[1] |
HILIGSMANN M,EVERS S M,BEN SEDRINE W,et al. A systematic review of cost-effectiveness analyses of drugs for postmenopausal osteoporosis[J]. Pharmacoeconomics,2015,33(3):205-224. DOI:10.1007/s40273-014-0231-1.
|
[2] |
TURNER D A,KHIOE R F S,SHEPSTONE L,et al. The cost-effectiveness of screening in the community to reduce osteoporotic fractures in older women in the UK:economic evaluation of the SCOOP study[J]. J Bone Miner Res,2018,33(5):845-851. DOI:10.1002/jbmr.3381.
|
[3] |
WU J,QU Y,WANG K,et al. Healthcare resource utilization and direct medical costs for patients with osteoporotic fractures in China[J]. Value Heal Reg Issues,2019,18:106-111. DOI:10.1016/j.vhri.2018.11.008.
|
[4] |
ZHANG C G,FENG J N,WANG S F,et al.Incidence of and trends in hip fracture among adults in urban China: a nationwide retrospective cohort study[J].PLoS Med,2020,17(8): e1003180. DOI:10.1371/journal.pmed.1003180.
|
[5] |
BRIGGS R,DYER A,NABEEL S,et al.Dementia in the acute hospital:the prevalence and clinical outcomes of acutely unwell patients with dementia[J].QJM,2017,110(1):33-37. DOI:10.1093/qjmed/hcw114.
|
[6] |
JIA L F,QUAN M N,FU Y,et al. Dementia in China:epidemiology,clinical management,and research advances[J]. Lancet Neurol,2020,19(1):81-92. DOI:10.1016/S1474-4422(19)30290-X.
|
[7] |
杨淞淳,吕筠,李立明.流行病学研究新进展[J]. 中华流行病学杂志,2020,41(1):1-5. DOI:10.3760/cma.j.issn.0254-6450.2020.01.001.
|
[8] |
SINGH I,HOOTON K,EDWARDS C,et al. Inpatient hip fractures:understanding and addressing the risk of this common injury[J]. Age Ageing,2020,49(3):481-486. DOI:10.1093/ageing/afz179.
|
[9] |
KERSCHAN-SCHINDL K. Prevention and rehabilitation of osteoporosis[J]. Wien Med Wochenschr,2016,166(1/2):22-27. DOI:10.1007/s10354-015-0417-y.
|
[10] |
WANG Y,TAO Y,HYMAN M E,et al. Osteoporosis in China[J]. Osteoporos Int,2009,20(10):1651-1662. DOI:10.1007/s00198-009-0925-y.
|
[11] |
NORDIN B E C,NEED A G,STEURER T,et al. Nutrition,osteoporosis,and aging[J]. Annals NY Acad Sci,1998,854(1 TOWARDS PROLO): 336-351. DOI:10.1111/j.1749-6632.1998.tb09914.x.
|
[12] |
DUCY P,AMLING M,TAKEDA S,et al. Leptin inhibits bone formation through a hypothalamic relay:a central control of bone mass[J]. Cell,2000,100(2):197-207. DOI:10.1016/S0092-8674(00)81558-5.
|
[13] |
ELEFTERIOU F. Impact of the autonomic nervous system on the skeleton[J]. Physiol Rev,2018,98(3):1083-1112. DOI:10.1152/physrev.00014.2017.
|
[14] |
YAVUZ KELES B,VURAL M,ÖNDER B,et al. Evaluation of the effects of β1-selective beta-blockers on bone mineral density and fracture risk in postmenopausal women[J]. Turk J Med Sci,2020,50(4):994-998. DOI:10.3906/sag-1909-187.
|
[15] |
KELLY R R,MCDONALD L T,JENSEN N R,et al. Impacts of psychological stress on osteoporosis: clinical implications and treatment interactions[J]. Front Psychiatry,2019,10: 200. DOI:10.3389/fpsyt.2019.00200.
|
[16] |
BERGER J M,SINGH P,KHRIMIAN L,et al. Mediation of the acute stress response by the skeleton[J]. Cell Metab,2019,30(5):890-902.e8. DOI:10.1016/j.cmet.2019.08.012.
