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杯芳烃包覆的金纳米棒作为强效光热剂。

Calixarene-coated gold nanorods as robust photothermal agents.

作者信息

Lepeintre Victor, Camerel Franck, Lagrost Corinne, Retout Maurice, Bruylants Gilles, Jabin Ivan

机构信息

Engineering of Molecular NanoSystems, Ecole Polytechnique de Bruxelles, Université Libre de Bruxelles (ULB), Avenue F. D. Roosevelt 50, CP165/64, B-1050 Brussels, Belgium.

Laboratoire de Chimie Organique, Université Libre de Bruxelles (ULB), Avenue F. D. Roosevelt 50, CP160/06, B-1050 Brussels, Belgium.

出版信息

Nanoscale. 2024 Oct 31;16(42):19692-19703. doi: 10.1039/d4nr02296c.

DOI:10.1039/d4nr02296c
PMID:39239669
Abstract

Gold nanorods (AuNRs) hold considerable promise for their use in biomedical applications, notably in the context of photothermal therapy (PTT). Yet, their anisotropic nature presents a notable hurdle. Under laser irradiation, these structures are prone to deformation, leading to changes in their optical and photothermal properties over time. To overcome this challenge, an efficient strategy involving the use of calix[4]arene-tetradiazonium salts for stabilizing AuNRs has been implemented. These molecular platforms are capable of irreversible grafting onto surfaces through the reduction of their diazonium groups, thereby resulting in the formation of exceedingly robust organic monolayers. This innovative coating strategy not only ensures enduring stability but also facilitates conjugation of AuNRs. This study showcases the superiority of these fortified AuNRs over conventional counterparts, notably exhibiting exceptional resilience even under sustained laser exposure in the context of PTT. By bolstering the stability and reliability of AuNRs in PTT, our approach holds the potential to drive significant advancements in the field.

摘要

金纳米棒(AuNRs)在生物医学应用中,尤其是在光热疗法(PTT)方面具有巨大的应用前景。然而,它们的各向异性性质带来了显著的障碍。在激光照射下,这些结构容易变形,导致其光学和光热性质随时间发生变化。为了克服这一挑战,已实施了一种有效的策略,即使用杯[4]芳烃四重氮盐来稳定AuNRs。这些分子平台能够通过其重氮基团的还原不可逆地接枝到表面,从而形成极其坚固的有机单层。这种创新的涂层策略不仅确保了持久的稳定性,还促进了AuNRs的共轭。本研究展示了这些强化后的AuNRs相较于传统AuNRs的优越性,特别是在PTT持续激光照射的情况下,表现出卓越的弹性。通过增强AuNRs在PTT中的稳定性和可靠性,我们的方法有望推动该领域取得重大进展。

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