Pipette Petri Dish Single-Cell Trapping (PP-SCT) in Microfluidic Platforms: A Passive Hydrodynamic Technique

Microfluidics-based biochips play a vital role in single-cell research applications. Handling and positioning of single cells at the microscale level are an essential need for various applications, including genomics, proteomics, secretomics, and lysis-analysis. In this article, the pipette Petri di...

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Main Authors: Vigneswaran Narayanamurthy, Tze Pin Lee, Al’aina Yuhainis Firus Khan, Fahmi Samsuri, Khairudin Mohamed, Hairul Aini Hamzah, Madia Baizura Baharom
Format: Article
Language:English
Published: MDPI AG 2018-07-01
Series:Fluids
Subjects:
Online Access:http://www.mdpi.com/2311-5521/3/3/51
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spelling doaj-d64f92837a42462096891ab46f13c0fd2020-11-25T02:31:01ZengMDPI AGFluids2311-55212018-07-01335110.3390/fluids3030051fluids3030051Pipette Petri Dish Single-Cell Trapping (PP-SCT) in Microfluidic Platforms: A Passive Hydrodynamic TechniqueVigneswaran Narayanamurthy0Tze Pin Lee1Al’aina Yuhainis Firus Khan2Fahmi Samsuri3Khairudin Mohamed4Hairul Aini Hamzah5Madia Baizura Baharom6Faculty of Electrical and Electronics Engineering, University Malaysia Pahang Pekan, Pekan, Pahang 26600, MalaysiaNanofabrication and Functional Materials Research Group, School of Mechanical Engineering, University Science Malaysia, Engineering Campus, Nibong Tebal, Penang 14300, MalaysiaKulliyyah of Allied Health Science, International Islamic University Malaysia, Kuantan, Pahang 25200, MalaysiaFaculty of Electrical and Electronics Engineering, University Malaysia Pahang Pekan, Pekan, Pahang 26600, MalaysiaNanofabrication and Functional Materials Research Group, School of Mechanical Engineering, University Science Malaysia, Engineering Campus, Nibong Tebal, Penang 14300, MalaysiaKulliyyah of Medicine, International Islamic University Malaysia, Kuantan, Pahang 25200, MalaysiaKulliyyah of Medicine, International Islamic University Malaysia, Kuantan, Pahang 25200, MalaysiaMicrofluidics-based biochips play a vital role in single-cell research applications. Handling and positioning of single cells at the microscale level are an essential need for various applications, including genomics, proteomics, secretomics, and lysis-analysis. In this article, the pipette Petri dish single-cell trapping (PP-SCT) technique is demonstrated. PP-SCT is a simple and cost-effective technique with ease of implementation for single cell analysis applications. In this paper a wide operation at different fluid flow rates of the novel PP-SCT technique is demonstrated. The effects of the microfluidic channel shape (straight, branched, and serpent) on the efficiency of single-cell trapping are studied. This article exhibited passive microfluidic-based biochips capable of vertical cell trapping with the hexagonally-positioned array of microwells. Microwells were 35 μm in diameter, a size sufficient to allow the attachment of captured cells for short-term study. Single-cell capture (SCC) capabilities of the microfluidic-biochips were found to be improving from the straight channel, branched channel, and serpent channel, accordingly. Multiple cell capture (MCC) was on the order of decreasing from the straight channel, branch channel, and serpent channel. Among the three designs investigated, the serpent channel biochip offers high SCC percentage with reduced MCC and NC (no capture) percentage. SCC was around 52%, 42%, and 35% for the serpent, branched, and straight channel biochips, respectively, for the tilt angle, θ values were between 10–15°. Human lung cancer cells (A549) were used for characterization. Using the PP-SCT technique, flow rate variations can be precisely achieved with a flow velocity range of 0.25–4 m/s (fluid channel of 2 mm width and 100 µm height). The upper dish (UD) can be used for low flow rate applications and the lower dish (LD) for high flow rate applications. Passive single-cell analysis applications will be facilitated using this method.http://www.mdpi.com/2311-5521/3/3/51hydrodynamicsmicrofluidicspipette Petri dish single-cell trapping (PP-SCT)passive trappingsingle-cell trappingsingle cell analysistilt trapping
