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光响应性抗菌石墨烯材料作为组织工程的整体方法

Light-Responsive and Antibacterial Graphenic Materials as a Holistic Approach to Tissue Engineering.

作者信息

Ferreras Andrea, Matesanz Ana, Mendizabal Jabier, Artola Koldo, Nishina Yuta, Acedo Pablo, Jorcano José L, Ruiz Amalia, Reina Giacomo, Martín Cristina

机构信息

Department of Bioengineering, Universidad Carlos III de Madrid, Leganés 28911, Spain.

Department of Electronic Technology, Universidad Carlos III de Madrid, Leganés 28911, Spain.

出版信息

ACS Nanosci Au. 2024 Jun 7;4(4):263-272. doi: 10.1021/acsnanoscienceau.4c00006. eCollection 2024 Aug 21.

Abstract

While the continuous development of advanced bioprinting technologies is under fervent study, enhancing the regenerative potential of hydrogel-based constructs using external stimuli for wound dressing has yet to be tackled. Fibroblasts play a significant role in wound healing and tissue implants at different stages, including extracellular matrix production, collagen synthesis, and wound and tissue remodeling. This study explores the synergistic interplay between photothermal activity and nanomaterial-mediated cell proliferation. The use of different graphene-based materials (GBM) in the development of photoactive bioinks is investigated. In particular, we report the creation of a skin-inspired dressing for wound healing and regenerative medicine. Three distinct GBM, namely, graphene oxide (GO), reduced graphene oxide (rGO), and graphene platelets (GP), were rigorously characterized, and their photothermal capabilities were elucidated. Our investigations revealed that rGO exhibited the highest photothermal efficiency and antibacterial properties when irradiated, even at a concentration as low as 0.05 mg/mL, without compromising human fibroblast viability. Alginate-based bioinks alongside human fibroblasts were employed for the bioprinting with rGO. The scaffold did not affect the survival of fibroblasts for 3 days after bioprinting, as cell viability was not affected. Remarkably, the inclusion of rGO did not compromise the printability of the hydrogel, ensuring the successful fabrication of complex constructs. Furthermore, the presence of rGO in the final scaffold continued to provide the benefits of photothermal antimicrobial therapy without detrimentally affecting fibroblast growth. This outcome underscores the potential of rGO-enhanced hydrogels in tissue engineering and regenerative medicine applications. Our findings hold promise for developing game-changer strategies in 4D bioprinting to create smart and functional tissue constructs with high fibroblast proliferation and promising therapeutic capabilities in drug delivery and bactericidal skin-inspired dressings.

摘要

虽然先进生物打印技术的持续发展正在热烈研究中,但利用外部刺激增强基于水凝胶的伤口敷料构建体的再生潜力尚未得到解决。成纤维细胞在伤口愈合和组织植入的不同阶段发挥着重要作用,包括细胞外基质产生、胶原蛋白合成以及伤口和组织重塑。本研究探讨了光热活性与纳米材料介导的细胞增殖之间的协同相互作用。研究了不同的基于石墨烯的材料(GBM)在光活性生物墨水开发中的应用。特别是,我们报告了一种用于伤口愈合和再生医学的受皮肤启发的敷料的创建。对三种不同的GBM,即氧化石墨烯(GO)、还原氧化石墨烯(rGO)和石墨烯片(GP)进行了严格表征,并阐明了它们的光热能力。我们的研究表明,即使在低至0.05 mg/mL的浓度下照射,rGO在照射时也表现出最高的光热效率和抗菌性能,而不会损害人成纤维细胞的活力。基于藻酸盐的生物墨水与人成纤维细胞一起用于与rGO进行生物打印。生物打印后3天,支架未影响成纤维细胞的存活,因为细胞活力未受影响。值得注意的是,rGO的加入并未损害水凝胶的可打印性,确保了复杂构建体的成功制造。此外,最终支架中rGO的存在继续提供光热抗菌治疗的益处,而不会对成纤维细胞生长产生不利影响。这一结果强调了rGO增强水凝胶在组织工程和再生医学应用中的潜力。我们的研究结果有望在4D生物打印中开发出变革性策略,以创建具有高成纤维细胞增殖以及在药物递送和杀菌皮肤启发敷料方面具有良好治疗能力的智能和功能性组织构建体。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/9cc7/11342345/315651e2f532/ng4c00006_0001.jpg

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