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本文引用的文献

1
Immunological Evaluation of Recent MUC1 Glycopeptide Cancer Vaccines.近期 MUC1 糖肽癌症疫苗的免疫评估。
Vaccines (Basel). 2016 Jul 26;4(3):25. doi: 10.3390/vaccines4030025.
2
A phase I study of PankoMab-GEX, a humanised glyco-optimised monoclonal antibody to a novel tumour-specific MUC1 glycopeptide epitope in patients with advanced carcinomas.一项 PankoMab-GEX 的 I 期研究,PankoMab-GEX 是一种针对新型肿瘤特异性 MUC1 糖肽表位的人源化糖优化单克隆抗体,用于晚期癌患者。
Eur J Cancer. 2016 Aug;63:55-63. doi: 10.1016/j.ejca.2016.05.003. Epub 2016 Jun 7.
3
Perspectives on Anti-Glycan Antibodies Gleaned from Development of a Community Resource Database.从社区资源数据库的发展中获取的抗聚糖抗体观点
ACS Chem Biol. 2016 Jul 15;11(7):1773-83. doi: 10.1021/acschembio.6b00244. Epub 2016 May 25.
4
Hallmarks of glycosylation in cancer.癌症中糖基化的特征。
Oncotarget. 2016 Jun 7;7(23):35478-89. doi: 10.18632/oncotarget.8155.
5
Recent Advance in Tumor-associated Carbohydrate Antigens (TACAs)-based Antitumor Vaccines.基于肿瘤相关碳水化合物抗原(TACAs)的抗肿瘤疫苗的最新进展。
ACS Chem Biol. 2016 Apr 15;11(4):850-63. doi: 10.1021/acschembio.6b00084. Epub 2016 Mar 1.
6
Synthetic self-adjuvanting glycopeptide cancer vaccines.合成自佐剂糖肽癌症疫苗。
Front Chem. 2015 Oct 23;3:60. doi: 10.3389/fchem.2015.00060. eCollection 2015.
7
Antimicrobial Peptide Conformation as a Structural Determinant of Omptin Protease Specificity.抗菌肽构象作为Omptin蛋白酶特异性的结构决定因素。
J Bacteriol. 2015 Nov;197(22):3583-91. doi: 10.1128/JB.00469-15. Epub 2015 Sep 8.
8
Glycosylation in cancer: mechanisms and clinical implications.癌症中的糖基化:机制与临床意义。
Nat Rev Cancer. 2015 Sep;15(9):540-55. doi: 10.1038/nrc3982. Epub 2015 Aug 20.
9
Challenges in Antibody Development against Tn and Sialyl-Tn Antigens.针对Tn和唾液酸化Tn抗原的抗体开发面临的挑战。
Biomolecules. 2015 Aug 11;5(3):1783-809. doi: 10.3390/biom5031783.
10
The detection and discovery of glycan motifs in biological samples using lectins and antibodies: new methods and opportunities.利用凝集素和抗体检测与发现生物样品中的聚糖基序:新方法与新机遇
Adv Cancer Res. 2015;126:167-202. doi: 10.1016/bs.acr.2014.11.003. Epub 2015 Feb 7.

通过环肽糖 mimic 靶向癌症特异性糖。

Targeting cancer-specific glycans by cyclic peptide lectinomimics.

机构信息

Department of Chemistry and Biochemistry, Charles E. Schmidt College of Science, Florida Atlantic University, 777 Glades Road, Boca Raton, FL, 33431, USA.

Torrey Pines Institute for Molecular Studies, 11350 SW Village Parkway, Port Saint Lucie, FL, 34987, USA.

出版信息

Amino Acids. 2017 Nov;49(11):1867-1883. doi: 10.1007/s00726-017-2485-3. Epub 2017 Sep 11.

DOI:10.1007/s00726-017-2485-3
PMID:28894966
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC5693629/
Abstract

The transformation from normal to malignant phenotype in human cancers is associated with aberrant cell-surface glycosylation. Thus, targeting glycosylation changes in cancer is likely to provide not only better insight into the roles of carbohydrates in biological systems, but also facilitate the development of new molecular probes for bioanalytical and biomedical applications. In the reported study, we have synthesized lectinomimics based on odorranalectin 1; the smallest lectin-like cyclic peptide isolated from the frog Odorrana grahami skin, and assessed the ability of these peptides to bind specific carbohydrates on molecular and cellular levels. In addition, we have shown that the disulfide bond found in 1 can be replaced with a lactam bridge. However, the orientation of the lactam bridge, peptides 2 and 3, influenced cyclic peptide's conformation and thus these peptides' ability to bind carbohydrates. Naturally occurring 1 and its analog 3 that adopt similar conformation in water bind preferentially L-fucose, and to a lesser degree D-galactose and N-acetyl-D-galactosamine, typically found within the mucin O-glycan core structures. In cell-based assays, peptides 1 and 3 showed a similar binding profile to Aleuria aurantia lectin and these two peptides inhibited the migration of metastatic breast cancer cell lines in a Transwell assay. Altogether, the reported data demonstrate the feasibility of designing lectinomimics based on cyclic peptides.

摘要

人类癌症中正常表型向恶性表型的转化与细胞表面糖基化的异常有关。因此,针对癌症中的糖基化变化进行研究,不仅可能提供对碳水化合物在生物系统中作用的更好理解,还可能促进用于生物分析和生物医学应用的新分子探针的开发。在报道的研究中,我们基于气味联觉素 1 合成了凝集素类似物;气味联觉素 1 是从小青蛙 Odorrana grahami 皮肤中分离出来的最小的凝集素样环肽,并评估了这些肽在分子和细胞水平上结合特定碳水化合物的能力。此外,我们已经表明,在 1 中发现的二硫键可以被内酰胺桥取代。然而,内酰胺桥的取向,即肽 2 和 3,影响了环肽的构象,从而影响了这些肽结合碳水化合物的能力。在水中采用相似构象的天然存在的 1 及其类似物 3 优先结合 L-岩藻糖,并且在较小程度上结合 D-半乳糖和 N-乙酰-D-半乳糖胺,这些糖通常存在于粘蛋白 O-聚糖核心结构中。在基于细胞的测定中,肽 1 和 3 与 Aleuria aurantia 凝集素表现出相似的结合模式,并且这两种肽在 Transwell 测定中抑制转移性乳腺癌细胞系的迁移。总之,报道的数据表明基于环肽设计凝集素类似物是可行的。