TY - JOUR
T1 - Ultrasound-guided spatial delivery based on acoustic bacteria to enhance cancer immunotherapy
AU - Wu, Haitao
AU - Lin, Bowen
AU - Wang, Yueyuan
AU - Zhang, Chaonan
AU - Wu, Haiyan
AU - Li, Minghao
AU - Liu, Xuan
AU - Ya, Zhen
AU - An, Shizhe
AU - Wan, Mingxi
AU - Zong, Yujin
N1 - Publisher Copyright:
© 2026 Elsevier B.V.
PY - 2026/10/5
Y1 - 2026/10/5
N2 - Intratumoral injection is a well-established strategy for local cancer immunotherapy. However, its efficacy is critically limited by the spatially heterogeneous tumor microenvironment (TME), particularly the presence of hypoxic-necrotic regions that induce immunosuppression. The lack of reliable image guidance for precise intratumoral injection site selection remains a major challenge. Here, we developed an ultrasound-guided intratumoral delivery method based on aptamer-modified acoustic bacteria (AAB). AAB were genetically engineered to express gas vesicles (GVs) for enhanced ultrasound contrast and surface-modified with AS1411 aptamer via amide condensation to promote tumor accumulation. Following intravenous administration, AAB preferentially accumulate to hypoxic-necrotic tumor niches, enabling contrast-enhanced ultrasound (CEUS) imaging of these immunosuppressive niches. Guided by AAB-based CEUS imaging, therapeutic bacteria (TB), which were engineered to express a bacteriolytic protein and release CD47 nanobodies, were accurately injected either inside or outside the hypoxic-necrotic regions. Injection outside these regions yielded significantly superior antitumor efficacy. This enhanced therapeutic effect was mediated by preserved availability of functional CD47 targets on viable tumor cells, coupled with robust induction of M1 macrophage polarization and a potent pro-inflammatory immune microenvironment within the tumor. This study provides a practical image-guided strategy to overcome the therapeutic barriers imposed by intratumoral heterogeneity and maximize the efficacy of bacterial cancer immunotherapy.
AB - Intratumoral injection is a well-established strategy for local cancer immunotherapy. However, its efficacy is critically limited by the spatially heterogeneous tumor microenvironment (TME), particularly the presence of hypoxic-necrotic regions that induce immunosuppression. The lack of reliable image guidance for precise intratumoral injection site selection remains a major challenge. Here, we developed an ultrasound-guided intratumoral delivery method based on aptamer-modified acoustic bacteria (AAB). AAB were genetically engineered to express gas vesicles (GVs) for enhanced ultrasound contrast and surface-modified with AS1411 aptamer via amide condensation to promote tumor accumulation. Following intravenous administration, AAB preferentially accumulate to hypoxic-necrotic tumor niches, enabling contrast-enhanced ultrasound (CEUS) imaging of these immunosuppressive niches. Guided by AAB-based CEUS imaging, therapeutic bacteria (TB), which were engineered to express a bacteriolytic protein and release CD47 nanobodies, were accurately injected either inside or outside the hypoxic-necrotic regions. Injection outside these regions yielded significantly superior antitumor efficacy. This enhanced therapeutic effect was mediated by preserved availability of functional CD47 targets on viable tumor cells, coupled with robust induction of M1 macrophage polarization and a potent pro-inflammatory immune microenvironment within the tumor. This study provides a practical image-guided strategy to overcome the therapeutic barriers imposed by intratumoral heterogeneity and maximize the efficacy of bacterial cancer immunotherapy.
KW - Acoustic bacteria
KW - Contrast-enhanced ultrasound imaging
KW - Immunotherapy
KW - Therapeutic bacteria
KW - Ultrasound-guided spatial delivery
UR - https://www.scopus.com/pages/publications/105047622858
U2 - 10.1016/j.ijpharm.2026.127306
DO - 10.1016/j.ijpharm.2026.127306
M3 - 文章
C2 - 42603576
AN - SCOPUS:105047622858
SN - 0378-5173
VL - 703
JO - International Journal of Pharmaceutics
JF - International Journal of Pharmaceutics
M1 - 127306
ER -