1
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Chen D, Huang Q, Ni Z, Xiang N. Elasto-inertial particle focusing in sinusoidal microfluidic channels. Electrophoresis 2024. [PMID: 38813845 DOI: 10.1002/elps.202400070] [Citation(s) in RCA: 0] [Impact Index Per Article: 0] [Reference Citation Analysis] [Abstract] [Key Words] [Grants] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Received: 04/12/2024] [Revised: 05/15/2024] [Accepted: 05/18/2024] [Indexed: 05/31/2024]
Abstract
Dean flow existing in sinusoidal channels could enhance the throughput and efficiency for elasto-inertial particle focusing. However, the fundamental mechanisms of elasto-inertial focusing in sinusoidal channels are still unclear. This work employs four microfluidic devices with symmetric and asymmetric sinusoidal channels to explore the elasto-inertial focusing mechanisms over a wide range of flow rates. The effects of rheological property, flow rate, sinusoidal channel curvature, particle size, and asymmetric geometry on particle focusing performance are investigated. It is intriguing to find that the Dean flow makes a substantial contribution to the particle elasto-inertial focusing. The results illustrate that a better particle focusing performance and a faster focusing process are obtained in the sinusoidal channel with a small curvature radius due to stronger Dean flow. In addition, the particle focusing performance is also related to particle diameter and rheological properties, the larger particles show a better focusing performance than smaller particles, and the smaller flow rate is required for particles to achieve stable focusing at the outlet in the higher concentration of polyvinylpyrrolidone solutions. Our work offers an increased knowledge of the mechanisms of elasto-inertial focusing in sinusoidal channels. Ultimately, these results provide supportive guidelines into the design and development of sinusoidal elasto-inertial microfluidic devices for high-performance focusing.
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Affiliation(s)
- Dalin Chen
- School of Mechanical Engineering, and Jiangsu Key Laboratory for Design and Manufacture of Micro-Nano Biomedical Instruments, Southeast University, Nanjing, P. R. China
| | - Qiang Huang
- School of Mechanical Engineering, and Jiangsu Key Laboratory for Design and Manufacture of Micro-Nano Biomedical Instruments, Southeast University, Nanjing, P. R. China
| | - Zhonghua Ni
- School of Mechanical Engineering, and Jiangsu Key Laboratory for Design and Manufacture of Micro-Nano Biomedical Instruments, Southeast University, Nanjing, P. R. China
| | - Nan Xiang
- School of Mechanical Engineering, and Jiangsu Key Laboratory for Design and Manufacture of Micro-Nano Biomedical Instruments, Southeast University, Nanjing, P. R. China
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2
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Bruand P, Tijunelyte I, Castinel A, Donnadieu C, Joseph P, Bancaud A. Size Fractionation of Milliliter DNA Samples in Minutes Controlled by an Electric Field of ∼10 V. Anal Chem 2023; 95:18099-18106. [PMID: 38047372 DOI: 10.1021/acs.analchem.3c03187] [Citation(s) in RCA: 0] [Impact Index Per Article: 0] [Reference Citation Analysis] [Abstract] [MESH Headings] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Indexed: 12/05/2023]
Abstract
DNA size fractionation is an essential tool in molecular biology and is used to isolate targets in a mixture characterized by a broad molecular-weight distribution. Microfluidics was thought to provide the opportunity to create devices capable of enhancing and speeding up the classical fractionation processes. However, this conjecture met limited success due to the low mass or volume throughput of these technologies. We describe the μLAF (μ-laboratory for DNA fractionation) technology for DNA size selection based on the stacking of molecules on films of ∼100 μm in thickness with 105 cm-2 pores ∼2 μm in diameter. Size selection is achieved by controlling the regime of electrohydrodynamic migration through the temporal modulation of an electric field. This technology allows the processing of milliliter-scale samples containing a DNA mass of several hundreds of ng within ∼10 min and the selection of DNA in virtually any size window spanning 200 to 1000 bp. We demonstrate that one operation suffices to fractionate sheared genomic DNA in up to six fractions with collection efficiencies of ∼20-40% and enrichment factors of ∼1.5-3-fold. These performances compare favorably in terms of speed and versatility to those of the current standards.
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Affiliation(s)
- Paul Bruand
- CNRS, LAAS, 7 avenue du colonel Roche, F-31400 Toulouse, France
- Adelis, 478 Rue de la Découverte, 31670 Labège, France
| | - Inga Tijunelyte
- CNRS, LAAS, 7 avenue du colonel Roche, F-31400 Toulouse, France
| | - Adrien Castinel
- GeT-PlaGe, US 1426, Genotoul, INRAE, 31320 Castanet-Tolosan, France
| | - Cécile Donnadieu
- GeT-PlaGe, US 1426, Genotoul, INRAE, 31320 Castanet-Tolosan, France
| | - Pierre Joseph
- CNRS, LAAS, 7 avenue du colonel Roche, F-31400 Toulouse, France
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3
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Sun L, Lehnert T, Gijs MAM, Li S. Polydimethylsiloxane microstructure-induced acoustic streaming for enhanced ultrasonic DNA fragmentation on a microfluidic chip. LAB ON A CHIP 2022; 22:4224-4237. [PMID: 36178361 DOI: 10.1039/d2lc00366j] [Citation(s) in RCA: 1] [Impact Index Per Article: 0.5] [Reference Citation Analysis] [Abstract] [MESH Headings] [Track Full Text] [Subscribe] [Scholar Register] [Indexed: 06/16/2023]
Abstract
Next-generation sequencing (NGS) is an essential technology for DNA identification in genomic research. DNA fragmentation is a critical step for NGS and doing this on-chip is of great interest for future integrated genomic solutions. Here we demonstrate fast acoustofluidic DNA fragmentation via ultrasound-actuated elastic polydimethylsiloxane (PDMS) microstructures that induce acoustic streaming and associated shear forces when placed in the field of an ultrasonic transducer. Indeed, acoustic streaming locally generates high tensile stresses that can mechanically stretch and break DNA molecule chains. The improvement in efficiency of the on-chip DNA fragmentation is due to the synergistic effect of these tensile stresses and ultrasonic cavitation phenomena. We tested these microstructure-induced effects in a DNA-containing microfluidic channel both experimentally and by simulation. The DNA fragmentation process was evaluated by measuring the change in the DNA fragment size over time. The chip works well with both long and short DNA chains; in particular, purified lambda (λ) DNA was cut from 48.5 kbp to 3 kbp in one minute with selected microstructures and further down to 300 bp within two and a half minutes. The fragment size of mouse genomic DNA was reduced from 1.4 kbp to 400 bp in one minute and then to 200 bp in two and a half minutes. The DNA fragmentation efficiency of the chip equipped with the PDMS microstructures was twice that of the chip without the microstructures. Exhaustive comparison shows that the on-chip fragmentation performance reaches the level of high-end professional standards. Recently, DNA fragmentation was shown to be enhanced using vibrating air microbubbles when the chip was placed in an acoustic field. We think the microbubble-free microstructure-based device we present is easier to operate and more reliable, as it avoids microbubble preparation and maintenance, while showing high DNA fragmentation performance.
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Affiliation(s)
- Lin Sun
- Department of Fluid Control and Automation, School of Mechatronics Engineering, Harbin Institute of Technology, Harbin, Heilongjiang, 150000, P. R. China.
- Laboratory of Microsystems, Ecole Polytechnique Fédérale de Lausanne, CH-1015 Switzerland.
| | - Thomas Lehnert
- Laboratory of Microsystems, Ecole Polytechnique Fédérale de Lausanne, CH-1015 Switzerland.
| | - Martin A M Gijs
- Laboratory of Microsystems, Ecole Polytechnique Fédérale de Lausanne, CH-1015 Switzerland.
| | - Songjing Li
- Department of Fluid Control and Automation, School of Mechatronics Engineering, Harbin Institute of Technology, Harbin, Heilongjiang, 150000, P. R. China.
