Affiliations 

  • 1 Crescent Global Outreach Mission Research and Development, B.S. Abdur Rahman Crescent Institute of Science and Technology, Chennai 620048, Tamil Nadu, India. Electronic address: pxr861@live.com
  • 2 Abinnovus Consulting Private Limited, TBI-University of Madras, Chennai 600025, Tamil Nadu, India
  • 3 Crescent Global Outreach Mission Research and Development, B.S. Abdur Rahman Crescent Institute of Science and Technology, Chennai 620048, Tamil Nadu, India
  • 4 Center for Research in Advanced Fluid and Processes (Fluid Centre), Universiti Malaysia Pahang Al-Sultan Abdullah, 26300 Gambang, Pahang, Malaysia
  • 5 CanBrs Therapeutics Private Limited, Indian Institute of Technology Madras - Research Park, Chennai, Tamil Nadu, India
  • 6 Department of Materials Science, School of Technology, Central University of Tamil Nadu, Thiruvarur 610005, Tamil Nadu, India
  • 7 Department of Analytical Chemistry, University of Madras, Chennai 600025, Tamil Nadu, India
  • 8 Alta institute of technology, University of Tarapaca, Arica 1000000, Chile
  • 9 Department of Biotechnology, Faculty of Science & Humanities, SRM Institute of Science and Technology, Kattankulathur, Chengalpattu district, Tamil Nadu 603203, India. Electronic address: thanigaivel092@gmail.com
Int J Biol Macromol, 2025 Jan 08;296:139663.
PMID: 39793786 DOI: 10.1016/j.ijbiomac.2025.139663

Abstract

Tissue engineering plays a vital role in the medical field that addresses the repair, regeneration, and replacement of damaged tissues or organs. The development of drug-eluting electrospun nanofiber composed of biological macromolecules plays a key role in providing localized drug delivery and structural support. This review examines the recent development and impact of electrospun nanofibers in the field of tissue engineering and explores their potential applications. This review also investigates into the fabrication techniques of nanofibers, highlighting the use of biopolymers like collagen and chitosan, chiefly, focuses on understanding the mechanisms of drug-releasing features of these nanofibers. Studies concerning the medical applications of these nanofibers, such as wound healing, skin regeneration, bone tissue engineering, and neural repair, were also reviewed. Beyond the application in tissue regeneration, this review also explores the potential efficacy of nanofibres in cancer therapy, antibacterial activity, enzyme immobilization, and biosensing applications. This study provides an up-to-date critical insight into the applications of electrospun nanofiber application and key scalable production processes, underscoring the potential economic impacts of advanced wound care technologies. While outlining current challenges, this paper also offers future perspectives on the design, application, and potential expansion of drug-eluting electrospun fibers in medical sciences, ultimately showcasing their pivotal role in advancing therapeutic outcomes.

* Title and MeSH Headings from MEDLINE®/PubMed®, a database of the U.S. National Library of Medicine.