The Key Laboratory of Biomedical Information Engineering of the Ministry of Education, School of Life Science and Technology, Xi'an Jiaotong University, Xi'an, 710049, P. R. China.
Bioinspired Engineering and Biomechanics Center (BEBC), Xi'an Jiaotong University, Xi'an, 710049, P. R. China.
Adv Mater. 2017 Sep;29(36). doi: 10.1002/adma.201702311. Epub 2017 Jul 18.
Nanocarrier surface chemistry plays a vital role in mediating cell internalization and enhancing delivery efficiency during in vivo chemotherapy. Inspired by the ability of proteins to alter their conformation to mediate functions, a pH-/thermal-/glutathione-responsive polymer zipper consisting of cell-penetrating poly(disulfide)s and thermosensitive polymers bearing guanidinium/phosphate (Gu /pY ) motifs to spatiotemporally tune the surface composition of nanocarriers for precise tumor targeting and efficient drug delivery is developed. Surface engineering allows the nanocarriers to remain undetected during blood circulation and favors passive accumulation at tumor sites, where the acidic microenvironment and photothermal heating break the pY /Gu binding and rupture the zipper, thereby exposing the penetrating shell and causing enhanced cellular uptake via counterion-/thiol-/receptor-mediated endocytosis. The in vivo study demonstrates that by manipulating the surface states on command, the nanocarriers show longer blood circulation time, minimized uptake and drug leakage in normal organs, and enhanced accumulation and efficient drug release at tumor sites, greatly inhibiting tumor growth with only slight damage to normal tissues. If integrated with a photothermal dye approved by the U.S. Food and Drug Administration (FDA), polymer zipper would provide a versatile protocol for engineering nanomedicines with high selectivity and efficiency for clinical cancer treatment.
纳米载体表面化学在介导细胞内化和增强体内化疗的递药效率方面起着至关重要的作用。受蛋白质改变构象以介导功能的能力的启发,设计了一种 pH/热/谷胱甘肽响应性聚合物拉链,由穿透细胞膜的聚二硫键和带有胍基/磷酸(Gu/pY)基序的温敏聚合物组成,可时空调节纳米载体的表面组成,实现精确的肿瘤靶向和有效的药物递送。表面工程使纳米载体在血液循环中不被察觉,并有利于在肿瘤部位被动积累,其中酸性微环境和光热加热会破坏 pY/Gu 结合并破坏拉链,从而暴露穿透外壳,并通过抗衡离子/硫醇/受体介导的内吞作用导致增强的细胞摄取。体内研究表明,通过操纵表面状态,纳米载体表现出更长的血液循环时间、在正常器官中最小的摄取和药物泄漏,以及在肿瘤部位的增强积累和有效的药物释放,极大地抑制了肿瘤生长,而对正常组织的损伤很小。如果与美国食品和药物管理局 (FDA) 批准的光热染料结合,聚合物拉链将为工程纳米药物提供一种具有高选择性和高效率的通用方案,用于临床癌症治疗。