[1] |
Lee P, Nair P, Eisman JA, et al. Bone failure in critical illness[J]. Crit Care Med, 2016, 44(12):2270-2274.
|
[2] |
Orford NR, Lane SE, Bailey M, et al. Changes in bone mineral density in the year after critical illness[J].Am J Respir Crit Care Med, 2016, 193(7):736-744.
|
[3] |
Orford N, Cattigan C, Brennan SL, et al. The association between critical illness and changes in bone turnover in adults: A systematic review[J]. Osteoporos Int, 2014, 25(10):2335-2346.
|
[4] |
Rawal J, McPhail MJ, Ratnayake G, et al. A pilot study of change in fracture risk in patients with acute respiratory distress syndrome[J]. Crit Care, 2015, 19(1):165-171.
|
[5] |
Gavala A, Makris K, Korompeli A, et al. Evaluation of bone metabolism in critically ill patients using CTx and PINP[J]. Biomed Res Int, 2016, 2016:1-9.
|
[6] |
Orford NR, Bailey M, Bellomo R, et al. The association of time and medications with changes in bone mineral density in the 2 years after critical illness[J]. Crit Care, 2017, 21(1):69-79.
|
[7] |
Laurent MR, Dedeyne L, Dupont J, et al. Age-related bone loss and sarcopenia in men[J]. Maturitas, 2019, 122:51-56.
|
[8] |
Goodman RB, Pugin J, Lee JS, et al. Cytokine-mediated inflammation in acute lung injury[J]. Cytokine Growth Factor Rev, 2003, 14(6):523-535.
|
[9] |
Ding C, Parameswaran V, Udayan R, et al. Circulating levels of inflammatory markers predict change in bone mineral density and resorption in older adults: A longitudinal study[J]. J Clin Endocrinol Metab, 2008, 93(5):1952-1958.
|
[10] |
Chen X, Wang Z, Duan N, et al. Osteoblast-osteoclast interactions[J]. Connect Tissue Res, 2018, 59(2):99-107.
|
[11] |
Straub RH, Cutolo M, Pacifici R. Evolutionary medicine and bone loss in chronic inflammatory diseases--A theory of inflammation-related osteopenia[J]. Semin Arthritis Rheum, 2015, 45(2):220-228.
|
[12] |
Via MA, Gallagher EJ, Mechanick JI. Bone physiology and therapeutics inchronic critical illness[J]. Ann N Y Acad Sci, 2010, 1211:85-94.
|
[13] |
Friedrich O, Reid MB, Van den Berghe G, et al. The sick and the weak: Neuropathies/myopathies in the critically ill[J]. Physiol Rev, 2015, 95(3):1025-1109.
|
[14] |
Puthucheary ZA, Rawal J, McPhail M, et al. Acute skeletal muscle wasting incritical illness[J]. JAMA, 2013, 310(15):1591-1600.
|
[15] |
Lips P, Goldsmith D, de Jongh R. Vitamin D and osteoporosis in chronic kidney disease[J]. J Nephrol, 2017, 30(5):671-675.
|
[16] |
Dey V, Farrah TE, Traynor JP, et al. Symptomatic fracture risk in the renal replacement therapy population[J]. Nephrol Dial Transplant, 2017, 32(7):1211-1216.
|
[17] |
Nicolaije C, Koedam M, van Leeuwen JP. Decreased oxygen tension lowers reactive oxygen species and apoptosis and inhibits osteoblast matrix mineralization through changes in early osteoblast differentiation[J]. J Cell Physiol, 2012, 227(4):1309-1318.
|
[18] |
Dandajena TC, Ihnat MA, Disch B, et al. Hypoxia triggers a HIF-mediated differentiation of peripheral blood mononuclear cells into osteoclasts[J]. Orthod Craniofac Res, 2012, 15(1):1-9.
|
[19] |
Rousseau AF, Kerschan-Schindl K, Scherkl M, et al. Bone metabolism andfracture risk during and after critical illness[J]. Curr Opin Crit Care, 2020, 26(4):379-385.
|