Role of nitrogen in transmucosal gas exchange rate in the rat middle ear

被引:18
作者
Kania, Romain E.
Herman, Philippe
Huy, Patrice Tran Ba
Ar, Amos
机构
[1] Hop Lariboisiere, AP HP, Dept Otorhinolaryngol Head & Neck Surg, F-75010 Paris, France
[2] Tel Aviv Univ, Dept Zool, IL-69978 Tel Aviv, Israel
[3] Univ Paris 07, Fac Med Lariboisiere St Louis, CNRS 70 60, Lab Neurobiol Res Sensorimoteurs, F-75221 Paris, France
关键词
rat model;
D O I
10.1152/japplphysiol.00113.2006
中图分类号
Q4 [生理学];
学科分类号
071003 ;
摘要
This study investigates the role of nitrogen (N-2) in transmucosal gas exchange of the middle ear (ME). We used an experimental rat model to measure gas volume variations in the ME cavity at constant pressure. We disturbed the steady-state gas composition with either air or N-2 to measure resulting changes in volume at ambient pressure. Changes in gas volume over time could be characterized by three phases: a primary transient increase with time (phase 1), followed by a linear decrease (phase II), and then a gradual decrease (phase III). The mean slope of phase II was -0.128 mu l/min (SD 0.023) in the air group (n = 10) and -0.105 mu l/min (SD 0.032) in the N-2 group (n = 10), but the difference was not significant (P = 0.13), which suggests that the rate of gas loss can be attributed mainly to the same steady-state partial pressure gradient of N2 reached in this phase. Furthermore, a mathematical model was developed analyzing the transmucosal N-2 exchange in phase II. The model takes gas diffusion into account, predicting that, in the absence of change in mucosal blood flow rate, gas volume in the ME should show a linear decrease with time after steady-state conditions and gas composition are established. In accordance with the experimental results, the mathematical model also suggested that transmucosal gas absorption of the rat ME during steady-state conditions is governed mainly by diffusive N-2 exchange between the ME gas and its mucosal blood circulation.
引用
收藏
页码:1281 / 1287
页数:7
相关论文
共 43 条
[1]   Relationship between middle ear pressure, mucosal lesion, and mastoid pneumatization [J].
Aoki, K ;
Mitani, Y ;
Tuji, T ;
Hamada, Y ;
Utahashi, H ;
Moriyama, H .
LARYNGOSCOPE, 1998, 108 (12) :1840-1845
[2]   BLOOD-GAS PROPERTIES AND FUNCTION IN FOSSORIAL MOLE RAT UNDER NORMAL AND HYPOXIC-HYPERCAPNIC ATMOSPHERIC CONDITIONS [J].
AR, A ;
ARIELI, R ;
SHKOLNIK, A .
RESPIRATION PHYSIOLOGY, 1977, 30 (1-2) :201-219
[3]  
AR A, IN PRESS RESP PHYSL
[4]   ARTERIAL BLOOD-GASES AND ACID-BASE STATUS IN AWAKE RATS [J].
BRUNPASCAUD, M ;
GAUDEBOUT, C ;
BLAYO, MC ;
POCIDALO, JJ .
RESPIRATION PHYSIOLOGY, 1982, 48 (01) :45-57
[5]   PRESSURE OPENING AND CLOSING FUNCTIONS OF THE EUSTACHIAN-TUBE IN CHILDREN AND ADULTS WITH NORMAL EARS [J].
BYLANDER, A ;
TJERNSTROM, O ;
IVARSSON, A .
ACTA OTO-LARYNGOLOGICA, 1983, 95 (1-2) :55-62
[6]   Tympanometry versus direct middle ear pressure measurement in an artificial model:: Is tympanometry an accurate method to measure middle ear pressure? [J].
Cinamon, U ;
Sadé, J .
OTOLOGY & NEUROTOLOGY, 2003, 24 (06) :850-853
[7]  
DEJOUR P, 1981, PRINCIPLES COMP PHYS, P97
[8]  
Doyle W J, 1999, Auris Nasus Larynx, V26, P5, DOI 10.1016/S0385-8146(98)00060-1
[9]   Mucosal surface area determines the middle ear pressure response following establishment of sniff-induced underpressures [J].
Doyle, WJ .
ACTA OTO-LARYNGOLOGICA, 1999, 119 (06) :695-702
[10]   Exchange rates of gases across the tympanic membrane in rhesus monkeys [J].
Doyle, WJ ;
Alper, CM ;
Seroky, JT ;
Karnavas, WJ .
ACTA OTO-LARYNGOLOGICA, 1998, 118 (04) :567-573