School of Life Sciences , University of Science and Technology of China , Hefei , Anhui 230027 , P.R. China.
Guangzhou Regenerative Medicine and Health Guangdong Laboratory , Guangzhou 510005 , P.R. China.
ACS Nano. 2019 Aug 27;13(8):8648-8658. doi: 10.1021/acsnano.9b03472. Epub 2019 Jul 22.
Lymph nodes (LNs) are normally the primary site of tumor metastasis, and effective delivery of chemotherapeutics into LNs through systemic administration is critical for metastatic cancer treatment. Here, we uncovered that improved perfusion in a primary tumor facilitates nanoparticle translocation to LNs for inhibiting tumor metastasis. On the basis of our finding that an iCluster platform, which undergoes size reduction from ∼100 nm to ∼5 nm at the tumor site, markedly improved particle perfusion in the interstitium of the primary tumor, we further revealed in the current study that such tumor-specific size transition promoted particle intravasation into tumor lymphatics and migration into LNs. Quantitative analysis indicated that the drug deposition in LNs after iCluster treatment was significantly higher in the presence of a primary tumor in comparison with that after primary tumor resection. Early intervention of metastatic 4T1 tumors with iCluster chemotherapy and subsequent surgical resection of the primary tumor resulted in significantly extending animal survival, with 4 out of the 10 mice remaining completely tumor-free for 110 days. Additionally, in the more clinical relevant late metastatic model, iCluster inhibited the metastatic colonies to the lungs and extended animal survival time. This finding provides insights into the design of more effective nanomedicines for treating metastatic cancer.
淋巴结(LNs)通常是肿瘤转移的主要部位,通过全身给药将化疗药物有效递送至 LNs 对于转移性癌症治疗至关重要。在这里,我们发现原发性肿瘤中的灌注改善有助于纳米颗粒向 LNs 转移,从而抑制肿瘤转移。基于我们的发现,iCluster 平台在肿瘤部位从约 100nm 缩小到约 5nm,显著改善了原发性肿瘤间质中的颗粒灌注,我们在本研究中进一步揭示了这种肿瘤特异性的尺寸转变促进了颗粒内渗进入肿瘤淋巴管并迁移到 LNs 中。定量分析表明,与原发性肿瘤切除后相比,iCluster 治疗后 LNs 中的药物沉积明显更高。用 iCluster 化学疗法早期干预转移性 4T1 肿瘤,随后切除原发性肿瘤,显著延长了动物的存活时间,其中 10 只小鼠中有 4 只在 110 天内完全无肿瘤。此外,在更具临床相关性的晚期转移性模型中,iCluster 抑制了转移到肺部的菌落并延长了动物的存活时间。这一发现为治疗转移性癌症的更有效纳米药物的设计提供了思路。