4.8 Article

Peptide-Based Photoelectrochemical Cytosensor Using a Hollow-TiO2/EG/ZnIn2S4 Cosensitized Structure for Ultrasensitive Detection of Early Apoptotic Cells and Drug Evaluation

Journal

ACS APPLIED MATERIALS & INTERFACES
Volume 10, Issue 5, Pages 4429-4438

Publisher

AMER CHEMICAL SOC
DOI: 10.1021/acsami.7b16054

Keywords

photoelectrochemistry; cytosensing; cosensitized; apoptotic cell; drug evaluation

Funding

  1. National Natural Science Foundation of China [21475057, 21603099, 21775070]
  2. China Postdoctoral Science Foundation [2017T100352]

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The ability to rapidly detect apoptotic cells and accurately evaluate therapeutic effects is significant in cancer research. To address this target, a biocompatible, ultrasensitive photoelectrochemical (PEC) cytosensing platform was developed based on electrochemically reduced graphene (EG)/ZnIn2S4 cosensitized TiO2 coupled with specific recognition between apoptotic cells and phosphatidylserinebincling peptide (PSBP). In this strategy, the HL-60 cells ivete selected as a model and COOS, nilotitib, and imatiriib were selected as apoptosis inducers to show cytosensing performances. In particular, a TiO2 photoactive substrate was designed as hollow spheres to enharice the PEC performance. Giaphene was electrodeposited on the hollow TiO2-modified electrode to accelerate electron transfer and increase conductivity, followed by in Situ growth of ZnIn2S4 natoclystals as photosensitizers via successive ionic layer adsorption and reaction method, forming a TiO2/EG/ZnIn2S4 cosensitized structure that was used as a PEC matrix to immobilize PSBP for the recognition of early apoptotic cells. The detection of apoptotic cells was based on steric hindrance originating from apoptotic cell capture to induce an obvious decrease in the photocurrent signal. the ultrahigh sensitivity of the cytosensor resulted from enhanced PEC performance, bioactivity, and high binding affinity between PSBP and apoptotic cells. Compared with other assays, incorporate toxic elements were avoided, such as Cd, Ru, and Te, which ensured normal cell growth and are appropriate for cell analysis. The designed PEC cytosensor showed a low detection limit of apoptotic cells (as low as three cells), a wide linear range from 1 x 10(3) to 5 X 10(7) cells/mL, and an accurate evaluation of therapeutic effects. It also exhibited good specificity, reproducibility, and stability.

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