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聚乙二亚胺(PEI)修饰的聚乳酸-共-羟基乙酸(PLGA)纳米颗粒与肿瘤归巢细菌偶联促进高强度聚焦超声介导的肿瘤消融。

Polyethylenimine (PEI)-modified poly (lactic-co-glycolic) acid (PLGA) nanoparticles conjugated with tumor-homing bacteria facilitate high intensity focused ultrasound-mediated tumor ablation.

机构信息

State Key Laboratory of Ultrasound in Medicine and Engineering, College of Biomedical Engineering, Chongqing Medical University, Chongqing, 400016, People's Republic of China; Chongqing Key Laboratory of Biomedical Engineering, Chongqing Medical University, Chongqing, 400016, People's Republic of China.

State Key Laboratory of Ultrasound in Medicine and Engineering, College of Biomedical Engineering, Chongqing Medical University, Chongqing, 400016, People's Republic of China; Chongqing Key Laboratory of Biomedical Engineering, Chongqing Medical University, Chongqing, 400016, People's Republic of China.

出版信息

Biochem Biophys Res Commun. 2021 Sep 24;571:104-109. doi: 10.1016/j.bbrc.2021.07.061. Epub 2021 Jul 24.

Abstract

The acoustic propagation characteristic of ultrasound determines that the energy of ultrasound beam will decrease with the increase of its propagation depth in the body. Similarly, the energy of High Intensity Focused Ultrasound (HIFU) will be attenuated with the increase of HIFU propagation depth in the body. Ensuring sufficient ultrasound energy deposition in the HIFU ablation region for tumor ablation is usually achieved by increasing the ultrasound irradiation power or prolonging the ultrasound ablation time. However, these two methods may damage the normal tissue adjacent to the HIFU ablation region. Herein, we constructed the nanoparticles conjugated with tumor-homing bacteria as the biological tumor-homing synergist to facilitate HIFU-mediated tumor ablation avoiding the potential safety risk. In our strategy, Bifidobacterium bifidum (B.bifidum) was selectively colonized in the hypoxic region of solid tumors after been injected into 4T1 breast cancer bearing-BALB/c mice via the tail vein due to its anaerobic growth characteristic. The amount of B. bifidum with negative surface potential in the hypoxic region of solid tumors was increased by its anaerobic proliferation. Polyethylenimine (PEI) -modified Poly (lactic-co-glycolic) acid nanoparticles loaded sodium bicarbonate (PEI-PLGA-NaHCO-NPs) with positive surface potential injected into 4T1 breast cancer bearing-BALB/c mice via the tail vein displayed the tumor-homing ability by the electrostatic adsorption with B. bifidum colonized solid tumors. PEI-PLGA-NaHCO-NPs could release NaHCO to produce carbon dioxide (CO) as cavitation nuclei inside the acidic microenvironment of solid tumors. When HIFU irradiated solid tumors contained with more cavitation nuclei, the ultrasound energy deposition at the tumor region was increased to destroy the tumors more effectively. Meanwhile, the improved efficiency of HIFU-mediated tumor ablation reduced the dependence of the tumor ablation on the ultrasound energy dose, which improved the safety of HIFU-mediated tumor ablation to the non-targeted ablation tissue. This tumor-homing synergist shows the potential application value on the HIFU-mediated tumor ablation in the clinical.

摘要

超声的声学传播特性决定了超声束的能量会随着在体内传播深度的增加而降低。同样,高强度聚焦超声(HIFU)的能量也会随着在体内传播深度的增加而衰减。为了确保在 HIFU 消融区域有足够的超声能量沉积以达到肿瘤消融的目的,通常会通过增加超声辐照功率或延长超声消融时间来实现。然而,这两种方法都可能会损伤 HIFU 消融区域附近的正常组织。在此,我们构建了纳米粒子与肿瘤归巢细菌偶联作为生物肿瘤归巢协同剂,以促进 HIFU 介导的肿瘤消融,避免潜在的安全风险。在我们的策略中,双歧杆菌(B.bifidum)通过尾静脉注入荷瘤 4T1 乳腺癌 BALB/c 小鼠后,由于其厌氧生长特性,选择性定植在实体瘤的缺氧区域。由于其厌氧增殖,实体瘤缺氧区域中具有负表面电势的 B.bifidum 的数量增加。通过静电吸附与定植在实体瘤中的 B.bifidum 结合,具有正表面电势的负载碳酸氢钠的聚乙烯亚胺(PEI)修饰的聚乳酸-羟基乙酸纳米粒子(PEI-PLGA-NaHCO-NPs)经尾静脉注入荷瘤 4T1 乳腺癌 BALB/c 小鼠后显示出肿瘤归巢能力。PEI-PLGA-NaHCO-NPs 可以释放 NaHCO3 在实体瘤酸性微环境中产生二氧化碳(CO)作为空化核。当 HIFU 辐照含有更多空化核的实体瘤时,肿瘤区域的超声能量沉积增加,从而更有效地破坏肿瘤。同时,提高了 HIFU 介导的肿瘤消融效率降低了对超声能量剂量的依赖性,从而提高了 HIFU 介导的肿瘤消融对非靶向消融组织的安全性。这种肿瘤归巢协同剂在临床上具有 HIFU 介导的肿瘤消融的潜在应用价值。

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