Directly immersible silicon photonic probes: Application to rapid SARS-CoV-2 serological testing

被引:11
作者
Angelopoulou, Michailia [1 ]
Makarona, Eleni [2 ]
Salapatas, Alexandros [2 ]
Misiakos, Konstantinos [2 ]
Synolaki, Evgenia [3 ]
Ioannidis, Anastasios [4 ]
Chatzipanagiotou, Stylianos
Ritvos, Mikael A. [5 ,6 ,7 ,8 ]
Pasternack, Arja [5 ]
Ritvos, Olli [5 ]
Petrou, Panagiota S. [1 ,9 ]
Kakabakos, Sotirios E.
机构
[1] NCSR Demokritos, Inst Nucl & Radiol Sci & Technol Energy & Safety, Aghia Paraskevi 15341, Greece
[2] NCSR Demokritos, Inst Nanosci & Nanotechnol, Aghia Paraskevi 15341, Greece
[3] Biomed Res Fdn Acad Athens, Ctr Clin Expt Surg & Translat Res, Athens 11527, Greece
[4] Univ Peloponnese, Fac Hlth Sci, Dept Nursing, Tripoli 22100, Greece
[5] Natl & Kapodistrian Univ Athens, Aeginit Hosp, Med Sch, Dept Med Biopathol & Clin Microbiol, Athens 11528, Greece
[6] Univ Helsinki, Fac Med, Dept Physiol, Helsinki 00014, Finland
[7] KTH Royal Inst Technol, Sch Engn Sci Chem Biotechnol & Hlth, Stockholm, Sweden
[8] Nord SARS Response AB, S-19455 Stockholm, Sweden
[9] NCSR Demokritos, INRASTES, Res Immunoassays Immunosensors Lab, Aghia Paraskevi 15341, Greece
关键词
Immersible sensor; Silicon nitride waveguides; Broad-band Mach-Zehnder interferometry; Label-free detection; SARS-CoV-2; antibody; MACH-ZEHNDER INTERFEROMETERS; BEER SAMPLES; IGG; ANTIGENS; ANTIBODY;
D O I
10.1016/j.bios.2022.114570
中图分类号
Q6 [生物物理学];
学科分类号
071011 ;
摘要
Silicon photonic probes based on broad-band Mach-Zehnder interferometry are explored for the first time as directly immersible immunosensors alleviating the need for microfluidics and pumps. Each probe includes two U- shaped waveguides allowing light in- and out-coupling from the same chip side through a bifurcated fiber and a mechanical coupler. At the opposite chip side, two Mach-Zehnder interferometers (MZI) are located enabling real-time monitoring of binding reactions by immersion of this chip side into a sample. The sensing arm windows of the two MZIs have different length resulting in two distinct peaks in the Fourier domain, the phase shift of which can be monitored independently through Fast Fourier Transform of the output spectrum. The photonic probes analytical potential was demonstrated through detection of antibodies against SARS-CoV-2 in human serum samples. For this, one MZI was functionalized with the Receptor Binding Domain (RBD) of SARS-CoV-2 Spike 1 protein, and the other with bovine serum albumin to serve as reference. The biofunctionalized probes were immersed for 10 min in human serum sample and then for 5 min in goat anti-human IgG Fc specific antibody solution. Using a humanized rat antibody against SARS-CoV-2 RBD, a detection limit of 20 ng/mL was determined. Analysis of human serum samples indicated that the proposed sensor discriminated completely non- infected/non-vaccinated from vaccinated individuals, and the antibodies levels determined correlated well with those determined in the same samples by ELISA. These results demonstrated the potential of the proposed sensor to serve as an efficient tool for expeditious point-of-care testing
引用
收藏
页数:9
相关论文
共 37 条
  • [1] Sensing of COVID-19 Antibodies in Seconds via Aerosol Jet Nanoprinted Reduced-Graphene-Oxide-Coated 3D Electrodes
    Ali, Md Azahar
    Hu, Chunshan
    Jahan, Sanjida
    Yuan, Bin
    Saleh, Mohammad Sadeq
    Ju, Enguo
    Gao, Shou-Jiang
    Panat, Rahul
    [J]. ADVANCED MATERIALS, 2021, 33 (07)
  • [2] Amanat F, 2020, NAT MED, V26, P1033, DOI [10.1038/s41591-020-0913-5, 10.1101/2020.03.17.20037713]
  • [3] Assessment of goat milk adulteration with a label-free monolithically integrated optoelectronic biosensor
    Angelopoulou, Ieichailia
    Botsialas, Athanasios
    Salapatas, Alexandros
    Petrou, Panagiota S.
