Sun Shuangjiao, Liu Ya, Wang Shuhuai, Gui Qinyi, Liu Wei, Long Wei
State Key Laboratory of Advanced Medical Materials and Devices, Tianjin Key Laboratory of Radiation Medicine and Molecular Nuclear Medicine, Tianjin Institutes of Health Science, Institute of Radiation Medicine, Chinese Academy of Medical Sciences & Peking Union Medical College, Tianjin, 300192, China.
State Key Laboratory of Advanced Medical Materials and Devices, Tianjin Key Laboratory of Radiation Medicine and Molecular Nuclear Medicine, Tianjin Institutes of Health Science, Institute of Radiation Medicine, Chinese Academy of Medical Sciences & Peking Union Medical College, Tianjin, 300192, China.
Biomaterials. 2026 Jan;324:123492. doi: 10.1016/j.biomaterials.2025.123492. Epub 2025 Jun 9.
Active delivery of therapeutic gases for disease intervention is an appealing but challenging task that requires breakthroughs in nanomaterial-based delivery systems. Micro-/nanomotors (MNMs) capable of efficiently converting diverse forms of energy into mechanical motion have inspired innovations in the gas delivery and therapy domains, offering an alternative possibility to address the challenges of targeted delivery and controlled gas release during therapy. This review thus comprehensively summarizes recent advances in employing MNMs as mobile platforms for precise gas delivery and therapy. The review begins with an introduction of the physiological functions of diverse therapeutic gases, including NO, HS, CO, O, and H. Then various proof-of-concept designs of artificial MNMs that can efficient propulsion in complex biological environments and intelligently release these gases in response to intrinsic or extrinsic stimuli are discussed. Particular emphasis has been placed on their potential in microenvironment modulation for disease treatment, aiming to demonstrate the distinct superiority of MNMs in this area. In addition, the key challenges and limitations of current MNMs utilized for gas therapy are addressed. It is believed that in the near future, MNMs will become sophisticated delivery platforms for facilitating gas therapy.
通过主动递送治疗性气体来干预疾病是一项颇具吸引力但又具有挑战性的任务,这需要基于纳米材料的递送系统取得突破。能够将多种形式的能量有效转化为机械运动的微纳马达(MNMs)激发了气体递送和治疗领域的创新,为解决治疗过程中靶向递送和可控气体释放的挑战提供了另一种可能。因此,本综述全面总结了将微纳马达用作精确气体递送和治疗的移动平台的最新进展。综述首先介绍了多种治疗性气体的生理功能,包括一氧化氮(NO)、硫化氢(HS)、一氧化碳(CO)、氧气(O)和氢气(H)。然后讨论了各种人工微纳马达的概念验证设计,这些微纳马达能够在复杂的生物环境中高效推进,并能响应内在或外在刺激智能释放这些气体。特别强调了它们在调节微环境以治疗疾病方面的潜力,旨在证明微纳马达在该领域的独特优势。此外,还讨论了当前用于气体治疗的微纳马达面临的关键挑战和局限性。相信在不久的将来,微纳马达将成为促进气体治疗的精密递送平台。