A T Macari1, M A Bitar, J G Ghafari. 1. Division of Orthodontics and Dentofacial Orthopedics, Department of Otolaryngology-Head and Neck Surgery, American University of Beirut, Faculty of Medicine and Medical Center, Beirut, Lebanon.
Abstract
OBJECTIVES: To evaluate the relation between adenoid hypertrophy and facial morphology across age in a pediatric population. SETTING AND SAMPLE POPULATION: The American University of Beirut Department of Otolaryngology. Two-hundred consecutive children (age 6.00 ± 2.62 years) referred from the Pediatric Otolaryngology unit to the Orthodontic division and requiring a lateral cephalogram for adenoid hypertrophy assessment. METHODS: Cephalometric measurements included relations among cranial base, maxilla and mandible, and airway clearance measured from adenoid to soft palate (AD). The children were classified into two age groups, Group 1: ≤ 6 years (n = 124) and Group 2: ≥ 6.01 years (n = 76), and also stratified in four subgroups (A, B, C, D) based on maxillo-mandibular divergence (palatal to mandibular plane angle, PP-MP): A- PP-MP ≤ 27.5°, n = 34; B- 27.5° < PP-MP ≤ 32°, n = 68; C- 32°<PP/MP<36.5°, n = 67; D- PP-MP ≥ 36.5°, n = 31. Statistics included t-tests and anova for group differences. RESULTS: Differences between groups 1 and 2 were statistically significant (p < 0.05) for AD (Group 1: 3.19 ± 2.32 mm, Group 2: 4.78 ± 2.80 mm), ANB (5.38 ± 2.24°, 4.38 ± 2.54°), LFH (56.61 ± 1.95%, 55.38 ± 1.84%), PP-H (-8.41 ± 3.28°, -6.49 ± 3.46°), and overbite (0.55 ± 2.00 mm, 1.16 ± 2.36 mm). Among subgroups, statistically significant differences (p < 0.05) occurred mainly between the most hyperdivergent group (D) and the hypodivergent (A) and normodivergent (B) groups. CONCLUSIONS: Airway measurements were smallest in children ≤ 6 years and those presenting severe hyperdivergent pattern, which denoted the most severe airway obstruction. The findings suggest airway clearance before age 6 in the most severely affected children, but follow-up research on actual adenoidectomies in younger children is needed to determine guidelines.
OBJECTIVES: To evaluate the relation between adenoid hypertrophy and facial morphology across age in a pediatric population. SETTING AND SAMPLE POPULATION: The American University of Beirut Department of Otolaryngology. Two-hundred consecutive children (age 6.00 ± 2.62 years) referred from the Pediatric Otolaryngology unit to the Orthodontic division and requiring a lateral cephalogram for adenoid hypertrophy assessment. METHODS: Cephalometric measurements included relations among cranial base, maxilla and mandible, and airway clearance measured from adenoid to soft palate (AD). The children were classified into two age groups, Group 1: ≤ 6 years (n = 124) and Group 2: ≥ 6.01 years (n = 76), and also stratified in four subgroups (A, B, C, D) based on maxillo-mandibular divergence (palatal to mandibular plane angle, PP-MP): A- PP-MP ≤ 27.5°, n = 34; B- 27.5° < PP-MP ≤ 32°, n = 68; C- 32°<PP/MP<36.5°, n = 67; D- PP-MP ≥ 36.5°, n = 31. Statistics included t-tests and anova for group differences. RESULTS: Differences between groups 1 and 2 were statistically significant (p < 0.05) for AD (Group 1: 3.19 ± 2.32 mm, Group 2: 4.78 ± 2.80 mm), ANB (5.38 ± 2.24°, 4.38 ± 2.54°), LFH (56.61 ± 1.95%, 55.38 ± 1.84%), PP-H (-8.41 ± 3.28°, -6.49 ± 3.46°), and overbite (0.55 ± 2.00 mm, 1.16 ± 2.36 mm). Among subgroups, statistically significant differences (p < 0.05) occurred mainly between the most hyperdivergent group (D) and the hypodivergent (A) and normodivergent (B) groups. CONCLUSIONS: Airway measurements were smallest in children ≤ 6 years and those presenting severe hyperdivergent pattern, which denoted the most severe airway obstruction. The findings suggest airway clearance before age 6 in the most severely affected children, but follow-up research on actual adenoidectomies in younger children is needed to determine guidelines.