Hamza Abu Owida, Jamal I. Al-Nabulsi
Tissue engineering is a relatively new area of research that combines medical, biological, and engineering fundamentals to create tissue-engineered constructs that regenerate, preserve, or slightly increase the functions of tissues. This review aims to explore the recent applications of electrospun nanofibrous scaffolds in the field of tissue engineering, as these structures are crucial for the development of mature tissues by mimicking the extracellular matrix. The methodology involves analyzing various studies focused on the fabrication of three-dimensional nanostructures using electrospinning techniques for the repair and restoration of different tissues, including bone, cartilage, cardiovascular, and skin tissues. Key improvements and challenges associated with the use of electrospinning for tissue regeneration are discussed. The findings reveal that electrospinning is an effective method for producing nano fibrous scaffolds that meet the essential requirements for tissue engineering applications, highlighting its significant contributions to advancements in the biomedical field. Period.
@article{c6a9f0a7-c05d-4912-a115-7842680dcb2b,
title={Recent Applications of Electrospun Nanof},
author={Hamza Abu Owida and Jamal I. Al-Nabulsi},
year={2026},
language={en}
}TY - JOUR TI - Recent Applications of Electrospun Nanof AU - Hamza Abu Owida AU - Jamal I. Al-Nabulsi PY - 2026 LA - en ER -
Unknown, Unknown
This chapter discusses metal casting processes, highlighting the diversity and common characteristics among them. The objective is to elucidate the fu
Unknown, Unknown
This study focuses on the fundamental characteristics of solid iron, which is predominantly composed of iron atoms and provides a basis for understand
Ir. Méshac KIME ILUNGA
Ce document traite des procédés métallurgiques spéciaux, en mettant particulièrement l'accent sur l'extraction liquide-liquide, un processus mis au po
Copper solvent extraction units at large hydrometallurgical plants face constraints in metal recovery, phase disengagement, and reagent consumption, d