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1.
Korean J Anesthesiol ; 64(1): 61-4, 2013 Jan.
Article in English | MEDLINE | ID: mdl-23372888

ABSTRACT

There are many problems in the anesthetic management of patients with scar contracture. In this case, a 41-year-old male with severe scar contracture on his face, neck, anterior chest, and both shoulders underwent surgery for resurfacing with flaps. We tried to awake fiberoptic orotracheal intubation with GlideScope® Video laryngoscope guide after surgical release of contracture under local anesthesia. We report a successful management of a patient with severe burn contracture achieved by combined effort of surgeons and anesthesiologists.

2.
Korean J Anesthesiol ; 59 Suppl: S17-20, 2010 Dec.
Article in English | MEDLINE | ID: mdl-21286432

ABSTRACT

Electromyogpraphic endotracheal tube (EMG tube) is a new device used to monitor recurrent laryngeal nerve integrity during thyroid surgery. The EMG tube has 2 pairs of electrodes on the surface of silicon-based tube reached to inner space of tube cuff. We experienced an unusual endotracheal tube-related problem from the distinct structural feature of the EMG tube. In this case, we intubated a patient who had difficult airway with the EMG tube using a lightwand. After successful endotracheal intubation, we could not expand the pilot balloon and ventilate the patient effectively. We removed the EMG tube and found that one of electrodes of the EMG tube is bended and made a right angle with the long axis of the tube, and perforated the tube cuff. So we report this case to make anesthesia providers aware that much more attention is needed to use EMG tube during endotracheal intubation.

3.
Am J Physiol Gastrointest Liver Physiol ; 296(6): G1180-90, 2009 Jun.
Article in English | MEDLINE | ID: mdl-19359421

ABSTRACT

Gastric emptying depends on functional coupling of slow waves between the corpus and antrum, to allow slow waves initiated in the gastric corpus to propagate to the pyloric sphincter and generate gastric peristalsis. Functional coupling depends on a frequency gradient where slow waves are generated at higher frequency in the corpus and drive the activity of distal pacemakers. Simultaneous intracellular recording from corpus and antrum was used to characterize the effects of PGE(2) on slow waves in the murine stomach. PGE(2) increased slow-wave frequency, and this effect was mimicked by EP(3), but not by EP(2), receptor agonists. Chronotropic effects were due to EP(3) receptors expressed by intramuscular interstitial cells of Cajal because these effects were not observed in W/W(V) mice. Although the integrated chronotropic effects of EP(3) receptor agonists were deduced from electrophysiological experiments, no clear evidence of functional uncoupling was observed with two-point electrical recording. Gastric peristalsis was also monitored by video imaging and spatiotemporal maps to study the impact of chronotropic agonists on propagating contractions. EP(3) receptor agonists increased the frequency of peristaltic contractions and caused ectopic sites of origin and collisions of peristaltic waves. The impact of selective regional application of chronotropic agonists was investigated by use of a partitioned bath. Antral slow waves followed enhanced frequencies induced by stimulation of the corpus, and corpus slow waves followed when slow-wave frequency was elevated in the antrum. This demonstrated reversal of slow-wave propagation with selective antral chronotropic stimulation. These studies demonstrate the impact of chronotropic agonists on regional intrinsic pacemaker frequency and integrated gastric peristalsis.


Subject(s)
Peristalsis/drug effects , Peristalsis/physiology , Prostaglandins/pharmacology , Stomach/drug effects , Stomach/physiology , Alprostadil/analogs & derivatives , Alprostadil/pharmacology , Animals , Biological Clocks/drug effects , Biological Clocks/physiology , Dibenz(b,f)(1,4)oxazepine-10(11H)-carboxylic acid, 8-chloro-, 2-acetylhydrazide/pharmacology , Dinoprostone/analogs & derivatives , Dinoprostone/pharmacology , Membrane Potentials/drug effects , Membrane Potentials/physiology , Mice , Mice, Inbred BALB C , Mice, Mutant Strains , Muscle, Smooth/cytology , Muscle, Smooth/drug effects , Muscle, Smooth/physiology , Prostaglandins/agonists , Prostaglandins E, Synthetic/pharmacology , Pyloric Antrum/cytology , Pyloric Antrum/drug effects , Pyloric Antrum/physiology , Receptors, Prostaglandin E/agonists , Receptors, Prostaglandin E/antagonists & inhibitors , Receptors, Prostaglandin E, EP1 Subtype , Receptors, Prostaglandin E, EP2 Subtype , Receptors, Prostaglandin E, EP3 Subtype , Stomach/cytology
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