Microfluidic devices for single-cell and organ-level studies
Sammanfattning
The process of developing and testing drug candidates is a slow and costly endeavor. The mainstream technologies such as bulk 2D cell culture techniques have been proven insufficient to capture the pharmacokinetics and pharmacodynamics of drug compounds in humans. Animal models, despite their central role in drug development studies, fall short to predict the human-specific mechanisms of drug clearance and toxicity. In this thesis project, I have designed and evaluated application-specific single-cell and organ-on-a-chip microfluidic platforms for drug and chemical compound testing applications. The fundamental advantage offered by single-cell analysis, is the possibility of capturing the behavior of individual cells which, reveals valuable information on the heterogeneity in a cell population. Simultaneously, creating human-based physiologically relevant organ-mimetic microenvironments for drug metabolism and toxicity is becoming increasingly critical. My thesis work, by taking advantage of experimental approaches, qualitatively and quantitatively validates solutions to address the aforementioned challenges in producing relevant data on drug metabolism and toxicity.
A single-cell analysis platform built with the combination of a 4-inlet microfluidic device, a single-beam optical tweezers setup and an epi-fluorescence microscopy stage was used to study the co-administration of the trivalent form of arsenic, As (III), with a Hog1 inhibitor in yeast. In this work we showed that uptake of sodium arsenite could be regulated in single cells. In the next step, I developed a microfluidic device to facilitate high throughput single-cell studies. The device offered the possibility of studying hundreds of cells in each experiment run. Additionally, diffusion-based flow profiles could be administered in this device thanks to the miniature geometry of the microchannels. To promote the formation of 3D tissue-like structures in a physiologically relevant environment, I tailored a microfluidic device to mimic the geometrical hexagonal structure of a classic liver lobule. In this work I showed that human liver cells could be maintained functional in the microfluidic devices for short-term as well as long-term culture periods.
Delarbeten
Inhibition of MAPK Hog1 results in increased Hsp104 aggregate forma-
tion probably through elevated arsenite in
ux into the cells, an approach
with numerous potential applications
Doryaneh Ahmadpour, Amin A. Banaeiyan, Morten Gr tli, Martin Adiels, Mattias
Goks or and Caroline B. Adiels
American Journal of Molecular Biology, 4, 59-71, (2014). ::doi::10.4236/ajmb.2014.42008 Design and fabrication of high-throughput application-speci c micro
uidic
devices for studying single-cell responses to extracellular perturbations
Amin A. Banaeiyan, Doryaneh Ahmadpour, Caroline B. Adiels andMattias Goks or
Proceedings of SPIE, International Society for Optics and Photonics, SPIE Microtechnologies,
8765, (2013). ::doi::10.1117/12.2017301 Hydrodynamic cell trapping for high throughput single-cell applications
Amin A. Banaeiyan, Doryaneh Ahmadpour, Caroline B. Adiels andMattias Goks or
Micromachines, 4.4, 414-430, (2013). ::doi::10.3390/mi4040414 Design and fabrication of a scalable liver-lobule-on-a-chip microphysiolog-
ical platform
Amin A. Banaeiyan, Jannick Theobald, Jurgita Pauk styt_e, Stefan W ol
, Caroline
B Adiels and Mattias Goks or
Biofabrication, 9, 015014, (2017). ::doi::10.1088/1758-5090/9/1/015014
Examinationsnivå
Doctor of Philosophy
Universitet
Göteborgs universitet. Naturvetenskapliga fakulteten
Institution
Department of Physics ; Institutionen för fysik
Disputation
"Torsdagen den 23 mars 2017, kl. 9.00, PJ salen, Origovägen 6B
Datum för disputation
2017-03-23
E-post
amin.banaeiyan@physics.gu.se
am.abba@gmail.com
Datum
2017-03-01Författare
A. Banaeiyan, Amin
Nyckelord
Microfuidics
single-cell analysis
organ-on-a-chip
yeast
liver
hepatocytes
liver-on-a-chip
liver lobule
Publikationstyp
Doctoral thesis
ISBN
978-91-629-0129-5 (printed)
978-91-629-0129-1 (PDF)
Språk
eng