» Articles » PMID: 19001149

Quantitative CT Reference Values for Vertebral Trabecular Bone Density in Children and Young Adults

Overview
Journal Radiology
Specialty Radiology
Date 2008 Nov 13
PMID 19001149
Citations 19
Authors
Affiliations
Soon will be listed here.
Abstract

Purpose: To determine normative reference values for vertebral trabecular bone density (TBD) obtained by using quantitative computed tomography (CT) in healthy white children, teenagers, and young adults of both sexes.

Materials And Methods: The data presented in this HIPAA-compliant study are a compilation of data from multiple investigations on the determinants of bone acquisition in healthy children conducted at this institution from 1992 to 2006. The institutional review board for clinical investigations approved the protocols for each of these studies, and written informed consent was provided by all parents and/or participants. Quantitative CT measurements of TBD (in milligrams per cubic centimeter) were obtained at the first, second, and third lumbar vertebrae in 1222 healthy white male and female subjects aged 5-21 years (mean age for male subjects, 15.1 years +/- 3.6 [standard deviation]; range, 5.6-21.9 years; mean age for female subjects, 14.2 years +/- 3.9; range, 5.7-21.6 years; mean age for both sexes, 14.6 years +/- 3.8). Mean and standard deviations for TBD were determined for each age group in 1-year intervals, and Student t tests for unpaired data were performed to compare male subjects with female subjects.

Results: TBD increased equally during growth in male and female subjects. Although the percentage increase in TBD was similar for both sexes (23.7% [57 of 241] for male subjects, 22.2% [54 of 243] for female subjects), the rise began and reached peak values at an earlier age in female subjects; increases in TBD occurred from 10-15 years of age in female subjects, whereas in male subjects, these increases were not observed until age 12 years and were completed at 17 years.

Conclusion: This study provides reference standards for quantitative CT bone measurements in children and young adults, which may aid in the diagnosis, prevention, and treatment of pediatric metabolic bone disorders.

Citing Articles

Bone densitometry measurements in children with neurofibromatosis Type 1 using quantitative computed tomography.

Tezol O, Balci Y, Alakaya M, Gundogan B, Citak E Singapore Med J. 2021; 63(9):520-526.

PMID: 34005845 PMC: 9678133. DOI: 10.11622/smedj.2021052.


Low Bone Mineral Density in Early Pubertal Transgender/Gender Diverse Youth: Findings From the Trans Youth Care Study.

Lee J, Finlayson C, Olson-Kennedy J, Garofalo R, Chan Y, Glidden D J Endocr Soc. 2020; 4(9):bvaa065.

PMID: 32832823 PMC: 7433770. DOI: 10.1210/jendso/bvaa065.


Association of Aspirin and Other Nonsteroidal Anti-inflammatory Drugs With Vertebral Trabecular Bone: Data From Multiethnic Study of Atherosclerosis, a Population-Based Multicenter Cohort Study.

Ahmad K, Budoff M, Delaney J, Mao S, Gao Y, Nasir K J Comput Assist Tomogr. 2020; 44(4):562-568.

PMID: 32697527 PMC: 9671522. DOI: 10.1097/RCT.0000000000001022.


Diagnosis of Osteoporosis in Children and Adolescents.

Laine C, Laine T Eur Endocrinol. 2018; 9(2):141-144.

PMID: 29922371 PMC: 6003589. DOI: 10.17925/EE.2013.09.02.141.


Sexual Dimorphism and the Origins of Human Spinal Health.

Gilsanz V, Wren T, Ponrartana S, Mora S, Rosen C Endocr Rev. 2018; 39(2):221-239.

PMID: 29385433 PMC: 5888211. DOI: 10.1210/er.2017-00147.


References
1.
Stewart T, Ralston S . Role of genetic factors in the pathogenesis of osteoporosis. J Endocrinol. 2000; 166(2):235-45. DOI: 10.1677/joe.0.1660235. View

2.
Arabi A, Nabulsi M, Maalouf J, Choucair M, Khalife H, Vieth R . Bone mineral density by age, gender, pubertal stages, and socioeconomic status in healthy Lebanese children and adolescents. Bone. 2004; 35(5):1169-79. DOI: 10.1016/j.bone.2004.06.015. View

3.
Carter D, Bouxsein M, Marcus R . New approaches for interpreting projected bone densitometry data. J Bone Miner Res. 1992; 7(2):137-45. DOI: 10.1002/jbmr.5650070204. View

4.
Genant H, Lang T, Engelke K, Fuerst T, Gluer C, Majumdar S . Advances in the noninvasive assessment of bone density, quality, and structure. Calcif Tissue Int. 1996; 59 Suppl 1:S10-5. DOI: 10.1007/s002239900169. View

5.
Cann C, Genant H . Precise measurement of vertebral mineral content using computed tomography. J Comput Assist Tomogr. 1980; 4(4):493-500. DOI: 10.1097/00004728-198008000-00018. View