Bu-gao YANG, Yi ZHAO, Xiao-fei WEI, et al. Preparation of Fluorescent pH Nanosensor Based on Flourescein Isothiocyanate. [J]. Chinese Journal of Luminescence 41(6):729-733(2020)
DOI:
Bu-gao YANG, Yi ZHAO, Xiao-fei WEI, et al. Preparation of Fluorescent pH Nanosensor Based on Flourescein Isothiocyanate. [J]. Chinese Journal of Luminescence 41(6):729-733(2020) DOI: 10.3788/fgxb20204106.0729.
Preparation of Fluorescent pH Nanosensor Based on Flourescein Isothiocyanate
The non-invasive and real-time pH detection is of significant importance in biomedicine fields. In this paper, a fluorescent pH nanosensor based on flourescein isothiocyanate(FITC) is prepared by a facile coprecipiation method. The fluorescence intensity of FITC changes obviously with the increase of pH. When the pH changes from 3 to 9, the fluorescence intensity of FITC increases up to about 38 times. The pH detection can be realized by measuring fluorescence intensity changes of FITC. The value of p,K,a is calculated to be 6.07. The fluorescent pH nanosensor has small particle size, high sensitivity, good reversibility and excellent biocompatibility, which is promising in intracellular pH detection.
KNEIPP J, KNEIPP H, WITTIG B, et al.. Novel optical nanosensors for probing and imaging live cells[J].Nanomed.:Nanotechnol., Biol. Med., 2010, 6(2):214-226.
ISLAM S, BIDIN N, RIAZ S, et al.. Sol-gel based fiber optic pH nanosensor:structural and sensing properties[J].Sens. Actuators A Phys., 2016, 238:8-18.
WANG X D, STOLWIJK J A, LANG T, et al.. Ultra-small, highly stable, and sensitive dual nanosensors for imaging intracellular oxygen and pH in cytosol[J].J. Am. Chem. Soc., 2012, 134(41):17011-17014.
FUJISAKU T, TANABE R, ONODA S, et al.. pH nanosensor using electronic spins in diamond[J].ACS Nano, 2019, 13(10):11726-11732.
SHAMSIPUR M, BARATI A, NEMATIFAR Z. Fluorescent pH nanosensors:design strategies and applications[J].J. Photochem. Photobiol. C Photochem. Rev., 2019, 39:76-141.
WENCEL D, ABEL T, MCDONAGH C. Optical chemical pH sensors[J].Anal. Chem., 2014, 86(1):15-29.
PENG H S, STOLWIJK J A, SUN L N, et al.. A nanogel for ratiometric fluorescent sensing of intracellular pH values[J].Angew. Chem. Int. Ed., 2010, 49(25):4246-4249.
LU H G, JIN Y G, TIAN Y Q, et al.. New ratiometric optical oxygen and pH dual sensors with three emission colors for measuring photosynthetic activity in cyanobacteria[J].J. Mater. Chem., 2011, 21(48):19293-19301.
SCHREML S, MEIER R J, WOLFBEIS O S, et al.. 2D luminescence imaging of pH in vivo[J].Proc. Natl. Acad. Sci. USA, 2011, 108(6):2432-2437.
WANG X D, MEIER R J, WOLFBEIS O S. A fluorophore-doped polymer nanomaterial for referenced imaging of pH and temperature with sub-micrometer resolution[J].Adv. Funct. Mater., 2012, 22(20):4202-4207.
WANG C, OTTO S, DORN M, et al.. Luminescent TOP nanosensors for simultaneously measuring temperature, oxygen, and pH at a single excitation wavelength[J].Anal. Chem., 2019, 91(3):2337-2344.
WANG X H, PENG H S, YANG L, et al.. Targetable phosphorescent oxygen nanosensors for the assessment of tumor mitochondrial dysfunction by monitoring the respiratory activity[J].Angew. Chem. Int. Ed., 2014, 53(46):12471-12475.
SHI W, LI X H, MA H M. Fluorescent probes and nanoparticles for intracellular sensing of pH values[J].Methods Appl. Fluoresc., 2014, 2(4):042001.
MA T C, MA Y, LIU S J, et al.. Dye-conjugated upconversion nanoparticles for ratiometric imaging of intracellular pH values[J].J. Mater. Chem. C, 2015, 3(26):6616-6620.
NÄREOJA T, DEGUCHI T, CHRIST S, et al.. Ratiometric sensing and imaging of intracellular pH using polyethylenimine-coated photon upconversion nanoprobes[J].Anal. Chem., 2017, 89(3):1501-1508.
BRUNI F, PEDRINI J, BOSSIO C, et al.. Two-color emitting colloidal nanocrystals as single-particle ratiometric probes of intracellular pH[J].Adv. Funct. Mater., 2017, 27(12):1605533-1-9.
FULAZ S, HIEBNER D, BARROS C H N, et al.. Ratiometric imaging of the in situ pH distribution of biofilms by use of fluorescent mesoporous silica nanosensors[J].ACS Appl. Mater. Interfaces, 2019, 11(36):32679-32688.
WANG X H, YU Y X, CHENG K, et al.. Polylysine modified conjugated polymer nanoparticles loaded with the singlet oxygen probe 1, 3-diphenylisobenzofuran and the photosensitizer indocyanine green for use in fluorometric sensing and in photodynamic therapy[J].Microchim. Acta, 2019, 186(12):842-1-8.
WANG X H, PENG H S, YANG W, et al.. Indocyanine green-platinum porphyrins integrated conjugated polymer hybrid nanoparticles for near-infrared-triggered photothermal and two-photon photodynamic therapy[J].J. Mater. Chem. B, 2017, 5(9):1856-1862.
GE J Y, FAN L, ZHANG K, et al.. A two-photon ratiometric fluorescent probe for effective monitoring of lysosomal pH in live cells and cancer tissues[J].Sens. Actuators B Chem., 2018, 262:913-921.
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