Revolutionizing Self‐Oxygenating Biomaterial Platforms for Conquering Hypoxia: From Tissue Regeneration to Advanced Therapeutics

再生医学 纳米技术 再生(生物学) 组织缺氧 生化工程 生物材料 缺氧(环境) 组织工程 风险分析(工程) 生物相容性材料 工程伦理学 计算机科学 精密医学 重症监护医学 疾病治疗 生物医学工程 生物医学 人类疾病 医学 临床实习 基础研究 设计要素和原则
作者
Bin Cui,Min Wen,Chao Zhang,Yufeng Zheng,Zhaojun Jia
出处
期刊:Advanced Functional Materials [Wiley]
卷期号:36 (49) 被引量:1
标识
DOI:10.1002/adfm.202532131
摘要

ABSTRACT Hypoxic microenvironments in damaged or diseased tissues, arising primarily from inadequate or compromised vasculature, represent a critical yet often underappreciated limitation in contemporary regenerative medicine and oxygen‐reliant therapeutics such as photodynamic/sonodynamic therapy and chemotherapy/radiotherapy. Biomaterials‐based oxygen supplementation offers a promising yet underexplored strategy to alleviate or reverse local hypoxia insults. However, it remains an arduous challenge to controllably deliver and precisely replenish oxygen in accordance with the spatiotemporal demands of specific tissues. Addressing this challenge requires a thorough understanding of oxygen‐ and hypoxia‐centered pathophysiology, accurate monitoring and simulation of hypoxic conditions, and advances in the development of intelligent, designer oxygen‐delivering biomaterials. This review systematically examines fundamental theories, strategic advances, and emerging trends in precision oxygen therapy mediated by functional biomaterials. It begins by revisiting the physiopathological roles of oxygen and hypoxia, as well as strategies for hypoxia mimicry. Thereafter, the design rationale, fabrication techniques, and mechanisms of action of state‐of‐the‐art oxygen‐carrying/‐generating materials are compiled and discussed. Subsequently, bioadaptive, tissue/disease‐specific applications of these oxygenating materials are discussed, with emphasis on precision regeneration and targeted therapeutics. Finally, existing challenges and potential opportunities, from fundamental research to clinical translation, are critically assessed to spur future development. This review would be instrumental in guiding the design and utilization of self‐oxygenating biomaterials for advancing tissue engineering and disease therapy.
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