Plasmonic and label-free real-time quantitative PCR for point-of-care diagnostics

被引:17
|
作者
Mohammadyousef, Padideh [1 ]
Paliouras, Miltiadis [2 ,3 ]
Trifiro, Mark A. [2 ,3 ]
Kirk, Andrew G. [1 ]
机构
[1] McGill Univ, Dept Elect & Comp Engn, Montreal, PQ, Canada
[2] McGill Univ, Dept Med, Montreal, PQ, Canada
[3] Jewish Gen Hosp, Lady Davis Inst Med Res, Montreal, PQ, Canada
关键词
POLYMERASE-CHAIN-REACTION; ONE-STEP; DNA; GOLD; AMPLIFICATION; NANOPARTICLES; IRRADIATION;
D O I
10.1039/d0an02496a
中图分类号
O65 [分析化学];
学科分类号
070302 ; 081704 ;
摘要
In response to the world's medical community's need for accurate and immediate infectious pathogen detection, many researchers have focused on adapting the standard molecular diagnostic method of polymerase chain reaction (PCR) for point-of-care (POC) applications. PCR technology is not without its shortcomings; current platforms can be bulky, slow, and power-intensive. Although there have been some advances in microfluidic PCR devices, a simple-to-operate and fabricate PCR device is still lacking. In the first part of this paper, we introduce a compact plasmonic PCR thermocycler in which fast DNA amplification is derived from efficient photothermal heating of a colloidal reaction mixture containing gold nanorods (AuNRs) using a small-scale vertical-cavity surface-emitting laser (VCSEL). Using this method, we demonstrate 30 cycle-assay time of sub-ten minutes for successful Chlamydia trachomatis DNA amplification in 20 mu L total PCR sample volume. In the second part, we report an ultrasensitive real-time amplicon detection strategy which is based on cycle-by-cycle monitoring of 260 nm absorption of the PCR sample. This was accomplished by irradiating the PCR sample using a UV LED and collecting the transmitted optical power with a photodetector. The UV absorption dependency on the nucleotides' structural degree of freedom gives rise to distinctive features in the shape of UV amplification curves for the determination of PCR results, thus circumventing the need for the complicated design of target-specific probes or intercalating fluorophores. This amplicon quantification method has a high detection sensitivity of one DNA copy. This is the first demonstration of a compact plasmonic thermocycler combined with a real-time fluorophore-free quantitative amplicon detection system. The small footprint of our PCR device stems from hardware miniaturization, while abundant sample volume facilitates highly sensitive detection and fluid handling required for in-field sample analysis, thereby making it an excellent candidate for POC molecular diagnostics.
引用
收藏
页码:5619 / 5630
页数:12
相关论文
共 50 条
  • [21] The MIQE Guidelines: Minimum Information for Publication of Quantitative Real-Time PCR Experiments
    Bustin, Stephen A.
    Benes, Vladimir
    Garson, Jeremy A.
    Hellemans, Jan
    Huggett, Jim
    Kubista, Mikael
    Mueller, Reinhold
    Nolan, Tania
    Pfaffl, Michael W.
    Shipley, Gregory L.
    Vandesompele, Jo
    Wittwer, Carl T.
    CLINICAL CHEMISTRY, 2009, 55 (04) : 611 - 622
  • [22] Mediator Probe PCR: A Novel Approach for Detection of Real-Time PCR Based on Label-Free Primary Probes and Standardized Secondary Universal Fluorogenic Reporters
    Faltin, Bernd
    Wadle, Simon
    Roth, Guenter
    Zengerle, Roland
    von Stetten, Felix
    CLINICAL CHEMISTRY, 2012, 58 (11) : 1546 - 1556
  • [23] Gating a Single Cell: A Label-Free and Real-Time Measurement Method for Cellular Progression
    Oo, Saw Lin
    Venkatesh, Shishir
    Ilyas, Abdul-Mojeed
    Karthikeyan, Vaithinathan
    Arava, Clement Manohar
    Kong, Eva Yi
    Yeung, Chi-Chung
    Chen, Xianfeng
    Yu, Peter K. N.
    Roy, Vellaisamy A. L.
    ANALYTICAL CHEMISTRY, 2020, 92 (02) : 1738 - 1745
  • [24] Real-time detection of telomerase activity in cancer cells using a label-free electrochemical impedimetric biosensing microchip
    Cunci, Lisandro
    Vargas, Marina Martinez
    Cunci, Roman
    Gomez-Moreno, Ramon
    Perez, Ivan
    Baerga-Ortiz, Abel
    Gonzalez, Carlos I.
    Cabrera, Carlos R.
    RSC ADVANCES, 2014, 4 (94): : 52357 - 52365
  • [25] Evaluation of uncertainty in quantitative real-time PCR
    Love, John L.
    Scholes, Paula
    Gilpin, Brent
    Savill, Marion
    Lin, Susan
    Samuel, Laly
    JOURNAL OF MICROBIOLOGICAL METHODS, 2006, 67 (02) : 349 - 356
  • [26] Randomly arrayed G-quadruplexes for label-free and real-time assay of enzyme activity
    Liu, Zhuoliang
    Li, Wang
    Nie, Zhou
    Peng, Feifei
    Huang, Yan
    Yao, Shouzhuo
    CHEMICAL COMMUNICATIONS, 2014, 50 (52) : 6875 - 6878
  • [27] Novel Micro-Nano Optoelectronic Biosensor for Label-Free Real-Time Biofilm Monitoring
    Brunetti, Giuseppe
    Conteduca, Donato
    Armenise, Mario Nicola
    Ciminelli, Caterina
    BIOSENSORS-BASEL, 2021, 11 (10):
  • [28] Real-time detection of virus antibody interaction by label-free common-path interferometry
    Alhaddad, Samer
    Bey, Houda
    Thouvenin, Olivier
    Boulanger, Pascale
    Boccara, Claude
    Boccara, Martine
    Izeddin, Ignacio
    BIOPHYSICAL REPORTS, 2023, 3 (03):
  • [29] Sensor Array: Impedimetric Label-Free Sensing of DNA Hybridization in Real Time for Rapid, PCR-Based Detection of Microorganisms
    Ghindilis, Andrei L.
    Smith, Maria W.
    Schwarzkopf, Kevin R.
    Zhan, Changqing
    Evans, David R.
    Baptista, Antonio M.
    Simon, Holly M.
    ELECTROANALYSIS, 2009, 21 (13) : 1459 - 1468
  • [30] Electrochemical real-time nucleic acid amplification: towards point-of-care quantification of pathogens
    Patterson, Adriana S.
    Hsieh, Kuangwen
    Soh, H. Tom
    Plaxco, Kevin W.
    TRENDS IN BIOTECHNOLOGY, 2013, 31 (12) : 704 - 712