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Salivary Parameters and Periodontal Inflammation in Obstructive Sleep Apnoea Patients

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Journal Sci Rep
Specialty Science
Date 2022 Nov 13
PMID 36371504
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Abstract

The aim of this cross-sectional study was to objectively assess the salivary flow rate and composition and periodontal inflammation in obstructive sleep apnoea (OSA) patients. The subjects, who underwent whole-night polysomnography or polygraphy, were referred for saliva sampling and periodontal examination. According to the severity of OSA based on the Apnoea Hypopnea Index (AHI) value, the subjects were classified into groups: no OSA (AHI < 5; N = 17), mild to moderate OSA (AHI 5-29.9; N = 109), and severe OSA (AHI > 30; N = 79). Salivary flow rate, pH, salivary electrolytes, and cortisol were measured from collected saliva samples. Periodontal examination included assessment of the number of teeth, dental plaque, bleeding on probing and periodontal measurements: gingival recession, probing pocket depth, clinical attachment level (CAL) and periodontal inflamed surface area (PISA) score. There were no significant differences in salivary flow rate, salivary pH, salivary electrolyte concentrations or electrolyte ratios among the groups classified according to the severity of OSA. However, subjects without OSA had higher salivary cortisol concentrations than OSA groups (p < 0.001). Increased plaque scores were associated with a higher AHI (r = 0.26; p = 0.003). According to the salivary flow rate, subjects with hyposalivation and reduced salivation had higher concentrations of salivary electrolytes and lower salivary pH than subjects with normal salivation. Subjects with hyposalivation had an increased Mg/PO ratio (p < 0.001) and a reduced Ca/Mg ratio (p < 0.001). Furthermore, subjects with severe OSA tended to have higher CALs and plaque volumes. In conclusion, under pathological conditions, such as OSA, multiple interactions might impact salivary flow and electrolyte composition. Complex interrelationships might affect the integrity of oral health, especially considering OSA severity, inflammation, concomitant diseases and medications.

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References
1.
Cowie M . Sleep apnea: State of the art. Trends Cardiovasc Med. 2017; 27(4):280-289. DOI: 10.1016/j.tcm.2016.12.005. View

2.
Tomfohr L, Edwards K, Dimsdale J . Is obstructive sleep apnea associated with cortisol levels? A systematic review of the research evidence. Sleep Med Rev. 2011; 16(3):243-9. PMC: 3242892. DOI: 10.1016/j.smrv.2011.05.003. View

3.
Sewon L, Makela M . A study of the possible correlation of high salivary calcium levels with periodontal and dental conditions in young adults. Arch Oral Biol. 1990; 35 Suppl:211S-212S. DOI: 10.1016/0003-9969(90)90160-c. View

4.
Bradshaw D, McKee A, Marsh P . Effects of carbohydrate pulses and pH on population shifts within oral microbial communities in vitro. J Dent Res. 1989; 68(9):1298-302. DOI: 10.1177/00220345890680090101. View

5.
Firat F, Cermik T, Sarikaya A, Berkarda S . Effects of gender and age on the quantitative parameters of [99mTc]pertechnetate salivary gland scintigraphy in normal subjects. Nucl Med Commun. 2006; 27(5):447-53. DOI: 10.1097/00006231-200605000-00006. View