Fischell Department of Bioengineering, 8278 Paint Brach Drive, College Park, MD, 20742, USA.
Biological Sciences Training Program, 1247 Biology Psychology Building, College Park, MD, 20742, USA.
Adv Mater. 2020 Apr;32(13):e1903367. doi: 10.1002/adma.201903367. Epub 2019 Nov 29.
The immune system has remarkable capabilities to combat disease with exquisite selectivity. This feature has enabled vaccines that provide protection for decades and, more recently, advances in immunotherapies that can cure some cancers. Greater control over how immune signals are presented, delivered, and processed will help drive even more powerful options that are also safe. Such advances will be underpinned by new tools that probe how immune signals are integrated by immune cells and tissues. Biomaterials are valuable resources to support this goal, offering robust, tunable properties. The growing role of biomaterials as tools to dissect immune function in fundamental and translational contexts is highlighted. These technologies can serve as tools to understand the immune system across molecular, cellular, and tissue length scales. A common theme is exploiting biomaterial features to rationally direct how specific immune cells or organs encounter a signal. This precision strategy, enabled by distinct material properties, allows isolation of immunological parameters or processes in a way that is challenging with conventional approaches. The utility of these capabilities is demonstrated through examples in vaccines for infectious disease and cancer immunotherapy, as well as settings of immune regulation that include autoimmunity and transplantation.
免疫系统具有卓越的能力,可以精确选择地对抗疾病。这一特性使疫苗能够提供数十年的保护,最近,免疫疗法的进展可以治愈一些癌症。更好地控制免疫信号的呈现、传递和处理方式,将有助于推动更强大、更安全的选择。这些进展将得到新工具的支持,这些工具可以探测免疫细胞和组织如何整合免疫信号。生物材料是支持这一目标的宝贵资源,具有强大、可调的特性。生物材料作为在基础和转化研究中剖析免疫功能的工具的作用日益凸显。这些技术可以作为工具,在分子、细胞和组织长度尺度上了解免疫系统。一个共同的主题是利用生物材料的特性,合理地指导特定的免疫细胞或器官如何遇到信号。这种精确的策略,通过独特的材料特性得以实现,使得在传统方法中具有挑战性的免疫参数或过程的分离成为可能。通过传染病疫苗和癌症免疫治疗以及包括自身免疫和移植在内的免疫调节环境中的例子,证明了这些功能的实用性。
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