Mechanical obstruction of air/odorant flow to olfactory receptor sites may be a primary cause of olfactory loss in nasal-sinus disease patients. Unfortunately, quantifying the functional impact of various nasal obstruction and the subsequent surgical outcomes using acoustic rhinometry, rhinomanometry or CT scans is inadequate. Studies have shown a poor correlation between these existing objective measurements with patients'subjective symptoms. Recently developed computational fluid dynamic (CFD) modeling techniques have shown promise for quantifying the location-dependent, obstruction-induced changes in nasal airflow pattern and odorant mucosal deposition and have the potential to characterize their functional impact on patients'olfactory function. The goal of this proposal is to establish a baseline in nasal airflow pattern and odorant delivery rate among healthy subjects, from which the putative conductive mechanisms of olfactory loss among clinical patients can be verified in future. In the future, such modeling techniques may provide quantitative evaluation of surgical procedures and an important pre-operative guide to optimize airflow and odorant delivery in human nose.

Agency
National Institute of Health (NIH)
Institute
National Institute on Deafness and Other Communication Disorders (NIDCD)
Type
Small Research Grants (R03)
Project #
5R03DC008187-03
Application #
7533479
Study Section
Special Emphasis Panel (ZDC1-SRB-Y (54))
Program Officer
Davis, Barry
Project Start
2006-12-03
Project End
2010-11-30
Budget Start
2008-12-01
Budget End
2010-11-30
Support Year
3
Fiscal Year
2009
Total Cost
$71,417
Indirect Cost
Name
Monell Chemical Senses Center
Department
Type
DUNS #
088812565
City
Philadelphia
State
PA
Country
United States
Zip Code
19104
Challis, Rosemary C; Tian, Huikai; Wang, Jue et al. (2015) An Olfactory Cilia Pattern in the Mammalian Nose Ensures High Sensitivity to Odors. Curr Biol 25:2503-12
Zhao, Kai; Jiang, Jianbo (2014) What is normal nasal airflow? A computational study of 22 healthy adults. Int Forum Allergy Rhinol 4:435-46
Zhao, Kai; Jiang, Jianbo; Pribitkin, Edmund A et al. (2014) Conductive olfactory losses in chronic rhinosinusitis? A computational fluid dynamics study of 29 patients. Int Forum Allergy Rhinol 4:298-308
Scott, John W; Sherrill, Lisa; Jiang, Jianbo et al. (2014) Tuning to odor solubility and sorption pattern in olfactory epithelial responses. J Neurosci 34:2025-36
Zhao, Kai; Malhotra, Prashant; Rosen, David et al. (2014) Computational fluid dynamics as surgical planning tool: a pilot study on middle turbinate resection. Anat Rec (Hoboken) 297:2187-95
Zhao, Kai; Jiang, Jianbo; Blacker, Kara et al. (2014) Regional peak mucosal cooling predicts the perception of nasal patency. Laryngoscope 124:589-95
Zhao, Kai; Blacker, Kara; Luo, Yuehao et al. (2011) Perceiving nasal patency through mucosal cooling rather than air temperature or nasal resistance. PLoS One 6:e24618
Jiang, Jianbo; Zhao, Kai (2010) Airflow and nanoparticle deposition in rat nose under various breathing and sniffing conditions: a computational evaluation of the unsteady effect. J Aerosol Sci 41:1030-1043