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4
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Tijunelyte I, Teillet J, Bruand P, Courson R, Lecestre A, Joseph P, Bancaud A. Hybridization-based DNA biosensing with a limit of detection of 4 fM in 30 s using an electrohydrodynamic concentration module fabricated by grayscale lithography. BIOMICROFLUIDICS 2022; 16:044111. [PMID: 35992636 PMCID: PMC9385222 DOI: 10.1063/5.0073542] [Citation(s) in RCA: 0] [Impact Index Per Article: 0] [Reference Citation Analysis] [Abstract] [Track Full Text] [Subscribe] [Scholar Register] [Received: 10/01/2021] [Accepted: 07/25/2022] [Indexed: 06/15/2023]
Abstract
Speeding up and enhancing the performances of nucleic acid biosensing technologies have remained drivers for innovation. Here, we optimize a fluorimetry-based technology for DNA detection based on the concentration of linear targets paired with probes. The concentration module consists of a microfluidic channel with the shape of a funnel in which we monitor a viscoelastic flow and a counter-electrophoretic force. We report that the technology performs better with a target longer than 100 nucleotides (nt) and a probe shorter than 30 nt. We also prove that the control of the funnel geometry in 2.5D using grayscale lithography enhances sensitivity by 100-fold in comparison to chips obtained by conventional photolithography. With these optimized settings, we demonstrate a limit of detection of 4 fM in 30 s and a detection range of more than five decades. This technology hence provides an excellent balance between sensitivity and time to result.
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Affiliation(s)
- Inga Tijunelyte
- CNRS, LAAS, 7 avenue du colonel Roche, F-31400 Toulouse, France
| | - Jeffrey Teillet
- CNRS, LAAS, 7 avenue du colonel Roche, F-31400 Toulouse, France
| | - Paul Bruand
- CNRS, LAAS, 7 avenue du colonel Roche, F-31400 Toulouse, France
| | - Rémi Courson
- CNRS, LAAS, 7 avenue du colonel Roche, F-31400 Toulouse, France
| | | | - Pierre Joseph
- CNRS, LAAS, 7 avenue du colonel Roche, F-31400 Toulouse, France
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5
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Cha H, Fallahi H, Dai Y, Yuan D, An H, Nguyen NT, Zhang J. Multiphysics microfluidics for cell manipulation and separation: a review. LAB ON A CHIP 2022; 22:423-444. [PMID: 35048916 DOI: 10.1039/d1lc00869b] [Citation(s) in RCA: 38] [Impact Index Per Article: 19.0] [Reference Citation Analysis] [Abstract] [MESH Headings] [Track Full Text] [Subscribe] [Scholar Register] [Indexed: 06/14/2023]
Abstract
Multiphysics microfluidics, which combines multiple functional physical processes in a microfluidics platform, is an emerging research area that has attracted increasing interest for diverse biomedical applications. Multiphysics microfluidics is expected to overcome the limitations of individual physical phenomena through combining their advantages. Furthermore, multiphysics microfluidics is superior for cell manipulation due to its high precision, better sensitivity, real-time tunability, and multi-target sorting capabilities. These exciting features motivate us to review this state-of-the-art field and reassess the feasibility of coupling multiple physical processes. To confine the scope of this paper, we mainly focus on five common forces in microfluidics: inertial lift, elastic, dielectrophoresis (DEP), magnetophoresis (MP), and acoustic forces. This review first explains the working mechanisms of single physical phenomena. Next, we classify multiphysics techniques in terms of cascaded connections and physical coupling, and we elaborate on combinations of designs and working mechanisms in systems reported in the literature to date. Finally, we discuss the possibility of combining multiple physical processes and associated design schemes and propose several promising future directions.
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Affiliation(s)
- Haotian Cha
- Queensland Micro- and Nanotechnology Centre, Griffith University, Nathan, Queensland 4111, Australia.
| | - Hedieh Fallahi
- Queensland Micro- and Nanotechnology Centre, Griffith University, Nathan, Queensland 4111, Australia.
| | - Yuchen Dai
- Queensland Micro- and Nanotechnology Centre, Griffith University, Nathan, Queensland 4111, Australia.
| | - Dan Yuan
- Centre for Regional and Rural Futures, Deakin University, Geelong, Victoria 3216, Australia
| | - Hongjie An
- Queensland Micro- and Nanotechnology Centre, Griffith University, Nathan, Queensland 4111, Australia.
| | - Nam-Trung Nguyen
- Queensland Micro- and Nanotechnology Centre, Griffith University, Nathan, Queensland 4111, Australia.
| | - Jun Zhang
- Queensland Micro- and Nanotechnology Centre, Griffith University, Nathan, Queensland 4111, Australia.
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6
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Butler CSG, King JP, Giles LW, Marlow JB, Vidallon MLP, Sokolova A, de Campo L, Tuck KL, Tabor RF. Design and synthesis of an azobenzene-betaine surfactant for photo-rheological fluids. J Colloid Interface Sci 2021; 594:669-680. [PMID: 33780770 DOI: 10.1016/j.jcis.2021.02.061] [Citation(s) in RCA: 9] [Impact Index Per Article: 3.0] [Reference Citation Analysis] [Abstract] [Key Words] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Received: 11/26/2020] [Revised: 01/22/2021] [Accepted: 02/13/2021] [Indexed: 12/29/2022]
Abstract
HYPOTHESIS Morphology of surfactant self-assemblies are governed by the intermolecular interactions and packing constraints of the constituent molecules. Therefore, rational design of surfactant structure should allow targeting of the specific self-assembly modes, such as wormlike micelles (WLMs). By inclusion of an appropriate photo-responsive functionality to a surfactant molecule, light-based control of formulation properties without the need for additives can be achieved. EXPERIMENTS A novel azobenzene-containing surfactant was synthesised with the intention of producing photo-responsive wormlike micelles. Aggregation of the molecule in its cis and trans isomers, and its concomitant flow properties, were characterised using UV-vis spectroscopy, small-angle neutron scattering, and rheological measurements. Finally, the fluids capacity for mediating particle diffusion was assessed using dynamic light scattering. FINDINGS The trans isomer of the novel azo-surfactant was found to form a viscoelastic WLM network, which transitioned to inviscid ellipsoidal aggregates upon photo-switching to the cis isomer. This was accompanied by changes in zero-shear viscosity up to 16,000×. UV-vis spectroscopic and rheo-SANS analysis revealed π-π interactions of the trans azobenzene chromophore within the micelles, influencing aggregate structure and contributing to micellar rigidity. Particles dispersed in a 1 wt% surfactant solution showed a fivefold increase in apparent diffusion coefficient after UV-irradiation of the mixture.
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Affiliation(s)
- Calum S G Butler
- School of Chemistry, Monash University, Clayton, VIC 3800, Australia
| | - Joshua P King
- School of Chemistry, Monash University, Clayton, VIC 3800, Australia
| | - Luke W Giles
- School of Chemistry, Monash University, Clayton, VIC 3800, Australia
| | - Joshua B Marlow
- School of Chemistry, Monash University, Clayton, VIC 3800, Australia
| | | | - Anna Sokolova
- Australian Centre for Neutron Scattering, ANSTO, Lucas Heights, New South Wales 2234, Australia
| | - Liliana de Campo
- Australian Centre for Neutron Scattering, ANSTO, Lucas Heights, New South Wales 2234, Australia
| | - Kellie L Tuck
- School of Chemistry, Monash University, Clayton, VIC 3800, Australia.
| | - Rico F Tabor
- School of Chemistry, Monash University, Clayton, VIC 3800, Australia.
