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Calf thymus ds-DNA intercalation with pendimethalin herbicide at the surface of ZIF-8/Co/rGO/C3N4/ds-DNA/SPCE; A bio-sensing approach for pendimethalin quantification confirmed by molecular docking study

  • Hassan Karimi-Maleh
  • , Yuezhen Liu
  • , Zhangping Li
  • , Rozhin Darabi
  • , Yasin Orooji
  • , Ceren Karaman
  • , Fatemeh Karimi
  • , Mehdi Baghayeri
  • , Jalal Rouhi
  • , Li Fu
  • , Sadegh Rostamnia
  • , Saravanan Rajendran
  • , Afsaneh L. Sanati
  • , Hasan Sadeghifar
  • , Masoumeh Ghalkhani
  • University of Electronic Science and Technology of China
  • Saveetha Institute of Medical and Technical Sciences (Deemed to be University)
  • University of Johannesburg
  • Wenzhou Medical University
  • Zhejiang Normal University
  • King Abdulaziz University
  • University of Isfahan
  • Akdeniz University
  • Lebanese American University
  • Hakim Sabzevari University
  • University of Tabriz
  • Hangzhou Dianzi University
  • Iran University of Science and Technology
  • University of Coimbra
  • R&D Center
  • Shahid Rajaee Teacher Training University

Research output: Contribution to journalArticlepeer-review

177 Scopus citations

Abstract

Pendimethalin (PND) is a herbicide that is regarded to be possibly carcinogenic to humans and toxic to the environment. Herein, we fabricated a highly sensitive DNA biosensor based on ZIF-8/Co/rGO/C3N4 nanohybrid modification of a screen-printed carbon electrode (SPCE) to monitor PND in real samples. The layer-by-layer fabrication pathway was conducted to construct ZIF-8/Co/rGO/C3N4/ds-DNA/SPCE biosensor. The physicochemical characterization techniques confirmed the successful synthesis of ZIF-8/Co/rGO/C3N4 hybrid nanocomposite, as well as the appropriate modification of the SPCE surface. The utilization of ZIF-8/Co/rGO/C3N4 nanohybrid as a modifier was analyzed using. The electrochemical impedance spectroscopy results showed that the modified SPCE exhibited significantly lowered charge transfer resistance due to the enhancement of its electrical conductivity and facilitation of the transfer of charged particles. The proposed biosensor successfully quantified PND in a wide concentration range of 0.01–35 μM, with a limit of detection (LOD) value of 8.0 nM. The PND monitoring capability of the fabricated biosensor in real samples including rice, wheat, tap, and river water samples was verified with a recovery range of 98.2–105.6%. Moreover, to predict the interaction sites of PND herbicide with DNA, the molecular docking study was performed between the PND molecule and two sequence DNA fragments and confirmed the experimental findings. This research sets the stage for developing highly sensitive DNA biosensors that will be used to monitor and quantify toxic herbicides in real samples by fusing the advantages of nanohybrid structures with crucial knowledge from a molecular docking investigation.

Original languageEnglish
Article number138815
JournalChemosphere
Volume332
DOIs
StatePublished - Aug 2023

UN SDGs

This output contributes to the following UN Sustainable Development Goals (SDGs)

  1. SDG 3 - Good Health and Well-being
    SDG 3 Good Health and Well-being

Keywords

  • DNA biosensor
  • Metal-organic frameworks
  • Molecular docking investigation
  • Pendimethalin
  • Reduced graphene oxide

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