Vascular Biology Program , Boston Children's Hospital , Boston , Massachusetts 02115 , United States.
Department of Surgery , Harvard Medical School , Boston , Massachusetts 02115 , United States.
ACS Nano. 2019 Dec 24;13(12):13853-13865. doi: 10.1021/acsnano.9b04397. Epub 2019 Sep 10.
The restrictive nature of the blood-brain barrier (BBB) creates a major challenge for brain drug delivery with current nanomedicines lacking the ability to cross the BBB. Extracellular vesicles (EVs) have been shown to contribute to the progression of a variety of brain diseases including metastatic brain cancer and have been suggested as promising therapeutics and drug delivery vehicles. However, the ability of native tumor-derived EVs to breach the BBB and the mechanism(s) involved in this process remain unknown. Here, we demonstrate that tumor-derived EVs can breach the intact BBB , and by using state-of-the-art and models of the BBB, we have identified transcytosis as the mechanism underlying this process. Moreover, high spatiotemporal resolution microscopy demonstrated that the endothelial recycling endocytic pathway is involved in this transcellular transport. We further identify and characterize the mechanism by which tumor-derived EVs circumvent the low physiologic rate of transcytosis in the BBB by decreasing the brain endothelial expression of rab7 and increasing the efficiency of their transport. These findings identify previously unknown mechanisms by which tumor-derived EVs breach an intact BBB during the course of brain metastasis and can be leveraged to guide and inform the development of drug delivery approaches to deliver therapeutic cargoes across the BBB for treatment of a variety of brain diseases including, but not limited to, brain malignancies.
血脑屏障 (BBB) 的限制性质给脑内药物输送带来了重大挑战,目前的纳米医学缺乏穿越 BBB 的能力。已经证明细胞外囊泡 (EVs) 有助于多种脑部疾病的进展,包括转移性脑癌,并被认为是有前途的治疗方法和药物输送载体。然而,天然肿瘤衍生的 EVs 穿透 BBB 的能力以及涉及该过程的机制尚不清楚。在这里,我们证明了肿瘤衍生的 EVs 可以穿透完整的 BBB,并且通过使用 BBB 的最先进模型,我们已经确定了胞吞作用是该过程的机制。此外,高时空分辨率显微镜显示,内皮细胞再循环内吞途径参与了这种细胞间转运。我们进一步确定并表征了肿瘤衍生的 EVs 通过降低脑内皮细胞 rab7 的表达并提高其运输效率来规避 BBB 中低生理胞吞作用速率的机制。这些发现确定了肿瘤衍生的 EVs 在脑转移过程中穿透完整 BBB 的先前未知的机制,并可用于指导和告知药物输送方法的开发,以将治疗性货物输送穿过 BBB,用于治疗各种脑部疾病,包括但不限于脑恶性肿瘤。