Integrated nanoneedle-microfluidic system for single cell intracellular temperature measurement

Single cell analysis has become an important field of research in which cell properties are studied for an improved understanding of cellular processes. Cell intracellular temperature has proven to be a vital element in most cellular activates, chemical reactions and cell survival. An integrated nan...

Full description

Saved in:
Bibliographic Details
Main Author: Shaaban Binsilm, Salma Abdullah
Format: Thesis
Language:English
Published: 2015
Subjects:
Online Access:http://eprints.utm.my/id/eprint/54647/1/SalmaAbdullahShaabanBinsilmMFKE2015.pdf
http://eprints.utm.my/id/eprint/54647/
http://dms.library.utm.my:8080/vital/access/manager/Repository/vital:86395
Tags: Add Tag
No Tags, Be the first to tag this record!
id my.utm.54647
record_format eprints
spelling my.utm.546472020-10-21T03:19:41Z http://eprints.utm.my/id/eprint/54647/ Integrated nanoneedle-microfluidic system for single cell intracellular temperature measurement Shaaban Binsilm, Salma Abdullah TK Electrical engineering. Electronics Nuclear engineering Single cell analysis has become an important field of research in which cell properties are studied for an improved understanding of cellular processes. Cell intracellular temperature has proven to be a vital element in most cellular activates, chemical reactions and cell survival. An integrated nanothermal sensor-microfluidic system has been proposed to characterize the internal temperature of single cells. A finite element analysis study based on resistance temperature detectors has been studied. The first stage was to optimize the sensor design and dimensions where tungsten was chosen as a sensing material. Results show that a rectangular shape with a gap of 10.8 µm gave an equally distributed current density within the sensor, and 90 nm2 cross sectional area caused minimal damage to the cell. Further mechanical characterization has been done and the results show that the nanoneedle could resist ramp force applied before failure, up to 22.5 µN. The second stage was to test the nanoneedle ability to measure the temperature of a cell. Electrical measurement on yeast cell was done and the results show that the nanoneedle conductivity was independent of cell conductivity. The nanoneedle proved to be able to measure the temperature with a current difference of 50 nA and the resolution was 0.015 °C in the range of 24-60 °C. The nanoneedle detected temperature change of 0.02 °C in 10 ms. The third stage was to integrate the nanoneedle with the microfluidic system and to study water flow behaviour in the microfluidic channel. Results show that 63 µm2 microchannel cross sectional area was optimum and flow rate of 24.6 pl/min allowed successful cell penetration with minimal cell damage. The developed system can be a good candidate to be used in early disease diagnoses. Also, the system has the potential to measure electrical properties of cells and to be used for single cell drug delivery. 2015-07 Thesis NonPeerReviewed application/pdf en http://eprints.utm.my/id/eprint/54647/1/SalmaAbdullahShaabanBinsilmMFKE2015.pdf Shaaban Binsilm, Salma Abdullah (2015) Integrated nanoneedle-microfluidic system for single cell intracellular temperature measurement. Masters thesis, Universiti Teknologi Malaysia, Faculty of Electrical Engineering. http://dms.library.utm.my:8080/vital/access/manager/Repository/vital:86395
institution Universiti Teknologi Malaysia
building UTM Library
collection Institutional Repository
continent Asia
country Malaysia
content_provider Universiti Teknologi Malaysia
content_source UTM Institutional Repository
url_provider http://eprints.utm.my/
language English
topic TK Electrical engineering. Electronics Nuclear engineering
spellingShingle TK Electrical engineering. Electronics Nuclear engineering
Shaaban Binsilm, Salma Abdullah
Integrated nanoneedle-microfluidic system for single cell intracellular temperature measurement
description Single cell analysis has become an important field of research in which cell properties are studied for an improved understanding of cellular processes. Cell intracellular temperature has proven to be a vital element in most cellular activates, chemical reactions and cell survival. An integrated nanothermal sensor-microfluidic system has been proposed to characterize the internal temperature of single cells. A finite element analysis study based on resistance temperature detectors has been studied. The first stage was to optimize the sensor design and dimensions where tungsten was chosen as a sensing material. Results show that a rectangular shape with a gap of 10.8 µm gave an equally distributed current density within the sensor, and 90 nm2 cross sectional area caused minimal damage to the cell. Further mechanical characterization has been done and the results show that the nanoneedle could resist ramp force applied before failure, up to 22.5 µN. The second stage was to test the nanoneedle ability to measure the temperature of a cell. Electrical measurement on yeast cell was done and the results show that the nanoneedle conductivity was independent of cell conductivity. The nanoneedle proved to be able to measure the temperature with a current difference of 50 nA and the resolution was 0.015 °C in the range of 24-60 °C. The nanoneedle detected temperature change of 0.02 °C in 10 ms. The third stage was to integrate the nanoneedle with the microfluidic system and to study water flow behaviour in the microfluidic channel. Results show that 63 µm2 microchannel cross sectional area was optimum and flow rate of 24.6 pl/min allowed successful cell penetration with minimal cell damage. The developed system can be a good candidate to be used in early disease diagnoses. Also, the system has the potential to measure electrical properties of cells and to be used for single cell drug delivery.
format Thesis
author Shaaban Binsilm, Salma Abdullah
author_facet Shaaban Binsilm, Salma Abdullah
author_sort Shaaban Binsilm, Salma Abdullah
title Integrated nanoneedle-microfluidic system for single cell intracellular temperature measurement
title_short Integrated nanoneedle-microfluidic system for single cell intracellular temperature measurement
title_full Integrated nanoneedle-microfluidic system for single cell intracellular temperature measurement
title_fullStr Integrated nanoneedle-microfluidic system for single cell intracellular temperature measurement
title_full_unstemmed Integrated nanoneedle-microfluidic system for single cell intracellular temperature measurement
title_sort integrated nanoneedle-microfluidic system for single cell intracellular temperature measurement
publishDate 2015
url http://eprints.utm.my/id/eprint/54647/1/SalmaAbdullahShaabanBinsilmMFKE2015.pdf
http://eprints.utm.my/id/eprint/54647/
http://dms.library.utm.my:8080/vital/access/manager/Repository/vital:86395
_version_ 1681489471361515520
score 13.160551