Shirazi‐Fard,et al. Moderate intensity resistive exercise improves metaphyseal cancellous bone recovery following an initial disuse period, but does not mitigate decrements during a subsequent disuse period in adult rats. , 2014, Bone.
[16] A. Parfitt. Bone histomorphometry: standardization of nomenclature, symbols and units (summary of proposed system). , 1988, Bone.
[17] Laurence Vico,et al. Adaptation of the Skeletal System During Long-Duration Spaceflight , 2007 .
[18] Marco Durante,et al. Physical basis of radiation protection in space travel , 2011 .
[19] D. Carter,et al. Body mass is the primary determinant of midfemoral bone acquisition during adolescent growth. , 1996, Bone.
[20] R. Toohey,et al. Radiation dose distributions in normal tissue adjacent to tumors containing (131)I or (90)Y: the potential for toxicity. , 2002, Journal of nuclear medicine : official publication, Society of Nuclear Medicine.
[21] Timothy M Wright,et al. Cancellous bone adaptation to tibial compression is not sex dependent in growing mice. , 2010, Journal of applied physiology.
[22] J. Harrison,et al. ICRP Publication 131: Stem Cell Biology with Respect to Carcinogenesis Aspects of Radiological Protection , 2015, Annals of the ICRP.
[23] T. Albrektsson,et al. Alterations in bone regenerative capacity after low level gamma irradiation. A quantitative study. , 1985, Scandinavian journal of plastic and reconstructive surgery.
[24] Stuart J Warden,et al. Cortical and trabecular bone adaptation to incremental load magnitudes using the mouse tibial axial compression loading model. , 2013, Bone.
[25] C. Adams,et al. Ionizing radiation sensitizes bone cells to apoptosis. , 2004, Bone.
[26] J Daniel Bourland,et al. Spaceflight-relevant types of ionizing radiation and cortical bone: Potential LET effect? , 2008, Advances in space research : the official journal of the Committee on Space Research.
[27] John W Hopewell,et al. Radiation-therapy effects on bone density. , 2003, Medical and pediatric oncology.
[28] H. Frost,et al. Skeletal structural adaptations to mechanical usage (SATMU): 1. Redefining Wolff's Law: The bone modeling problem , 1990, The Anatomical record.
[29] J Daniel Bourland,et al. Risedronate prevents early radiation-induced osteoporosis in mice at multiple skeletal locations. , 2010, Bone.
[30] William J Browne,et al. Bones' Adaptive Response to Mechanical Loading Is Essentially Linear Between the Low Strains Associated With Disuse and the High Strains Associated With the Lamellar/Woven Bone Transition , 2012, Journal of bone and mineral research : the official journal of the American Society for Bone and Mineral Research.
[31] Francis A Cucinotta,et al. From mice and men to earth and space: joint NASA-NCI workshop on lung cancer risk resulting from space and terrestrial radiation. , 2011, Cancer research.
[32] G. Reitz,et al. Characteristic of the radiation field in low Earth orbit and in deep space. , 2008, Zeitschrift fur medizinische Physik.
[33] M. Hamrick,et al. Caloric Restriction Decreases Cortical Bone Mass but Spares Trabecular Bone in the Mouse Skeleton: Implications for the Regulation of Bone Mass by Body Weight , 2008, Journal of bone and mineral research : the official journal of the American Society for Bone and Mineral Research.
[34] Sundar Srinivasan,et al. Enabling bone formation in the aged skeleton via rest-inserted mechanical loading. , 2003, Bone.
[35] C. Limoli,et al. Heavy ion irradiation and unloading effects on mouse lumbar vertebral microarchitecture, mechanical properties and tissue stresses. , 2010, Bone.
[36] T. Guise,et al. Cancer treatment-related bone disease. , 2009, Critical reviews in eukaryotic gene expression.
[37] Lawrence W Townsend,et al. Interplanetary crew dose estimates for worst case solar particle events based on historical data for the Carrington flare of 1859. , 2005, Acta astronautica.
[38] Ted A. Bateman,et al. Early Increase in Osteoclast Number in Mice after Whole-Body Irradiation with 2 Gy X Rays , 2008, Radiation research.
[39] B. Macias,et al. Simulated resistance training, but not alendronate, increases cortical bone formation and suppresses sclerostin during disuse. , 2012, Journal of applied physiology.
[40] K. Emmons,et al. Physical Inactivity in Adult Survivors of Childhood Acute Lymphoblastic Leukemia: A Report from the Childhood Cancer Survivor Study , 2007, Cancer Epidemiology Biomarkers & Prevention.
[41] S. Siva,et al. Abscopal effects of radiation therapy: a clinical review for the radiobiologist. , 2015, Cancer letters.
[42] 杉本 正幸,et al. Changes in bone after high-dose irradiation : biomechanics and histomorphology , 1993 .
[43] Francesco De Carlo,et al. Long-Term Dose Response of Trabecular Bone in Mice to Proton Radiation , 2008, Radiation research.
[44] L W Townsend,et al. Radiation protection guidance for activities in low-Earth orbit. , 2002, Advances in space research : the official journal of the Committee on Space Research.
[45] L. Lanyon,et al. Osteoregulatory nature of mechanical stimuli: Function as a determinant for adaptive remodeling in bone , 1987, Journal of orthopaedic research : official publication of the Orthopaedic Research Society.
[46] C. Muro-Cacho,et al. Radiation effects on osteoblasts in vitro: a potential role in osteoradionecrosis. , 2000, Archives of otolaryngology--head & neck surgery.
