首页 | 本学科首页   官方微博 | 高级检索  
     


Use of DXA‐Based Structural Engineering Models of the Proximal Femur to Discriminate Hip Fracture
Authors:Lang Yang  Nicola Peel  Jackie A Clowes  Eugene V McCloskey  Richard Eastell
Affiliation:1. Academic Unit of Bone Metabolism, University of Sheffield, Sheffield, United Kingdom;2. Metabolic Bone Centre, Northern General Hospital, Sheffield, United Kingdom;3. Mayo Clinic, Rochester, Minnesota, USA
Abstract:Several DXA‐based structural engineering models (SEMs) of the proximal femur have been developed to estimate stress caused by sideway falls. Their usefulness in discriminating hip fracture has not yet been established and we therefore evaluated these models. The hip DXA scans of 51 postmenopausal women with hip fracture (30 femoral neck, 17 trochanteric, and 4 unspecified) and 153 age‐, height‐, and weight‐matched controls were reanalyzed using a special version of Hologic's software that produced a pixel‐by‐pixel BMD map. For each map, a curved‐beam, a curved composite‐beam, and a finite element model were generated to calculate stress within the bone when falling sideways. An index of fracture risk (IFR) was defined over the femoral neck, trochanter, and total hip as the stress divided by the yield stress at each pixel and averaged over the regions of interest. Hip structure analysis (HSA) was also performed using Hologic APEX analysis software. Hip BMD and almost all parameters derived from HSA and SEM were discriminators of hip fracture on their own because their ORs were significantly >1. Because of the high correlation of total hip BMD to HSA and SEM‐derived parameters, only the bone width discriminated hip fracture independently from total hip BMD. Judged by the area under the receiver operating characteristics curve, the trochanteric IFR derived from the finite element model was significant better than total hip BMD alone and similar to the total hip BMD plus bone width in discriminating all hip fracture and femoral neck fracture. No index was better than total hip BMD for discriminating trochanteric fractures. In conclusion, the finite element model has the potential to replace hip BMD in discriminating hip fractures.
Keywords:osteoporosis  hip fracture prediction  structural engineering model  DXA  biomechanics
设为首页 | 免责声明 | 关于勤云 | 加入收藏

Copyright©北京勤云科技发展有限公司  京ICP备09084417号