Samir Bouayad-Gervais, Daniel J St-Cyr, Mathieu Courcelles, Éric Bonneil, Florence H Gohard, Pierre Thibault, William C Earnshaw, Mike Tyers
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引用次数: 0
摘要
通过基因编码的环肽库,可以在体内快速筛选出任何感兴趣的目标蛋白的抑制剂。特别是蛋白质和肽的分裂茵环连接(SICLOPPS)系统,它利用茵的自发蛋白质分裂产生细胞内环肽。SICLOPPS 之前针对在染色体分离过程中起关键作用的极光 B 激酶进行了筛选,发现了几种候选抑制剂,我们试图通过化学合成来重现这些抑制剂。我们介绍了通过标准固相肽合成获得的侧链保护线性肽的溶液相大环化合成环肽靶点和类似物的过程。环肽目标物(包括环[CTWAR])的设计与基因编码对应物的可变部分和保守半胱氨酸残基相匹配。合成产物采用串联高分辨质谱法进行表征,结合精确质量、同位素模式和碰撞解离诱导碎片模式进行分析。后者的分析有助于区分目标物和低聚物副产品,并能以一种易于扩展到复杂生物样本分析的方式确认肽序列。这种环肽化学合成替代方法可以对 SICLOPPS 筛选出的候选靶标进行经济有效的验证和简便的化学阐述。
Head-to-tail cyclization of side chain-protected linear peptides to recapitulate genetically-encoded cyclized peptides.
Genetically-encoded cyclic peptide libraries allow rapid in vivo screens for inhibitors of any target protein of interest. In particular, the Split Intein Circular Ligation of Protein and Peptides (SICLOPPS) system exploits spontaneous protein splicing of inteins to produce intracellular cyclic peptides. A previous SICLOPPS screen against Aurora B kinase, which plays a critical role during chromosome segregation, identified several candidate inhibitors that we sought to recapitulate by chemical synthesis. We describe the syntheses of cyclic peptide hits and analogs via solution-phase macrocyclization of side chain-protected linear peptides obtained from standard solid-phase peptide synthesis. Cyclic peptide targets, including cyclo-[CTWAR], were designed to match both the variable portions and conserved cysteine residue of their genetically-encoded counterparts. Synthetic products were characterized by tandem high-resolution mass spectrometry to analyze a combination of exact mass, isotopic pattern, and collisional dissociation-induced fragmentation pattern. The latter analyses facilitated the distinction between targets and oligomeric side products, and served to confirm peptidic sequences in a manner that can be readily extended to analyses of complex biological samples. This alternative chemical synthesis approach for cyclic peptides allows cost-effective validation and facile chemical elaboration of hit candidates from SICLOPPS screens.
Peptide ScienceBiochemistry, Genetics and Molecular Biology-Biophysics
CiteScore
5.20
自引率
4.20%
发文量
36
期刊介绍:
The aim of Peptide Science is to publish significant original research papers and up-to-date reviews covering the entire field of peptide research. Peptide Science provides a forum for papers exploring all aspects of peptide synthesis, materials, structure and bioactivity, including the use of peptides in exploring protein functions and protein-protein interactions. By incorporating both experimental and theoretical studies across the whole spectrum of peptide science, the journal serves the interdisciplinary biochemical, biomaterials, biophysical and biomedical research communities.
Peptide Science is the official journal of the American Peptide Society.