Application of the microtomography technique in density studies of prehistoric and historical human skeletal materials
暂无分享,去创建一个
[1] Simon S. Martin,et al. Diagnostic accuracy of quantitative dual-energy CT-based volumetric bone mineral density assessment for the prediction of osteoporosis-associated fractures , 2021, European Radiology.
[2] K. Szostek,et al. Optimizing FTIR method for characterizing diagenetic alteration of skeletal material , 2021 .
[3] H. Schroeder,et al. Approaches to osteoporosis in paleopathology: How did methodology shape bone loss research? , 2021, International journal of paleopathology.
[4] R. Vajtai,et al. Microcomputed tomography–based characterization of advanced materials: a review , 2020, Materials Today Advances.
[5] Nicholas B. Stephens,et al. Automated resolution independent method for comparing in vivo and dry trabecular bone. , 2020, American journal of physical anthropology.
[6] L. Mancini,et al. Bone diagenesis in archaeological and contemporary human remains: an investigation of bone 3D microstructure and minero-chemical assessment , 2020, Archaeological and Anthropological Sciences.
[7] Natsuko Motooka,et al. The Affect of Lifestyle on Bone Mineral Density and Bone Turnover in Young Women. , 2020, The Kobe journal of medical sciences.
[8] V. Carnevale,et al. Nutritional aspects of bone health: Not only a matter of vitamin D , 2019, Beyond Rheumatology.
[9] Jan Rosenkranz,et al. X-ray Microcomputed Tomography (µCT) for Mineral Characterization: A Review of Data Analysis Methods , 2019, Minerals.
[10] E. Sewerynek,et al. Osteoporotic bone fractures and age-related bone loss in males inhabiting the Kujawy region in north-central Poland from the Neolithic to early modern times , 2019, Journal of Archaeological Science.
[11] E. Cunha,et al. Cortical bone loss in a sample of human skeletons from the Muge Shell middens , 2019, Archaeological and Anthropological Sciences.
[12] R. Hedges,et al. Use of micro-computed tomography imaging and porosity measurements as indicators of collagen preservation in archaeological bone , 2018, Palaeogeography, Palaeoclimatology, Palaeoecology.
[13] S. Shuib,et al. Density estimation based on the Hounsfield unit value of cone beam computed tomography imaging of the jawbone system , 2018, Proceedings of the Institution of Mechanical Engineers. Part H, Journal of engineering in medicine.
[14] E. Cunha,et al. Metacarpal cortical bone loss and osteoporotic fractures in theCoimbraIdentifiedSkeletalCollection , 2018, International Journal of Osteoarchaeology.
[15] Janna M Andronowski,et al. Recent advancements in the analysis of bone microstructure: New dimensions in forensic anthropology , 2018, Forensic sciences research.
[16] Karl J. Jepsen,et al. The challenges of diagnosing osteoporosis and the limitations of currently available tools , 2018, Clinical Diabetes and Endocrinology.
[17] M. Dabert,et al. Analysis of LCT-13910 genotypes and bone mineral density in ancient skeletal materials , 2018, PloS one.
[18] Dan Dragomir-Daescu,et al. Quantitative Computed Tomography Protocols Affect Material Mapping and Quantitative Computed Tomography-Based Finite-Element Analysis Predicted Stiffness. , 2016, Journal of biomechanical engineering.
[19] D. Caramelli,et al. Evaluation of chronological changes in bone fractures and age-related bone loss: A test case from Poland , 2016 .
[20] R. Słomski,et al. Association analysis of the COL1A1 polymorphism with bone mineral density and prevalent fractures in Polish postmenopausal women with osteoporosis , 2016, Archives of medical science : AMS.
[21] T. Coughlan,et al. Osteoporosis and fracture risk in older people. , 2014, Clinical medicine.
[22] I. Lambrinoudaki,et al. BsmI vitamin D receptor’s polymorphism and bone mineral density in men and premenopausal women on long‐term antiepileptic therapy , 2011, European journal of neurology.
[23] H. Schwarcz,et al. New parameters for the characterization of diagenetic alterations and heat-induced changes of fossil bone mineral using Fourier transform infrared spectrometry , 2010 .
[24] G. Henderson,et al. Calcium isotope ratios in animal and human bone , 2010 .
[25] E. Bartelink,et al. EFFECTS OF DIFFERENT SAMPLE PREPARATION METHODS ON STABLE CARBON AND OXYGEN ISOTOPE VALUES OF BONE APATITE: A COMPARISON OF TWO TREATMENT PROTOCOLS* , 2010 .
