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      Machine-Learning Assessed Abdominal Aortic Calcification is Associated with Long-Term Fall and Fracture Risk in Community-Dwelling Older Australian Women

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          ABSTRACT

          Abdominal aortic calcification (AAC), a recognized measure of advanced vascular disease, is associated with higher cardiovascular risk and poorer long-term prognosis. AAC can be assessed on dual-energy X-ray absorptiometry (DXA)-derived lateral spine images used for vertebral fracture assessment at the time of bone density screening using a validated 24-point scoring method (AAC-24). Previous studies have identified robust associations between AAC-24 score, incident falls, and fractures. However, a major limitation of manual AAC assessment is that it requires a trained expert. Hence, we have developed an automated machine-learning algorithm for assessing AAC-24 scores (ML-AAC24). In this prospective study, we evaluated the association between ML-AAC24 and long-term incident falls and fractures in 1023 community-dwelling older women (mean age, 75 ± 3 years) from the Perth Longitudinal Study of Ageing Women. Over 10 years of follow-up, 253 (24.7%) women experienced a clinical fracture identified via self-report every 4–6 months and verified by X-ray, and 169 (16.5%) women had a fracture hospitalization identified from linked hospital discharge data. Over 14.5 years, 393 (38.4%) women experienced an injurious fall requiring hospitalization identified from linked hospital discharge data. After adjusting for baseline fracture risk, women with moderate to extensive AAC (ML-AAC24 ≥ 2) had a greater risk of clinical fractures (hazard ratio [HR] 1.42; 95% confidence interval [CI], 1.10–1.85) and fall-related hospitalization (HR 1.35; 95% CI, 1.09–1.66), compared to those with low AAC (ML-AAC24 ≤ 1). Similar to manually assessed AAC-24, ML-AAC24 was not associated with fracture hospitalizations. The relative hazard estimates obtained using machine learning were similar to those using manually assessed AAC-24 scores. In conclusion, this novel automated method for assessing AAC, that can be easily and seamlessly captured at the time of bone density testing, has robust associations with long-term incident clinical fractures and injurious falls. However, the performance of the ML-AAC24 algorithm needs to be verified in independent cohorts. © 2023 The Authors. Journal of Bone and Mineral Research published by Wiley Periodicals LLC on behalf of American Society for Bone and Mineral Research (ASBMR).

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          Most cited references27

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          Vertebral fracture assessment using a semiquantitative technique.

          The assessment of vertebral fracture by conventional radiography has been refined and improved using either semiquantitative or quantitative criteria. The inter- and intraobserver variability was determined for a semiquantitative visual approach that we routinely use in clinical studies for assessing prevalent and incident vertebral fractures. In addition, the semiquantitative approach was compared with a quantitative morphometric approach. The incidence and prevalence of vertebral fractures were determined in 57 postmenopausal women (age 65-75 years) by three independent observers. The radiographic basis for fracture definitions and the source of interobserver agreement for the semiquantitative technique. We conclude that the semiquantitative approach can be applied reliably in vertebral fracture assessment when performed using well-defined criteria.
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            New indices to classify location, severity and progression of calcific lesions in the abdominal aorta: a 25-year follow-up study.

            L Kauppila (1997)
            The purpose of the present study was to assess the location, severity and progression of radiopaque lumbar aortic calcifications and to evaluate the utility of summary scores of lumbar calcification in a population-based cohort. Lateral lumbar films, obtained in 617 Framingham heart study participants, were analysed for the presence of abdominal aortic wall calcification in the region corresponding to the first through fourth lumbar vertebrae. The severity of the anterior and posterior aortic calcification were graded individually on a 0-3 scale for each lumbar segment and the results were summarized to develop four different composite scores: (1) affected segments score (range 0-4); (2) anterior and posterior affected score (range 0-8); and (3) antero-posterior severity score (range 0-24). The prevalence of aortic calcification was 37% in men and 27% in women at baseline and 86% in both genders at the follow-up exam 25 years later. During the follow-up interval, the mean of the affected segments score increased from 0.7 in men (0.5 in women) to 2.7 (2.8 in women), the mean of the anterior and posterior affected score from 1.2 (0.8 in women) (P = 0.012 for difference between genders) and the mean of the antero-posterior severity score increased from 1.5 (1.3 in women) to 9.3 (10.3 in women). The antero-posterior severity score offered a slight advantage over other composite scores and had the highest inter-rater intra-class correlations. In summary, lumbar aortic calcification can be graded and composite summary scores are reproducible. This technique appears to provide a simple, low cost assessment of subclinical vascular disease.
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              Impact of statins on serial coronary calcification during atheroma progression and regression.

              Statins can regress coronary atheroma and lower clinical events. Although pre-clinical studies suggest procalcific effects of statins in vitro, it remains unclear if statins can modulate coronary atheroma calcification in vivo.
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                Author and article information

                Contributors
                Journal
                Journal of Bone and Mineral Research
                Wiley
                0884-0431
                1523-4681
                December 01 2023
                December 01 2023
                December 01 2023
                December 01 2023
                December 01 2023
                December 01 2023
                : 38
                : 12
                : 1867-1876
                Article
                10.1002/jbmr.4921
                10842308
                37823606
                cbdbe9b2-9457-43fc-9f28-90e108796a27
                © 2023

                https://creativecommons.org/licenses/by/4.0/

                http://creativecommons.org/licenses/by/4.0/

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