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7
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Bilican I. Cascaded contraction-expansion channels for bacteria separation from RBCs using viscoelastic microfluidics. J Chromatogr A 2021; 1652:462366. [PMID: 34242936 DOI: 10.1016/j.chroma.2021.462366] [Citation(s) in RCA: 4] [Impact Index Per Article: 1.3] [Reference Citation Analysis] [Abstract] [Key Words] [Journal Information] [Subscribe] [Scholar Register] [Received: 05/03/2021] [Revised: 06/15/2021] [Accepted: 06/17/2021] [Indexed: 10/21/2022]
Abstract
Implementation of viscoelasticity-based particle migration techniques has attracted significant interest thanks to its simplicity to achieve particle separation and enrichment at high sensitivity and accuracy for the last decade. Many methods have previously been developed for particle focusing and separation, but they all require long fluidic channels to enable the desired elastic force on particles. Here, a cascade contraction-expansion microfluidic system with a much shorter channel length is presented. Experimental results show that this system achieved continuous, sheathless particle separation in a viscoelastic fluid, and Enterococcus faecalis was successfully separated from red blood cells (RBCs). Thanks to its small size, the system provides extra advantage for its integration into small chips.
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Affiliation(s)
- Ismail Bilican
- Department of Electronics and Automation, Technical Vocational School, Aksaray University, 68100 Aksaray, Turkey; ASUBTAM-Science and Technology Application and Research Center, Aksaray University, 68100 Aksaray, Turkey; UNAM-National Nanotechnology Research Center, Institute of Materials Science and Nanotechnology, Bilkent University, 06800 Ankara, Turkey.
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8
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micro-RNA 21 detection with a limit of 2 pM in 1 min using a size-accordable concentration module operated by electrohydrodynamic actuation. Biosens Bioelectron 2021; 178:112992. [PMID: 33548653 DOI: 10.1016/j.bios.2021.112992] [Citation(s) in RCA: 5] [Impact Index Per Article: 1.7] [Reference Citation Analysis] [Abstract] [Key Words] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Received: 07/22/2020] [Revised: 12/10/2020] [Accepted: 01/07/2021] [Indexed: 11/23/2022]
Abstract
We present a fluorimetry-based technology for micro-RNA-21 (miR-21) sensing based on the concentration of miR-molecular beacon (MB) complexes and flushing of unbound MB. This concentration module consists of a microfluidic channel with the shape of a funnel operated with electrohydrodynamic actuation. We report a limit of detection of 2 pM in less than 1 min for miR-21 alone, and then demonstrate that miR-21 levels, measured in fine needle biopsy samples, from patients with pancreatic cancer correlate with the reference technique of reverse-transcription polymerase chain reaction (RT-PCR). Altogether, this technology has promising clinical performances for the follow-up of patients with cancer.
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9
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Fan LL, Tian ZZ, Zhe J, Zhao L. Efficient microfluidic enrichment of nano-/submicroparticle in viscoelastic fluid. Electrophoresis 2021; 42:2273-2280. [PMID: 33629394 DOI: 10.1002/elps.202000330] [Citation(s) in RCA: 5] [Impact Index Per Article: 1.7] [Reference Citation Analysis] [Abstract] [Key Words] [Journal Information] [Subscribe] [Scholar Register] [Received: 11/08/2020] [Revised: 01/31/2021] [Accepted: 02/17/2021] [Indexed: 11/12/2022]
Abstract
The enrichment and focusing of the nano-/submicroparticle (e.g., 150-1000 nm microvesicle shed from the plasma membrane) in the viscoelastic fluid has great potentials in the biomedical and clinical applications such as the disease diagnosis and the prognostic test for liquid biopsy. However, due to the small size and the resulting weak hydrodynamic force, the efficient manipulation of the nano-/submicroparticle by the passive viscoelastic microfluidic technology remains a major challenge. For instance, a typically long channel length is often required to achieve the focusing or the separation of the nano-/submicroparticle, which makes it difficult to be integrated in small chip area. In this work, a microchannel with gradually contracted cross-section and high aspect ratio (the ratio of the height to the average width of channel) is utilized to enhance the hydrodynamic force and change the force direction, eventually leading to the efficient enrichment of nano-/submicroparticles (500 and 860 nm) in a short channel length (2 cm). The influence of the flow rate, the particle size, the solid concentration, and the channel geometry on the enrichment of the nano-/submicroparticles are investigated. With simple structure, small footprint, easy operation, and good performance, the present device would be a promising platform for various lab-chip microvesicle-related biomedical research and disease diagnosis.
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Affiliation(s)
- Liang-Liang Fan
- School of Mechanical Engineering, Xi'an Jiaotong University, Xi'an, Shaanxi, P. R. China.,School of Food Equipment Engineering and Science (FEES), Xi'an Jiaotong University, Xi'an, P. R. China
| | - Zhuang-Zhuang Tian
- School of Mechanical Engineering, Xi'an Jiaotong University, Xi'an, Shaanxi, P. R. China
| | - Jiang Zhe
- Department of Mechanical Engineering, University of Akron, Akron, OH, USA
| | - Liang Zhao
- State Key Laboratory of Multiphase Flow in Power Engineering, Xi'an Jiaotong University, Xi'an, P. R. China
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10
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Chami B, Milon N, Fuentes Rojas JL, Charlot S, Marrot JC, Bancaud A. Single-step electrohydrodynamic separation of 1-150 kbp in less than 5 min using homogeneous glass/adhesive/glass microchips. Talanta 2020; 217:121013. [PMID: 32498826 DOI: 10.1016/j.talanta.2020.121013] [Citation(s) in RCA: 2] [Impact Index Per Article: 0.5] [Reference Citation Analysis] [Abstract] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Received: 01/07/2020] [Revised: 04/02/2020] [Accepted: 04/06/2020] [Indexed: 11/18/2022]
Abstract
Electrohydrodynamic migration, which is based on hydrodynamic actuation with an opposing electrophoretic force, enables the separation of DNA molecules of 3-100 kbp in glass capillary within 1 h. Here, we wish to enhance these performances using microchip technologies. This study starts with the fabrication of microchips with uniform surfaces, as motivated by our observation that band splitting occurs in microchannels made out of heterogeneous materials such as glass and silicon. The resulting glass-adhesive-glass microchips feature the highest reported bonding strength of 11 MPa for such materials (115 kgf/cm2), a high lateral resolution of critical dimension 5 μm, and minimal auto-fluorescence. These devices enable us to report the separation of 13 DNA bands in the size range of 1-150 kbp in one experiment of 5 min, i.e. 13 times faster than with capillary. In turn, we observe that bands split during electrohydrodynamic migration in heterogeneous glass-silicon but not in homogeneous glass-adhesive-glass microchips. We suggest that this effect arises from differential Electro-Osmotic Flow (EOF) in between the upper and lower walls of heterogeneous channels, and provide evidence that this phenomenon of differential EOF causes band broadening in electrophoresis during microchip electrophoresis. We finally prove that our electrohydrodynamic separation compares very favorably to microchip technologies in terms of resolution length and features the broadest analytical range reported so far.
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Affiliation(s)
- Bayan Chami
- CNRS, LAAS, 7 Avenue Du Colonel Roche, F-31400, Toulouse, France
| | - Nicolas Milon
- CNRS, LAAS, 7 Avenue Du Colonel Roche, F-31400, Toulouse, France; Adelis Technologies, 478 Rue de La Découverte, 31670, Labège, France
| | | | - Samuel Charlot
- CNRS, LAAS, 7 Avenue Du Colonel Roche, F-31400, Toulouse, France
| | | | - Aurélien Bancaud
- CNRS, LAAS, 7 Avenue Du Colonel Roche, F-31400, Toulouse, France.
