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单阴离子磷肽通过意想不到的组氨酸烷基化产生,表现出与 Plk1 polo 盒结构域的高结合亲和力,并在 HeLa 细胞中增强了抗增殖作用。

Mono-anionic phosphopeptides produced by unexpected histidine alkylation exhibit high Plk1 polo-box domain-binding affinities and enhanced antiproliferative effects in HeLa cells.

机构信息

Chemical Biology Laboratory, Center for Cancer Research, National Institutes of Health, NCI at Frederick, Frederick, MD, 21702.

出版信息

Biopolymers. 2014 Nov;102(6):444-55. doi: 10.1002/bip.22569.

Abstract

Binding of polo-like kinase 1 (Plk1) polo-box domains (PBDs) to phosphothreonine (pThr)/phosphoserine (pSer)-containing sequences is critical for the proper function of Plk1. Although high-affinity synthetic pThr-containing peptides provide starting points for developing PBD-directed inhibitors, to date the efficacy of such peptides in whole cell assays has been poor. This potentially reflects limited cell membrane permeability arising, in part, from the di-anionic nature of the phosphoryl group or its mimetics. In our current article we report the unanticipated on-resin N(τ)-alkylation of histidine residues already bearing a N(π)- alkyl group. This resulted in cationic imidazolium-containing pThr peptides, several of which exhibit single-digit nanomolar PBD-binding affinities in extracellular assays and improved antimitotic efficacies in intact cells. We enhanced the cellular efficacies of these peptides further by applying bio-reversible pivaloyloxymethyl (POM) phosphoryl protection. New structural insights presented in our current study, including the potential utility of intramolecular charge masking, may be useful for the further development of PBD-binding peptides and peptide mimetics.

摘要

丝氨酸/苏氨酸激酶 1(Plk1)的 polo -box 结构域(PBD)与含有磷酸苏氨酸(pThr)/磷酸丝氨酸(pSer)的序列结合对于 Plk1 的正常功能至关重要。虽然高亲和力的合成 pThr 肽为开发 PBD 导向抑制剂提供了起点,但迄今为止,这些肽在全细胞测定中的功效一直不佳。这可能反映了部分由于磷酸基或其类似物的双阴离子性质而导致的细胞膜通透性有限。在我们当前的文章中,我们报告了出人意料的在树脂上 N(τ)-烷化已经带有 N(π)-烷基的组氨酸残基。这导致了含有正离子咪唑鎓的 pThr 肽,其中几个在细胞外测定中表现出单位数纳摩尔的 PBD 结合亲和力,并在完整细胞中提高了抗有丝分裂功效。我们通过应用生物可逆的特戊酰氧甲基(POM)磷酸保护进一步增强了这些肽的细胞功效。我们当前研究中提出的新结构见解,包括分子内电荷掩蔽的潜在用途,可能对 PBD 结合肽和肽模拟物的进一步开发有用。

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