A magnetic nanoparticle-based microfluidic device fabricated using a 3D-printed mould for separation of Escherichia coli from blood

被引:6
|
作者
Joskowiak, Agnieszka [1 ,2 ,3 ]
Nogueira, Catarina L. [3 ,4 ,5 ]
Costa, Susana P. [1 ,2 ,3 ,4 ,5 ]
Cunha, Alexandra P. [1 ,2 ,3 ]
Freitas, Paulo P. [3 ,4 ,5 ]
Carvalho, Carla M. [3 ]
机构
[1] Univ Minho, Ctr Biol Engn, Campus Gualtar, P-4710057 Braga, Portugal
[2] LABBELS Associate Lab, Braga, Portugal
[3] Int Iberian Nanotechnol Lab, Av Mestre Jose Veiga S-N, P-4715330 Braga, Portugal
[4] Inst Engn Sistemas & Comp Microsistemas & Nanotecn, Rua Alves Redol 9, P-1000029 Lisbon, Portugal
[5] IN Inst Nanosci & Nanotechnolnol, Rua Alves Redol 9, P-1000029 Lisbon, Portugal
关键词
Microfluidic; 3D-printed; Magnetic nanoparticles; Escherichia coli; Bacteriophage receptor binding protein (RBP); Blood; STREAM INFECTIONS; DIAGNOSIS; SYSTEMS; SEPSIS;
D O I
10.1007/s00604-023-05924-7
中图分类号
O65 [分析化学];
学科分类号
070302 ; 081704 ;
摘要
Herein, A microfluidic device is described, produced with a 3D-printed master mould that rapidly separates and concentrates Escherichia coli directly from whole blood samples, enabling a reduction in the turnaround time of bloodstream infections (BSIs) diagnosis. Moreover, it promotes the cleansing of the blood samples whose complexity frequently hampers bacterial detection. The device comprises a serpentine mixing channel with two inlets, one for blood samples (spiked with bacteria) and the other for magnetic nanoparticles (MNPs) functionalized with a (bacterio)phage receptor-binding protein (RBP) with high specificity for E. coli. After the magnetic labelling of bacteria throughout the serpentine, the microchannel ends with a trapping reservoir where bacteria-MNPs conjugates are concentrated using a permanent magnet. The optimized sample preparation device successfully recovered E. coli (on average, 66%) from tenfold diluted blood spiked within a wide range of bacterial load (10(2) CFU to 10(7) CFU mL(-1)). The non-specific trapping, tested with Staphylococcus aureus, was at a negligible level of 12%. The assay was performed in 30 min directly from diluted blood thus presenting an advantage over the conventional enrichment in blood cultures (BCs). The device is simple and cheap to fabricate and can be tailored for multiple bacterial separation from complex clinical samples by using RBPs targeting different species. Moreover, the possibility to integrate a biosensing element to detect bacteria on-site can provide a reliable, fast, and cost-effective point-of-care device.
引用
收藏
页数:9
相关论文
共 50 条
  • [21] Correction: Corrigendum: 3D-Printed Microfluidic Device for the Detection of Pathogenic Bacteria Using Size-based Separation in Helical Channel with Trapezoid Cross-Section
    Wonjae Lee
    Donghoon Kwon
    Woong Choi
    Gyoo Yeol Jung
    Anthony K. Au
    Albert Folch
    Sangmin Jeon
    Scientific Reports, 5
  • [22] A 3D-printed coaxial microfluidic device approach for generating magnetic liquid metal droplets with large size controllability
    Xiaokang He
    Jie Wu
    Tao Hu
    Shouhu Xuan
    Xinglong Gong
    Microfluidics and Nanofluidics, 2020, 24
  • [23] A 3D-printed coaxial microfluidic device approach for generating magnetic liquid metal droplets with large size controllability
    He, Xiaokang
    Wu, Jie
    Hu, Tao
    Xuan, Shouhu
    Gong, Xinglong
    MICROFLUIDICS AND NANOFLUIDICS, 2020, 24 (04)
  • [24] A 3D-printed, multi-modal microfluidic device for measuring nitric oxide and ATP release from flowing red blood cells
    Hayter, Elizabeth A.
    Azibere, Samuel
    Skrajewski, Lauren A.
    Soule, Logan D.
    Spence, Dana M.
    Martin, R. Scott
    ANALYTICAL METHODS, 2022, 14 (33) : 3171 - 3179
  • [25] Online Aerosol pH Detection Using 3D-Printed Microfluidic Devices with a Novel Magnetic SERS Sensor
    Ji, Xunlong
    Chen, Hui
    Hong, Zijin
    Du, Jingjing
    Sun, Zhenli
    ANALYTICAL CHEMISTRY, 2024, 96 (48) : 18977 - 18982
  • [26] Paper-Based Microfluidic Analytical Device Patterned by Label Printer for Point-of-Care Blood Glucose and Hematocrit Detection Using 3D-Printed Smartphone Cassette
    Cai, Zong-Xiao
    Jiang, Ming-Zhang
    Chuang, Ya-Ju
    Kuo, Ju-Nan
    SENSORS, 2024, 24 (15)
  • [27] 3D-Printed Microfluidic Device for the Detection of Pathogenic Bacteria Using Size-based Separation in Helical Channel with Trapezoid Cross-Section (vol 5, 7717, 2015)
    Lee, Wonjae
    Kwon, Donghoon
    Choi, Woong
    Jung, Gyoo Yeol
    Au, Anthony K.
    Folch, Albert
    Jeon, Sangmin
    SCIENTIFIC REPORTS, 2015, 5
  • [28] 3D-Printed Modular Microfluidic Device Enabling Preconcentrating Bacteria and Purifying Bacterial DNA in Blood for Improving the Sensitivity of Molecular Diagnostics
    Abafogi, Abdurhaman Teyib
    Kim, Jaewon
    Lee, Jinyeop
    Mohammed, Merem Omer
    van Noort, Danny
    Park, Sungsu
    SENSORS, 2020, 20 (04)
  • [29] 3D-printed microfluidic magnetic preconcentrator for the detection of bacterial pathogen using an ATP luminometer and antibody-conjugated magnetic nanoparticles
    Park, Chanyong
    Lee, Jinyeop
    Kim, Yonghee
    Kim, Jaewon
    Lee, Jinkee
    Park, Sungsu
    JOURNAL OF MICROBIOLOGICAL METHODS, 2017, 132 : 128 - 133
  • [30] Hybrid negative enrichment of circulating tumor cells from whole blood in a 3D-printed monolithic device
    Chu, Chia-Heng
    Liu, Ruxiu
    Ozkaya-Ahmadov, Tevhide
    Boya, Mert
    Swain, Brandi E.
    Owens, Jacob M.
    Burentugs, Enerelt
    Bilen, Mehmet Asim
    McDonald, John F.
    Sarioglu, A. Fatih
    LAB ON A CHIP, 2019, 19 (20) : 3427 - 3437