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利用硫结合结构域分离硫代磷酸酯寡核苷酸的 Sp 和 Rp 异构体。

Harnessing sulfur-binding domains to separate Sp and Rp isomers of phosphorothioate oligonucleotides.

机构信息

State Key Laboratory of Microbial Metabolism, Joint International Research Laboratory of Metabolic & Developmental Sciences, School of Life Sciences & Biotechnology, Shanghai Jiao Tong University, 800 Dongchuan Road, Shanghai, 200240, People's Republic of China.

出版信息

Appl Microbiol Biotechnol. 2024 Aug 27;108(1):448. doi: 10.1007/s00253-024-13283-3.

Abstract

Chemical synthesis of phosphoromonothioate oligonucleotides (PS-ONs) is not stereo-specific and produces a mixture of Rp and Sp diastereomers, whose disparate reactivity can complicate applications. Although the current methods to separate these diastereomers which rely on chromatography are constantly improving, many Rp and Sp diastereomers are still co-eluted. Here, based on sulfur-binding domains that specifically recognize phosphorothioated DNA and RNA in Rp configuration, we developed a universal separation system for phosphorothioate oligonucleotide isomers using immobilized SBD (SPOIS). With the scalable SPOIS, His-tagged SBD is immobilized onto Ni-nitrilotriacetic acid-coated magnetic beads to form a beads/SBD complex, Rp isomers of the mixture can be completely bound by SBD and separated from Sp isomers unbound in liquid phase, then recovered through suitable elution approach. Using the phosphoromonothioate single-stranded DNA as a model, SPOIS separated PS-ON diastereomers of 4 nt to 50 nt in length at yields of 60-90% of the starting Rp isomers, with PS linkage not locating at 5' or 3' end. Within this length range, PS-ON diastereomers that co-eluted in HPLC could be separated by SPOIS at yields of 84% and 89% for Rp and Sp stereoisomers, respectively. Furthermore, as each Rp phosphorothioate linkage can be bound by SBD, SPOIS allowed the separation of stereoisomers with multiple uniform Sp configurations for multiple phosphorothioate modifications. A second generation of SPOIS was developed using the thermolabile and non-sequence-specific SBD, enabling fast and high-yield recovery of PS substrate stereoisomers for the DNAzyme Cd16 and further demonstrating the efficiency of this method. KEY POINTS: • SPOIS allows isomer separations of the Rp and Sp isomers co-eluted on HPLC. • SPOIS can obtain Sp isomers with 5 min and Rp in 20 min from PS-ON diastereomers. • SPOIS was successfully applied to separate isomers of PS substrates of DNAzyme.

摘要

化学合成的硫代磷酸单核苷酸(PS-ONs)没有立体专一性,会产生 Rp 和 Sp 非对映异构体的混合物,其不同的反应性可能会使应用复杂化。虽然目前依赖于色谱法分离这些非对映异构体的方法在不断改进,但许多 Rp 和 Sp 非对映异构体仍会共同洗脱。在这里,我们基于特异性识别 Rp 构型中硫代磷酸化 DNA 和 RNA 的硫结合结构域,开发了一种使用固定化 SBD(SPOIS)的通用磷硫代寡核苷酸异构体分离系统。利用可扩展的 SPOIS,将 His 标记的 SBD 固定在 Ni-亚氨二乙酸(NTA)涂层的磁性珠上,形成珠/SBD 复合物,混合物中的 Rp 异构体可以完全与 SBD 结合,并与未结合的 Sp 异构体在液相中分离,然后通过适当的洗脱方法回收。使用硫代磷酸单链 DNA 作为模型,SPOIS 可分离长度为 4 到 50 个核苷酸的 PS-ON 非对映异构体,起始 Rp 异构体的收率为 60-90%,PS 键不在 5'或 3'端。在这个长度范围内,HPLC 中共同洗脱的 PS-ON 非对映异构体可以通过 SPOIS 以 Rp 和 Sp 立体异构体分别为 84%和 89%的收率分离。此外,由于每个 Rp 硫代磷酸键都可以与 SBD 结合,SPOIS 允许分离具有多个均匀 Sp 构型的立体异构体,这些立体异构体具有多个硫代磷酸化修饰。第二代 SPOIS 使用热不稳定且非序列特异性的 SBD 开发,能够快速且高产率地回收 PS 底物立体异构体的 DNAzyme Cd16,并进一步证明了该方法的效率。关键点: • SPOIS 允许 HPLC 上共同洗脱的 Rp 和 Sp 异构体进行异构体分离。 • SPOIS 可以在 5 分钟内获得 Sp 异构体,在 20 分钟内获得 Rp 异构体。 • SPOIS 成功应用于 DNAzyme PS 底物异构体的分离。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/637b/11349849/6d1901680e43/253_2024_13283_Fig1_HTML.jpg

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