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Synthetic Ligands Discovered by in Vitro Selection

机译:通过体外选择发现合成配体

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The recognition and catalytic properties of biopolymers derive from an elegant evolutionary mechanism, whereby the genetic material encoding molecules with superior functional attributes survives a selective pressure and is propagated to subsequent generations. This process is routinely mimicked in vitro to generate nucleic-acid or peptide ligands and catalysts. Recent advances in DNA-programmed organic synthesis have raised the possibility that evolutionary strategies could also be used for small-molecule discovery, but the idea remains unproven. Here, using DNA-programmed combinatorial chemistry, a collection of 100 million distinct compounds is synthesized and subjected to selection for binding to the N-terminal SH3 domain of the proto-oncogene Crk. Over six generations, the molecular population converges to a small number of novel SH3 domain ligands. Remarkably, the hits bind with affinities similar to those of peptide SH3 ligands isolated from phage libraries of comparable complexity. The evolutionary approach has the potential to drastically simplify and accelerate small-molecule discovery.
机译:生物聚合物的识别和催化特性源自一个优雅的进化机制,借此,编码具有卓越功能属性的分子的遗传物质可以承受选择压力,并传播至后代。通常在体外模拟该过程以产生核酸或肽配体和催化剂。 DNA编程的有机合成技术的最新进展提出了进化策略也可用于小分子发现的可能性,但这一想法尚未得到证实。在这里,使用DNA编程的组合化学方法,合成了1亿种不同化合物的集合,并进行选择以结合至原癌基因Crk的N末端SH3结构域。在六代以上的时间里,分子群体收敛于少量的新型SH3结构域配体。值得注意的是,命中结合的亲和力类似于从具有相当复杂性的噬菌体文库中分离的肽SH3配体。进化方法具有极大地简化和加速小分子发现的潜力。

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