The association between insulin use and volumetric bone mineral density, bone micro-architecture and bone strength of the distal radius in patients with type 2 diabetes - The Maastricht study.
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P. Dagnelie | P. Geusens | C. Stehouwer | C. V. D. van der Kallen | M. Schram | N. Schaper | F. de Vries | H. Savelberg | R. Henry | A. Koster | J. V. D. van den Bergh | S. Sep | J. Driessen | T. van Geel | H. V. van Onzenoort | C. Neef | J. D. de Jong | E. D. de Waard
[1] R. Joakimsen,et al. Women with type 2 diabetes mellitus have lower cortical porosity of the proximal femoral shaft using low-resolution CT than nondiabetic women, and increasing glucose is associated with reduced cortical porosity. , 2017, Bone.
[2] A. Schwartz,et al. Mechanisms of diabetes mellitus-induced bone fragility , 2017, Nature Reviews Endocrinology.
[3] P. Vestergaard,et al. MECHANISMS IN ENDOCRINOLOGY: Diabetes mellitus, a state of low bone turnover - a systematic review and meta-analysis. , 2017, European journal of endocrinology.
[4] G. Jerums,et al. Glucose‐loading reduces bone remodeling in women and osteoblast function in vitro , 2016, Physiological reports.
[5] R. Eastell,et al. Oral anti-diabetic drugs and fracture risk, cut to the bone: safe or dangerous? A narrative review , 2015, Osteoporosis International.
[6] R. Pratley,et al. The impact of diabetes and diabetes medications on bone health. , 2015, Endocrine reviews.
[7] Ego Seeman,et al. Cortical Bone: A Challenging Geography , 2015, Journal of bone and mineral research : the official journal of the American Society for Bone and Mineral Research.
[8] P. Geusens,et al. Increased fracture risk in patients with type 2 diabetes mellitus: an overview of the underlying mechanisms and the usefulness of imaging modalities and fracture risk assessment tools. , 2014, Maturitas.
[9] N. Chattipakorn,et al. Possible roles of insulin signaling in osteoblasts , 2014, Endocrine research.
[10] P. Geusens,et al. The skeletal muscle arachidonic acid cascade in health and inflammatory disease , 2014, Nature Reviews Rheumatology.
[11] P. Dagnelie,et al. The Maastricht Study: an extensive phenotyping study on determinants of type 2 diabetes, its complications and its comorbidities , 2014, European Journal of Epidemiology.
[12] P. Vestergaard,et al. Biochemical markers of bone turnover in diabetes patients—a meta-analysis, and a methodological study on the effects of glucose on bone markers , 2014, Osteoporosis International.
[13] E. Seeman,et al. A new method of segmentation of compact-appearing, transitional and trabecular compartments and quantification of cortical porosity from high resolution peripheral quantitative computed tomographic images. , 2013, Bone.
[14] Brian A. Nosek,et al. Power failure: why small sample size undermines the reliability of neuroscience , 2013, Nature Reviews Neuroscience.
[15] Anna-Maria Liphardt,et al. Quality control for bone quality parameters affected by subject motion in high-resolution peripheral quantitative computed tomography. , 2012, Bone.
[16] JB. Pialat,et al. Visual grading of motion induced image degradation in high resolution peripheral computed tomography: impact of image quality on measures of bone density and micro-architecture. , 2012, Bone.
[17] M. Ezzati,et al. National, regional, and global trends in fasting plasma glucose and diabetes prevalence since 1980: systematic analysis of health examination surveys and epidemiological studies with 370 country-years and 2·7 million participants , 2011, The Lancet.
[18] S. Khosla,et al. Effects of physiological variations in circulating insulin levels on bone turnover in humans. , 2011, The Journal of clinical endocrinology and metabolism.
[19] Sharmila Majumdar,et al. Reproducibility of direct quantitative measures of cortical bone microarchitecture of the distal radius and tibia by HR-pQCT. , 2010, Bone.
