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Three-Dimensional Modeling of Biologically Relevant Fluid Shear Stress in Human Renal Tubule Cells Mimics In Vivo Transcriptional Profiles

dc.contributor.advisorCox, Nancy J
dc.creatorRoss, Emily J
dc.date.accessioned2022-02-02T21:35:32Z
dc.date.available2022-02-02T21:35:32Z
dc.date.created2022-01
dc.date.issued2022-01-20
dc.date.submittedJanuary 2022
dc.identifier.urihttp://hdl.handle.net/1803/17049
dc.description.abstractThe kidney proximal tubule is the primary site for solute reabsorption, secretion and where kidney diseases can originate, including drug-induced toxicity. Two-dimensional cell culture systems of the human proximal tubule cells (hPTCs) are often used to study these processes. However, these systems fail to model the interplay between filtrate flow, fluid shear stress (FSS), and functionality essential for understanding renal diseases and drug toxicity. The impact of FSS exposure on gene expression and the effects of FSS at differing rates on gene expression in hPTCs has not been thoroughly investigated. Here, we performed RNA-sequencing of human RPTEC/TERT1 cells in a microfluidic chip-based 3D model to determine transcriptomic changes. We measured transcriptional changes following treatment of cells in this device at three different fluidic shear stress. We observed that FSS changes the expression of PTC-specific genes and impacted genes previously associated with renal diseases in genome-wide association studies (GWAS). At a physiological FSS level, we observed cell morphology, enhanced polarization, presence of cilia, and transport functions using albumin reabsorption via endocytosis and efflux transport. Here, we present a dynamic view of hPTCs response to FSS with increasing fluidic shear stress conditions and provide insight into hPTCs cellular function under biologically relevant conditions.
dc.format.mimetypeapplication/pdf
dc.language.isoen
dc.subjectGene Expression Profiling
dc.subjectGene Expression Regulation
dc.subjectHumans
dc.subjectKidney Tubules
dc.subjectProximal Kidney Tubules
dc.subjectBiological Fluid Shear Stress
dc.subjectSignal Transduction Stress
dc.subjectTranscriptome
dc.subjectBiological Transport
dc.subjectComputational Biology Methods
dc.subjectEndocytosis
dc.subjectEpithelial Cells
dc.titleThree-Dimensional Modeling of Biologically Relevant Fluid Shear Stress in Human Renal Tubule Cells Mimics In Vivo Transcriptional Profiles
dc.typeThesis
dc.date.updated2022-02-02T21:35:32Z
dc.type.materialtext
thesis.degree.namePhD
thesis.degree.levelDoctoral
thesis.degree.disciplineChemical & Physical Biology
thesis.degree.grantorVanderbilt University Graduate School
dc.creator.orcid0000-0003-0324-1523
dc.contributor.committeeChairHudson, Billy G


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