Carbon Nanotube Hybrid Materials: Efficient and Pertinent Platforms for Antifungal Drug Delivery

Author:

Chandra Dilip Kumar1ORCID,Reis Rui L.23ORCID,Kundu Subhas C.23ORCID,Kumar Awanish1ORCID,Mahapatra Chinmaya1ORCID

Affiliation:

1. Department of Biotechnology National Institute of Technology Raipur Raipur Chhattisgarh 492010 India

2. 3Bs Research Group, I3Bs– Research Institute on Biomaterials, Biodegradables, and Biomimetics and 3B's Research Group of University of Minho, Headquarters of the European Institute of Excellence on Tissue Engineering and Regenerative Medicine Ave Park – Parque de Ciência e Tecnologia Zona Industrial da Gandra Barco Guimarães 4805‐017 Portugal

3. ICVS/3B's Laboratório Associado PT Government Associate Laboratory University of Minho Braga 4710‐057 Portugal

Abstract

AbstractCarbon nanotubes (CNTs) have emerged as the brightest nascent artifact to deliver antifungal drugs in drug delivery applications, health care, and pharmaceutical industries. Excellent physio‐chemical features such as huge surface area, tunable side wall, and microneedle‐like morphology make CNTs suitable for drug carriers. Chemical attachments (covalent and non‐covalent functionalization) result in the formation of functionalized CNTs (F‐CNTs) and CNT‐based hybrid materials (CNT‐HMs). These F‐CNTs and CNT‐HMs have substantial antifungal activity and also have the potential to immobilize antifungal drugs such as amphotericin B, nystatin, curcumin, etc. on the exterior or interior surface, securely transport to the target sites, permeate through bio‐barriers, and release these drugs in a controlled manner. As antifungal drug carriers, F‐CNT and CNT‐HMs exhibit more excellent antifungal activity than other conventional drug delivery systems and have the potency to invade biofilm to circumvent the multidrug resistance of fungal species. This review focuses on CNTs and CNT‐HMs for antifungal drug delivery, including their functionalization methods, drug loading approaches, drug release mechanism, cellular internalization, delivery efficiency, and cellular toxicities with their workaround.

Funder

Science and Engineering Research Board

Department of Science and Technology, Government of Kerala

Publisher

Wiley

Subject

Industrial and Manufacturing Engineering,Mechanics of Materials,General Materials Science

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