Scaffold-based tissue engineering has been widely used in recent years, in particular, the incorporation of a variety of synthetic and natural polymers has been used in scaffold creation. The field of tissue engineering benefits through expanding the library of biocompatible scaffolds. Optimising the fabrication of electrospinning multiple polymers contributes to that library. In particular, we are interested in optimising scaffolds with the incorporation of polyaniline (PANI) for potential corneal tissue engineering uses. We determined the optimal electrospinning parameters for PANI by including a synthetic polymer (polycaprolactone, PCL) and gelatin to create a scaffold with the ideal physical and mechanical properties of the end use. We found that the PANI-containing scaffolds observed higher cell counts and viability after 7 days. ZO-1 was found in increased expression with the corneal endothelial cells maintained on the surface of the PANI-containing scaffolds. Through our various cell-scaffold assays, we established that our PANI–PCL scaffolds are biocompatible and support the function of corneal endothelial cells.
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27 April 2026
Research Article|
April 09 2026
Polyaniline–polycaprolactone–gelatin hybrid electrospun scaffolds for corneal tissue engineering
Meiji Wang;
Meiji Wang
Department of Textile Engineering, Chemistry, and Science, Wilson College of Textiles,
North Carolina State University
, Raleigh, NC, USA
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Kiran M. Ali;
Kiran M. Ali
Department of Textile Engineering, Chemistry, and Science, Wilson College of Textiles,
North Carolina State University
, Raleigh, NC, USA
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Nasif Mahmood;
Nasif Mahmood
Department of Textile Engineering, Chemistry, and Science, Wilson College of Textiles,
North Carolina State University
, Raleigh, NC, USA
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Eelya Sefat;
Eelya Sefat
Department of Textile Engineering, Chemistry, and Science, Wilson College of Textiles,
North Carolina State University
, Raleigh, NC, USA
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Taylor C. Suh;
Taylor C. Suh
Department of Textile Engineering, Chemistry, and Science, Wilson College of Textiles,
North Carolina State University
, Raleigh, NC, USA
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Martin W. King;
Martin W. King
Department of Textile Engineering, Chemistry, and Science, Wilson College of Textiles,
North Carolina State University
, Raleigh, NC, USA
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Michael A. Daniele;
Michael A. Daniele
Lampe Joint Department of Biomedical Engineering,
North Carolina State University and the University of North Carolina at Chapel Hill
, Raleigh, NC, USA
; Department of Electrical and Computer Engineering, College of Engineering, North Carolina State University, Raleigh, NC, USA
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Jessica M. Gluck
Department of Textile Engineering, Chemistry, and Science, Wilson College of Textiles,
North Carolina State University
, Raleigh, NC, USA
; Lampe Joint Department of Biomedical Engineering, North Carolina State University and the University of North Carolina at Chapel Hill, Raleigh, NC, USACorresponding author Jessica M. Gluck (jmgluck@ncsu.edu)
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Corresponding author Jessica M. Gluck (jmgluck@ncsu.edu)
Conflict of interest statement The authors declare no conflict of interest.
Publisher: Emerald Publishing
Received:
May 28 2025
Accepted:
October 27 2025
Online ISSN: 2046-0155
Print ISSN: 2046-0147
Funding
Funding Group:
- Funding Statement(s): This research was funded by the Wilson College of Textiles and the Textile Engineering, Chemistry, and Science department.
© 2026 Emerald Publishing Limited
2026
Emerald Publishing Limited
Licensed re-use rights only
Emerging Materials Research (2026) 15 (1): 122–132.
Article history
Received:
May 28 2025
Accepted:
October 27 2025
Citation
Wang M, Ali KM, Mahmood N, Sefat E, Suh TC, King MW, Daniele MA, Gluck JM (2026), "Polyaniline–polycaprolactone–gelatin hybrid electrospun scaffolds for corneal tissue engineering". Emerging Materials Research, Vol. 15 No. 1 pp. 122–132, doi: https://doi.org/10.1680/jemmr.25.00082
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