Taharabaru Toru, Kihara Takuya, Onodera Risako, Kogo Tetsuya, Wen Yuting, Li Jun, Motoyama Keiichi, Higashi Taishi
Graduate School of Pharmaceutical Sciences, Kumamoto University, 5-1 Oe-honmachi, Chuo-ku, Kumamoto, 862-0973, Japan.
Department of Biomedical Engineering, National University of Singapore, 15 Kent Ridge Crescent, Singapore, 119276, Singapore.
Mater Today Bio. 2023 Jun 3;20:100690. doi: 10.1016/j.mtbio.2023.100690. eCollection 2023 Jun.
Various biopharmaceuticals, such as nucleic acids, proteins, and genome-editing molecules, have been developed. Generally, carriers are prepared for each biopharmaceutical to deliver it intracellularly; thus, the applications of individual carriers are limited. Moreover, the development of carriers is laborious and expensive. Therefore, in the present study, versatile and universal delivery carriers were developed for various biopharmaceuticals using aminated polyrotaxane libraries. Step-by-step and logical screening revealed that aminated polyrotaxane, including the carbamate bond between the axile molecule and endcap, is suitable as a backbone polymer. Movable and flexible properties of the amino groups modified on polyrotaxane facilitated efficient complexation with various biopharmaceuticals, such as small interfering RNA, antisense oligonucleotides, messenger RNA, β-galactosidase, and genome-editing ribonucleoproteins. Diethylenetriamine and cystamine modifications of polyrotaxane provided endosomal-escape abilities and drug-release properties in the cytosol, allowing higher delivery efficacies than commercially available high-standard carriers without cytotoxicity. Thus, the resulting polyrotaxane might serve as a versatile and universal delivery platform for various biopharmaceuticals.
已经开发出了各种生物制药产品,如核酸、蛋白质和基因组编辑分子。一般来说,需要为每种生物制药产品制备载体以将其递送至细胞内;因此,单个载体的应用受到限制。此外,载体的开发既费力又昂贵。因此,在本研究中,使用胺化聚轮烷文库为各种生物制药产品开发了通用的递送载体。逐步且合乎逻辑的筛选表明,包括轴分子与封端之间氨基甲酸酯键的胺化聚轮烷适合作为主链聚合物。聚轮烷上修饰的氨基的可移动和灵活特性促进了与各种生物制药产品的有效络合,如小干扰RNA、反义寡核苷酸、信使RNA、β-半乳糖苷酶和基因组编辑核糖核蛋白。聚轮烷的二亚乙基三胺和胱胺修饰在胞质溶胶中提供了内体逃逸能力和药物释放特性,从而实现了比市售高标准载体更高的递送效率且无细胞毒性。因此,所得的聚轮烷可能成为各种生物制药产品的通用递送平台。