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11
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Valley BE, Crowell AD, Butler JE, Ladd AJC. Electro-hydrodynamic extraction of DNA from mixtures of DNA and bovine serum albumin. Analyst 2020; 145:5532-5538. [PMID: 32608411 DOI: 10.1039/d0an00961j] [Citation(s) in RCA: 4] [Impact Index Per Article: 1.0] [Reference Citation Analysis] [Abstract] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Indexed: 01/16/2023]
Abstract
We report separation of genomic DNA (48 kbp) from bovine serum albumin (BSA) by the electro-hydrodynamic coupling between a pressure-driven flow and a parallel electric field. Electro-hydrodynamic extraction exploits this coupling to trap DNA molecules at the entrance of a microfluidic contraction channel, while allowing proteins and salts to be flushed from the device. Samples (10 μL) containing λ-DNA (1 ng) and BSA (0.3 mg) were injected directly into the device and convected to the contraction channel entrance by a flowing buffer solution. The DNA remains trapped in this region essentially indefinitely, while proteins and salts are eluted. The effectiveness of the concept has been assessed by fluorescence measurements of DNA and BSA concentrations. Electro-hydrodynamic extraction in a single-stage device was found to enhance the concentration of DNA 40-fold, while reducing the BSA concentration by four orders of magnitude. The relative concentrations of DNA to BSA at the contraction channel entrance can be as large as 1.5 : 1, corresponding to an A260/280 ratio of 1.9. The maximum yield of DNA from a salt-free solution is 50%, while salted (150 mM) solutions have a lower yield (38%).
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Affiliation(s)
- Benjamin E Valley
- Department of Chemical Engineering, University of Florida, Gainesville, FL, USA.
| | - Anne D Crowell
- Department of Chemical Engineering, University of Florida, Gainesville, FL, USA.
| | - Jason E Butler
- Department of Chemical Engineering, University of Florida, Gainesville, FL, USA.
| | - Anthony J C Ladd
- Department of Chemical Engineering, University of Florida, Gainesville, FL, USA.
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12
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Teillet J, Martinez Q, Tijunelyte I, Chami B, Bancaud A. Characterization and minimization of band broadening in DNA electrohydrodynamic migration for enhanced size separation. SOFT MATTER 2020; 16:5640-5649. [PMID: 32510064 DOI: 10.1039/d0sm00475h] [Citation(s) in RCA: 3] [Impact Index Per Article: 0.8] [Reference Citation Analysis] [Abstract] [MESH Headings] [Track Full Text] [Subscribe] [Scholar Register] [Indexed: 06/11/2023]
Abstract
The combination of hydrodynamic actuation with an opposing electrophoretic force in viscoelastic liquids enables the separation, concentration, and purification of DNA. Obtaining good analytical performances despite the use of hydrodynamic flow fields, which dramatically enhance band broadening due to Taylor dispersion, constitutes a paradox that remains to be clarified. Here, we study the mechanism of band broadening in electrohydrodynamic migration with an automated microfluidic platform that allows us to track the migration of a 600 bp band in the pressure-electric field parameter space. We demonstrate that diffusion in the electrohydrodynamic regime is controlled predominantly by the electric field and marginally by the hydrodynamic flow velocity. We explain this response with an analytical model of diffusion based on Taylor dispersion arguments. Furthermore, we demonstrate that the electric field can be modulated over time to monitor and minimize the breadth of a DNA band, and suggest guidelines to enhance the resolution of DNA separation experiments. Altogether, our report is a leap towards to the development of high-performance analytical technologies based on electrohydrodynamic actuation.
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Affiliation(s)
- Jeffrey Teillet
- CNRS, LAAS, 7 Avenue du Colonel Roche, F-31400, Toulouse, France.
| | - Quentin Martinez
- CNRS, LAAS, 7 Avenue du Colonel Roche, F-31400, Toulouse, France.
| | - Inga Tijunelyte
- CNRS, LAAS, 7 Avenue du Colonel Roche, F-31400, Toulouse, France.
| | - Bayan Chami
- CNRS, LAAS, 7 Avenue du Colonel Roche, F-31400, Toulouse, France.
| | - Aurélien Bancaud
- CNRS, LAAS, 7 Avenue du Colonel Roche, F-31400, Toulouse, France.
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13
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Serhatlioglu M, Isiksacan Z, Özkan M, Tuncel D, Elbuken C. Electro-Viscoelastic Migration under Simultaneously Applied Microfluidic Pressure-Driven Flow and Electric Field. Anal Chem 2020; 92:6932-6940. [DOI: 10.1021/acs.analchem.9b05620] [Citation(s) in RCA: 8] [Impact Index Per Article: 2.0] [Reference Citation Analysis] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Indexed: 01/04/2023]
Affiliation(s)
- Murat Serhatlioglu
- UNAM - National Nanotechnology Research Center, Institute of Materials Science and Nanotechnology, Bilkent University, 06800 Ankara, Turkey
| | - Ziya Isiksacan
- UNAM - National Nanotechnology Research Center, Institute of Materials Science and Nanotechnology, Bilkent University, 06800 Ankara, Turkey
| | - Melis Özkan
- UNAM - National Nanotechnology Research Center, Institute of Materials Science and Nanotechnology, Bilkent University, 06800 Ankara, Turkey
| | - Dönüs Tuncel
- UNAM - National Nanotechnology Research Center, Institute of Materials Science and Nanotechnology, Bilkent University, 06800 Ankara, Turkey
| | - Caglar Elbuken
- UNAM - National Nanotechnology Research Center, Institute of Materials Science and Nanotechnology, Bilkent University, 06800 Ankara, Turkey
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14
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Fan L, Zhao Z, Tao Y, Wu X, Yan Q, Zhe J, Zhao L. Enhanced viscoelastic focusing of particle in microchannel. Electrophoresis 2020; 41:973-982. [DOI: 10.1002/elps.201900397] [Citation(s) in RCA: 5] [Impact Index Per Article: 1.3] [Reference Citation Analysis] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Received: 10/12/2019] [Revised: 12/30/2019] [Accepted: 12/31/2019] [Indexed: 11/08/2022]
Affiliation(s)
- Liang‐Liang Fan
- School of Mechanical EngineeringXi'an Jiaotong University Xi'an Shaanxi P. R. China
| | - Zhi Zhao
- School of Mechanical EngineeringXi'an Jiaotong University Xi'an Shaanxi P. R. China
| | - Yi‐Yi Tao
- State Key Laboratory of Multiphase Flow in Power EngineeringXi'an Jiaotong University Xi'an Shaanxi P. R. China
| | - Xu Wu
- State Key Laboratory of Multiphase Flow in Power EngineeringXi'an Jiaotong University Xi'an Shaanxi P. R. China
| | - Qing Yan
- State Key Laboratory of Multiphase Flow in Power EngineeringXi'an Jiaotong University Xi'an Shaanxi P. R. China
| | - Jiang Zhe
- Department of Mechanical EngineeringUniversity of Akron Akron OH USA
| | - Liang Zhao
- State Key Laboratory of Multiphase Flow in Power EngineeringXi'an Jiaotong University Xi'an Shaanxi P. R. China
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15
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Milon N, Fuentes Rojas JL, Castinel A, Bigot L, Bouwmans G, Baudelle K, Boutonnet A, Gibert A, Bouchez O, Donnadieu C, Ginot F, Bancaud A. A tunable filter for high molecular weight DNA selection and linked-read sequencing. LAB ON A CHIP 2020; 20:175-184. [PMID: 31796946 DOI: 10.1039/c9lc00965e] [Citation(s) in RCA: 4] [Impact Index Per Article: 1.0] [Reference Citation Analysis] [Abstract] [MESH Headings] [Track Full Text] [Subscribe] [Scholar Register] [Indexed: 06/10/2023]
Abstract
In third generation sequencing, the production of quality data requires the selection of molecules longer than ∼20 kbp, but the size selection threshold of most purification technologies is smaller than this target. Here, we describe a technology operated in a capillary with a tunable selection threshold in the range of 3 to 40 kbp controlled by an electric field. We demonstrate that the selection cut-off is sharp, the purification yield is high, and the purification throughput is scalable. We also provide an analytical model that the actuation settings of the filter. The selection of high molecular weight genomic DNA from the melon Cucumis melo L., a diploid organism of ∼0.45 Gbp, is then reported. Linked-read sequencing data show that the N50 phase block size, which scores the correct representation of two chromosomes, is enhanced by a factor of 2 after size selection, establishing the relevance and versatility of our technology.
