Label-free detection of nosocomial bacteria using a nanophotonic interferometric biosensor

被引:1
|
作者
Maldonado, Jesus [1 ,2 ]
Estevez, M. -Carmen [1 ,2 ]
Fernandez-Gavela, Adrian [1 ,2 ]
Jose Gonzalez-Lopez, Juan [3 ]
Belen Gonzalez-Guerrero, Ana [1 ,2 ]
Lechuga, Laura M. [1 ,2 ]
机构
[1] Catalan Inst Nanosci & Nanotechnol ICN2, CSIC, Nanobiosensors & Bioanalyt Applicat Grp, CIBER,BBN, Campus UAB, Barcelona 08193, Spain
[2] BIST, Campus UAB, Barcelona 08193, Spain
[3] Univ Autonoma Barcelona, Vall dHebron Inst Recerca VHIR, Hosp Univ Vall dHebron, Dept Clin Microbiol, Barcelona 08035, Spain
关键词
RESISTANT STAPHYLOCOCCUS-AUREUS; PSEUDOMONAS-AERUGINOSA; MRSA; DIAGNOSIS; SILICON; GENE; MECA;
D O I
10.1039/c9an01485c
中图分类号
O65 [分析化学];
学科分类号
070302 ; 081704 ;
摘要
Nosocomial infections are a major concern at the worldwide level. Early and accurate identification of nosocomial pathogens is crucial to provide timely and adequate treatment. A prompt response also prevents the progression of the infection to life-threatening conditions, such as septicemia or generalized bloodstream infection. We have implemented two highly sensitive methodologies using an ultrasensitive photonic biosensor based on a bimodal waveguide interferometer (BiMW) for the fast detection of Pseudomonas aeruginosa and methicillin-resistant Staphylococcus aureus (MRSA), two of the most prevalent bacteria associated with nosocomial infections. For that, we have developed a biofunctionalization strategy based on the use of a PEGylated silane (silane-PEG-COOH) which provides a highly resistant and bacteria-repelling surface, which is crucial to specifically detect each bacterium. Two different biosensor assays have been set under standard buffer conditions: one based on a specific direct immunoassay employing polyclonal antibodies for the detection of P. aeruginosa and another one employing aptamers for the direct detection of MRSA. The biosensor immunoassay for P. aeruginosa is fast (it only takes 12 min) and specific and has experimentally detected concentrations down to 800 cfu mL(-1) (cfu: colony forming unit). The second one relies on the use of an aptamer that specifically detects penicillin-binding protein 2a (PBP2a), a protein only expressed in the MRSA mutant, providing a photonic biosensor with the ability to identify the resistant pathogen MRSA and differentiate it from methicillin-susceptible S. aureus (MSSA). Direct, label-free, and selective detection of whole MRSA bacteria has been achieved, making possible the direct detection of also 800 cfu mL(-1). According to the signal-to-noise (S/N) ratio of the device, a theoretical limit of detection (LOD) of around 49 and 29 cfu mL(-1) was estimated for P. aeruginosa and MRSA, respectively. Both results obtained under standard conditions reveal the great potential this interferometric biosensor device has as a versatile and specific tool for bacterial detection and quantification, providing a rapid method for the identification of nosocomial pathogens within the clinical requirements of sensitivity for the diagnosis of infections.
引用
收藏
页码:497 / 506
页数:10
相关论文
共 50 条
  • [31] Label-Free Thrombin Detection Using a Tapered Fiber-Optic Interferometric Aptasensor
    Sun, Dandan
    Sun, Li-Peng
    Guo, Tuan
    Guan, Bai-Ou
    JOURNAL OF LIGHTWAVE TECHNOLOGY, 2019, 37 (11) : 2756 - 2761
  • [32] Label-free liquid crystal biosensor for cecropin B detection
    Zhang, Jiao
    Su, Xiuxia
    Yang, Dong
    Luan, Chonglin
    TALANTA, 2018, 186 : 60 - 64
  • [33] A nanoplasmonic biosensor for label-free multiplex detection of cancer biomarkers
    Lee, Jong Uk
    Nguyen, Anh H.
    Sim, Sang Jun
    BIOSENSORS & BIOELECTRONICS, 2015, 74 : 341 - 346
  • [34] An electrostatic micromechanical biosensor for electrical detection of label-free DNA
    Choi, Ji-Min
    Hwang, Sung-Up
    Kim, Chang-Hoon
    Yang, Hyun-Ho
    Jung, Cheulhee
    Park, Hyun Gyu
    Yoon, Jun-Bo
    Choi, Yang-Kyu
    APPLIED PHYSICS LETTERS, 2012, 100 (16)
  • [35] A label-free fiber optic biosensor for Salmonella Typhimurium detection
    Kaushik, Siddharth
    Pandey, Amit
    Tiwari, Umesh K.
    Sinha, Ravindra K.
    OPTICAL FIBER TECHNOLOGY, 2018, 46 : 95 - 103
  • [36] Plasmonic biosensor for label-free G-quadruplexes detection
    Qiu, Suyan
    Zhao, Fusheng
    Santos, Greggy M.
    Shih, Wei-Chuan
    FRONTIERS IN BIOLOGICAL DETECTION: FROM NANOSENSORS TO SYSTEMS VIII, 2016, 9725
  • [37] A Label-Free Electronic Biosensor for Detection of Bone Turnover Markers
    Yun, Yeo-Heung
    Bhattacharya, Amit
    Watts, Nelson B.
    Schulz, Mark J.
    SENSORS, 2009, 9 (10) : 7957 - 7969
  • [38] Direct and Label-Free Quantification of Micro-RNA-181a at Attomolar Level in Complex Media Using a Nanophotonic Biosensor
    Huertas, Cesar S.
    Farina, David
    Lechuga, Laura M.
    ACS SENSORS, 2016, 1 (06): : 748 - 756
  • [39] Interferometric Biosensor for High Sensitive Label-Free Recording of HiPS Cardiomyocytes Contraction in Vitro
    Boschi, Alessio
    Iachetta, Giuseppina
    Buonocore, Salvatore
    Hubarevich, Aliaksandr
    Hurtaud, Julien
    Moreddu, Rosalia
    d'Amora, Marta
    Formoso, Maria Blanco
    Tantussi, Francesco
    Dipalo, Michele
    De Angelis, Francesco
    NANO LETTERS, 2024, 24 (22) : 6451 - 6458
  • [40] Label-free visible colorimetric biosensor for detection of multiple pathogenic bacteria based on engineered polydiacetylene liposomes
    Zhou, Jin
    Duan, Menglong
    Huang, Diwen
    Shao, Hui
    Zhou, Yue
    Fan, Yubo
    JOURNAL OF COLLOID AND INTERFACE SCIENCE, 2022, 606 : 1684 - 1694