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胍基连接基团对 CNS 中立体纯反义寡核苷酸的影响。

Impact of guanidine-containing backbone linkages on stereopure antisense oligonucleotides in the CNS.

机构信息

Wave Life Sciences, Cambridge, MA 02138, USA.

出版信息

Nucleic Acids Res. 2022 Jun 10;50(10):5401-5423. doi: 10.1093/nar/gkac037.

Abstract

Attaining sufficient tissue exposure at the site of action to achieve the desired pharmacodynamic effect on a target is an important determinant for any drug discovery program, and this can be particularly challenging for oligonucleotides in deep tissues of the CNS. Herein, we report the synthesis and impact of stereopure phosphoryl guanidine-containing backbone linkages (PN linkages) to oligonucleotides acting through an RNase H-mediated mechanism, using Malat1 and C9orf72 as benchmarks. We found that the incorporation of various types of PN linkages to a stereopure oligonucleotide backbone can increase potency of silencing in cultured neurons under free-uptake conditions 10-fold compared with similarly modified stereopure phosphorothioate (PS) and phosphodiester (PO)-based molecules. One of these backbone types, called PN-1, also yielded profound silencing benefits throughout the mouse brain and spinal cord at low doses, improving both the potency and durability of response, especially in difficult to reach brain tissues. Given these benefits in preclinical models, the incorporation of PN linkages into stereopure oligonucleotides with chimeric backbone modifications has the potential to render regions of the brain beyond the spinal cord more accessible to oligonucleotides and, consequently, may also expand the scope of neurological indications amenable to oligonucleotide therapeutics.

摘要

在作用部位获得足够的组织暴露以实现对靶标的所需药效学作用是任何药物发现计划的重要决定因素,对于 CNS 深部组织中的寡核苷酸而言,这可能特别具有挑战性。在此,我们报告了立体纯含磷胍基的骨架连接(PN 连接)对通过 RNase H 介导的机制起作用的寡核苷酸的合成和影响,以 Malat1 和 C9orf72 为基准。我们发现,与类似修饰的立体纯硫代磷酸酯(PS)和磷酸二酯(PO)基分子相比,将各种类型的 PN 连接掺入到立体纯寡核苷酸骨架中,可以在无摄取条件下将培养神经元中的沉默效力提高 10 倍。其中一种称为 PN-1 的骨架类型,在低剂量下还能在整个小鼠大脑和脊髓中产生显著的沉默益处,提高了反应的效力和持久性,尤其是在难以到达的脑组织中。鉴于这些临床前模型中的益处,将 PN 连接掺入到具有嵌合骨架修饰的立体纯寡核苷酸中有可能使脊髓以外的大脑区域更容易被寡核苷酸进入,从而也可能扩大可通过寡核苷酸治疗的神经学适应症的范围。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/7e90/9177980/f7e93f688499/gkac037fig1.jpg

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