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Affiliation(s)
- Nicolas Milon
- CNRS, LAAS, 7 avenue du colonel Roche, F-31400, Toulouse, France. and Adelis Technologies, 478 Rue de la Découverte, 31670 Labège, France
| | | | - Adrien Castinel
- INRA, US 1426 GeT-PlaGe, INRA Auzeville, F-31326, Castanet-Tolosan Cedex, France
| | - Laurent Bigot
- Univ. Lille, CNRS, UMR 8523 - PhLAM - Physique des Lasers Atomes et Molécules, F-59000 Lille, France
| | - Géraud Bouwmans
- Univ. Lille, CNRS, UMR 8523 - PhLAM - Physique des Lasers Atomes et Molécules, F-59000 Lille, France
| | - Karen Baudelle
- Univ. Lille, CNRS, UMR 8523 - PhLAM - Physique des Lasers Atomes et Molécules, F-59000 Lille, France
| | - Audrey Boutonnet
- Adelis Technologies, 478 Rue de la Découverte, 31670 Labège, France
| | - Audrey Gibert
- INRA, US 1426 GeT-PlaGe, INRA Auzeville, F-31326, Castanet-Tolosan Cedex, France
| | - Olivier Bouchez
- INRA, US 1426 GeT-PlaGe, INRA Auzeville, F-31326, Castanet-Tolosan Cedex, France
| | - Cécile Donnadieu
- INRA, US 1426 GeT-PlaGe, INRA Auzeville, F-31326, Castanet-Tolosan Cedex, France
| | - Frédéric Ginot
- Adelis Technologies, 478 Rue de la Découverte, 31670 Labège, France
| | - Aurélien Bancaud
- CNRS, LAAS, 7 avenue du colonel Roche, F-31400, Toulouse, France.
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16
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Milon N, Chantry-Darmon C, Satge C, Fustier MA, Cauet S, Moreau S, Callot C, Bellec A, Gabrieli T, Saïas L, Boutonnet A, Ginot F, Bergès H, Bancaud A. μLAS technology for DNA isolation coupled to Cas9-assisted targeting for sequencing and assembly of a 30 kb region in plant genome. Nucleic Acids Res 2019; 47:8050-8060. [PMID: 31505675 PMCID: PMC6736094 DOI: 10.1093/nar/gkz632] [Citation(s) in RCA: 6] [Impact Index Per Article: 1.2] [Reference Citation Analysis] [Abstract] [Track Full Text] [Download PDF] [Figures] [Journal Information] [Subscribe] [Scholar Register] [Received: 12/21/2018] [Revised: 06/25/2019] [Accepted: 07/20/2019] [Indexed: 12/27/2022] Open
Abstract
Cas9-assisted targeting of DNA fragments in complex genomes is viewed as an essential strategy to obtain high-quality and continuous sequence data. However, the purity of target loci selected by pulsed-field gel electrophoresis (PFGE) has so far been insufficient to assemble the sequence in one contig. Here, we describe the μLAS technology to capture and purify high molecular weight DNA. First, the technology is optimized to perform high sensitivity DNA profiling with a limit of detection of 20 fg/μl for 50 kb fragments and an analytical time of 50 min. Then, μLAS is operated to isolate a 31.5 kb locus cleaved by Cas9 in the genome of the plant Medicago truncatula. Target purification is validated on a Bacterial Artificial Chromosome plasmid, and subsequently carried out in whole genome with μLAS, PFGE or by combining these techniques. PacBio sequencing shows an enrichment factor of the target sequence of 84 with PFGE alone versus 892 by association of PFGE with μLAS. These performances allow us to sequence and assemble one contig of 29 441 bp with 99% sequence identity to the reference sequence.
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Affiliation(s)
- Nicolas Milon
- CNRS, LAAS, 7 Avenue du Colonel Roche, F-31400, Toulouse, France.,Adelis Technologies, 478 Rue de la Découverte, 31670 Labège, France
| | - Céline Chantry-Darmon
- French Plant Genomic Resource Center, INRA-CNRGV, 24 Chemin de Borde Rouge-Auzeville, CS 52627, 31326 Castanet Tolosan Cedex, France
| | - Carine Satge
- French Plant Genomic Resource Center, INRA-CNRGV, 24 Chemin de Borde Rouge-Auzeville, CS 52627, 31326 Castanet Tolosan Cedex, France
| | - Margaux-Alison Fustier
- French Plant Genomic Resource Center, INRA-CNRGV, 24 Chemin de Borde Rouge-Auzeville, CS 52627, 31326 Castanet Tolosan Cedex, France
| | - Stephane Cauet
- French Plant Genomic Resource Center, INRA-CNRGV, 24 Chemin de Borde Rouge-Auzeville, CS 52627, 31326 Castanet Tolosan Cedex, France
| | - Sandra Moreau
- Laboratory of Plant-Microbe Interactions, INRA-LIPM, 24 Chemin de Borde Rouge-Auzeville, CS 52627, 31326 Castanet Tolosan Cedex, France
| | - Caroline Callot
- French Plant Genomic Resource Center, INRA-CNRGV, 24 Chemin de Borde Rouge-Auzeville, CS 52627, 31326 Castanet Tolosan Cedex, France
| | - Arnaud Bellec
- French Plant Genomic Resource Center, INRA-CNRGV, 24 Chemin de Borde Rouge-Auzeville, CS 52627, 31326 Castanet Tolosan Cedex, France
| | - Tslil Gabrieli
- School of Chemistry, Center of Nanoscience and Nanotechnology, Raymond and Beverly Sackler Faculty of Exact Sciences, Tel Aviv University, Tel Aviv, Israel
| | - Laure Saïas
- Adelis Technologies, 478 Rue de la Découverte, 31670 Labège, France
| | - Audrey Boutonnet
- Adelis Technologies, 478 Rue de la Découverte, 31670 Labège, France
| | - Frédéric Ginot
- Adelis Technologies, 478 Rue de la Découverte, 31670 Labège, France
| | - Hélène Bergès
- French Plant Genomic Resource Center, INRA-CNRGV, 24 Chemin de Borde Rouge-Auzeville, CS 52627, 31326 Castanet Tolosan Cedex, France
| | - Aurélien Bancaud
- CNRS, LAAS, 7 Avenue du Colonel Roche, F-31400, Toulouse, France
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17
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Cacheux J, Bancaud A, Leichlé T, Cordelier P. Technological Challenges and Future Issues for the Detection of Circulating MicroRNAs in Patients With Cancer. Front Chem 2019; 7:815. [PMID: 31850308 PMCID: PMC6894013 DOI: 10.3389/fchem.2019.00815] [Citation(s) in RCA: 22] [Impact Index Per Article: 4.4] [Reference Citation Analysis] [Abstract] [Key Words] [Track Full Text] [Download PDF] [Figures] [Journal Information] [Subscribe] [Scholar Register] [Received: 07/15/2019] [Accepted: 11/11/2019] [Indexed: 12/21/2022] Open
Abstract
In the era of precision medicine, the success of clinical trials, notably for patients diagnosed with cancer, strongly relies on biomarkers with pristine clinical value but also on robust and versatile analytical technologies to ensure proper patients' stratification and treatment. In this review, we will first address whether plasmatic and salivary microRNAs can be considered as a reliable source of biomarkers for cancer diagnosis and prognosis. We will then discuss the pre-analytical steps preceding miRNA quantification (from isolation to purification), and how such process could be biased and time-consuming. Next, we will review the most recent tools derived from micro- and nano-technologies for microRNA detection available to date and how they may compete with current standards. This review will prioritize publications using relevant biological samples. The significance of various physical transduction schemes (mechanical, optical, electrical, etc.) for biological detection will be compared, and pros and cons of each method will be widely discussed. Finally, we will debate on how micro and nanotechnologies could widespread the use of biomarkers in modern medicine, to help manage patients with serious diseases such as cancer.
