Fluorescent biosensor for the detection of hyaluronidase: intensity-based ratiometric sensing and fluorescence lifetime-based sensing using a long lifetime azadioxatriangulenium (ADOTA) fluorophore

被引:0
|
作者
Rahul Chib
Mark Mummert
Ilkay Bora
Bo W. Laursen
Sunil Shah
Robert Pendry
Ignacy Gryczynski
Julian Borejdo
Zygmunt Gryczynski
Rafal Fudala
机构
[1] University of North Texas Health Science Center,Department of Cell Biology, Immunology and Microbiology, Center for Fluorescence Technologies and Nanomedicine
[2] University of North Texas Health Science Center,Mental Sciences Institute
[3] University of Copenhagen,Nano
[4] Texas Christian University,Science Center & Department of Chemistry
来源
关键词
Hyaluronidase sensing; Azadioxatriangulenium fluorophore; Ratiometric sensing; Fluorescence lifetime-based sensing; Fluorescence-based assay;
D O I
暂无
中图分类号
学科分类号
摘要
In this report, we have designed a rapid and sensitive, intensity-based ratiometric sensing as well as lifetime-based sensing probe for the detection of hyaluronidase activity. Hyaluronidase expression is known to be upregulated in various pathological conditions. We have developed a fluorescent probe by heavy labeling of hyaluronic acid with a new orange/red-emitting organic azadioxatriangulenium (ADOTA) fluorophore, which exhibits a long fluorescence lifetime (∼20 ns). The ADOTA fluorophore in water has a peak fluorescence lifetime of ∼20 ns and emission spectra centered at 560 nm. The heavily ADOTA-labeled hyaluronic acid (HA-ADOTA) shows a red shift in the peak emission wavelength (605 nm), a weak fluorescence signal, and a shorter fluorescence lifetime (∼4 ns) due to efficient self-quenching and formation of aggregates. In the presence of hyaluronidase, the brightness and fluorescence lifetime of the sample increase with a blue shift in the peak emission to its original wavelength at 560 nm. The ratio of the fluorescence intensity of the HA-ADOTA probe at 560 and 605 nm can be used as the sensing method for the detection of hyaluronidase. The cleavage of the hyaluronic acid macromolecule reduces the energy migration between ADOTA molecules, as well as the degree of self-quenching and aggregation. This probe can be efficiently used for both intensity-based ratiometric sensing as well as fluorescence lifetime-based sensing of hyaluronidase. The proposed method makes it a rapid and sensitive assay, useful for analyzing levels of hyaluronidase in relevant clinical samples like urine or plasma.
引用
收藏
页码:3811 / 3821
页数:10
相关论文
共 50 条
  • [31] Frequency-domain flow cytometry: Fluorescence lifetime-based sensing technology for analyzing cells and chromosomes labeled with fluorescent probes
    Steinkamp, JA
    Crissman, HA
    Lehnert, BE
    Lehnert, NM
    Deka, C
    ADVANCES IN FLUORESCENCE SENSING TECHNOLOGY III, 1997, 2980 : 96 - 106
  • [32] A Broad-Range Fluorescence Lifetime pH Sensing Material Based on a Single Organic Fluorophore
    Christian Totland
    Peter J. Thomas
    Bodil Holst
    Naureen Akhtar
    Jostein Hovdenes
    Tore Skodvin
    Journal of Fluorescence, 2019, 29 : 1125 - 1131
  • [33] A Broad-Range Fluorescence Lifetime pH Sensing Material Based on a Single Organic Fluorophore
    Totland, Christian
    Thomas, Peter J.
    Holst, Bodil
    Akhtar, Naureen
    Hovdenes, Jostein
    Skodvin, Tore
    JOURNAL OF FLUORESCENCE, 2019, 29 (05) : 1125 - 1131
  • [34] Fluorescence intensity- and lifetime-based glucose sensing using an engineered high-Kd mutant of glucose/galactose-binding protein
    Khan, Faaizah
    Saxl, Tania E.
    Pickup, John C.
    ANALYTICAL BIOCHEMISTRY, 2010, 399 (01) : 39 - 43
  • [35] Phase-sensitive multichannel detection system for chemical and biosensor arrays and fluorescence lifetime-based imaging
    Rabinovich, E
    O'Brien, MJ
    Brueck, SRJ
    Lopez, GP
    REVIEW OF SCIENTIFIC INSTRUMENTS, 2000, 71 (02): : 522 - 529
  • [36] Na+ Selective Fluorescent Tools Based on Fluorescence Intensity Enhancements, Lifetime Changes, and on a Ratiometric Response
    Schwarze, Thomas
    Riemer, Janine
    Mueller, Holger
    John, Leonard
    Holdt, Hans-Juergen
    Wessig, Pablo
    CHEMISTRY-A EUROPEAN JOURNAL, 2019, 25 (53) : 12412 - 12422
  • [37] Glucose sensor for low-cost lifetime-based sensing using a genetically engineered protein
    Tolosa, L
    Gryczynski, I
    Eichhorn, LR
    Dattelbaum, JD
    Castellano, FN
    Rao, G
    Lakowicz, JR
    ANALYTICAL BIOCHEMISTRY, 1999, 267 (01) : 114 - 120
  • [38] Ratiometric and fluorescence lifetime-based biosensors incorporating cytochrome c′ and the detection of extra- and intracellular macrophage nitric oxide
    Barker, SLR
    Clark, HA
    Swallen, SF
    Kopelman, R
    Tsang, AW
    Swanson, JA
    ANALYTICAL CHEMISTRY, 1999, 71 (09) : 1767 - 1772
  • [39] Luminescence Lifetime-Based Sensing Platform Based on Cyclometalated Iridium(III) Complexes for the Detection of Perfluorooctanoic Acid in Aqueous Samples
    Zhang, Kun
    Carrod, Andrew J.
    Del Giorgio, Elena
    Hughes, Joseph
    Rurack, Knut
    Bennet, Francesca
    Hodoroaba, Vasile-Dan
    Harrad, Stuart
    Pikramenou, Zoe
    ANALYTICAL CHEMISTRY, 2024, 96 (04) : 1565 - 1575
  • [40] Fluorescence Lifetime-Based Tumor Contrast Enhancement Using an EGFR Antibody-Labeled Near-Infrared Fluorophore
    Pal, Rahul
    Kang, Homan
    Choi, Hak Soo
    Kumar, Anand T. N.
    CLINICAL CANCER RESEARCH, 2019, 25 (22) : 6653 - 6661