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Review | Open Access

Advances in hemostatic biomaterials: biomimetic strategies, nanotechnology, and smart therapeutics

Minrui Ji1,‡, Zaixin Yuan2,‡, Fei Ju3,‡, Jie Sun1, Yingying Yan4, Qi Ding5, Jinling Chen3( ), Qian Qian Yang1( ), You Lang Zhou1 ( )
Hand Surgery Research Center, Research Center of Clinical Medicine, Affiliated Hospital of Nantong University, Medical School of Nantong University, No. 20 Xisi Road, Nantong 226001, Jiangsu, China
Department of Respiratory and Critical Care Medicine, Affiliated Hospital of Nantong University, Medical School of Nantong University, No. 20 Xisi Road, Nantong 226001, Jiangsu, China
Department of Pathogen Biology, Medical School of Nantong University, No. 19 Qixiu Road, Nantong 226001, Jiangsu, China
Research Center of Clinical Medicine, Affiliated Hospital of Nantong University, Medical School of Nantong University, No. 20 Xisi Road, Nantong 226001, Jiangsu, China
Department of Dermatology, Affiliated Hospital of Nantong University, Medical School of Nantong University, No. 20 Xisi Road, Nantong 226001, Jiangsu, China

‡Minrui Ji, Zaixin Yuan and Fei Ju contributed equally to this manuscipt.

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Highlights

• Emerging hemostatic biomaterials have progressed from simple occlusion to intelligent, multi-mechanism systems.

• Bionic designs and nanotechnology enable targeted clotting through platelet-mimicking structures and responsive materials.

• Clinical translation faces hurdles in biocompatibility, mass production, and patient-specific adaptation.

• Future integration of artificial intelligence and biomanufacturing promises precision-controlled hemostatic solutions.

Abstract

Bleeding, a critical complication in trauma, surgery, and conditions such as hemophilia, liver cirrhosis, and thrombocytopenia, often leads to shock or death. The limitations of traditional hemostatic methods—such as compression, suturing, and electrocautery—have prompted the development of advanced biomaterials. In modern research, intelligent, multi-mechanism systems have supplanted basic physical or chemical approaches. Biomimetic designs, such as platelet- and fibrin-inspired materials, alongside nanotechnology (e.g. nanoparticle carriers and electrospun fibers) and stimuli-responsive polymers (e.g. light- or temperature-triggered), enable targeted clotting, controlled drug release, and enhanced wound adhesion. Additionally, 3D printing and microfluidics allow precise material modification, further boosting hemostatic efficiency. Despite these advances, clinical translation faces challenges related to biocompatibility, mass production, and patient-specific customization. Future progress is likely to integrate multidisciplinary technologies, such as artificial intelligence, genetic engineering, smart regulation, and personalized therapies, to improve hemorrhage management. These innovations aim to bridge the gap between laboratory research and clinical application, offering safer, more effective solutions for trauma and surgical interventions.

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References

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Burns & Trauma
Article number: tkag023

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Cite this article:
Ji M, Yuan Z, Ju F, et al. Advances in hemostatic biomaterials: biomimetic strategies, nanotechnology, and smart therapeutics. Burns & Trauma, 2026, 14(3): tkag023. https://doi.org/10.1093/burnst/tkag023

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Received: 17 November 2025
Revised: 03 March 2026
Accepted: 16 March 2026
Published: 21 March 2026
© The Author(s) 2026. Published by Oxford University Press.

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