MOE Key Laboratory of Macromolecular Synthesis and Functionalization, Department of Polymer Science and Engineering, Zhejiang University, Hangzhou, 310058, China.
State Key Laboratory for Diagnosis and Treatment of Infectious Diseases, National Clinical Research Center for Infectious Diseases, National Medical Center for Infectious Diseases, Collaborative Innovation Center for Diagnosis and Treatment of Infectious Diseases, The First Affiliated Hospital, Zhejiang University School of Medicine, Hangzhou, 310003, China.
Biomaterials. 2025 Mar;314:122834. doi: 10.1016/j.biomaterials.2024.122834. Epub 2024 Sep 11.
Inflammatory bowel disease (IBD) is characterized by the upregulation of reactive oxygen species (ROS) and dysfunction of gut immune system, and microbiota. The conventional treatments mainly focus on symptom control with medication by overuse of drugs. There is an urgent need to develop a closed-loop strategy that combines in situ monitoring and precise treatment. Herein, we innovatively designed the 'cluster munition structure' theranostic microgels to realize the monitoring and therapy for ulcerative colitis (a subtype of IBD). The superoxide anion specific probe (tetraphenylethylene-coelenterazine, TPC) and ROS-responsive nanogels consisting of postbiotics urolithin A (UA) were loaded into alginate and ion-crosslinked to obtain the theranostic microgels. The theranostic microgels could be delivered to the inflammatory site, where the environment-triggered breakup of the microgels and release of the nanogels were achieved in sequence. The TPC-UA group had optimal results in reducing inflammation, repairing colonic epithelial tissue, and remodeling microbiota, leading to inflammation amelioration and recovery of tight junction between the colonic epithelium, and maintenance of gut microbiota. During the recovery process, the local chemiluminescence intensity, which is proportional to the degree of inflammation, was gradually inhibited. The cluster munition of theranostic microgels displayed promising outcomes in monitoring inflammation and precise therapy, and demonstrated the potential for inflammatory disease management.
炎症性肠病 (IBD) 的特征是活性氧 (ROS) 的上调和肠道免疫系统及微生物群的功能障碍。传统的治疗方法主要侧重于通过过度使用药物来控制症状。因此,非常需要开发一种结合原位监测和精确治疗的闭环策略。在这里,我们创新性地设计了“集束弹药结构”治疗诊断微凝胶,以实现对溃疡性结肠炎(IBD 的一种亚型)的监测和治疗。超氧阴离子特异性探针(四苯乙烯-海肾素,TPC)和由后生元尿石素 A(UA)组成的 ROS 响应纳米凝胶被装载到海藻酸钠中,并进行离子交联以获得治疗诊断微凝胶。治疗诊断微凝胶可以递送到炎症部位,在那里微凝胶的环境触发破裂和纳米凝胶的释放是依次进行的。TPC-UA 组在减轻炎症、修复结肠上皮组织和重塑微生物群方面效果最佳,从而改善炎症和恢复结肠上皮之间的紧密连接,并维持肠道微生物群。在恢复过程中,与炎症程度成正比的局部化学发光强度逐渐受到抑制。治疗诊断微凝胶的集束弹药在监测炎症和精确治疗方面显示出了良好的效果,为炎症性疾病的管理提供了新的思路。