[47] T. Bateman,et al. A murine model for bone loss from therapeutic and space-relevant sources of radiation. , 2006, Journal of applied physiology.
[48] Georg N Duda,et al. Diminished response to in vivo mechanical loading in trabecular and not cortical bone in adulthood of female C57Bl/6 mice coincides with a reduction in deformation to load. , 2013, Bone.
[49] T. Guise,et al. Bone loss and fracture risk associated with cancer therapy. , 2006, The oncologist.
[50] Mary L Bouxsein,et al. Age‐Related Changes in Trabecular Architecture Differ in Female and Male C57BL/6J Mice , 2007, Journal of bone and mineral research : the official journal of the American Society for Bone and Mineral Research.
[51] M P Akhter,et al. A noninvasive, in vivo model for studying strain adaptive bone modeling. , 1991, Bone.
[52] Jean D. Sibonga,et al. Long-term changes in the density and structure of the human hip and spine after long-duration spaceflight , 2010 .
[53] L. Lanyon,et al. Age-Related Impairment of Bones' Adaptive Response to Loading in Mice Is Associated With Sex-Related Deficiencies in Osteoblasts but No Change in Osteocytes , 2014, Journal of bone and mineral research : the official journal of the American Society for Bone and Mineral Research.
[54] R. Main,et al. Load-induced changes in bone stiffness and cancellous and cortical bone mass following tibial compression diminish with age in female mice , 2014, Journal of Experimental Biology.
[55] T. Bateman,et al. Single‐Limb Irradiation Induces Local and Systemic Bone Loss in a Murine Model , 2015, Journal of bone and mineral research : the official journal of the American Society for Bone and Mineral Research.
[56] Ruth K Globus,et al. Short-Term Effects of Whole-Body Exposure to 56Fe Ions in Combination with Musculoskeletal Disuse on Bone Cells , 2010, Radiation research.
[57] Peter Muir,et al. Systemic Effects of Ulna Loading in Male Rats During Functional Adaptation , 2010, Journal of bone and mineral research : the official journal of the American Society for Bone and Mineral Research.
[58] Sharmila Majumdar,et al. Changes in Bone Structure and Mass With Advancing Age in the Male C57BL/6J Mouse , 2002, Journal of bone and mineral research : the official journal of the American Society for Bone and Mineral Research.
[59] Miss A.O. Penney. (b) , 1974, The New Yale Book of Quotations.
[60] G. Rabelo,et al. Histological analysis of the alterations on cortical bone channels network after radiotherapy: A rabbit study , 2010, Microscopy research and technique.
[61] Y. Shibamoto,et al. Changes in bone after high-dose irradiation. Biomechanics and histomorphology. , 1991, The Journal of bone and joint surgery. British volume.
[62] R. Loeffler,et al. Postirradiation atrophic changes of bone and related complications. , 1975, Radiology.
[63] Sundar Srinivasan,et al. Rest intervals reduce the number of loading bouts required to enhance bone formation. , 2015, Medicine and science in sports and exercise.
[64] J. Kanis,et al. Standardized nomenclature, symbols, and units for bone histomorphometry: A 2012 update of the report of the ASBMR Histomorphometry Nomenclature Committee , 2013, Journal of bone and mineral research : the official journal of the American Society for Bone and Mineral Research.
[65] Miwa Yoshimoto,et al. Radiation-induced reduction of osteoblast differentiation in C2C12 cells. , 2007, Journal of radiation research.
[66] Marco Durante,et al. Biological effects of space radiation on human cells: history, advances and outcomes. , 2011, Journal of radiation research.
[67] H. Ergün,et al. Postradiation atrophy of mature bone. , 1980, CRC critical reviews in diagnostic imaging.
[68] M. Hudson,et al. Chronic health conditions in adult survivors of childhood cancer. , 2006, The New England journal of medicine.
[69] T. Lang,et al. What do we know about fracture risk in long-duration spaceflight? , 2006, Journal of musculoskeletal & neuronal interactions.
[70] T. Bateman,et al. Effect of proton irradiation followed by hindlimb unloading on bone in mature mice: a model of long-duration spaceflight. , 2012, Bone.
[71] C. Limoli,et al. Total-Body Irradiation of Postpubertal Mice with 137Cs Acutely Compromises the Microarchitecture of Cancellous Bone and Increases Osteoclasts , 2009, Radiation research.
[72] T. Bateman,et al. Space Radiation and Bone Loss. , 2011, Gravitational and space biology bulletin : publication of the American Society for Gravitational and Space Biology.
[73] A. Sams. The effect of 2000 r of x-rays on the internal structure of the mouse tibia. , 1966, International journal of radiation biology and related studies in physics, chemistry, and medicine.
[74] L E Lanyon,et al. Validation of a technique for studying functional adaptation of the mouse ulna in response to mechanical loading. , 2002, Bone.
[75] J. Tepper,et al. Risk of Pelvic Fractures in Older Women Following Pelvic Irradiation , 2005, Journal of the American Medical Association (JAMA).
[76] Matthew J Silva,et al. Aged Mice Have Enhanced Endocortical Response and Normal Periosteal Response Compared With Young-Adult Mice Following 1 Week of Axial Tibial Compression , 2010, Journal of bone and mineral research : the official journal of the American Society for Bone and Mineral Research.
[77] C. Limoli,et al. Oxidative stress and gamma radiation-induced cancellous bone loss with musculoskeletal disuse. , 2010, Journal of applied physiology.