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1 muscles of the cat hindlimb were placed in a plethysmograph.
2 ied in both a vertical and a horizontal body plethysmograph.
3  monitored during sleep in a horizontal body plethysmograph.
4  calculated from pressure changes within the plethysmograph.
5 .0-mm endotracheal tube attached to a 48.9-L plethysmograph.
6 ed by use of a Buxco unrestrained whole-body plethysmograph.
7 ) using a new, commercially available infant plethysmograph.
8 e animals, respiration was monitored by body plethysmograph along with oxygen consumption (VO2), CO2
9                  Lungs then were placed in a plethysmograph and ventilated for 2 hrs with standardize
10 re (intra-arterial catheter or photoelectric plethysmograph), and flow velocity in the middle cerebra
11 ly moving animals breathing 5% CO2 in air in plethysmograph chambers.
12  Outcomes included blood pressure (tail cuff plethysmograph), echocardiographic and invasive measures
13 formance of an infant-sized air-displacement plethysmograph (PEA POD Infant Body Composition System)
14                              In a whole-body plethysmograph, respiratory responses to 5% CO(2) were c
15 ratory function was measured with a head-out plethysmograph system in conscious rats.
16   To test this hypothesis we used a head-out plethysmograph system to evaluate respiratory parameters
17 ial virus (RSV) were studied in a whole-body plethysmograph to determine if signs of respiratory illn
18 , we measured ventilation using a whole-body plethysmograph, together with EEG and EMG.
19                   A whole-body, flow-through plethysmograph was used to measure hypoxic and hypercapn

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