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Enhancing the Stability and Immunomodulatory Activity of Liposomal Spherical Nucleic Acids through Lipid-Tail DNA Modifications

机译:通过脂尾DNA修饰提高脂质体球形核酸的稳定性和免疫调节活性。

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摘要

Liposomal spherical nucleic acids (LSNAs) are an attractive therapeutic platform for gene regulation and immunomodulation due to their biocompatibility, chemically tunable structures, and ability to enter cells rapidly without the need for ancillary transfection agents. Such structures consist of small (<100 nm) liposomal cores functionalized with a dense, highly oriented nucleic acid shell, both of which are key components in facilitating their biological activity. Here, the properties of LSNAs synthesized using conventional methods, anchoring cholesterol terminated oligonucleotides into a liposomal core, are compared to LSNAs made by directly modifying the surface of a liposomal core containing azide-functionalized lipids with dibenzocyclooctyl-terminated oligonucleotides. The surface densities of the oligonucleotides are measured for both types of LSNAs, with the lipid-modified structures having approximately twice the oligonucleotide surface coverage. The stabilities and cellular uptake properties of these structures are also evaluated. The higher density, lipid-functionalized structures are markedly more stable than conventional cholesterol-based structures in the presence of other unmodified liposomes and serum proteins as evidenced by fluorescence assays. Significantly, this new form of LSNA exhibits more rapid cellular uptake and increased sequence-specific toll-like receptor activation in immune reporter cell lines, making it a promising candidate for immunotherapy.
机译:脂质体球形核酸(LSNA)具有生物相容性,化学可调结构以及无需辅助转染剂即可快速进入细胞的能力,因此是用于基因调节和免疫调节的有吸引力的治疗平台。这样的结构由小的(<100 nm)脂质体核心组成,这些核心被致密的高度定向的核酸壳功能化,这两个都是促进其生物学活性的关键成分。在这里,将使用常规方法合成的,将胆固醇封端的寡核苷酸锚定在脂质体核心中的LSNA的特性与通过二苯并环辛基封端的寡核苷酸直接修饰含有叠氮化物官能化脂质的脂质体核心的表面而制成的LSNA进行了比较。测量两种类型的LSNA的寡核苷酸的表面密度,其中脂质修饰的结构具有约两倍的寡核苷酸表面覆盖率。还评估了这些结构的稳定性和细胞摄取特性。如荧光测定所证明的,在存在其他未修饰的脂质体和血清蛋白的情况下,较高密度,脂质官能化的结构比常规的基于胆固醇的结构明显更稳定。重要的是,这种新形式的LSNA在免疫报告细胞系中表现出更快的细胞摄取和增加的序列特异性toll样受体激活,使其成为免疫疗法的有希望的候选者。

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