4.8 Article

Liposome-amplified photoelectrochemical immunoassay for highly sensitive monitoring of disease biomarkers based on a split-type strategy

期刊

BIOSENSORS & BIOELECTRONICS
卷 99, 期 -, 页码 230-236

出版社

ELSEVIER ADVANCED TECHNOLOGY
DOI: 10.1016/j.bios.2017.07.067

关键词

Liposome; Photoelectrochemical immunoassay; HIV-p24 antigen; Split-type detection

资金

  1. National Natural Science Foundation of China [81472001, 31400851]
  2. Quanzhou 'Tong Jiang Scholar' Program [D16008]
  3. Fujian 'Min-Jiang Scholar' Program [G16013]
  4. Fourth Health Education Joint Development Project of Fujian Province [WKJ2016-2-36]
  5. Advanced Research Fund of Quanzhou Normal University for Young Doctor [2016QBKJ03]
  6. Fujian Educational Committee [JA15409]

向作者/读者索取更多资源

Liposomes are an excellent candidate component for biosensors to transduce and amplify detection signals due to their outstanding ability in encapsulating signal marker compounds. However, the use of liposomes for photoelectrochemical (PEC) signal transduction has not yet been achieved due the lack of appropriate sensing strategy. Herein, we report on a novel liposomes-amplified PEC immunoassay (LAPIA) method for sensitive HIV-p24 antigen (p24) detection based on a split-type strategy. Initially, liposomes were encapsulated with alkaline phosphatase (ALP) in their hydrophilic chamber and conjugated with secondary antibody on the surface to form the ALP-encapsulated liposomes (ALP-Ls) based PEC signal label. Sandwiched immunoassay based on the ALP-Ls label was then carried out in microwell plate. Upon addition of tween 20, the ALP molecules were released and catalyzed the hydrolysis of ascorbic acid 2-phosphate (AA-p) to produce ascorbic acid (AA). The latter then donated electron to the graphene/g-C3N4 nanohybrids based photoelectrode, arousing an increased photocurrent signal. The separation of immunoreaction step and PEC signal excitation (i.e. split type) not only enabled the realization of liposomes based amplification strategy, but also could eliminate the PEC-caused biomolecules damage. The developed PEC method possessed a wide calibration range from 1.0 pg m171 to 50 ng mL(-1) and a low detection limit of 0.63 pg mL(-1). Its practicability was demonstrated.by assaying human serum samples. Moreover, the universality of the liposomes-amplified PEC sensing strategy was also demonstrated by developing it into a sensitive microRNA detection method.

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