血糖性
胰岛素
生物安全
免疫系统
颗粒(地质)
胰岛素释放
激素
材料科学
控制释放
药理学
医学
生长激素
内分泌学
输送系统
毒性
内科学
内分泌系统
糖尿病
免疫原性
生物
生物信息学
基因工程
作者
Da‐Zhi Chen,Yang Li,Shulan Ni,Chaofan Jin,Chunyi Xu,Xingjie Zan,Yang Wang,Hong Zhu
标识
DOI:10.1002/adma.202501344
摘要
Abstract Developing high‐payload systems that dynamically respond to physiological fluctuations is crucial not only for improving the precision, safety, and efficacy of protein therapies but also for addressing biosafety concerns associated with carriers, reducing administration frequency, minimizing infection risks, and enhancing patient compliance. However, achieving precise control over protein release in the high‐payload carriers remain a major challenge. In this study, a physiology‐responsive, high‐payload insulin (Ins) granule is engineered for long‐term glucose management, using Ins as a model—an essential hormone that must be released in response to blood glucose changes for effective glycemic control in diabetic patients. The [(Ins&GOx)@Zn]@[TA&Fe] granules achieve an Ins loading capacity (LC%) exceeding 80%, significantly higher than the previously reported maximum of ≈40%. These granules extend the glucose‐regulating effect of free Ins, typically limited to 3 h, to 6 days with a single injection, without any observed risk of hypoglycemia. Long‐term administration (28 days, 4 injection cycles, 7 days injection −1 ) shows no significant physiological toxicity or immune response. This approach offers a promising strategy for developing intelligent, high‐payload delivery systems for protein‐based therapeutics, advancing more precise, safe, and patient‐compliant treatments.
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