Centro Singular de Investigación en Química Biolóxica e Materiais Moleculares (CiQUS), Departamento de Física de Partículas, Universidade de Santiago de Compostela, 15782, Santiago de Compostela, Spain.
Adv Biosyst. 2020 Mar;4(3):e1900260. doi: 10.1002/adbi.201900260. Epub 2020 Jan 29.
Translating the potential of thermoplasmonics to cell-derived nanomaterials offers exciting opportunities to fabricate beyond state-of-art artificial biomimetic nanocomposites that upon illumination perform active tasks such as delivery of cargo in complex, dynamic media such as the cytosol of cells. Cell-derived nanoparticles have shown stunning potential to implement cell-specific functions, such as long blood circulation or targeting capabilities, into advanced drug delivery nanosystems. The biomimicry nanotechnology has now advanced to offer new and exciting opportunities to improve the commonly poor in vivo performance of most current nanomedicines, including evading the immune system and targeting specific tissues such as tumors, the latest remaining among the most wanted breakthroughs in nanomedicine. However, the use of cell-derived nanocomposites as stimulus-controlled drug delivery agents remains virtually unexplored. This study reports the fabrication of a plasmonic cell-derived nanocomposite by integrating near-infrared active gold nanorods in its structure. As a proof of concept, the plasmonic nanomembranes are loaded with cell non-permeant antibodies, which upon near-infrared stimulation can be released from the plasmonic nanomembranes into the cytosol of living cells, without impairing cell viability or the antibodies' function. These results set the stage for the development of photoactive cell-derived nanocarriers, which in addition to cell-specific functions promise straightforward access to spatiotemporal-controlled intracellular delivery of antibodies.
将热等离子体学的潜力转化为细胞衍生的纳米材料,为制造超越现有艺术水平的人工仿生纳米复合材料提供了令人兴奋的机会,这些复合材料在光照下能够执行主动任务,例如在复杂、动态的介质(如细胞胞质溶胶)中输送货物。细胞衍生的纳米颗粒已经显示出实施细胞特异性功能的惊人潜力,例如将长循环或靶向能力等功能整合到先进的药物输送纳米系统中。仿生纳米技术现在已经发展到为改善大多数当前纳米药物的体内性能提供了新的令人兴奋的机会,包括逃避免疫系统和靶向特定组织,如肿瘤,这是纳米医学中最新的最受欢迎的突破之一。然而,将细胞衍生的纳米复合材料用作刺激控制的药物输送剂的用途实际上仍未得到探索。本研究报告了通过将近红外活性金纳米棒整合到其结构中,制造出一种等离子体细胞衍生的纳米复合材料。作为概念验证,等离子体纳米膜负载有细胞不可渗透的抗体,这些抗体在近红外刺激下可以从等离子体纳米膜释放到活细胞的胞质溶胶中,而不会损害细胞活力或抗体的功能。这些结果为开发光活性细胞衍生纳米载体奠定了基础,除了细胞特异性功能外,这些纳米载体还可以直接实现对抗体的时空控制的细胞内输送。