|
[17] |
NOGUCHI T,EBINA K,HIRAO M,et al. Apolipoprotein E plays crucial roles in maintaining bone mass by promoting osteoblast differentiation via ERK1/2 pathway and by suppressing osteoclast differentiation via c-Fos,NFATc1,and NF-κB pathway[J]. Biochem Biophys Res Commun,2018,503(2):644-650. DOI:10.1016/j.bbrc.2018.06.055.
|
[18] |
DENGLER-CRISH C M,BALL H C,LIN L,et al. Evidence of Wnt/β-catenin alterations in brain and bone of a tauopathy mouse model of Alzheimer's disease[J]. Neurobiol Aging,2018,67:148-158. DOI:10.1016/j.neurobiolaging.2018.03.021.
|
[19] |
CUI S,XIONG F,HONG Y,et al. APPswe/Aβ regulation of osteoclast activation and RAGE expression in an age-dependent manner[J]. J Bone Miner Res,2011,26(5):1084-1098. DOI:10.1002/jbmr.299.
|
[20] |
YANG M W,WANG T H,YAN P P,et al. Curcumin improves bone microarchitecture and enhances mineral density in APP/PS1 transgenic mice[J]. Phytomedicine,2011,18(2/3):205-213. DOI:10.1016/j.phymed.2010.05.011.
|
[21] |
XIA W F,JUNG J U,SHUN C,et al. Swedish mutant APP suppresses osteoblast differentiation and causes osteoporotic deficit,which are ameliorated by N-acetyl-L-cysteine[J]. J Bone Miner Res,2013,28(10):2122-2135. DOI:10.1002/jbmr.1954.
|
[22] |
DENGLER-CRISH C M,SMITH M A,WILSON G N. Early evidence of low bone density and decreased serotonergic synthesis in the dorsal raphe of a tauopathy model of Alzheimer's disease[J]. J Alzheimer's Dis,2016,55(4):1605-1619. DOI:10.3233/jad-160658.
|
[23] |
DENGLER-CRISH C M,BALL H C,LIN L,et al. Evidence of Wnt/β-catenin alterations in brain and bone of a tauopathy mouse model of Alzheimer's disease[J]. Neurobiol Aging,2018,67:148-158. DOI:10.1016/j.neurobiolaging.2018.03.021.
|
[24] |
BEMILLER S M,MCCRAY T J,ALLAN K,et al. TREM2 deficiency exacerbates tau pathology through dysregulated kinase signaling in a mouse model of tauopathy[J]. Mol Neurodegener,2017,12(1): 1-12. DOI:10.1186/s13024-017-0216-6.
|
[25] |
GUERREIRO R,WOJTAS A,BRAS J,et al. TREM2 variants in Alzheimer's disease[J]. N Engl J Med,2013,368(2):117-127. DOI:10.1056/nejmoa1211851.
|
[26] |
OBRI A,KHRIMIAN L,KARSENTY G,et al. Osteocalcin in the brain:from embryonic development to age-related decline in cognition[J]. Nat Rev Endocrinol,2018,14(3):174-182. DOI:10.1038/nrendo.2017.181.
|
[27] |
REINHOLT F P,HULTENBY K,OLDBERG A,et al. Osteopontin——a possible anchor of osteoclasts to bone[J]. PNAS,1990,87(12):4473-4475. DOI:10.1073/pnas.87.12.4473.
|
[28] |
CHO E H,CHO K H,LEE H A,et al. High serum osteopontin levels are associated with low bone mineral density in postmenopausal women[J]. J Korean Med Sci,2013,28(10): 1496. DOI:10.3346/jkms.2013.28.10.1496.
|
[29] |
FODOR D,BONDOR C,ALBU A,et al. The value of osteopontin in the assessment of bone mineral density status in postmenopausal women[J]. J Investig Med,2013,61(1):15-21. DOI:10.2310/jim.0b013e3182761264.
|
[30] |
WANG K X,DENHARDT D T. Osteopontin: role in immune regulation and stress responses[J]. Cytokine Growth Factor Rev,2008,19(5/6):333-345. DOI:10.1016/j.cytogfr.2008.08.001.
|
[31] |
SIMONSEN A H,MCGUIRE J,HANSSON O,et al. Novel panel of cerebrospinal fluid biomarkers for the prediction of progression to alzheimer dementia in patients with mild cognitive impairment[J]. Arch Neurol,2007,64(3): 366-370. DOI:10.1001/archneur.64.3.366.
