Bone metabolism and nutritional status during 30-day head-down-tilt bed rest.
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Martina Heer | Robert Ploutz-Snyder | Scott M Smith | M. Heer | S. Zwart | R. Ploutz-Snyder | Jennifer L L Morgan | Sara R Zwart | K. Ericson | Karen Ericson
[1] H. Gunga,et al. Anemia and erythropoietin in space flights. , 2005, Seminars in nephrology.
[2] Scott M Smith,et al. Nutritional status is altered in the self-neglecting elderly. , 2006, The Journal of nutrition.
[3] Martina Heer,et al. WISE-2005: supine treadmill exercise within lower body negative pressure and flywheel resistive exercise as a countermeasure to bed rest-induced bone loss in women during 60-day simulated microgravity. , 2008, Bone.
[4] Scott M Smith,et al. Saturation Diving Alters Folate Status and Biomarkers of DNA Damage and Repair , 2012, PloS one.
[5] R. Pietrzyk,et al. Alterations in renal stone risk factors after space flight. , 1993, The Journal of urology.
[6] Daniel L. Feeback,et al. Resistance exercise as a countermeasure to disuse-induced bone loss. , 2004, Journal of applied physiology.
[7] H. Goldstein. Multilevel Statistical Models , 2006 .
[8] Scott M Smith,et al. Vitamin K Status in Spaceflight and Ground-Based Models of Spaceflight , 2010, Journal of bone and mineral research : the official journal of the American Society for Bone and Mineral Research.
[9] Scott M Smith,et al. Benefits for bone from resistance exercise and nutrition in long‐duration spaceflight: Evidence from biochemistry and densitometry , 2012, Journal of bone and mineral research : the official journal of the American Society for Bone and Mineral Research.
[10] R. Gerzer,et al. Immobilization induces a very rapid increase in osteoclast activity. , 2005, Acta astronautica.
[11] S. Smith,et al. Nutritional biochemistry of space flight. , 2009, Life support & biosphere science : international journal of earth space.
[12] Martina Heer,et al. Bone resorption is induced on the second day of bed rest: results of a controlled crossover trial. , 2003, Journal of applied physiology.
[13] L. E. Warren,et al. Long-duration head-down bed rest: project overview, vital signs, and fluid balance. , 2009, Aviation, space, and environmental medicine.
[14] Scott M Smith,et al. Nutritional biochemistry of spaceflight. , 2014, Advances in clinical chemistry.
[15] T. Driscoll,et al. Control of red blood cell mass in spaceflight. , 1996, Journal of applied physiology.
[16] M. Lafage-Proust,et al. Bone formation and resorption biological markers in cosmonauts during and after a 180-day space flight (Euromir 95). , 1998, Clinical chemistry.
[17] Scott M Smith. Red blood cell and iron metabolism during space flight. , 2002, Nutrition.
[18] Martina Heer,et al. Calcium and bone metabolism during space flight. , 2002, Nutrition.
[19] C S Leach-Huntoon,et al. Decreased production of red blood cells in human subjects exposed to microgravity. , 1995, The Journal of laboratory and clinical medicine.
[20] Scott M Smith,et al. Dietary support of long-duration head-down bed rest. , 2009, Aviation, space, and environmental medicine.
[21] Scott M Smith,et al. Nutritional status assessment before, during, and after long-duration head-down bed rest. , 2009, Aviation, space, and environmental medicine.
[22] Scott M Smith,et al. Rapidly assessing changes in bone mineral balance using natural stable calcium isotopes , 2012, Proceedings of the National Academy of Sciences.
[23] V. Polyakov,et al. The dynamics of blood biochemical parameters in cosmonauts during long-term space flights. , 1998, Acta astronautica.
[24] Scott M Smith,et al. Lower body negative pressure treadmill exercise as a countermeasure for bed rest-induced bone loss in female identical twins. , 2007, Bone.
[25] R. Pietrzyk,et al. Renal stone risk assessment during Space Shuttle flights. , 1997, The Journal of urology.
[26] Scott M Smith,et al. Skeletal effects of long-duration head-down bed rest. , 2009, Aviation, space, and environmental medicine.
[27] Scott M Smith,et al. Evaluation of Treadmill Exercise in a Lower Body Negative Pressure Chamber as a Countermeasure for Weightlessness‐Induced Bone Loss: A Bed Rest Study With Identical Twins , 2003, Journal of bone and mineral research : the official journal of the American Society for Bone and Mineral Research.
[28] Scott M Smith,et al. Bone Markers, Calcium Metabolism, and Calcium Kinetics During Extended‐Duration Space Flight on the Mir Space Station , 2004, Journal of bone and mineral research : the official journal of the American Society for Bone and Mineral Research.
[29] D. Hartmann,et al. Effects of 1- and 6-month spaceflight on bone mass and biochemistry in two humans. , 1997, Bone.
[30] J. Zerwekh,et al. The Effects of Twelve Weeks of Bed Rest on Bone Histology, Biochemical Markers of Bone Turnover, and Calcium Homeostasis in Eleven Normal Subjects , 1998, Journal of bone and mineral research : the official journal of the American Society for Bone and Mineral Research.
[31] A LeBlanc,et al. Bone mineral and lean tissue loss after long duration space flight. , 2000, Journal of musculoskeletal & neuronal interactions.
[32] Scott M Smith,et al. The nutritional status of astronauts is altered after long-term space flight aboard the International Space Station. , 2005, The Journal of nutrition.
[33] Tomoki Shiozawa,et al. Changes in bone turnover markers during 14-day 6 degrees head-down bed rest. , 2003, Journal of bone and mineral metabolism.
[34] Tomoki Shiozawa,et al. Changes in bone turnover markers during 14-day 6° head-down bed rest , 2003, Journal of Bone and Mineral Metabolism.
[35] C Drummer,et al. Calcium metabolism in microgravity. , 1999, European journal of medical research.
[36] J. Zerwekh,et al. Reduction of renal stone risk by potassium-magnesium citrate during 5 weeks of bed rest. , 2007, The Journal of urology.
[37] W H Paloski,et al. Effects of 21 days of bed rest, with or without artificial gravity, on nutritional status of humans. , 2009, Journal of applied physiology.
[38] Martina Heer,et al. Long-duration space flight and bed rest effects on testosterone and other steroids. , 2012, The Journal of clinical endocrinology and metabolism.
[39] C S Leach,et al. Collagen cross-link excretion during space flight and bed rest. , 1998, The Journal of clinical endocrinology and metabolism.
[40] K. Kondo,et al. Effect of 20 days' bed rest on the reverse cholesterol transport system in healthy young subjects , 1998, Journal of internal medicine.
[41] M. Heer,et al. Effects of artificial gravity during bed rest on bone metabolism in humans. , 2009, Journal of applied physiology.
[42] J. Lian,et al. Vitamin K-dependent carboxylation of osteocalcin: friend or foe? , 2012, Advances in nutrition.
[43] D. Felsenberg,et al. Resistive vibration exercise attenuates bone and muscle atrophy in 56 days of bed rest: biochemical markers of bone metabolism , 2010, Osteoporosis International.
[44] Scott M Smith,et al. Capacity of omega‐3 fatty acids or eicosapentaenoic acid to counteract weightlessness‐induced bone loss by inhibiting NF‐κB activation: From cells to bed rest to astronauts , 2009, Journal of bone and mineral research : the official journal of the American Society for Bone and Mineral Research.
[45] K. DuBose,et al. Blood Lipid and Lipoprotein Adaptations to Exercise , 2001, Sports medicine.