[20] B. van Rietbergen,et al. Bone micro-architecture and determinants of strength in the radius and tibia: age-related changes in a population-based study of normal adults measured with high-resolution pQCT , 2009, Osteoporosis International.
[21] Su-Yen Goh,et al. The role of advanced glycation end products in progression and complications of diabetes , 2008 .
[22] J. Macneil,et al. Accuracy of high-resolution peripheral quantitative computed tomography for measurement of bone quality. , 2007, Medical engineering & physics.
[23] Steven K Boyd,et al. Automatic segmentation of cortical and trabecular compartments based on a dual threshold technique for in vivo micro-CT bone analysis. , 2007, Bone.
[24] P. Vestergaard,et al. Discrepancies in bone mineral density and fracture risk in patients with type 1 and type 2 diabetes—a meta-analysis , 2007, Osteoporosis International.
[25] Ann L Oberg,et al. Effects of Sex and Age on Bone Microstructure at the Ultradistal Radius: A Population‐Based Noninvasive In Vivo Assessment , 2005, Journal of bone and mineral research : the official journal of the American Society for Bone and Mineral Research.
[26] M. Bouxsein,et al. In vivo assessment of trabecular bone microarchitecture by high-resolution peripheral quantitative computed tomography. , 2005, The Journal of clinical endocrinology and metabolism.
[27] D. Balzi,et al. Is insulin an anabolic agent in bone? Dissecting the diabetic bone for clues. , 2005, American journal of physiology. Endocrinology and metabolism.
[28] F. Eckstein,et al. Estimation of distal radius failure load with micro-finite element analysis models based on three-dimensional peripheral quantitative computed tomography images. , 2002, Bone.
[29] H K Genant,et al. Structural Adaptation to Changing Skeletal Load in the Progression Toward Hip Fragility: The Study of Osteoporotic Fractures , 2001, Journal of bone and mineral research : the official journal of the American Society for Bone and Mineral Research.
[30] S. Cummings,et al. Older women with diabetes have an increased risk of fracture: a prospective study. , 2001, The Journal of clinical endocrinology and metabolism.
[31] C. Cooper,et al. Use of Inhaled Corticosteroids and Risk of Fractures , 2001, Journal of bone and mineral research : the official journal of the American Society for Bone and Mineral Research.
[32] P Rüegsegger,et al. Comparison of structure extraction methods for in vivo trabecular bone measurements. , 1999, Computerized medical imaging and graphics : the official journal of the Computerized Medical Imaging Society.
[33] P. Rüegsegger,et al. In vivo high resolution 3D-QCT of the human forearm. , 1998, Technology and health care : official journal of the European Society for Engineering and Medicine.
[34] H. Koshiyama,et al. Does insulin use increase bone mineral density in patients with non-insulin-dependent diabetes mellitus? , 1997, Archives of internal medicine.
[35] P. Rüegsegger,et al. A new method for the model‐independent assessment of thickness in three‐dimensional images , 1997 .
[36] E. Barrett-Connor,et al. Does Hyperinsulinemia Preserve Bone? , 1996, Diabetes Care.
[37] A. Hofman,et al. Hyperinsulinemia and bone mineral density in an elderly population: The Rotterdam Study. , 1996, Bone.
[38] J. Levy,et al. U.K. Prospective Diabetes Study 16: Overview of 6 Years' Therapy of Type II Diabetes: A Progressive Disease , 1995, Diabetes.
[39] F. Santeusanio,et al. Osteopenia associated with non-insulin-dependent diabetes mellitus: what are the causes? , 1994, Diabetes research and clinical practice.
[40] I. Reid,et al. Circulating insulin levels are related to bone density in normal postmenopausal women. , 1993, The American journal of physiology.
[41] T. Clemens,et al. Bone mineral density in women with type II diabetes mellitus , 1989, Journal of bone and mineral research : the official journal of the American Society for Bone and Mineral Research.