Ultrasound molecular imaging of prostate cancer via PSMA-targeted biosynthetic GVs

前列腺癌 前列腺 分子成像 超声波 小泡 分子探针 化学 流式细胞术 共焦显微镜 免疫荧光 癌症研究 共焦 病理 生物相容性 癌症 跨膜蛋白 细胞毒性 前列腺特异性抗原 医学 精囊 PCA3系列 微气泡 膀胱癌 癌细胞 谷氨酸羧肽酶Ⅱ 生物医学工程 荧光寿命成像显微镜 循环肿瘤细胞 磁共振成像 分子生物学
作者
Kunpeng Yu,Yuanyuan Wang,Zihang Wang,Chenhui Li,Chenxing Liu,Qunyan Wu,Yuping Yang,Zhongzhen Su,Fei Yan,Yongquan Huang
出处
期刊:Biomaterials Science [Royal Society of Chemistry]
卷期号:14 (2): 495-505
标识
DOI:10.1039/d5bm01324k
摘要

Purpose: Early diagnosis of prostate cancer is critical for improving prognosis, but current detection techniques face limitations such as low sensitivity, high cost, and radiation risks. Prostate-specific membrane antigen (PSMA) is a transmembrane protein highly expressed in prostate cancer cells and a promising diagnostic and prognostic indicator. This study aims to develop a PSMA-targeted ultrasound contrast agent based on nanobody-modified gas vesicles (GVs) for early diagnosis of prostate cancer. Materials and Methods: GVs were extracted from Halobacterium NRC-1 (Halo). PSMA-targeting nanobodies (Nb-PSMA) were synthesized by Escherichia coli. PSMA-targeted gas vesicles (PSMA-GVs) were prepared by coupling Nb-PSMA to GVs via the intermediate coupling agent Mal-PEG2000-NHS. Control vesicles were prepared similarly. The targeting specificity of PSMA-GVs towards prostate cancer cells was assessed by flow cytometry and confocal microscopy using PSMA-positive PC-3 cells. In vivo contrast-enhanced ultrasound imaging of PSMA-GVs was performed in prostate cancer-bearing mice at early and advanced stages. The biocompatibility of PSMA-GVs was assessed by hemolysis tests, CCK8 cytotoxicity assays, serum biochemical assays and HE staining. Results: PSMA-GVs exhibited a uniform size, with a hydrodynamic diameter of 267.73 ± 2.86 nm, and showed a high specific binding ability to PC3 cells. In vivo ultrasound imaging of prostate cancer-bearing mice showed that PSMA-GVs had significantly slower tumor signal attenuation than Con-GVs. Our in vitro and in vivo experiments demonstrated that PSMA-GVs could bind to prostate cancer cells with higher specificity, generating stronger and longer-lasting molecular imaging signals in tumors, which presented significant advantages over Con-GVs. Immunofluorescence confirmed that PSMA-GVs crossed the vascular wall, entered the peritumoral vascular space, bound to tumor cells, and enabled PSMA-targeted molecular imaging. Additionally, PSMA-GVs showed good biocompatibility. Conclusion: Our study provides a new strategy for early ultrasound molecular imaging diagnosis of prostate cancer.
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