|
[32] |
COMI C,CARECCHIO M,CHIOCCHETTI A,et al. Osteopontin is increased in the cerebrospinal fluid of patients with Alzheimer's disease and its levels correlate with cognitive decline[J]. J Alzheimer's Dis,2010,19(4):1143-1148. DOI:10.3233/jad-2010-1309.
|
[33] |
DOWNEY C L,YOUNG A,BURTON E F,et al. Dementia and osteoporosis in a geriatric population:is there a common link?[J]. World J Orthop,2017,8(5):412-423. DOI:10.5312/wjo.v8.i5.412
|
[34] |
ZHAO L H .2020 Alzheimer's disease facts and figures[J]. Alzheimers Dement,2020,16(3):391-460. DOI:10.1002/alz.12068
|
[35] |
SOHRABI H R,BATES K A,WEINBORN M,et al. Bone mineral density,adiposity,and cognitive functions[J]. Front Aging Neurosci,2015,7:16. DOI:10.3389/fnagi.2015.00016.
|
[36] |
ZHOU R,ZHOU H D,RUI L,et al. Bone loss and osteoporosis are associated with conversion from mild cognitive impairment to Alzheimer's disease[J]. Curr Alzheimer Res,2014,11(7):706-713. DOI:10.2174/1567205011666140812115818.
|
[37] |
TARRANT S M,BALOGH Z J. The global burden of surgical management of osteoporotic fractures[J]. World J Surg,2020,44(4):1009-1019. DOI:10.1007/s00268-019-05237-y.
|
[38] |
CAULEY J A,CAWTHON P M,PETERS K E,et al. Risk factors for hip fracture in older men:the osteoporotic fractures in men study (MrOS)[J]. J Bone Miner Res,2016,31(10):1810-1819. DOI:10.1002/jbmr.2836.
|
[39] |
KANG H G,PARK H Y,RYU H U,et al. Bone mineral loss and cognitive impairment[J]. Medicine,2018,97(41): e12755. DOI:10.1097/md.0000000000012755.
|
[40] |
CATALANO A,SARDELLA A,BELLONE F,et al. Executive functions predict fracture risk in postmenopausal women assessed for osteoporosis[J]. Aging Clin Exp Res,2020,32(11):2251-2257. DOI:10.1007/s40520-019-01426-w.
|
[41] |
FOGG C,GRIFFITHS P,MEREDITH P,et al. Hospital outcomes of older people with cognitive impairment: an integrative review[J]. Int J Geriatr Psychiatry,2018,33(9):1177-1197. DOI:10.1002/gps.4919.
|
[42] |
HAO C T,CHUANG C S,Hung C H,et al. Fracture as an independent risk factor of dementia:a nationwide population-based cohort study[J]. Medicine (Baltimore),2014,93(26):e188. DOI:10.1097/MD.0000000000000188.
|
[43] |
LAVIKAINEN P,KOPONEN M,TAIPALE H,et al. Length of hospital stay for hip fracture and 30-day mortality in people with Alzheimer's disease: a cohort study in Finland[J]. Journals Gerontol: Ser A,2020,75(11):2184-2192. DOI:10.1093/gerona/glaa199.
|
[44] |
BERRY S D,ROTHBAUM R R,KIEL D P,et al. Association of clinical outcomes with surgical repair of hip fracture vs nonsurgical management in nursing home residents with advanced dementia[J]. JAMA Intern Med,2018,178(6): 774-780. DOI:10.1001/jamainternmed.2018.0743.
|
[45] |
BAE G,KIM E,KWON H Y,et al. Burden of osteoporotic fractures using disability-adjusted life years in South Korea[J]. Asia Pac J Public Heal,2020,32(2/3):111-117. DOI:10.1177/1010539520916376.
|
[46] |
CATALANO A,SARDELLA A,BELLONE F,et al. Executive functions predict fracture risk in postmenopausal women assessed for osteoporosis[J]. Aging Clin Exp Res,2020,32(11): 2251-2257. DOI:10.1007/s40520-019-01426-w.
|
[47] |
MURTHY L,DREYER P,SURIYAARACHCHI P,et al. Association between high levels of parathyroid hormone and frailty:the Nepean Osteoporosis and Frailty (NOF) study[J]. J Frailty Aging,20187(4):253-257. DOI:10.14283/jfa.2018.22.
|