Effects of Salt Concentration on a Magnetic Nanoparticle-Based Aggregation Assay with a Tunable Dynamic Range

被引:0
|
作者
Moss, Gabrielle [1 ]
Knopke, Christian [2 ]
Diamond, Solomon G. [1 ,2 ]
机构
[1] Dartmouth Coll, Thayer Sch Engn, Hanover, NH 03755 USA
[2] Lodestone Biomed LLC, Lebanon, NH 03766 USA
关键词
aggregation assay; magnetic particle spectroscopy; biosensor; tunable dynamic range; GOLD NANOPARTICLES; LIGAND DENSITY; CORONA; SIZE;
D O I
10.3390/s24196241
中图分类号
O65 [分析化学];
学科分类号
070302 ; 081704 ;
摘要
Magnetic nanoparticles (MNPs) can be functionalized with antibodies to give them an affinity for a biomarker of interest. Functionalized MNPs (fMNPs) cluster in the presence of a multivalent target, causing a change in their magnetization. Target concentration can be proportional to the 3rd harmonic phase of the fMNP magnetization signal. fMNP clustering can also be induced with salt. Generally, salt can alter the stability of charge stabilized fMNPs causing a change in magnetization that is not proportional to the target concentration. We have developed a model system consisting of biotinylated MNPs (biotin-MNPs) that target streptavidin to study the effects of salt concentration on fMNP-based biosensing in simulated in vivo conditions. We have found that biotin-MNP streptavidin targeting was independent of salt concentration for 0.005x to 1.00x phosphate buffered saline (PBS) solutions. Additionally, we show that our biosensor's measurable concentration range (dynamic range) can be tuned with biotin density. Our results can be leveraged to design an in vivo nanoparticle (NP)-based biosensor with enhanced efficacy in the event of varying salt concentrations.
引用
收藏
页数:17
相关论文
共 50 条
  • [1] Extension of dynamic range of sensitive nanoparticle-based immunoassays
    Hyytia, Heidi
    Ristiniemi, Noora
    Laitinen, Paivi
    Lovgren, Timo
    Pettersson, Kim
    ANALYTICAL BIOCHEMISTRY, 2014, 446 : 82 - 86
  • [2] Luminometric Nanoparticle-Based Assay for High Sensitivity Detection of β-Amyloid Aggregation
    Pihlasalo, Sari
    Deguchi, Takahiro
    Virtamo, Maria
    Jacobino, Jenna
    Chary, Karthik
    Lopez-Picon, Francisco R.
    Brunhofer-Bolzer, Gerda
    Huttunen, Roope
    Fallarero, Adyary
    Vuorela, Pia
    Harma, Harri
    ANALYTICAL CHEMISTRY, 2017, 89 (04) : 2398 - 2404
  • [3] Magnetic Nanoparticle-Based Theranostics
    Xie, Jin
    Jon, Sangyong
    THERANOSTICS, 2012, 2 (01): : 122 - 124
  • [4] Gold Nanoparticle-Based Dynamic Light Scattering Assay for Mercury Ion Detection
    Ma Li-Na
    Liu Dian-Jun
    Wang Zhen-Xin
    CHINESE JOURNAL OF ANALYTICAL CHEMISTRY, 2014, 42 (03) : 332 - 336
  • [5] Magnetic nanoparticle-based cancer nanodiagnostics
    Yousaf, Muhammad Zubair
    Yu Jing
    Hou Yang-Long
    Gao Song
    CHINESE PHYSICS B, 2013, 22 (05)
  • [6] Magnetic nanoparticle-based cancer nanodiagnostics
    Muhammad Zubair Yousafa
    余靓
    侯仰龙
    高松
    Chinese Physics B, 2013, 22 (05) : 5 - 27
  • [7] Magnetic nanoparticle-based cancer therapy
    余靓
    黄冬雁
    Muhammad Zubair Yousaf
    侯仰龙
    高松
    Chinese Physics B, 2013, (02) : 27 - 39
  • [8] Magnetic nanoparticle-based cancer therapy
    Yu Jing
    Huang Dong-Yan
    Yousaf, Muhammad Zubair
    Hou Yang-Long
    Gao Song
    CHINESE PHYSICS B, 2013, 22 (02)
  • [9] Aflatoxin B1 Determination in Peanuts by Magnetic Nanoparticle-Based Immunofluorescence Assay
    Becheva, Zlatina R.
    Gabrovska, Katya I.
    Godjevargova, Tzonka I.
    Zvereva, Elena A.
    FOOD ANALYTICAL METHODS, 2019, 12 (06) : 1456 - 1465
  • [10] A magnetic nanoparticle-based lateral flow immunochromatography assay for the rapid detection of fluoroquinolones in milk
    Liu, Chang
    Yang, Linyan
    Zhang, Wei
    Li, Daowen
    Li, Liuan
    Wang, Hongyu
    Ma, Yi
    Li, Cun
    EUROPEAN FOOD RESEARCH AND TECHNOLOGY, 2021, 247 (10) : 2645 - 2656