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March 25, 2002Journal of Biomedical Materials Research2,430 citations

Electrospun nanofibrous structure: A novel scaffold for tissue engineering

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WLWan‐Ju LiCLCato T. LaurencinECEdward J. Caterson

Key Points

  • To assess the efficacy of a novel electrospun PLGA scaffold in promoting tissue growth and cell development.
  • Developed a poly(D,L-lactide-co-glycolide) scaffold using an electrospinning process.
  • Characterized the scaffold's morphological features, including fiber diameter and porosity.
  • Evaluated cell attachment and proliferation on the electrospun nanofibrous structure.
  • The electrospun structure showed a fiber diameter of 500 to 800 nm with high porosity and favorable mechanical properties.
  • Demonstrated effective support for cell attachment and maintenance of cell shape aligned with nanofiber orientation.
  • Indicated enhanced biocompatibility, promoting guided cell growth.

Abstract

The architecture of an engineered tissue substitute plays an important role in modulating tissue growth. A novel poly(D,L-lactide-co-glycolide) (PLGA) structure with a unique architecture produced by an electrospinning process has been developed for tissue-engineering applications. Electrospinning is a process whereby ultra-fine fibers are formed in a high-voltage electrostatic field. The electrospun structure, composed of PLGA fibers ranging from 500 to 800 nm in diameter, features a morphologic similarity to the extracellular matrix (ECM) of natural tissue, which is characterized by a wide range of pore diameter distribution, high porosity, and effective mechanical properties. Such a structure meets the essential design criteria of an ideal engineered scaffold. The favorable cell-matrix interaction within the cellular construct supports the active biocompatibility of the structure. The electrospun nanofibrous structure is capable of supporting cell attachment and proliferation. Cells seeded on this structure tend to maintain phenotypic shape and guided growth according to nanofiber orientation. This novel biodegradable scaffold has potential applications for tissue engineering based upon its unique architecture, which acts to support and guide cell growth.

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Cite This Study

Li et al. (2002) studied this question.

synapsesocial.com/papers/69ed56fb2ced6cd722106ebahttps://doi.org/10.1002/jbm.10167
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