RADIOGRAPHIC EVALUATION OF AGE AND GENDER RELATED CORTICAL BONE THINNING USING THE METACARPAL INDEX METHOD: A LAGOS BASED POPULATION STUDY
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Abstract
Background: Cortical bone thickness decreases with age and may differ between genders. The metacarpal index (MCI) is a reliable measure for assessing cortical bone thinning.
Purpose: To evaluate age- and gender-related cortical bone thinning using the metacarpal index method.
Materials and Methods: A retrospective study was conducted using 850 dorsi-plantar radiographs of the left hand (436 males, 414 females) performed from 2003–2005. Cortical width of the second metacarpal and shaft was measured to calculate the MCI. Values were compared across different age ranges and between sexes.
Results: The study showed a gradual increase in MCI for both sexes from 20–40 years, peaking at 57.4 ± 2 for males and 52.8 ± 0.2 for females at 40 years. A linear decrease in MCI was observed after the fifth decade. Males exhibited higher MCI values than females at all ages, with mean values of 53.3 ± 3.2 and 46.21 ± 3.9, respectively. Cortical thinning was more rapid in females than in males.
Conclusion: Cortical bone thickness, as measured by MCI, increases until mid-adulthood and declines thereafter, with females showing a faster rate of cortical thinning compared to males.
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References
Atalabi, O.M. Metacarpal index in Nigerian adults and children. Nigerian Journal of Medicine. 2002;11:164–169.
Avioli, L. The Osteoporosis Syndrome: Detection, Prevention and Treatment. 3rd ed. John Wiley & Sons, Inc.; 1993. p. 1–20.
Fox, K.M., Kimura, S., Powell-Threets, K., Plato, C.C. Radial and ulnar cortical thickness of the second metacarpal. Journal of Bone and Mineral Research. 1995;10:1930–1934.
Heaney, R.P., Barger-Lux, M.J., Davies, K.M., Ryan, R.A., Johnson, M.L., Gong, G. Bone dimensional change with age: interactions of genetic, hormonal, and body size variables. Osteoporosis International. 1997;7:426–431.
Iwamoto, J., Takeda, T., Ichimura, S. Relationships among physical activity, metacarpal bone mass, and bone resorption marker in 70 healthy adult males. Journal of Orthopaedic Science. 2002;7:6–11.
Kimura, K. Estimation of stature from second metacarpal length in Japanese children. Annals of Human Biology. 1992;19:267–275.
Lazenby, R.A. Circumferential variation in human second metacarpal cortical thickness: sex, age, and mechanical factors. The Anatomical Record. 2002;267:154–158.
Lazenby, R.A. Second metacarpal midshaft geometry in a historic cemetery sample. American Journal of Physical Anthropology. 1998;106:157–167.
Meadows, L., Jantz, R.L. Estimation of stature from metacarpal lengths. Journal of Forensic Sciences. 1992;37(1):147–154.
Nielsen, S.P. The metacarpal index revisited: a brief overview. Journal of Clinical Densitometry. 2001;4:199–207.
Odita, J.C., Okolo, A.A., Ukoli, F. Normal values for metacarpal and phalangeal lengths in Nigerian children. Skeletal Radiology. 1991;20:441–445.
Onat, T. Growth of metacarpal II during female adolescence: relationships to stature, weight, and skeletal and sexual maturity. American Journal of Human Biology. 1997;9:425–438.
Simon, G. Principles of Bone X-ray Diagnosis. 3rd ed. Butterworth & Co. Ltd.; 1973. p. 44.
Vehmas, T., Solvieva, S., Riihimaki, H., Luoma, K., Leino-Arjas, P. Hand workload and the metacarpal cortical index: a study of middle-aged teachers and dentists. Osteoporosis International. 2005;16:672–680.