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组合文库的珠上筛选:通过降低表面配体密度减少非特异性结合

On-bead screening of combinatorial libraries: reduction of nonspecific binding by decreasing surface ligand density.

作者信息

Chen Xianwen, Tan Pauline H, Zhang Yanyan, Pei Dehua

机构信息

Department of Chemistry and Ohio State Biochemistry Program, The Ohio State University, 100 West 18th Avenue, Columbus, OH 43210, USA.

出版信息

J Comb Chem. 2009 Jul-Aug;11(4):604-11. doi: 10.1021/cc9000168.

Abstract

On-bead screening of one-bead-one-compound (OBOC) libraries provides a powerful method for the rapid identification of active compounds against molecular or cellular targets. However, on-bead screening is susceptible to interference from nonspecific binding, which results in biased screening data and false positives. In this work, we have found that a major source of nonspecific binding is derived from the high ligand loading on the library beads, which permits a macromolecular target (e.g., a protein) to simultaneously interact with multiple ligands on the bead surface. To circumvent this problem, we have synthesized a phosphotyrosyl (pY)-containing peptide library on spatially segregated TentaGel microbeads, which feature a 10-fold reduced peptide loading on the bead surface but a normal peptide loading in the bead interior. The library was screened against a panel of 10 Src homology 2 (SH2) domains including those of Csk and Fyn kinases and adaptor protein SLAP, and the specific recognition motif(s) was successfully identified for each of the domains. In contrast, when the SH2 domains were screened against a control library that contained unaltered (high) ligand loading at the bead surface, six of them exhibited varying degrees of sequence biases, ranging from minor perturbation in the relative abundance of different sequences to the exclusive selection of false positive sequences that have no measurable affinity to the target protein. These results indicate that reduction of the ligand loading on the bead surface represents a simple, effective strategy to largely eliminate the interference from nonspecific binding, while preserving sufficient amounts of materials in the bead interior for compound identification. This finding should further expand the utility of OBOC libraries in biomedical research.

摘要

单珠单化合物(OBOC)文库的珠上筛选为快速鉴定针对分子或细胞靶点的活性化合物提供了一种强大的方法。然而,珠上筛选容易受到非特异性结合的干扰,这会导致筛选数据有偏差和出现假阳性。在这项工作中,我们发现非特异性结合的一个主要来源是文库珠上的高配体负载量,这使得大分子靶点(如蛋白质)能够同时与珠表面的多个配体相互作用。为了解决这个问题,我们在空间分离的TentaGel微珠上合成了一个含磷酸酪氨酸(pY)的肽文库,该微珠的特点是珠表面的肽负载量降低了10倍,但珠内部的肽负载量正常。该文库针对包括Csk和Fyn激酶以及衔接蛋白SLAP的10个Src同源2(SH2)结构域进行了筛选,并且成功地为每个结构域鉴定出了特异性识别基序。相比之下,当用SH2结构域针对一个在珠表面含有未改变(高)配体负载量的对照文库进行筛选时,其中6个结构域表现出不同程度的序列偏差,从不同序列相对丰度的轻微扰动到对靶蛋白没有可测量亲和力的假阳性序列的排他性选择。这些结果表明,降低珠表面的配体负载量是一种简单、有效的策略,可在很大程度上消除非特异性结合的干扰,同时在珠内部保留足够量的材料用于化合物鉴定。这一发现应进一步扩大OBOC文库在生物医学研究中的应用。

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