Literature DB >> 16418207

Relationship of fat mass and serum estradiol with lower extremity bone in persons with chronic spinal cord injury.

William A Bauman1, Ann M Spungen, Jack Wang, Richard N Pierson, Ernest Schwartz.   

Abstract

In the spinal cord injury (SCI) population, a relationship between adiposity and leg bone has not been reported, nor one between serum estradiol and leg bone mass. A cross-sectional, comparative study of 10 male pairs of monozygotic twins discordant for SCI was performed. Relationships were determined among bone mineral density (BMD), bone mineral content (BMC), lean mass, fat mass, and serum sex steroids. In the twins with SCI, significant relationships were evident between leg BMD or BMC with total body percent fat (r2= 0.49, P < 0.05; r2= 0.45, P = 0.05), leg fat mass (r2 = 0.76, P < 0.0005; r2= 0.69, P = 0.005), and serum estradiol (r2= 0.40, P = 0.05; r2= 0.37, P = 0.05). By stepwise regression analysis, in the twins with SCI, leg fat mass was found to be the single most significant predictor of leg BMD or BMC (F = 12.01, r2= 0.76, P = 0.008; F = 50.87, r2= 0.86, P < 0.0001). In the able-bodied twins, leg lean mass correlated with leg BMD and BMC (r2= 0.58, P = 0.01; r2= 0.87, P = 0.0001). By use of within-pair differences, significant correlations were found for leg lean mass loss with leg BMD loss (r2= 0.56, P = 0.01) or leg BMC loss (r2= 0.64, P = 0.0005). In conclusion, in twins with SCI, significant correlations were observed between fat mass and leg BMD or BMC as well as between serum estradiol values and leg BMD. The magnitude of the leg muscle mass loss was correlated with the magnitude of bone loss.

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Year:  2006        PMID: 16418207     DOI: 10.1152/ajpendo.00250.2005

Source DB:  PubMed          Journal:  Am J Physiol Endocrinol Metab        ISSN: 0193-1849            Impact factor:   4.310


  13 in total

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2.  Muscle Density and Bone Quality of the Distal Lower Extremity Among Individuals with Chronic Spinal Cord Injury.

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3.  Transmission of low-intensity vibration through the axial skeleton of persons with spinal cord injury as a potential intervention for preservation of bone quantity and quality.

Authors:  Pierre Asselin; Ann M Spungen; Jesse W Muir; Clinton T Rubin; William A Bauman
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4.  Effects of electromyostimulation on muscle and bone in men with acute traumatic spinal cord injury: A randomized clinical trial.

Authors:  Alfredo Arija-Blázquez; Silvia Ceruelo-Abajo; María S Díaz-Merino; Juan Antonio Godino-Durán; Luís Martínez-Dhier; José L R Martin; José Florensa-Vila
Journal:  J Spinal Cord Med       Date:  2013-11-26       Impact factor: 1.985

5.  Provocative stimulation of growth hormone: a monozygotic twin study discordant for spinal cord injury.

Authors:  William A Bauman; Run Lin Zhang; Ann M Spungen
Journal:  J Spinal Cord Med       Date:  2007       Impact factor: 1.985

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7.  Time-course response in serum markers of bone turnover to a single-bout of electrical stimulation in patients with recent spinal cord injury.

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Review 8.  Neurogenic Obesity and Skeletal Pathology in Spinal Cord Injury.

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Journal:  Top Spinal Cord Inj Rehabil       Date:  2021

9.  Influences of nutrition and adiposity on bone mineral density in individuals with chronic spinal cord injury: A cross-sectional, observational study.

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Journal:  Bone Rep       Date:  2015-02-18

Review 10.  A Call to Action: Now Is the Time to Screen Elderly and Treat Osteosarcopenia, a Position Paper of the Italian College of Academic Nutritionists MED/49 (ICAN-49).

Authors:  Tiziana Montalcini; Arturo Pujia; Lorenzo M Donini; Lucia Frittitta; Fabio Galvano; Andrea Natali; Loris Pironi; Marisa Porrini; Patrizia Riso; Angela Albarosa Rivellese; Diego Russo; Giovanni Scapagnini; Mauro Serafini; Anna Tagliabue; Antonino De Lorenzo
Journal:  Nutrients       Date:  2020-08-31       Impact factor: 5.717

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