Lei Dong, Zhengcheng Yun, Lin Gao, Yue Li, Ying Zhou, Yini Zhu, Meng Li, Leqian Ying, Xuhong Yang, Jiangtao Yue, Xueqing Yong, Wanqing Cheng, Jia Miao, Nuo Xu, Xinyu Zhang, Hui Yang, Tingting Liu, Gaolin Liang, Shenghong Ju, Haijun Zhang, Jinbing Xie
Intranasal delivery offers a direct route to the brain, circumventing the blood-brain barrier (BBB) and minimizing systemic toxicity. However, its efficiency is mainly limited by the nasal mucosal barrier (NMB). Here, low-intensity pulsed ultrasound (LIPUS) without depending on the microbubbles (MBs) to amplify energy, is directly used to reversibly open the NMB by disrupting tight junction proteins. A bionic nanovesicle (iRGD-anti-programmed cell death ligand 1 (aPD-L1) & carvedilol (β-blocker) @ macrophage-derived extracellular vesicles, iMPC) is designed to co-deliver carvedilol for β-receptor blockade to reduce T-cell exhaustion, and aPD-L1 to enhance T-cell anti-tumor activity in orthotopic glioblastoma (GBM) mice during the two-hour window for NMB opening. Consequently, compared to free aPD-L1, up to a 33.38-fold increase of aPD-L1 in the GBM region is obtained with LIPUS-mediated intranasal delivery of iMPC. Reactivating T cells significantly enhances immunotherapy, leading to a 40% tumor reduction, extended survival, and long-term immune memory in orthotopic GBM mice. Overall, the LIPUS-mediated NMB opening strategy notably enhances nose-to-brain drug delivery efficiency, offering a promising platform for treating brain diseases.