用于精确生理和分子监测的基因可编程可穿戴设备。

IF 8.2 2区 医学 Q1 ENGINEERING, BIOMEDICAL
Jin He, Mengdie Fu, Wenyue An, Wenyi Xu, Jieruo Zhou, Yan Chen, Zichun Xia, Zhiwei Jiang, Guoli Yang
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引用次数: 0

摘要

可穿戴设备已经成为持续、实时健康监测的强大工具,可以检测汗液、眼泪、唾液和间质液中的生化标志物。然而,现有的可穿戴材料受限于有限的化学功能、静态传感能力和对动态生理条件的适应性不足,这限制了它们目前在精准医疗中的影响。最近的进展集中在将基因工程和合成生物学集成到可穿戴平台上,从而产生基因可编程的生物接口,增强临床和个性化医疗保健环境中的特异性、响应性和功能多功能性。这些生物工程设备目前的应用包括病原体、激素、治疗药物水平和生理行为的实时监测,与传统的可穿戴技术相比,它们具有更高的精度和适应性。本文综述了推动这一领域的两个关键工程方法:转基因活细胞和无细胞合成生物学系统。尽管前景看好,但仍存在一些挑战,包括生物安全问题、生物成分的不稳定性和转化障碍,限制了其在临床的广泛应用。解决这些挑战需要在生物相容性、可控基因表达和耐用可穿戴材料方面取得进展。展望未来,未来的研究应致力于将这些生物接口与植入式和智能治疗系统相结合,开发具有自我调节功能的自主生物传感器,并进一步扩大其在个性化医疗和实时疾病管理中的应用。通过将基因编程与可穿戴诊断相结合,这些创新为下一代生物混合系统奠定了基础,旨在推进精准医疗。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Genetically programmable wearable devices for precision physiological and molecular monitoring.

Wearable devices have emerged as powerful tools for continuous, real-time health monitoring, enabling the detection of biochemical markers in sweat, tears, saliva, and interstitial fluid. However, existing wearable materials are hindered by limited chemical functionality, static sensing capabilities, and insufficient adaptability to dynamic physiological conditions, which restrict their current impact in precision medicine. Recent advancements have focused on integrating genetic engineering and synthetic biology into wearable platforms, resulting in genetically programmable biointerfaces that enhance specificity, responsiveness, and functional versatility in clinical and personalized healthcare settings. Current applications of these bioengineered devices include real-time monitoring of pathogens, hormones, therapeutic drug levels, and physiological behaviors, offering superior precision and adaptability compared to traditional wearable technologies. This review highlights two key engineering approaches driving this field: genetically modified living cells and cell-free synthetic biology systems. While promising, several challenges still limit broader clinical adoption, including biosafety concerns, the instability of biological components, and translational hurdles. Addressing these challenges requires progress in biocompatibility, controlled gene expression, and durable wearable materials. Looking ahead, future research should aim to integrate these biointerfaces with implantable and smart therapeutic systems, develop autonomous biosensors with self-regulatory functions, and further expand their use in personalized medicine and real-time disease management. By bridging genetic programming with wearable diagnostics, these innovations are laying the groundwork for next-generation biohybrid systems designed to advance precision healthcare. .

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来源期刊
Biofabrication
Biofabrication ENGINEERING, BIOMEDICAL-MATERIALS SCIENCE, BIOMATERIALS
CiteScore
17.40
自引率
3.30%
发文量
118
审稿时长
2 months
期刊介绍: Biofabrication is dedicated to advancing cutting-edge research on the utilization of cells, proteins, biological materials, and biomaterials as fundamental components for the construction of biological systems and/or therapeutic products. Additionally, it proudly serves as the official journal of the International Society for Biofabrication (ISBF).
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