A Novel Pulse Damper for Endothelial Cell Flow Bioreactors

dc.contributor.authorAlloush, Mhamad Mahdi
dc.contributor.authorLiermann, Matthias
dc.contributor.authorZedan, A.
dc.contributor.authorOweis, Ghanem F.
dc.contributor.departmentDepartment of Mechanical Engineering
dc.contributor.departmentAnatomy, Cell Biology, and Physiological Sciences
dc.contributor.facultyMaroun Semaan Faculty of Engineering and Architecture (MSFEA)
dc.contributor.facultyFaculty of Medicine (FM)
dc.contributor.institutionAmerican University of Beirut
dc.date.accessioned2025-01-24T11:32:28Z
dc.date.available2025-01-24T11:32:28Z
dc.date.issued2019
dc.description.abstractPurpose: Peristaltic pumps (PP) are favored in flow bioreactors for their non-contact sterile design. But they produce pulsatile flow, which is consequential for the cultured cells. A novel pulse damper (PD) is reported for pulsatility elimination. Methods: The PD design was implemented to target static pressure pulsatility and flow rate (velocity) pulsatility from a PP. Damping effectiveness was tested in a macro-scale, closed-loop recirculating bioreactor mimicking the aortic arch at flow rates up to (4 L/min). Time-resolved particle image velocimetry was used to characterize the velocity field. Endothelial cells (EC) were grown in the bioreactor, and subjected to continuous flow for 15 min with or without PD. Results: The PD was found to be nearly 90% effective at reducing pulsatility. The EC exposed to low PP flow without PD exhibited distress signaling in the form of increased ERK1/2 phosphorylation (2.5 folds) when compared to those exposed to the same flow with PD. At high pump flow without PD, the cells detached and did not survive, while they were perfectly healthy with PD. Conclusions: Flow pulsatility from PP causes EC distress at low flow and cell detachment at high flow. Elevated temporal shear stress gradient combined with elevated shear stress magnitude at high flow are believed to be the cause of cell detachment and death. The proposed PD design was effective at minimizing the hemodynamic stressors in the pump’s output, demonstrably reducing cell distress. Adoption of the proposed PD design in flow bioreactors should improve experimental protocols. © 2018, Biomedical Engineering Society.
dc.identifier.doihttps://doi.org/10.1007/s13239-018-00394-y
dc.identifier.eid2-s2.0-85061962921
dc.identifier.pmid30488177
dc.identifier.urihttp://hdl.handle.net/10938/27806
dc.language.isoen
dc.publisherSpringer New York LLC
dc.relation.ispartofCardiovascular Engineering and Technology
dc.sourceScopus
dc.subjectBioreactor
dc.subjectCinema piv
dc.subjectDampener
dc.subjectEndothelial cells
dc.subjectMap kinase
dc.subjectPeristaltic roller pump
dc.subjectPulsatile flow
dc.subjectPulse damper
dc.subjectShear stress
dc.subjectBioreactors
dc.subjectCell adhesion
dc.subjectCell culture techniques
dc.subjectCell survival
dc.subjectCells, cultured
dc.subjectEquipment design
dc.subjectExtracellular signal-regulated map kinases
dc.subjectHuman umbilical vein endothelial cells
dc.subjectHumans
dc.subjectMechanotransduction, cellular
dc.subjectPhosphorylation
dc.subjectPressure
dc.subjectStress, mechanical
dc.subjectTime factors
dc.subjectBioconversion
dc.subjectCytology
dc.subjectDamping
dc.subjectOptical pumping
dc.subjectPumps
dc.subjectVelocity
dc.subjectVelocity measurement
dc.subjectMitogen activated protein kinase
dc.subjectRoller pumps
dc.subjectArticle
dc.subjectCell culture
dc.subjectCellular stress response
dc.subjectEndothelium cell
dc.subjectFlow rate
dc.subjectHemodynamics
dc.subjectHuman
dc.subjectHuman cell
dc.subjectHydrodynamics
dc.subjectMathematical model
dc.subjectParticle image velocimetry
dc.subjectPeristalsis
dc.subjectPriority journal
dc.subjectPulsatility index
dc.subjectStimulation
dc.subjectUmbilical vein endothelial cell
dc.subjectViscosity
dc.subjectCell culture technique
dc.subjectDevices
dc.subjectMechanical stress
dc.subjectMechanotransduction
dc.subjectPhysiology
dc.subjectTime factor
dc.subjectShear flow
dc.titleA Novel Pulse Damper for Endothelial Cell Flow Bioreactors
dc.typeArticle

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