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近红外纳米天线敏化工程菌实现缺氧靶向和空间选择性肿瘤抑制

Hypoxia-targeted and spatial-selective tumor suppression by near infrared nanoantenna sensitized engineered bacteria.

作者信息

Tao Chengcheng, Miao Xinxing, Yan Jun, Xiao Xiang, Wu Renfei, Cao Qinghua, Wang Zhexiang, Lv Rui, Ge Tianjin, Liu Jian

机构信息

Jiangsu Key Laboratory for Carbon-Based Functional Materials and Devices, Institute of Functional Nano and Soft Materials (FUNSOM), Soochow University, Suzhou, Jiangsu 215123, China.

Jiangsu Key Laboratory for Carbon-Based Functional Materials and Devices, Institute of Functional Nano and Soft Materials (FUNSOM), Soochow University, Suzhou, Jiangsu 215123, China.

出版信息

Acta Biomater. 2023 Oct 15;170:442-452. doi: 10.1016/j.actbio.2023.08.044. Epub 2023 Aug 25.

Abstract

It is an active research area in the development of engineered bacteria to address the bottleneck issue of hypoxic tumors, which otherwisely possess resistance to chemotherapies, radiotherapies, and photodynamic therapies. Here we report a new method to ablate hypoxic tumors with NIR-nanoantenna sensitized engineered bacteria (NASEB) in a highly effective and dual selective manner. It features engineered E. coli MG1655 (EB) with coatings of lanthanide upconversion nanoparticles (UCNPs) as external antennas on bacterial surface (MG1655/HlyE-sfGFP@UCNP@PEG), enabling NIR laser-switchable generation/secretion of HlyE perforin to kill cancer cells. We have demonstrated that NASEB enrichment on hypoxic tumor sites via their innate chemotactic tendency, in assistance of localized NIR laser irradiation, can suppress tumors with improved efficacy and selectivity, thus minimizing potential side effects in cancer treatment. The NIR-responsive nanoantenna sensitized switching in engineering bacteria is distinct from the previous reports, promising conceptually new development of therapeutics against hypoxic tumors. STATEMENT OF SIGNIFICANCE: Tumor hypoxia exacerbates tumor progression, but also reduces the efficacy of conventional chemotherapies, radiotherapies, or photodynamic therapies. Here we develop near infrared Nano Antenna Sensitized Engineered Bacteria (NASEB) to treat hypoxic tumors. NASEB can accumulate and proliferate on hypoxic tumor sites via their innate chemotactic tendency. After receiving NIR laser signals, the upconversion nanoparticles on NASEB surface as antennas can transduce them to blue light for activation of HlyE perforin in the protein factory of EB. Our method features dual selectivity on the tumor sites, contributed by hypoxic tumor homing of anaerobic bacteria and spatial confinement through selective NIR laser irradiation. The concept of NASEB promises to address the challenges of tumor hypoxia for cancer therapies.

摘要

解决缺氧肿瘤的瓶颈问题是工程细菌开发中一个活跃的研究领域,否则这些肿瘤对化疗、放疗和光动力疗法具有抗性。在此,我们报告一种用近红外纳米天线敏化工程细菌(NASEB)以高效和双重选择性方式消融缺氧肿瘤的新方法。其特点是工程化的大肠杆菌MG1655(EB)在细菌表面有镧系元素上转换纳米颗粒(UCNPs)涂层作为外部天线(MG1655/HlyE-sfGFP@UCNP@PEG),能够实现近红外激光可切换的HlyE穿孔素生成/分泌以杀死癌细胞。我们已经证明,NASEB通过其固有的趋化倾向在缺氧肿瘤部位富集,在局部近红外激光照射的辅助下,可以提高疗效和选择性地抑制肿瘤,从而将癌症治疗中的潜在副作用降至最低。工程细菌中近红外响应纳米天线敏化开关与先前的报道不同,有望在治疗缺氧肿瘤方面实现概念上的新发展。重要性声明:肿瘤缺氧会加剧肿瘤进展,但也会降低传统化疗、放疗或光动力疗法的疗效。在此,我们开发了近红外纳米天线敏化工程细菌(NASEB)来治疗缺氧肿瘤。NASEB可以通过其固有的趋化倾向在缺氧肿瘤部位积累和增殖。在接收到近红外激光信号后,NASEB表面作为天线的上转换纳米颗粒可以将其转换为蓝光,以激活EB蛋白质工厂中的HlyE穿孔素。我们的方法在肿瘤部位具有双重选择性,这是由厌氧菌对缺氧肿瘤的归巢和通过选择性近红外激光照射的空间限制所促成的。NASEB的概念有望解决癌症治疗中肿瘤缺氧的挑战。

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