Peptide-Decorated Microneedles for the Detection of Microplastics

Author:

Ahn Suyeon1,Kim Namju1,Choi Yonghyun12,Kim Jiwon1ORCID,Hwang Hyeryun3,Kim Cholong3,Lee Hee-Young4,Kim Seungyoun5,Kim Jin Su5ORCID,Lee Hyun Ho3ORCID,Choi Jonghoon12

Affiliation:

1. School of Integrative Engineering, Chung-Ang University, Seoul 06974, Republic of Korea

2. Feynman Institute of Technology, Nanomedicine Corporation, Seoul 06974, Republic of Korea

3. Department of Chemical Engineering, Myongji University, Yongin-si 17058, Republic of Korea

4. Department of Chemical Engineering, Kumoh National Institute of Technology, Gumi-si 39177, Republic of Korea

5. Division of Applied RI, Korea Institute of Radiological and Medical Sciences (KIRAMS), Seoul 01812, Republic of Korea

Abstract

The escalating utilization of plastics in daily life has resulted in pervasive environmental pollution and consequent health hazards. The challenge of detecting and capturing microplastics, which are imperceptible to the naked eye, is exacerbated by their diminutive size, hydrophobic surface properties, and capacity to absorb organic compounds. This study focuses on the application of peptides, constituted of specific amino acid sequences, and microneedles for the rapid and selective identification of microplastics. Peptides, due to their smaller size and greater environmental stability compared with antibodies, emerge as a potent solution to overcome the limitations inherent in existing detection methodologies. To immobilize peptides onto microneedles, this study employed microneedles embedded with gold nanorods, augmenting them with sulfhydryl (SH) groups at the peptides’ termini. The sensor developed through this methodology exhibited efficient peptide binding to the microneedle tips, thereby facilitating the capture of microplastics. Raman spectroscopy was employed for the detection of microplastics, with the results demonstrating successful attachment to the microneedles. This novel approach not only facilitates localized analysis but also presents a viable strategy for the detection of microplastics across diverse environmental settings.

Funder

National Research Foundation of Korea (NRF) grants funded by the Korean government

Korea Environmental Industry & Technology Institute (KEITI) and funded by the Korea Ministry of Environment

Publisher

MDPI AG

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