collection DOAJ
language English
format Article
sources DOAJ
author Vigneswaran Narayanamurthy
Tze Pin Lee
Al’aina Yuhainis Firus Khan
Fahmi Samsuri
Khairudin Mohamed
Hairul Aini Hamzah
Madia Baizura Baharom
spellingShingle Vigneswaran Narayanamurthy
Tze Pin Lee
Al’aina Yuhainis Firus Khan
Fahmi Samsuri
Khairudin Mohamed
Hairul Aini Hamzah
Madia Baizura Baharom
Pipette Petri Dish Single-Cell Trapping (PP-SCT) in Microfluidic Platforms: A Passive Hydrodynamic Technique
Fluids
hydrodynamics
microfluidics
pipette Petri dish single-cell trapping (PP-SCT)
passive trapping
single-cell trapping
single cell analysis
tilt trapping
author_facet Vigneswaran Narayanamurthy
Tze Pin Lee
Al’aina Yuhainis Firus Khan
Fahmi Samsuri
Khairudin Mohamed
Hairul Aini Hamzah
Madia Baizura Baharom
author_sort Vigneswaran Narayanamurthy
title Pipette Petri Dish Single-Cell Trapping (PP-SCT) in Microfluidic Platforms: A Passive Hydrodynamic Technique
title_short Pipette Petri Dish Single-Cell Trapping (PP-SCT) in Microfluidic Platforms: A Passive Hydrodynamic Technique
title_full Pipette Petri Dish Single-Cell Trapping (PP-SCT) in Microfluidic Platforms: A Passive Hydrodynamic Technique
title_fullStr Pipette Petri Dish Single-Cell Trapping (PP-SCT) in Microfluidic Platforms: A Passive Hydrodynamic Technique
title_full_unstemmed Pipette Petri Dish Single-Cell Trapping (PP-SCT) in Microfluidic Platforms: A Passive Hydrodynamic Technique
title_sort pipette petri dish single-cell trapping (pp-sct) in microfluidic platforms: a passive hydrodynamic technique
publisher MDPI AG
series Fluids
issn 2311-5521
publishDate 2018-07-01
description Microfluidics-based biochips play a vital role in single-cell research applications. Handling and positioning of single cells at the microscale level are an essential need for various applications, including genomics, proteomics, secretomics, and lysis-analysis. In this article, the pipette Petri dish single-cell trapping (PP-SCT) technique is demonstrated. PP-SCT is a simple and cost-effective technique with ease of implementation for single cell analysis applications. In this paper a wide operation at different fluid flow rates of the novel PP-SCT technique is demonstrated. The effects of the microfluidic channel shape (straight, branched, and serpent) on the efficiency of single-cell trapping are studied. This article exhibited passive microfluidic-based biochips capable of vertical cell trapping with the hexagonally-positioned array of microwells. Microwells were 35 μm in diameter, a size sufficient to allow the attachment of captured cells for short-term study. Single-cell capture (SCC) capabilities of the microfluidic-biochips were found to be improving from the straight channel, branched channel, and serpent channel, accordingly. Multiple cell capture (MCC) was on the order of decreasing from the straight channel, branch channel, and serpent channel. Among the three designs investigated, the serpent channel biochip offers high SCC percentage with reduced MCC and NC (no capture) percentage. SCC was around 52%, 42%, and 35% for the serpent, branched, and straight channel biochips, respectively, for the tilt angle, θ values were between 10–15°. Human lung cancer cells (A549) were used for characterization. Using the PP-SCT technique, flow rate variations can be precisely achieved with a flow velocity range of 0.25–4 m/s (fluid channel of 2 mm width and 100 µm height). The upper dish (UD) can be used for low flow rate applications and the lower dish (LD) for high flow rate applications. Passive single-cell analysis applications will be facilitated using this method.
topic hydrodynamics
microfluidics
pipette Petri dish single-cell trapping (PP-SCT)
passive trapping
single-cell trapping
single cell analysis
tilt trapping
url http://www.mdpi.com/2311-5521/3/3/51
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