Nucleic acid purification through nanoarchitectonics: magnetic bead integration with microfluidic chip technology

被引:0
作者
Priya, P. Ramya [1 ,2 ]
Deepak, K. S. [1 ,2 ]
Dubey, Satish Kumar [1 ,2 ]
Goel, Sanket [1 ,3 ]
机构
[1] Birla Inst Technol & Sci BITS Pilani, Microfluid & Nanoelect MMNE Lab, MEMS, Hyderabad Campus, Hyderabad 500078, India
[2] Birla Inst Technol & Sci BITS Pilani, Dept Mech Engn, Hyderabad Campus, Hyderabad 500078, India
[3] Birla Inst Technol & Sci BITS Pilani, Dept Elect & Elect Engn, Hyderabad Campus, Hyderabad 500078, India
关键词
microfluidic chip; DNA purification; lab-on-a-chip; nucleic acid extraction; point-of-care diagnostics; DNA isolation; DNA;
D O I
10.1088/1361-6439/ad6f1d
中图分类号
TM [电工技术]; TN [电子技术、通信技术];
学科分类号
0808 ; 0809 ;
摘要
Purified DNA and Polymerase Chain Reaction (PCR) are crucial parts of molecular biology techniques in various fields such as genomics, forensics, and diagnostics. The proposed microfluidic device is used to perform several steps like the adsorption of DNA present in processed PCR onto bare magnetic beads, cleaning of contaminants with ethanol-diluted buffer reagent, and eluting the adsorbed DNA in an elution buffer, which is further used for downstream application. The entire sample purification is accomplished in about 25 min. A comparative analysis is conducted using a commercially available DNA purification kit. By employing the suggested microfluidic chip alongside the commercial kit, a commercial spectrophotometer is utilized to measure the purity. This is done by obtaining the A260/A280 ratio, which allows for the assessment of both the quantity and purity of the extracted DNA. The A260/A280 ratios for the spin column-based, magnetic stand-based, and microfluidic chip- based tests were 1.86, 1.98, and 1.74, respectively. The analysis of the eluted DNA findings indicated that the quality was suitable for future PCR amplification. Additionally, this microchip-based device has the potential to be utilized as a bedside device for DNA purification in point of care applications, with a purification time of 25 min.
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页数:6
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共 44 条
[31]   Automatic and integrated detection of nucleic acid by using a dual-mode thermal controlled digital microfluidic chip [J].
Liao, Jiaqi ;
Li, Chonghao ;
Liu, Jiajia ;
Cheng, Hao ;
Li, Linmin ;
Tang, Guixi ;
Huang, Ru ;
Lu, Yating ;
Chen, Siyue ;
Zhang, Qian ;
Chen, Hao ;
Chen, Qinyuan ;
Chen, Hong ;
Sun, Daoheng .
ANALYTICA CHIMICA ACTA, 2025, 1334
[32]   Nucleic Acid Detection with Ion Concentration Polarization Microfluidic Chip for Reduced Cycle Numbers of Polymerase Chain Reaction [J].
Yu, Chengzhuang ;
Dai, Shijie ;
Li, Shanshan ;
Li, Junwei ;
Hu, Hezhi ;
Meng, Jiyu ;
Wei, Chunyang ;
Wu, Jie Jayne .
MICROMACHINES, 2022, 13 (09)
[33]   Utility of lab-on-a-chip technology for high-throughput nucleic acid and protein analysis [J].
Hawtin, P ;
Hardern, I ;
Wittig, R ;
Mollenhauer, J ;
Poustka, A ;
Salowsky, R ;
Wulff, T ;
Rizzo, C ;
Wilson, B .
ELECTROPHORESIS, 2005, 26 (19) :3674-3681
[34]   MINIMIZING ETHANOL CARRY-OVER IN CENTRIFUGAL MICROFLUIDIC NUCLEIC ACID EXTRACTION BY ADVANCED BEAD HANDLING AND MANAGEMENT OF DIFFUSIVE MASS TRANSFER [J].
Hin, Sebastian ;
Paust, Nils ;
Rombach, Markus ;
Lueddecke, Jan ;
Specht, Mara ;
Zengerle, Roland ;
Mitsakakis, Konstantinos .
2019 20TH INTERNATIONAL CONFERENCE ON SOLID-STATE SENSORS, ACTUATORS AND MICROSYSTEMS & EUROSENSORS XXXIII (TRANSDUCERS & EUROSENSORS XXXIII), 2019, :130-133
[35]   A digitalized isothermal nucleic acid testing platform based on a pump-free open droplet array microfluidic chip [J].
Mao, Ping ;
Cao, Lei ;
Li, Zedong ;
You, Minli ;
Gao, Bin ;
Xie, Xianghong ;
Xue, Zhenrui ;
Peng, Ping ;
Yao, Chunyan ;
Xu, Feng .
ANALYST, 2021, 146 (22) :6960-6969
[36]   A simple fabrication and integration technique of microlens for microfluidic lab-on-a-chip by overflow of UV resin through holes [J].
Lee, Bong-Kee ;
Park, Jang Min ;
Kim, Dong Sung ;
Kwon, Tai Hun .
CURRENT APPLIED PHYSICS, 2011, 11 (03) :909-913
[37]   Semiconductor sensor embedded microfluidic chip for protein biomarker detection using a bead-based immunoassay combined with deoxyribonucleic acid strand labeling [J].
Lin, Yen-Heng ;
Peng, Po-Yu .
ANALYTICA CHIMICA ACTA, 2015, 869 :34-42
[38]   Integration of IFAST-based nucleic acid extraction and LAMP for on-chip rapid detection of Agroathelia rolfsii in soil [J].
Changtor, Phanupong ;
Rodriguez-Mateos, Pablo ;
Buddhachat, Kittisak ;
Wattanachaiyingcharoen, Wandee ;
Iles, Alexander ;
Kerdphon, Sutthichat ;
Yimtragool, Nonglak ;
Pamme, Nicole .
BIOSENSORS & BIOELECTRONICS, 2024, 250
[39]   Gravity-driven and rotation-controlled microfluidic chip for point-of-care nucleic acid detection in the fully closed environment [J].
Chen, Yanju ;
Zhu, Yuanyuan ;
Wang, Xiaofu ;
Peng, Cheng ;
Wang, Rui ;
Wang, Tingzhang ;
Che, Yang ;
Wu, Jian ;
Xu, Junfeng .
TALANTA, 2024, 267
[40]   Optimization of magnetic bead-based nucleic acid extraction for SARS-CoV-2 testing using readily available reagents [J].
Haile, Simon ;
Nikiforuk, Aidan M. ;
Pandoh, Pawan K. ;
Twa, David D. W. ;
Smailus, Duane E. ;
Nguyen, Jason ;
Pleasance, Stephen ;
Wong, Angus ;
Zhao, Yongjun ;
Eisler, Diane ;
Moksa, Michelle ;
Cao, Qi ;
Wong, Marcus ;
Su, Edmund ;
Krzywinski, Martin ;
Nelson, Jessica ;
Mungall, Andrew J. ;
Tsang, Frankie ;
Prentice, Leah M. ;
Jassem, Agatha ;
Manges, Amee R. ;
Jones, Steven J. M. ;
Coope, Robin J. ;
Prystajecky, Natalie ;
Marra, Marco A. ;
Krajden, Mel ;
Hirst, Martin .
JOURNAL OF VIROLOGICAL METHODS, 2022, 299