CESPU - Instituto de Investigação e Formação Avançada em Ciências e Tecnologias da Saúde, Rua Central de Gandra 1317, 4585-116 Gandra, Portugal.
INEB - Instituto Nacional de Engenharia Biomédica, Universidade do Porto, Rua Alfredo Allen 208, 4200-180 Porto, Portugal; i3S - Instituto de Investigação e Inovação em Saúde, Universidade do Porto, Rua Alfredo Allen 208, 4200-180 Porto, Portugal; ICBAS - Instituto Ciências Biomédicas Abel Salazar, Universidade do Porto, Rua de Jorge Viterbo Ferreira 228, 4050-313 Porto, Portugal.
Prog Neurobiol. 2017 Dec;159:39-49. doi: 10.1016/j.pneurobio.2017.09.001. Epub 2017 Sep 9.
The blood brain barrier (BBB) is a well-established cell-based membrane that circumvents the central nervous system (CNS), protecting it from harmful substances. Due to its robustness and cell integrity, it is also an outstanding opponent when it comes to the delivery of several therapeutic agents to the brain, which requires the crossing through its highly-organized structure. This regulation and cell-cell communications occur mostly between astrocytes, pericytes and endothelial cells. Therefore, alternative ways to deliver drugs to the CNS, overcoming the BBB are required, to improve the efficacy of brain target drugs. Nanoparticles emerge here as a promising drug delivery strategy, due to their ability of high drug loading and the capability to exploit specific delivery pathways that most drugs are unable to when administered freely, increasing their bioavailability in the CNS. Thus, further attempts to assess the possible influence of non-endothelial may have on the BBB translocation of nanoparticles are here revised. Furthermore, the use of macrophages and/or monocytes as nanoparticle delivery cells are also approached. Lastly, the temporarily disruption of the overall organization and normal structure of the BBB to promote the penetration of nanoparticles aimed at the CNS is described, as a synergistic path.
血脑屏障(BBB)是一种成熟的基于细胞的膜,它绕过中枢神经系统(CNS),保护其免受有害物质的侵害。由于其坚固性和细胞完整性,当涉及到将几种治疗剂递送到大脑时,它也是一个出色的对手,这需要穿过其高度组织化的结构。这种调节和细胞间通讯主要发生在星形胶质细胞、周细胞和内皮细胞之间。因此,需要寻找替代方法将药物递送到中枢神经系统,克服血脑屏障,以提高大脑靶向药物的疗效。纳米颗粒作为一种有前途的药物递送策略出现,因为它们能够实现高药物负载,并能够利用大多数自由给药的药物无法利用的特定递药途径,从而提高其在中枢神经系统中的生物利用度。因此,这里重新评估了非内皮细胞对纳米颗粒穿过血脑屏障的可能影响。此外,还探讨了使用巨噬细胞和/或单核细胞作为纳米颗粒递送细胞的方法。最后,描述了暂时破坏血脑屏障的整体组织和正常结构以促进旨在进入中枢神经系统的纳米颗粒的穿透,这是一种协同途径。