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具有增强抗菌和成像特性的载纳米颗粒水凝胶支架的3D生物打印

3D bioprinting of nanoparticle-laden hydrogel scaffolds with enhanced antibacterial and imaging properties.

作者信息

Theus Andrea S, Ning Liqun, Kabboul Gabriella, Hwang Boeun, Tomov Martin L, LaRock Christopher N, Bauser-Heaton Holly, Mahmoudi Morteza, Serpooshan Vahid

机构信息

Department of Biomedical Engineering, Emory University School of Medicine and Georgia Institute of Technology, Atlanta, GA 30322, USA.

Department of Microbiology and Immunology, Emory University School of Medicine, Atlanta, GA 30322, USA.

出版信息

iScience. 2022 Aug 15;25(9):104947. doi: 10.1016/j.isci.2022.104947. eCollection 2022 Sep 16.

Abstract

Biomaterial-associated microbial contaminations in biologically conducive three-dimensional (3D) tissue-engineered constructs have significantly limited the clinical applications of scaffold systems. To prevent such infections, antimicrobial biomaterials are rapidly evolving. Yet, the use of such materials in bioprinting-based approaches of scaffold fabrication has not been examined. This study introduces a new generation of bacteriostatic gelatin methacryloyl (GelMA)-based bioinks, incorporated with varying doses of antibacterial superparamagnetic iron oxide nanoparticles (SPIONs). The SPION-laden GelMA scaffolds showed significant resistance against the growth, while providing a contrast in magnetic resonance imaging. We simulated the bacterial contamination of cellular 3D GelMA scaffolds and demonstrated the significant effect of functionalized scaffolds in inhibiting bacterial growth, while maintaining cell viability and growth. Together, these results present a new promising class of functionalized bioinks to 3D bioprint tissue-engineered scaffold with markedly enhanced properties for the use in a variety of and clinical applications.

摘要

在具有生物活性的三维(3D)组织工程构建物中,与生物材料相关的微生物污染显著限制了支架系统的临床应用。为防止此类感染,抗菌生物材料正在迅速发展。然而,此类材料在基于生物打印的支架制造方法中的应用尚未得到研究。本研究引入了新一代基于甲基丙烯酰化明胶(GelMA)的抑菌生物墨水,并掺入了不同剂量的抗菌超顺磁性氧化铁纳米颗粒(SPIONs)。负载SPION的GelMA支架对细菌生长表现出显著抗性,同时在磁共振成像中提供对比。我们模拟了细胞3D GelMA支架的细菌污染,并证明了功能化支架在抑制细菌生长方面的显著效果,同时保持细胞活力和生长。总之,这些结果为3D生物打印组织工程支架提供了一类新的、有前景的功能化生物墨水,其性能显著增强,可用于各种研究和临床应用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/09df/9440295/92e4ec50fc3b/fx1.jpg

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