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Affiliation(s)
- Jean Cacheux
- LAAS-CNRS, Université de Toulouse, CNRS, Toulouse, France.,Université Fédérale de Toulouse Midi-Pyrénées, Université Toulouse III Paul Sabatier, CRCT, Toulouse, France
| | | | | | - Pierre Cordelier
- Université Fédérale de Toulouse Midi-Pyrénées, Université Toulouse III Paul Sabatier, CRCT, Toulouse, France
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18
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Montes RJ, Ladd AJC, Butler JE. Transverse migration and microfluidic concentration of DNA using Newtonian buffers. BIOMICROFLUIDICS 2019; 13:044104. [PMID: 31893007 PMCID: PMC6932854 DOI: 10.1063/1.5110718] [Citation(s) in RCA: 5] [Impact Index Per Article: 1.0] [Reference Citation Analysis] [Abstract] [Track Full Text] [Subscribe] [Scholar Register] [Received: 05/20/2019] [Accepted: 06/30/2019] [Indexed: 06/10/2023]
Abstract
We present experimental evidence that DNA can be concentrated due to an electrohydrodynamic coupling between a pressure-driven flow and a parallel electric field. The effects of buffer properties on the process were measured in a microfluidic channel. The concentration rates and the efficiency of trapping DNA were quantified as functions of the ion and polymer concentrations of the buffer solution. Buffers with large ion concentrations hindered the ability to trap DNA, reducing the short-time efficiency of the concentration process from nearly 100% to zero. Importantly, DNA was trapped in the microfluidic channel even when the buffer solution lacked any measurable viscoelastic response. These observations indicate that electrohydrodynamic migration drives the concentration of DNA. We found no evidence of viscoelastic migration in these experiments.
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Affiliation(s)
- Ryan J Montes
- Department of Chemical Engineering, University of Florida, Gainesville, Florida 32611, USA
| | - Anthony J C Ladd
- Department of Chemical Engineering, University of Florida, Gainesville, Florida 32611, USA
| | - Jason E Butler
- Department of Chemical Engineering, University of Florida, Gainesville, Florida 32611, USA
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19
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Socol M, Ranchon H, Chami B, Lesage A, Victor JM, Manghi M, Bancaud A. Contraction and Tumbling Dynamics of DNA in Shear Flows under Confinement Induced by Transverse Viscoelastic Forces. Macromolecules 2019. [DOI: 10.1021/acs.macromol.8b02184] [Citation(s) in RCA: 6] [Impact Index Per Article: 1.2] [Reference Citation Analysis] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Indexed: 11/30/2022]
Affiliation(s)
- Marius Socol
- LAAS-CNRS, Université de Toulouse, CNRS, F-31400 Toulouse, France
| | - Hubert Ranchon
- LAAS-CNRS, Université de Toulouse, CNRS, F-31400 Toulouse, France
| | - Bayan Chami
- LAAS-CNRS, Université de Toulouse, CNRS, F-31400 Toulouse, France
| | - Antony Lesage
- Laboratoire de Physique Théorique de la Matière Condensée, LPTMC, Sorbonne Université, CNRS, F-75005 Paris, France
| | - Jean-Marc Victor
- Laboratoire de Physique Théorique de la Matière Condensée, LPTMC, Sorbonne Université, CNRS, F-75005 Paris, France
| | - Manoel Manghi
- Laboratoire de Physique Théorique (IRSAMC), Université de Toulouse, CNRS, UPS, Toulouse, France
| | - Aurélien Bancaud
- LAAS-CNRS, Université de Toulouse, CNRS, F-31400 Toulouse, France
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20
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Malbec R, Chami B, Aeschbach L, Ruiz Buendía GA, Socol M, Joseph P, Leïchlé T, Trofimenko E, Bancaud A, Dion V. µLAS: Sizing of expanded trinucleotide repeats with femtomolar sensitivity in less than 5 minutes. Sci Rep 2019; 9:23. [PMID: 30631115 PMCID: PMC6328573 DOI: 10.1038/s41598-018-36632-5] [Citation(s) in RCA: 11] [Impact Index Per Article: 2.2] [Reference Citation Analysis] [Abstract] [MESH Headings] [Track Full Text] [Download PDF] [Figures] [Journal Information] [Subscribe] [Scholar Register] [Received: 06/18/2018] [Accepted: 11/23/2018] [Indexed: 11/09/2022] Open
Abstract
We present µLAS, a lab-on-chip system that concentrates, separates, and detects DNA fragments in a single module. µLAS speeds up DNA size analysis in minutes using femtomolar amounts of amplified DNA. Here we tested the relevance of µLAS for sizing expanded trinucleotide repeats, which cause over 20 different neurological and neuromuscular disorders. Because the length of trinucleotide repeats correlates with the severity of the diseases, it is crucial to be able to size repeat tract length accurately and efficiently. Expanded trinucleotide repeats are however genetically unstable and difficult to amplify. Thus, the amount of amplified material to work with is often limited, making its analysis labor-intensive. We report the detection of heterogeneous allele lengths in 8 samples from myotonic dystrophy type 1 and Huntington disease patients with up to 750 CAG/CTG repeats in five minutes or less. The high sensitivity of the method allowed us to minimize the number of amplification cycles and thus reduce amplification artefacts without compromising the detection of the expanded allele. These results suggest that µLAS can speed up routine molecular biology applications of repetitive sequences and may improve the molecular diagnostic of expanded repeat disorders.
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Affiliation(s)
- Rémi Malbec
- LAAS-CNRS, Université de Toulouse, CNRS, Toulouse, 31031, France
| | - Bayan Chami
- LAAS-CNRS, Université de Toulouse, CNRS, Toulouse, 31031, France
| | - Lorène Aeschbach
- Center for Integrative Genomics, Faculty of Biology and Medicine, University of Lausanne, Bâtiment Génopode, Lausanne, 1015, Switzerland
| | - Gustavo A Ruiz Buendía
- Center for Integrative Genomics, Faculty of Biology and Medicine, University of Lausanne, Bâtiment Génopode, Lausanne, 1015, Switzerland
| | - Marius Socol
- LAAS-CNRS, Université de Toulouse, CNRS, Toulouse, 31031, France
| | - Pierre Joseph
- LAAS-CNRS, Université de Toulouse, CNRS, Toulouse, 31031, France
| | - Thierry Leïchlé
- LAAS-CNRS, Université de Toulouse, CNRS, Toulouse, 31031, France
| | - Evgeniya Trofimenko
- Center for Integrative Genomics, Faculty of Biology and Medicine, University of Lausanne, Bâtiment Génopode, Lausanne, 1015, Switzerland
- Department of Physiology, University of Lausanne, Rue du Bugnon 7, Lausanne, 1005, Switzerland
| | - Aurélien Bancaud
- LAAS-CNRS, Université de Toulouse, CNRS, Toulouse, 31031, France.
| | - Vincent Dion
- Center for Integrative Genomics, Faculty of Biology and Medicine, University of Lausanne, Bâtiment Génopode, Lausanne, 1015, Switzerland.
