bioRxiv Science⌕ Search

Biology subjects

Schuh, J. M.

Publications and source records attributed to Schuh, J. M..

2 recordsLinked to original sources

Extracorporeal Placental Support in a Sheep's Gravid Uterus

BACKGROUNDThe placenta is a vital organ in animal development, yet its function is understudied. Existing ex vivo placental support models study the organ in isolation, without the uterus and fetus. We report our early experience with a novel model of extracorporeal placental support by perfusing a sheeps gravid uterus. METHODSA sheep gravid hysterectomy was performed after cannulating the uterine vessels. The isolated uterus was maintained in a warm crystalloid tank. Oxygenation, electrolyte supplementation, and glucose were provided through an extracorporeal life support circuit, while monitoring the fetal heart rate and pressure. Our primary objective was to establish the feasibility of the model, confirm the ability to transition the organ to ex vivo support (fetal survival for >30 minutes after hysterectomy), and measure the duration of fetal survival after uterine explantation. RESULTSA total of 51 surgeries were performed, and 76% were successfully transitioned to extracorporeal support. Growing experience throughout the study period led to technical adaptations and more prolonged survival. Uteri with a singleton fetus had longer mean survival times, when compared to twins (253 minutes vs. 104 minutes, p=.019). Anemia and coagulopathy were frequently encountered, and most of the uteri had significant clot formation around the placentomes at the end of the experiment. CONCLUSIONUsing a model of extracorporeal placental support in sheep, we were able to maintain a live fetus within the uterus for more than 16 hours after hysterectomy. This technique is feasible and could provide an avenue to study fetoplacental physiology in an ex vivo environment.

physiology↗

The Effect of Ex-vivo Gravid Uterine Support on Umbilical Vessel Flow Velocities and Ductus Arteriosus Patency

PurposeFetal lamb artificial womb (AW) models rely on perfusion delivered via extracorporeal membrane oxygenation (ECMO) through umbilical or central vessel cannulation. Ductus arteriosus (DA) patency is paramount to fetal survival but may be disrupted by physiological stress and ECMO support. Existing AW models without the placenta use prostaglandin infusion to maintain DA patency, risking side effects like dysrhythmias, edema, or hypotension. We aim to investigate DA patency in an ex-vivo sheep model of gravid uterine support and quantify placental regulation of umbilical vessel flow with extrauterine flow variations. MethodsAn ex-vivo placental perfusion model was employed with bilateral uterine artery and vein cannulation. To maintain adequate flow, there is frequent manual titration of pump revolutions per minute, altering the blood pressure delivered to the uterus. Ultrasound measurements were obtained before laparotomy and on ECMO to document shunt patency and umbilical vessel and DA flow velocities; velocities were compared with students paired t-tests. ResultsSix of eleven sheep had ultrasounds obtained on full ECMO support. There was no difference in peak average velocity through the ductus before or after ECMO cannulation (p=0.26; CI -0.41 - 0.13), umbilical vein peak velocity (p=0.78; CI -0.08 - 0.10), or umbilical artery peak velocity (p=0.73; CI -0.17 - 0.13). ConclusionWhile perfusing a gravid uterus via the uterine vessels, we demonstrate a patent fetal DA and relatively constant umbilical vein flow velocities despite fluctuations in the ECMO pressure delivery to the uterus. The placenta therefore maintains regulation of umbilical vein blood flow velocity, facilitating physiologic shunt patency.

physiology↗