School of Chemical & Biomolecular Engineering, Georgia Institute of Technology, Atlanta, GA 30332, United States.
School of Chemical & Biomolecular Engineering, Georgia Institute of Technology, Atlanta, GA 30332, United States.
J Control Release. 2017 Mar 10;249:1-10. doi: 10.1016/j.jconrel.2017.01.007. Epub 2017 Jan 7.
Despite the great potential of antibodies as intracellular therapeutics, there is a significant, unmet challenge in delivering sufficient amounts of folded antibodies inside cells. We describe an all-protein self-assembled nanocarrier capable of delivering functional antibodies to the cytosol. By combining an α-helical peptide that self-assembles into a hexameric coiled-coil bundle and an Fc-binding Protein A fragment, we generated the Hex nanocarrier that is efficiently internalized by cells without cytotoxicity. Localization of multiple Fc-binding domains on the hexameric core allowed the Hex nanocarrier to tightly bind antibody with sub-nanomolar affinity regardless of pH and the antibody's originating species. The size of the Hex nanocarrier ranges from 25 to 35nm depending on the antibody loading ratio. We demonstrated the capacity of the Hex nanocarrier to deliver functional antibodies to the cytosol by employing anti-β-tubulin or anti-nuclear pore complex antibody as cargo. The design of the Hex nanocarrier is modular, which enables functionalization beyond Fc-binding. We exploited this feature to improve the cytosolic delivery efficiency of the Hex nanocarrier by addition of an endosomolytic motif to the core. The modified Hex nanocarrier exhibited similar antibody-binding behavior, but delivered more antibodies to their cytosolic targets at a faster rate. This work demonstrates an efficient intracellular antibody delivery platform with significant advantages over existing approaches as it does not require modification of the antibody, is biodegradable, and has an antibody to carrier mass ratio of 13, which is greater than other reported antibody carriers.
尽管抗体作为细胞内治疗药物具有巨大的潜力,但将足够数量的折叠抗体递送到细胞内仍然是一个重大的未满足的挑战。我们描述了一种全蛋白质自组装纳米载体,能够将功能性抗体递送到细胞质中。通过将能够自组装成六聚体螺旋卷曲束的α-螺旋肽与 Fc 结合蛋白 A 片段结合,我们生成了 Hex 纳米载体,该载体能够有效地被细胞内化,而没有细胞毒性。多个 Fc 结合结构域在六聚体核心上的定位使得 Hex 纳米载体能够紧密结合抗体,亲和力低至纳摩尔级,而不受 pH 值和抗体来源物种的影响。Hex 纳米载体的大小范围为 25 至 35nm,具体取决于抗体的装载比例。我们通过使用抗β-微管蛋白或抗核孔复合体抗体作为货物,证明了 Hex 纳米载体将功能性抗体递送到细胞质中的能力。Hex 纳米载体的设计是模块化的,这使得除了 Fc 结合之外还能够进行功能化。我们利用这一特性,通过在核心上添加一个内体溶解基序来提高 Hex 纳米载体的细胞质递送效率。修饰后的 Hex 纳米载体表现出相似的抗体结合行为,但以更快的速度将更多的抗体递送到其细胞质靶标。这项工作展示了一种高效的细胞内抗体递送平台,与现有方法相比具有显著优势,因为它不需要对抗体进行修饰,是可生物降解的,并且抗体与载体的质量比为 13,大于其他报道的抗体载体。