Shaw Priyanka, Vanraes Patrick, Kumar Naresh, Bogaerts Annemie
Research Group PLASMANT, Department of Chemistry, University of Antwerp, 2610 Antwerp, Belgium.
Department of Medical Devices, National Institute of Pharmaceutical Education and Research, Guwahati 781125, Assam, India.
Nanomaterials (Basel). 2022 Sep 28;12(19):3397. doi: 10.3390/nano12193397.
Cold atmospheric plasma and nanomedicine originally emerged as individual domains, but are increasingly applied in combination with each other. Most research is performed in the context of cancer treatment, with only little focus yet on the possible synergies. Many questions remain on the potential of this promising hybrid technology, particularly regarding regenerative medicine and tissue engineering. In this perspective article, we therefore start from the fundamental mechanisms in the individual technologies, in order to envision possible synergies for wound healing and tissue recovery, as well as research strategies to discover and optimize them. Among these strategies, we demonstrate how cold plasmas and nanomaterials can enhance each other's strengths and overcome each other's limitations. The parallels with cancer research, biotechnology and plasma surface modification further serve as inspiration for the envisioned synergies in tissue regeneration. The discovery and optimization of synergies may also be realized based on a profound understanding of the underlying redox- and field-related biological processes. Finally, we emphasize the toxicity concerns in plasma and nanomedicine, which may be partly remediated by their combination, but also partly amplified. A widespread use of standardized protocols and materials is therefore strongly recommended, to ensure both a fast and safe clinical implementation.
冷大气等离子体和纳米医学最初是作为独立的领域出现的,但现在它们越来越多地相互结合应用。大多数研究是在癌症治疗的背景下进行的,对可能的协同作用关注较少。关于这种有前景的混合技术的潜力,尤其是在再生医学和组织工程方面,仍有许多问题。因此,在这篇观点文章中,我们从这两种技术的基本机制入手,以设想伤口愈合和组织恢复可能存在的协同作用,以及发现和优化这些协同作用的研究策略。在这些策略中,我们展示了冷等离子体和纳米材料如何相互增强优势并克服彼此的局限性。与癌症研究、生物技术和等离子体表面改性的相似之处进一步为组织再生中设想的协同作用提供了灵感。对协同作用的发现和优化也可以基于对潜在的氧化还原和场相关生物过程的深入理解来实现。最后,我们强调了等离子体和纳米医学中的毒性问题,它们的结合可能部分缓解这些问题,但也可能部分放大。因此,强烈建议广泛使用标准化方案和材料,以确保快速且安全的临床应用。