Mochi Federico, Scatena Elisa, Rodriguez Daniel, Ginebra Maria-Pau, Del Gaudio Costantino
E. Amaldi Foundation, Via del Politecnico snc, 00133, Rome, Italy.
Biomaterials, Biomechanics and Tissue Engineering Group, Department of Materials Science and Engineering, Universitat Politècnica de Catalunya (UPC), Av. Eduard Maristany 10, 08019, Barcelona, Spain.
NPJ Microgravity. 2022 Oct 29;8(1):45. doi: 10.1038/s41526-022-00236-1.
One of humanity's greatest challenges is space exploration, which requires an in-depth analysis of the data continuously collected as a necessary input to fill technological gaps and move forward in several research sectors. Focusing on space crew healthcare, a critical issue to be addressed is tissue regeneration in extreme conditions. In general, it represents one of the hottest and most compelling goals of the scientific community and the development of suitable therapeutic strategies for the space environment is an urgent need for the safe planning of future long-term manned space missions. Osteopenia is a commonly diagnosed disease in astronauts due to the physiological adaptation to altered gravity conditions. In order to find specific solutions to bone damage in a reduced gravity environment, bone tissue engineering is gaining a growing interest. With the aim to critically investigate this topic, the here presented review reports and discusses bone tissue engineering scenarios in microgravity, from scaffolding to bioreactors. The literature analysis allowed to underline several key points, such as the need for (i) biomimetic composite scaffolds to better mimic the natural microarchitecture of bone tissue, (ii) uniform simulated microgravity levels for standardized experimental protocols to expose biological materials to the same testing conditions, and (iii) improved access to real microgravity for scientific research projects, supported by the so-called democratization of space.
人类面临的最大挑战之一是太空探索,这需要对持续收集的数据进行深入分析,作为填补技术空白和推动多个研究领域发展的必要输入。聚焦于太空船员的医疗保健,一个需要解决的关键问题是极端条件下的组织再生。总体而言,这是科学界最热门、最引人注目的目标之一,为太空环境开发合适的治疗策略是安全规划未来长期载人太空任务的迫切需求。由于对重力条件改变的生理适应,骨质减少是宇航员中常见的诊断疾病。为了在低重力环境中找到针对骨损伤的具体解决方案,骨组织工程正越来越受到关注。为了批判性地研究这个主题,本文所呈现的综述报告并讨论了微重力环境下的骨组织工程情况,从支架到生物反应器。文献分析突出了几个关键点,例如需要(i)仿生复合支架以更好地模拟骨组织的自然微结构,(ii)为标准化实验方案提供均匀的模拟微重力水平,使生物材料暴露于相同的测试条件,以及(iii)通过所谓的太空民主化,改善科研项目获取真实微重力的机会。