[26] T. Hangartner,et al. Height adjustment in assessing dual energy x-ray absorptiometry measurements of bone mass and density in children. , 2010, The Journal of clinical endocrinology and metabolism.
[27] M. Grynpas,et al. Measuring and interpreting age-related loss of vertebral bone mineral density in a medieval population. , 2009, American journal of physical anthropology.
[28] W. Leslie,et al. Weight and body mass index predict bone mineral density and fractures in women aged 40 to 59 years , 2009, Osteoporosis International.
[29] Ralph Müller,et al. Quantitative micro-computed tomography: a non-invasive method to assess equivalent bone mineral density. , 2008, Bone.
[30] C. Roux,et al. DXA scanning in clinical practice. , 2008, QJM : monthly journal of the Association of Physicians.
[31] B. Mafart,et al. Postmenopausal bone loss in human skeletal remains of a historical population of southeastern France , 2008, Osteoporosis International.
[32] I. Bajnóczky,et al. Analysis of pathological and non-pathological human skeletal remains by FT-IR spectroscopy. , 2008, Forensic science international.
[33] G. Henderson,et al. Establishing the potential of Ca isotopes as proxy for consumption of dairy products , 2006 .
[34] R. Lindsay,et al. Determinants of bone mass and bone size in a large cohort of physically active young adult men , 2006, Nutrition & metabolism.
[35] S. Mays,et al. The relationship of bone mineral density and other growth parameters to stress indicators in a medieval juvenile population , 2005 .
[36] F. Longstaffe,et al. Demography and ethnic continuity in the Tlailotlacan enclave of Teotihuacan: the evidence from stable oxygen isotopes , 2004 .
[37] G. Tomlinson,et al. Medieval trabecular bone architecture: the influence of age, sex, and lifestyle. , 2004, American journal of physical anthropology.
[38] S. Mays,et al. Measurements of Bone Mineral Density of the Radius in a Medieval Population , 2004, Calcified Tissue International.
[39] D. Van dyck,et al. Quantitative analysis of bone mineral content by x-ray microtomography. , 2003, Physiological measurement.
[40] G. Davey-Smith,et al. Genetic and Environmental Determinants of Peak Bone Mass in Young Men and Women , 2002, Journal of bone and mineral research : the official journal of the American Society for Bone and Mineral Research.
[41] H. Schwarcz,et al. Strangers in a Strange Land: Stable Isotope Evidence for Human Migration in the Dakhleh Oasis, Egypt , 2001 .
[42] S. Mays,et al. Effects of age and occupation on cortical bone in a group of 18th-19th century British men. , 2001, American journal of physical anthropology.
[43] S. Mays,et al. The archaeology of osteoporosis , 2001, European Journal of Archaeology.
[44] S. Cummings,et al. Classification of Osteoporosis Based on Bone Mineral Densities , 2001, Journal of bone and mineral research : the official journal of the American Society for Bone and Mineral Research.
[45] O. Löfman,et al. Bone mineral density in diagnosis of osteoporosis: reference population, definition of peak bone mass, and measured site determine prevalence. , 2000, Journal of clinical densitometry : the official journal of the International Society for Clinical Densitometry.
[46] H. Schwarcz,et al. Infrared and Isotopic Evidence for Diagenesis of Bone Apatite at Dos Pilas, Guatemala: Palaeodietary Implications , 1996 .
[47] Y. Ouchi,et al. Association of bone mineral density with polymorphism of the estrogen receptor gene , 1996, Journal of bone and mineral research : the official journal of the American Society for Bone and Mineral Research.
[48] C. Cooper,et al. Fortnightly Review: Bone densitometry in clinical practice , 1995, BMJ.
[49] V. Matkovic,et al. Factors that influence peak bone mass formation: a study of calcium balance and the inheritance of bone mass in adolescent females. , 1990, The American journal of clinical nutrition.
[50] C. Lovejoy,et al. Dental wear in the Libben population: its functional pattern and role in the determination of adult skeletal age at death. , 1985, American journal of physical anthropology.
[51] L. Feldkamp,et al. Practical cone-beam algorithm , 1984 .
[52] J. Przysławski,et al. Osteoporoza u dzieci i mlodziezy , 2008 .
[53] S. Agarwal,et al. Bone Loss and Osteoporosis , 2003 .
[54] M. Glas,et al. Principles of Computerized Tomographic Imaging , 2000 .