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21
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Malbec R, Cacheux J, Cordelier P, Leichlé T, Joseph P, Bancaud A. Microfluidics for minute DNA sample analysis: open challenges for genetic testing of cell-free circulating DNA in blood plasma. MICRO AND NANO ENGINEERING 2018. [DOI: 10.1016/j.mne.2018.10.003] [Citation(s) in RCA: 7] [Impact Index Per Article: 1.2] [Reference Citation Analysis] [Track Full Text] [Subscribe] [Scholar Register] [Indexed: 01/02/2023]
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22
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Montes RJ, Butler JE, Ladd AJC. Trapping DNA with a high throughput microfluidic device. Electrophoresis 2018; 40:437-446. [DOI: 10.1002/elps.201800287] [Citation(s) in RCA: 12] [Impact Index Per Article: 2.0] [Reference Citation Analysis] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Received: 07/10/2018] [Revised: 09/08/2018] [Accepted: 09/10/2018] [Indexed: 01/17/2023]
Affiliation(s)
- Ryan J. Montes
- Department of Chemical Engineering University of Florida Gainesville FL USA
| | - Jason E. Butler
- Department of Chemical Engineering University of Florida Gainesville FL USA
| | - Anthony J. C. Ladd
- Department of Chemical Engineering University of Florida Gainesville FL USA
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23
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Chami B, Socol M, Manghi M, Bancaud A. Modeling of DNA transport in viscoelastic electro-hydrodynamic flows for enhanced size separation. SOFT MATTER 2018; 14:5069-5079. [PMID: 29873390 DOI: 10.1039/c8sm00611c] [Citation(s) in RCA: 10] [Impact Index Per Article: 1.7] [Reference Citation Analysis] [Abstract] [MESH Headings] [Track Full Text] [Subscribe] [Scholar Register] [Indexed: 06/08/2023]
Abstract
DNA separation and analysis have advanced over recent years, benefiting from microfluidic systems that reduce sample volumes and analysis costs, essential for sequencing and disease identification in body fluids. We recently developed the μLAS technology that enables the separation, concentration, and analysis of nucleic acids with high sensitivity. The technology combines a hydrodynamic flow actuation and an opposite electrophoretic force in viscoelastic polymer solutions. Combining hydrodynamics first principles and statistical mechanics, we provide, in this paper, a quantitative model of DNA transport capable of predicting device performance with the exclusive use of one adjustable parameter associated with the amplitude of transverse viscoelastic forces. The model proves to be in remarkable agreement with DNA separation experiments, and allows us to define optimal conditions that result in a maximal resolution length of 7 bp. We finally discuss the usefulness of our model for separation technologies involving viscoelastic liquids.
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Affiliation(s)
- B Chami
- LAAS-CNRS, 7 avenue du colonel Roche, BP 54200, 31031 Toulouse Cedex, France.
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24
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Liot O, Socol M, Garcia L, Thiéry J, Figarol A, Mingotaud AF, Joseph P. Transport of nano-objects in narrow channels: influence of Brownian diffusion, confinement and particle nature. JOURNAL OF PHYSICS. CONDENSED MATTER : AN INSTITUTE OF PHYSICS JOURNAL 2018; 30:234001. [PMID: 29701609 DOI: 10.1088/1361-648x/aac0af] [Citation(s) in RCA: 1] [Impact Index Per Article: 0.2] [Reference Citation Analysis] [Abstract] [Track Full Text] [Subscribe] [Scholar Register] [Indexed: 06/08/2023]
Abstract
This paper presents experimental results about transport of dilute suspensions of nano-objects in silicon-glass micrometric and sub-micrometric channels. Two kinds of objects are used: solid, rigid latex beads and spherical capsule-shaped, soft polymersomes. They are tracked using fluorescence microscopy. Three aspects are studied: confinement (ratio between particle diameter and channel depth), Brownian diffusion and particle nature. The aim of this work is to understand how these different aspects affect the transport of suspensions in narrow channels and to understand the different mechanisms at play. Concerning the solid beads we observe the appearance of two regimes, one where the experimental mean velocity is close to the expected one and another where this velocity is lower. This is directly related to a competition between confinement, Brownian diffusion and advection. These two regimes are shown to be linked to the inhomogeneity of particles distribution in the channel depth, which we experimentally deduce from velocity distributions. This inhomogeneity appears during the entrance process into the sub-micrometric channels, as for hydrodynamic separation or deterministic lateral displacement. Concerning the nature of the particles we observed a shift of transition towards the second regime likely due to the relationships between shear stress and polymersomes mechanical properties which could reduce the inhomogeneity imposed by the geometry of our device.
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Affiliation(s)
- O Liot
- LAAS-CNRS, Université de Toulouse, CNRS UPR 8001, Toulouse, France. Fédération FERMaT, INPT, Toulouse, France
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25
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Andriamanampisoa CL, Bancaud A, Boutonnet-Rodat A, Didelot A, Fabre J, Fina F, Garlan F, Garrigou S, Gaudy C, Ginot F, Henaff D, Laurent-Puig P, Morin A, Picot V, Saias L, Taly V, Tomasini P, Zaanan A. BIABooster: Online DNA Concentration and Size Profiling with a Limit of Detection of 10 fg/μL and Application to High-Sensitivity Characterization of Circulating Cell-Free DNA. Anal Chem 2018; 90:3766-3774. [PMID: 29498256 DOI: 10.1021/acs.analchem.7b04034] [Citation(s) in RCA: 30] [Impact Index Per Article: 5.0] [Reference Citation Analysis] [Abstract] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Indexed: 12/19/2022]
Abstract
We describe a technology to perform sizing and concentration analysis of double stranded DNA with a sensitivity of 10 fg/μL in an operating time of 20 min. The technology is operated automatically on a commercial capillary electrophoresis instrument using electro-hydrodynamic actuation. It relies on a new capillary device that achieves online concentration of DNA at the junction between two capillaries of different diameters, thanks to viscoelastic lift forces. Using a set of DNA ladders in the range of 100-1500 bp, we report a sizing accuracy and precision better than 3% and a concentration quantification precision of ∼20%. When the technology is applied to the analysis of clinical samples of circulating cell-free DNA (cfDNA), the measured cfDNA concentrations are in good correlation with those measured by digital PCR. Furthermore, the cfDNA size profiles indicate that the fraction of low molecular weight cfDNA in the range of 75-240 bp is a candidate biomarker to discriminate between healthy subjects and cancer patients. We conclude that our technology is efficient in analyzing highly diluted DNA samples and suggest that it will be helpful in translational and clinical research involving cfDNA.
