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Research Article | Open Access

Three-dimensional composite aerogel scaffolds based on electrospun poly(lactic acid)/gelatin and silica-strontium oxide short fibers promote bone defect healing

Jie Cui1,‡, Lixiang Zhang2,‡, Muhammad Shafiq3, Panpan Shang4, Xiao Yu1, Yangfan Ding1, Pengfei Cai5, JiaHui Song1, Binbin Sun1, Mohamed EL-Newehy6, Meera Moydeen Abdulhameed6, Stachewicz Urszula7, Xingping Zhou1( ), Yuan Xu2( ), Xiumei Mo1,4 ( )
State Key Laboratory for Modification of Chemical Fibers and Polymer Materials, Shanghai Engineering Research Center of Nano-Biomaterials and Regenerative Medicine, College of Biological Science and Medical Engineering, No. 2999 North Renmin Road, Songjiang District, Donghua University, Shanghai 201620, P.R. China
Department of Orthopaedics, Xinqiao Hospital, Army Medical University, No. 183, Xinqiao Street, Shapingba District, Chongqing 400037, P. R. China
Innovation Center of NanoMedicine (iCONM), Kawasaki Institute of Industrial Promotion, Kawasaki-ku, Kawasaki 210-0821, Japan
Institute of Biomaterials and Biomedicine, School of Food and Pharmacy, Shanghai Zhongqiao Vocational and Technical University, Shanghai 201514, P.R. China
G.E.R.N. Research Center for Tissue Replacement, Regeneration & Neogenesis, Department of Orthopedics and Trauma Surgery, Faculty of Medicine, Medical Center-Albert-Ludwigs-University of Freiburg, 79085 Freiburg in Breisgau, Germany
Department of Chemistry, College of Science, King Saud University, P.O. Box 2455, Riyadh 11451, Saudi Arabia
AGH University of Krakow, college of Materials, Poland

‡Jie Cui and Lixiang Zhang contributed equally to this work.

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Abstract

Background

Bone defect regeneration is a dynamic healing process that relies on the body’s innate repair mechanisms, yet natural healing capacity remains limited. To address this challenge, advanced biomaterials combining bioactive inorganic components with biocompatible polymers have emerged as a promising strategy to enhance osteogenesis and angiogenesis.

Methods

In this study, a novel three-dimensional composite scaffold material was successfully fabricated using a combined electrospinning-freeze drying technique. The scaffold incorporates flexible silicon dioxide-strontium oxide (SiO2-SrO) nanofibers as functional components, which are physically blended with a poly(lactic acid)/gelatin (PG) fibrous matrix to achieve composite construction.

Result

The fabricated scaffolds exhibited an optimal well-ordered porous structure, excellent biocompatibility, and sustained release of therapeutic ions (Si4+ and Sr2+). Notably, they significantly upregulated osteogenic gene expression and enhanced angiogenic potential as demonstrated by improved tubulogenesis in HUVEC cultures. In vivo evaluation using a rat calvarial defect model confirmed their superior bone regeneration capability through simultaneous promotion of osteogenesis and angiogenesis.

Conclusion

Leveraging the synergistic effects of SiO2-SrO nanofibers and PG polymers, this study presents a multifunctional scaffold capable of promoting bone regeneration through dual osteogenic and angiogenic stimulation. Our findings highlight the potential of this composite system not only for bone tissue engineering but also for broader biomedical applications.

Graphical Abstract

References

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Burns & Trauma
Article number: tkaf028

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Cite this article:
Cui J, Zhang L, Shafiq M, et al. Three-dimensional composite aerogel scaffolds based on electrospun poly(lactic acid)/gelatin and silica-strontium oxide short fibers promote bone defect healing. Burns & Trauma, 2025, 13(6): tkaf028. https://doi.org/10.1093/burnst/tkaf028

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Received: 10 December 2024
Revised: 26 March 2025
Accepted: 21 April 2025
Published: 10 October 2026
© The Author(s) 2025. Published by Oxford University Press.

This is an Open Access article distributed under the terms of the Creative Commons Attribution Non-Commercial License (https://creativecommons.org/licenses/by-nc/4.0/), which permits non-commercial re-use, distribution, and reproduction in any medium, provided the original work is properly cited. For commercial re-use, please contact journals.permissions@oup.com