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生物素化反式环辛烯纳米粒子的控制原位自组装用于正交双重前靶向近红外荧光和磁共振成像。

Controlled In Situ Self-Assembly of Biotinylated Trans-Cyclooctene Nanoparticles for Orthogonal Dual-Pretargeted Near-Infrared Fluorescence and Magnetic Resonance Imaging.

机构信息

State Key Laboratory of Analytical Chemistry for Life Science, Chemistry and Biomedicine Innovation Center (ChemBIC), School of Chemistry and Chemical Engineering, Nanjing University, Nanjing 210023, China.

出版信息

J Am Chem Soc. 2024 May 15;146(19):13163-13175. doi: 10.1021/jacs.4c00731. Epub 2024 May 2.

Abstract

A pretargeted strategy that decouples targeting vectors from radionuclides has shown promise for nuclear imaging and/or therapy in vivo. However, the current pretargeted approach relies on the use of antibodies or nanoparticles as the targeting vectors, which may be compromised by poor tissue penetration and limited accumulation of targeting vectors in the tumor tissues. Herein, we present an orthogonal dual-pretargeted approach by combining stimuli-triggered in situ self-assembly strategy with fast inverse electron demand Diels-Alder (IEDDA) reaction and strong biotin-streptavidin (SA) interaction for near-infrared fluorescence (NIR FL) and magnetic resonance (MR) imaging of tumors. This approach uses a small-molecule probe (P-Cy-TCO&Bio) containing both biotin and trans-cyclooctene (TCO) as a tumor-targeting vector. P-Cy-TCO&Bio can efficiently penetrate subcutaneous HeLa tumors through biotin-assisted targeted delivery and undergo in situ self-assembly to form biotinylated TCO-bearing nanoparticles (Cy-TCO&Bio NPs) on tumor cell membranes. Cy-TCO&Bio NPs exhibited an "off-on" NIR FL and retained in the tumors, offering a high density of TCO and biotin groups for the concurrent capture of Gd-chelate-labeled tetrazine (Tz-Gd) and IR780-labeled SA (SA-780) via the orthogonal IEDDA reaction and SA-biotin interaction. Moreover, Cy-TCO&Bio NPs offered multiple-valent binding modes toward SA, which additionally regulated the cross-linking of Cy-Gd&Bio NPs into microparticles (Cy-Gd&Bio/SA MPs). This process could significantly (1) increase relaxivity and (2) enhance the accumulation of Tz-Gd and SA-780 in the tumors, resulting in strong NIR FL, bright MR contrast, and an extended time window for the clear and precise imaging of HeLa tumors.

摘要

一种将靶向载体与放射性核素分离的靶向策略,已显示出在体内核医学成像和/或治疗方面的应用前景。然而,目前的靶向方法依赖于使用抗体或纳米颗粒作为靶向载体,这可能会受到组织穿透不良和靶向载体在肿瘤组织中积累有限的影响。在此,我们提出了一种正交双靶向策略,将刺激触发原位自组装策略与快速逆向电子需求 Diels-Alder (IEDDA) 反应和强生物素-链霉亲和素 (SA) 相互作用相结合,用于肿瘤的近红外荧光 (NIR FL) 和磁共振 (MR) 成像。该方法使用一种包含生物素和反式环辛烯 (TCO) 的小分子探针 (P-Cy-TCO&Bio) 作为肿瘤靶向载体。P-Cy-TCO&Bio 可以通过生物素辅助的靶向递送有效地穿透皮下 HeLa 肿瘤,并在肿瘤细胞膜上原位自组装形成带有生物素的 TCO 纳米颗粒 (Cy-TCO&Bio NPs)。Cy-TCO&Bio NPs 表现出“开启-关闭”的 NIR FL 并保留在肿瘤中,为通过正交 IEDDA 反应和 SA-生物素相互作用同时捕获 Gd-螯合的四嗪 (Tz-Gd) 和 IR780 标记的 SA (SA-780) 提供了高浓度的 TCO 和生物素基团。此外,Cy-TCO&Bio NPs 提供了针对 SA 的多价结合模式,这进一步调节了 Cy-Gd&Bio NPs 交联成微颗粒 (Cy-Gd&Bio/SA MPs)。这个过程可以显著地:(1) 增加弛豫率;(2) 增强 Tz-Gd 和 SA-780 在肿瘤中的积累,从而产生强烈的 NIR FL、明亮的 MR 对比,并为清晰准确地成像 HeLa 肿瘤提供了更长的时间窗口。

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