Mooney Rachael, Roma Luella, Zhao Donghong, Van Haute Desiree, Garcia Elizabeth, Kim Seung U, Annala Alexander J, Aboody Karen S, Berlin Jacob M
Department of Neurosciences, ‡Department of Molecular Medicine, and §Division of Neurosurgery, Beckman Research Institute at City of Hope , 1500 East Duarte Road, Duarte, California 91010, United States.
ACS Nano. 2014 Dec 23;8(12):12450-60. doi: 10.1021/nn505147w. Epub 2014 Nov 17.
Plasmonic photothermal therapy utilizes biologically inert gold nanorods (AuNRs) as tumor-localized antennas that convert light into heat capable of eliminating cancerous tissue. This approach has lower morbidity than surgical resection and can potentially synergize with other treatment modalities including chemotherapy and immunotherapy. Despite these advantages, it is still challenging to obtain heating of the entire tumor mass while avoiding unnecessary collateral damage to surrounding healthy tissue. It is therefore critical to identify innovative methods to distribute an effective concentration of AuNRs throughout tumors without depositing them in surrounding healthy tissue. Here we demonstrate that AuNR-loaded, tumor-tropic neural stem cells (NSCs) can be used to improve the intratumoral distribution of AuNRs. A simple UV-vis technique for measuring AuNR loading within NSCs was established. It was then confirmed that NSC viability is unimpaired following AuNR loading and that NSCs retain AuNRs long enough to migrate throughout tumors. We then demonstrate that intratumoral injections of AuNR-loaded NSCs are more efficacious than free AuNR injections, as evidenced by reduced recurrence rates of triple-negative breast cancer (MDA-MB-231) xenografts following NIR exposure. Finally, we demonstrate that the distribution of AuNRs throughout the tumors is improved when transported by NSCs, likely resulting in the improved efficacy of AuNR-loaded NSCs as compared to free AuNRs. These findings highlight the advantage of combining cellular therapies and nanotechnology to generate more effective cancer treatments.
等离子体光热疗法利用生物惰性的金纳米棒(AuNRs)作为肿瘤定位天线,将光转化为能够消除癌组织的热量。这种方法的发病率低于手术切除,并且有可能与包括化疗和免疫疗法在内的其他治疗方式协同作用。尽管有这些优点,但在避免对周围健康组织造成不必要的附带损害的同时,实现整个肿瘤块的加热仍然具有挑战性。因此,确定创新方法以在整个肿瘤中分布有效浓度的AuNRs而不将它们沉积在周围健康组织中至关重要。在这里,我们证明负载AuNRs的肿瘤趋向性神经干细胞(NSCs)可用于改善AuNRs在肿瘤内的分布。建立了一种用于测量NSCs内AuNR负载的简单紫外-可见技术。然后证实,在负载AuNRs后NSC的活力未受损,并且NSCs保留AuNRs的时间足够长,足以在整个肿瘤中迁移。然后我们证明,瘤内注射负载AuNRs的NSCs比游离AuNRs注射更有效,近红外照射后三阴性乳腺癌(MDA-MB-231)异种移植瘤的复发率降低证明了这一点。最后,我们证明当由NSCs运输时,AuNRs在整个肿瘤中的分布得到改善,这可能导致负载AuNRs的NSCs与游离AuNRs相比疗效提高。这些发现突出了将细胞疗法和纳米技术相结合以产生更有效的癌症治疗方法的优势。