Liquid Metal-Based Biomaterials and Flexible Devices for Injectable and Implantable Healthcare.

IF 9.6
Yuexin Luo, Yajie Yu, Yumo Chen, Ruiyuan Li, Yilan Zhang, Shuwen Chen
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Abstract

Injectable and implantable biomaterials and biomedical devices are crucial for disease diagnosis, monitoring, and treatment, enabling minimally invasive procedures, targeted therapies, and real-time monitoring capabilities. Liquid metals (LMs), known for their softness, fluidity, biocompatibility, and unique physicochemical properties, have emerged as promising materials for such applications. Through functionalization and engineering, LM-based biomaterials not only have been utilized in injectable drugs for cancer therapy, tumor recurrence suppression, and imaging, but also can be used for implantable physiological sensors and therapeutic devices. However, a systematic review of LM-based injectable and implantable biomaterials and devices for healthcare is still lacking. This review addresses this gap by providing a comprehensive analysis of LM-based biomaterials and devices for healthcare sensors, diagnostics, and therapeutics. First, the properties of LMs and their engineering strategies are outlined. Then, LM-based injectable and implantable biomaterials for drug delivery, cancer therapy, bioimaging, and their stimuli-responsive mechanisms, as well as implantable sensors for neural, cardiovascular, and gastrointestinal systems, are discussed. Finally, challenges in clinical translation and future research directions are proposed to advance LM-based biomedical technologies. STATEMENT OF SIGNIFICANCE: No existing review systematically overviews the engineering strategies, stimulus-responsive mechanisms, and biomedical applications specific to liquid metal-based injectable and implantable devices. This review addresses this gap by systematically analyzing LM-based biomaterials and devices, focusing on their applications in therapeutic biomaterials, soft therapeutic biodevices, and diagnostic sensors. We introduce the fundamental properties and advanced engineering strategies of LM biomaterials, analyze their roles in injectables with an emphasis on stimulus-responsive therapeutic mechanisms, and highlight their potential in soft biodevices for implantable applications such as soft electronics and neural interfaces. Key challenges hindering clinical translation are identified, and future directions are proposed, providing comprehensive insight for researchers and advancing the development of LM-based biomedical technologies.

液体金属基生物材料和可注射和植入医疗保健的柔性装置。
可注射和可植入的生物材料和生物医学设备对于疾病诊断、监测和治疗至关重要,可以实现微创手术、靶向治疗和实时监测功能。液态金属(LMs)以其柔软性、流动性、生物相容性和独特的物理化学性质而闻名,已成为此类应用的有前途的材料。通过功能化和工程化,lm基生物材料不仅可用于治疗癌症的注射药物、肿瘤复发抑制和成像,还可用于植入式生理传感器和治疗装置。然而,基于lm的可注射和可植入生物材料和医疗器械的系统综述仍然缺乏。这篇综述通过提供基于lm的生物材料和医疗保健传感器、诊断和治疗设备的全面分析,解决了这一差距。首先,概述了LMs的特性及其工程策略。然后,讨论了用于药物递送、癌症治疗、生物成像的基于lm的可注射和可植入生物材料及其刺激响应机制,以及用于神经、心血管和胃肠道系统的可植入传感器。最后,提出了临床转化面临的挑战和未来的研究方向,以推动基于lm的生物医学技术的发展。意义声明:没有现有的综述系统地概述了基于液态金属的可注射和可植入装置的工程策略、刺激反应机制和生物医学应用。本文通过系统分析基于lm的生物材料和器件,重点介绍其在治疗性生物材料、软治疗性生物器件和诊断传感器方面的应用,解决了这一空白。我们介绍了LM生物材料的基本特性和先进的工程策略,分析了它们在注射中的作用,重点分析了刺激反应治疗机制,并强调了它们在软性生物设备(如软电子和神经接口)植入应用中的潜力。指出了阻碍临床翻译的关键挑战,并提出了未来的发展方向,为研究人员提供了全面的见解,推动了基于lm的生物医学技术的发展。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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