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Affiliation(s)
| | - Aurélien Bancaud
- LAAS-CNRS , Université de Toulouse, CNRS , 7 Avenue du Colonel Roche , 31400 Toulouse , France
| | | | - Audrey Didelot
- INSERM UMR-S1147, CNRS SNC5014 , Paris Descartes University , 45 rue des Saints-Pères , Paris , France
| | - Jacques Fabre
- Picometrics Technologies , 478 rue de la Découverte , 31 670 Labège , France
| | - Frédéric Fina
- Laboratoire de Biologie Médicale, Unité de développement technologique , Timone, Assistance Publique Hôpitaux de Marseille , 13005 Marseille , France.,ID-Solutions , 310 rue Louis Pasteur , 34790 Grabels , France.,Service d'Anatomie Pathologique et Neuropathologie, Timone II , Assistance Publique Hôpitaux de Marseille , 13005 Marseille , France
| | - Fanny Garlan
- INSERM UMR-S1147, CNRS SNC5014 , Paris Descartes University , 45 rue des Saints-Pères , Paris , France
| | - Sonia Garrigou
- INSERM UMR-S1147, CNRS SNC5014 , Paris Descartes University , 45 rue des Saints-Pères , Paris , France
| | - Caroline Gaudy
- Service de Dermatologie, Vénéréologie et Cancérologie cutanée , Timone, Assistance Publique Hôpitaux de Marseille , 13005 Marseille , France
| | - Frédéric Ginot
- Picometrics Technologies , 478 rue de la Découverte , 31 670 Labège , France
| | - Daniel Henaff
- ID-Solutions , 310 rue Louis Pasteur , 34790 Grabels , France
| | - Pierre Laurent-Puig
- INSERM UMR-S1147, CNRS SNC5014 , Paris Descartes University , 45 rue des Saints-Pères , Paris , France.,Department of Digestive Oncology , European Georges Pompidou Hospital, AP-HP , 20 Rue Leblanc , 75015 Paris , France
| | - Arnaud Morin
- Picometrics Technologies , 478 rue de la Découverte , 31 670 Labège , France
| | - Vincent Picot
- Picometrics Technologies , 478 rue de la Découverte , 31 670 Labège , France
| | - Laure Saias
- Picometrics Technologies , 478 rue de la Découverte , 31 670 Labège , France
| | - Valérie Taly
- INSERM UMR-S1147, CNRS SNC5014 , Paris Descartes University , 45 rue des Saints-Pères , Paris , France
| | - Pascale Tomasini
- Multidisciplinary Oncology & Therapeutic Innovations Department , Aix Marseille University, Assistance Publique Hôpitaux de Marseille , Hôpital Nord, 13015 Marseille , France
| | - Aziz Zaanan
- INSERM UMR-S1147, CNRS SNC5014 , Paris Descartes University , 45 rue des Saints-Pères , Paris , France.,Department of Digestive Oncology , European Georges Pompidou Hospital, AP-HP , 20 Rue Leblanc , 75015 Paris , France
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26
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Chen X, Zhang S, Zhang L, Yao Z, Chen X, Zheng Y, Liu Y. Applications and theory of electrokinetic enrichment in micro-nanofluidic chips. Biomed Microdevices 2018; 19:19. [PMID: 28364179 DOI: 10.1007/s10544-017-0168-1] [Citation(s) in RCA: 9] [Impact Index Per Article: 1.5] [Reference Citation Analysis] [Abstract] [Key Words] [MESH Headings] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Indexed: 12/16/2022]
Abstract
This review reports the progress on the recent development of electrokinetic enrichment in micro-nanofluidic chips. The governing equations of electrokinetic enrichment in micro-nanofluidic chips are given. Various enrichment applications including protein analysis, DNA analysis, bacteria analysis, viruses analysis and cell analysis are illustrated and discussed. The advantages and difficulties of each enrichment method are expatiated. This paper will provide a particularly convenient and valuable reference to those who intend to research the electrokinetic enrichment based on micro-nanofluidic chips.
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Affiliation(s)
- Xueye Chen
- Faculty of Mechanical Engineering and Automation, Liaoning University of Technology, Jinzhou, 121001, China.
| | - Shuai Zhang
- Faculty of Mechanical Engineering and Automation, Liaoning University of Technology, Jinzhou, 121001, China
| | - Lei Zhang
- Faculty of Mechanical Engineering and Automation, Liaoning University of Technology, Jinzhou, 121001, China
| | - Zhen Yao
- Faculty of Mechanical Engineering and Automation, Liaoning University of Technology, Jinzhou, 121001, China
| | - Xiaodong Chen
- Faculty of Mechanical Engineering and Automation, Liaoning University of Technology, Jinzhou, 121001, China
| | - Yue Zheng
- Faculty of Mechanical Engineering and Automation, Liaoning University of Technology, Jinzhou, 121001, China
| | - Yanlin Liu
- Faculty of Mechanical Engineering and Automation, Liaoning University of Technology, Jinzhou, 121001, China
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27
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Yang SH, Lee DJ, Youn JR, Song YS. Multiple-Line Particle Focusing under Viscoelastic Flow in a Microfluidic Device. Anal Chem 2017; 89:3639-3647. [DOI: 10.1021/acs.analchem.6b05052] [Citation(s) in RCA: 29] [Impact Index Per Article: 4.1] [Reference Citation Analysis] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Indexed: 12/31/2022]
Affiliation(s)
- Sei Hyun Yang
- Research
Institute of Advanced Materials (RIAM), Department of Materials Science
and Engineering, Seoul National University, Seoul 08826, Republic of Korea
| | - Doo Jin Lee
- Ceramic
Fiber and Composite Materials Center, Korea Institute of Ceramic Engineering and Technology, 101 Soho-ro, Jinju-si, Gyeongsangnam-do, 52851, Republic of Korea
| | - Jae Ryoun Youn
- Research
Institute of Advanced Materials (RIAM), Department of Materials Science
and Engineering, Seoul National University, Seoul 08826, Republic of Korea
| | - Young Seok Song
- Department
of Fiber System Engineering, Dankook University, Gyeonggi-do, 16890, Republic of Korea
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28
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Salafi T, Zeming KK, Zhang Y. Advancements in microfluidics for nanoparticle separation. LAB ON A CHIP 2016; 17:11-33. [PMID: 27830852 DOI: 10.1039/c6lc01045h] [Citation(s) in RCA: 128] [Impact Index Per Article: 16.0] [Reference Citation Analysis] [Abstract] [MESH Headings] [Track Full Text] [Subscribe] [Scholar Register] [Indexed: 05/19/2023]
Abstract
Nanoparticles have been widely implemented for healthcare and nanoscience industrial applications. Thus, efficient and effective nanoparticle separation methods are essential for advancement in these fields. However, current technologies for separation, such as ultracentrifugation, electrophoresis, filtration, chromatography, and selective precipitation, are not continuous and require multiple preparation steps and a minimum sample volume. Microfluidics has offered a relatively simple, low-cost, and continuous particle separation approach, and has been well-established for micron-sized particle sorting. Here, we review the recent advances in nanoparticle separation using microfluidic devices, focusing on its techniques, its advantages over conventional methods, and its potential applications, as well as foreseeable challenges in the separation of synthetic nanoparticles and biological molecules, especially DNA, proteins, viruses, and exosomes.
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Affiliation(s)
- Thoriq Salafi
- NUS Graduate School for Integrative Sciences and Engineering, Centre for Life Sciences (CeLS), National University of Singapore, 05-01 28 Medical Drive, 117456 Singapore. and Department of Biomedical Engineering, National University of Singapore, 9 Engineering Drive 1, Block EA #03-12, 117576 Singapore
| | - Kerwin Kwek Zeming
- Department of Biomedical Engineering, National University of Singapore, 9 Engineering Drive 1, Block EA #03-12, 117576 Singapore
| | - Yong Zhang
- NUS Graduate School for Integrative Sciences and Engineering, Centre for Life Sciences (CeLS), National University of Singapore, 05-01 28 Medical Drive, 117456 Singapore. and Department of Biomedical Engineering, National University of Singapore, 9 Engineering Drive 1, Block EA #03-12, 117576 Singapore
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