MyersGJ. Conclusions based on in vitro GME studies using different oxygenator blood flow limitations [Letter]. Perfusion2010; 27: 447.
2.
DogalNMMathisRKLinJQiuFKunselmanAUndarA. Evaluation of three hollow-fiber membrane oxygenators without integrated arterial filters for neonatal cardiopulmonary bypass. Perfusion2012; 27: 132–140.
3.
MelchiorRWRosenthalTGlatzAC. An in vitro comparison of the ability of three commonly used pediatric cardiopulmonary bypass circuits to filter gaseous microemboli. Perfusion2010; 25: 255–263.
4.
QiuFengTalorJÜndarA. An in vitro comparison of the ability of three commonly used pediatric cardiopulmonary bypass circuits to filter gaseous microemboli [Letter]. Perfusion2011; 26: 167–168.
5.
SchreinerRSRiderARMyersJW. Microemboli detection and classification by innovative ultrasound technology during simulated neonatal CPB at different flow rates, perfusion modes, and perfusate temperatures. ASAIO Journal2008; 54: 316–324.
6.
WinKNWangSÜndarA. Microemboli generation, detection and characterization during CPB procedures in neonates, infants, and small children [Review article]. ASAIO Journal2008; 54: 486–490.
7.
MathisRLinJDogalN. Evaluation of four pediatric cardiopulmonary bypass circuits in terms of perfusion quality and capturing gaseous microemboli. Perfusion2012Jun29. [Epub ahead of print]