Literature DB >> 25540917

A comparison of methods for in vivo assessment of cortical porosity in the human appendicular skeleton.

Britta L Jorgenson1, Helen R Buie1, David D McErlain1, Clara Sandino1, Steven K Boyd2.   

Abstract

The recent advent of high-resolution peripheral quantitative computed tomography (HR-pQCT) provides new opportunities to measure in vivo human bone microarchitecture. Increasingly, cortical porosity (CtPo) is of particular interest due to its relationship with bone quality and turnover. The two approaches that have emerged to measure CtPo from HR-pQCT are threshold-based and density-based methods, and the purpose of this work was to compare the performance of each against a gold-standard synchrotron radiation micro-computed tomography (SRμCT) measurement. Human cadaveric cortical bone specimens (N=23) were measured by SRμCT and HR-pQCT, and high correlations were found for both methods. The density-based approach had an r2=0.939 (95% confidence interval (CI) of +6.17% to +20.99%) and consistently overestimated porosity as measured by SRμCT, while the threshold-based approach had an r2=0.977 and consistently underestimated porosity (95% CI of -2.60% to -10.76%). The density-based approach is prone to beam hardening artifacts and susceptible to natural variations of tissue mineral density (TMD), but is less affected by motion artifacts that may occur in in vivo scans. The threshold-based method has the advantage that it provides structural information that complements the cortical porosity measure, such as number of pores and connectivity, and can accurately detect the larger pores which are the most relevant to bone biomechanical strength. With the first generation HR-pQCT systems the accuracy of detecting pores larger than 140 μm diameter is excellent (r2=0.983; 95% CI of -4.88% to +2.45%). The accuracy of the threshold-based method will improve as new HR-pQCT systems emerge and provide a robust quantitative approach to measure cortical porosity.
Copyright © 2014 Elsevier Inc. All rights reserved.

Entities:  

Keywords:  Computed tomography; Cortical porosity; HR-pQCT; In vivo

Mesh:

Year:  2014        PMID: 25540917     DOI: 10.1016/j.bone.2014.11.023

Source DB:  PubMed          Journal:  Bone        ISSN: 1873-2763            Impact factor:   4.398


  14 in total

1.  Role of endocortical contouring methods on precision of HR-pQCT-derived cortical micro-architecture in postmenopausal women and young adults.

Authors:  C E Kawalilak; J D Johnston; D M L Cooper; W P Olszynski; S A Kontulainen
Journal:  Osteoporos Int       Date:  2015-08-08       Impact factor: 4.507

2.  Cortical and trabecular bone microarchitecture as an independent predictor of incident fracture risk in older women and men in the Bone Microarchitecture International Consortium (BoMIC): a prospective study.

Authors:  Elizabeth J Samelson; Kerry E Broe; Hanfei Xu; Laiji Yang; Steven Boyd; Emmanuel Biver; Pawel Szulc; Jonathan Adachi; Shreyasee Amin; Elizabeth Atkinson; Claudie Berger; Lauren Burt; Roland Chapurlat; Thierry Chevalley; Serge Ferrari; David Goltzman; David A Hanley; Marian T Hannan; Sundeep Khosla; Ching-Ti Liu; Mattias Lorentzon; Dan Mellstrom; Blandine Merle; Maria Nethander; René Rizzoli; Elisabeth Sornay-Rendu; Bert Van Rietbergen; Daniel Sundh; Andy Kin On Wong; Claes Ohlsson; Serkalem Demissie; Douglas P Kiel; Mary L Bouxsein
Journal:  Lancet Diabetes Endocrinol       Date:  2018-11-28       Impact factor: 32.069

3.  Heritability and Genetic Correlations for Bone Microarchitecture: The Framingham Study Families.

Authors:  David Karasik; Serkalem Demissie; Yanhua Zhou; Darlene Lu; Kerry E Broe; Mary L Bouxsein; L Adrienne Cupples; Douglas P Kiel
Journal:  J Bone Miner Res       Date:  2016-10-26       Impact factor: 6.741

4.  Visceral Adipose Tissue Is Associated With Bone Microarchitecture in the Framingham Osteoporosis Study.

Authors:  Ching-Ti Liu; Kerry E Broe; Yanhua Zhou; Steven K Boyd; L Adrienne Cupples; Marian T Hannan; Elise Lim; Robert R McLean; Elizabeth J Samelson; Mary L Bouxsein; Douglas P Kiel
Journal:  J Bone Miner Res       Date:  2016-09-06       Impact factor: 6.741

5.  Guidelines for the assessment of bone density and microarchitecture in vivo using high-resolution peripheral quantitative computed tomography.

Authors:  D E Whittier; S K Boyd; A J Burghardt; J Paccou; A Ghasem-Zadeh; R Chapurlat; K Engelke; M L Bouxsein
Journal:  Osteoporos Int       Date:  2020-05-26       Impact factor: 4.507

6.  Diabetes and Deficits in Cortical Bone Density, Microarchitecture, and Bone Size: Framingham HR-pQCT Study.

Authors:  Elizabeth J Samelson; Serkalem Demissie; L Adrienne Cupples; Xiaochun Zhang; Hanfei Xu; Ching-Ti Liu; Steven K Boyd; Robert R McLean; Kerry E Broe; Douglas P Kiel; Mary L Bouxsein
Journal:  J Bone Miner Res       Date:  2017-09-20       Impact factor: 6.741

7.  Effects of Two Years of Teriparatide, Denosumab, or Both on Bone Microarchitecture and Strength (DATA-HRpQCT study).

Authors:  J N Tsai; A V Uihlein; S M Burnett-Bowie; R M Neer; N P Derrico; H Lee; M L Bouxsein; B Z Leder
Journal:  J Clin Endocrinol Metab       Date:  2016-03-10       Impact factor: 5.958

8.  Sex Differences and Growth-Related Adaptations in Bone Microarchitecture, Geometry, Density, and Strength From Childhood to Early Adulthood: A Mixed Longitudinal HR-pQCT Study.

Authors:  Leigh Gabel; Heather M Macdonald; Heather A McKay
Journal:  J Bone Miner Res       Date:  2016-10-24       Impact factor: 6.741

Review 9.  Bringing Mechanical Context to Image-Based Measurements of Bone Integrity.

Authors:  Lindsay L Loundagain; Todd L Bredbenner; Karl J Jepsen; W Brent Edwards
Journal:  Curr Osteoporos Rep       Date:  2021-07-16       Impact factor: 5.096

Review 10.  Modalities for Visualization of Cortical Bone Remodeling: The Past, Present, and Future.

Authors:  Kimberly D Harrison; David M L Cooper
Journal:  Front Endocrinol (Lausanne)       Date:  2015-08-11       Impact factor: 5.555

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