    Haasnoot, Willem
    Makarona, Eleni
    Jobst, Gerhard
    Goustouridis, Dimitrios
    Siafaka-Kapadai, Athanasia
    Raptis, Ioannis
    Misiakos, Konstantinos
    Kakabakos, Sotirios E.
    [J]. ANALYTICAL AND BIOANALYTICAL CHEMISTRY, 2015, 407 (14) : 3995 - 4004
  • [4] Ultrafast Multiplexed-Allergen Detection through Advanced Fluidic Design and Monolithic Interferometric Silicon Chips
    Angelopoulou, Michailia
    Petrou, Panagiota S.
    Makarona, Eleni
    Haasnoot, Willem
    Moser, Isabella
    Jobst, Gerhard
    Goustouridis, Dimitrios
    Lees, Michele
    Kalatzi, Kalliopi
    Raptis, Ioannis
    Misiakos, Konstantinos
    Kakabakos, Sotirios E.
    [J]. ANALYTICAL CHEMISTRY, 2018, 90 (15) : 9559 - 9567
  • [5] Developments in biosensors for CoV detection and future trends
    Antiochia, Riccarda
    [J]. BIOSENSORS & BIOELECTRONICS, 2021, 173
  • [6] Selective chemical modification of silicon nitride/silicon oxide nanostructures to develop label-free biosensors
    Banuls, Maria-Jose
    Gonzalez-Pedro, Victoria
    Barrios, Carlos A.
    Puchades, Rosa
    Maquieira, Angel
    [J]. BIOSENSORS & BIOELECTRONICS, 2010, 25 (06) : 1460 - 1466
  • [7] Diagnostic accuracy of serological tests for covid-19: systematic review and meta-analysis
    Bastos, Mayara Lisboa
    Tavaziva, Gamuchirai
    Abidi, Syed Kunal
    Campbell, Jonathon R.
    Haraoui, Louis -Patrick
    Johnston, James C.
    Lan, Zhiyi
    Law, Stephanie
    MacLean, Emily
    Trajman, Anete
    Menzies, Dick
    Benedetti, Andrea
    Khan, Faiz Ahmad
    [J]. BMJ-BRITISH MEDICAL JOURNAL, 2020, 370
  • [8] Multiplexed detection and quantification of human antibody response to COVID-19 infection using a plasmon enhanced biosensor platform
    Cady, Nathaniel C.
    Tokranova, Natalya
    Minor, Armond
    Nikvand, Nima
    Strle, Klemen
    Lee, William T.
    Page, William
    Guignon, Ernest
    Pilar, Arturo
    Gibson, George N.
    [J]. BIOSENSORS & BIOELECTRONICS, 2021, 171 (171)
  • [9] Rapid and sensitive detection of SARS-CoV-2 antibodies by biolayer interferometry
    Dzimianski, John V.
    Lorig-Roach, Nicholas
    O'Rourke, Sara M.
    Alexander, David L.
    Kimmey, Jacqueline M.
    DuBois, Rebecca M.
    [J]. SCIENTIFIC REPORTS, 2020, 10 (01)
  • [10] SARS-CoV-2 seroprevalence in COVID-19 hotspots
    Eckerle, Isabella
    Meyer, Benjamin
    [J]. LANCET, 2020, 396 (10250) : 514 - 515