Design of ligands for the purification of anti-MUC1 antibodies by peptide epitope affinity chromatography

被引:0
|
作者
Murray, A [1 ]
Spencer, DIR [1 ]
Missailidis, S [1 ]
Denton, G [1 ]
Price, MR [1 ]
机构
[1] Univ Nottingham, Canc Res Lab, Sch Pharmaceut Sci, Nottingham NG7 2RD, England
来源
JOURNAL OF PEPTIDE RESEARCH | 1998年 / 52卷 / 05期
关键词
circular dichroism; epitope affinity chromatography; fluorescence quenching; monoclonal antibody; MUC1; mucin; replacement net analysis;
D O I
暂无
中图分类号
Q5 [生物化学];
学科分类号
071010 ; 081704 ;
摘要
The fine specificity of epitope recognition of the anti-MUC1 mucin monoclonal antibody, C595 has been studied using solid-phase replacement net (RNET) analysis. Two peptides (RAAP and RPPP) showed increased reactivity with C595 antibody compared with the native epitope (RPAP). These were synthesized as integral motifs within MUC1 immunodominant peptides and analyzed by fluorescence quenching (FQ) and circular dichroism (CD). They were also tested as ligands for the purification of C595 antibody using epitope affinity chromatography. Affinity matrices were compared with respect to capacity, affinity, and quality of the purified product. In FQ tests the native epitope peptide (APDTRPAPG) and the alanine substituted peptide had similar association constants when reacting with C595 antibody, whereas the proline substituted peptide (APDTRPPPG) had a higher association constant. This order of affinity for C595 was confirmed in chromatography experiments in which antibody was eluted from the former two peptide matrices at approximately the same point on the NaSCN elution gradient, whereas antibody was desorbed from APDTRPPPG at a higher NaSCN concentration. Circular dichroism analysis showed that the thermodynamically preferred conformation of these peptides in aqueous solution is the P-II extended helix, the conformation preferred for an extended bound form of the peptide held by interactions with the peptide amides. The stronger binding peptide (APDTRPPPG) has the higher population of the P-II helix in solution. In conclusion, RNET analysis is useful in the rational design of peptide ligands so that the performance of affinity matrices may be regulated.
引用
收藏
页码:375 / 383
页数:9
相关论文
共 50 条
  • [21] Circulating anti-MUC1 IgG antibodies as a favorable prognostic factor for pancreatic cancer
    Hamanaka, Y
    Suehiro, Y
    Fukui, M
    Shikichi, K
    Imai, K
    Hinoda, Y
    INTERNATIONAL JOURNAL OF CANCER, 2003, 103 (01) : 97 - 100
  • [22] PEPTIDE PURIFICATION BY AFFINITY CHROMATOGRAPHY
    MIRON, T
    WILCHEK, M
    ISRAEL JOURNAL OF MEDICAL SCIENCES, 1973, 9 (04): : 557 - 557
  • [23] Design of peptide ligands for affinity purification of human growth hormone
    Chandra, Divya
    Timmick, Steven
    Goodwine, Chaz
    Vecchiarello, Nicholas
    Shastry, Divya G.
    Mullerpatan, Akshat
    Trasatti, John P.
    Cramer, Steven
    Karande, Pankaj
    JOURNAL OF CHEMICAL TECHNOLOGY AND BIOTECHNOLOGY, 2019, 94 (07) : 2345 - 2354
  • [24] Rational Design of Peptide Affinity Ligands for the Purification of Therapeutic Enzymes
    Trasatti, John P.
    Woo, James
    Ladiwala, Asif
    Cramer, Steven
    Karande, Pankaj
    BIOTECHNOLOGY PROGRESS, 2018, 34 (04) : 987 - 998
  • [25] Molecular Dynamics Simulation Analysis of Anti-MUC1 Aptamer and Mucin 1 Peptide Binding
    Rhinehardt, Kristen L.
    Srinivas, Goundla
    Mohan, Ram V.
    JOURNAL OF PHYSICAL CHEMISTRY B, 2015, 119 (22): : 6571 - 6583
  • [26] Affinity optimization of an anti-MUC1 antibody, (HuHMFG1) also enhances ADCC activity
    Doran, Ben
    Ritchie, Christy
    Dhokia, Babu
    Rogers, Paul
    Jones, David
    MOLECULAR CANCER THERAPEUTICS, 2009, 8 (12)
  • [27] Generation of Novel Anti-MUC1 Monoclonal Antibodies with Designed Carbohydrate Specificities Using MUC1 Glycopeptide Library
    Naito, Shoichi
    Takahashi, Tatsuya
    Onoda, Junji
    Uemura, Shoko
    Ohyabu, Naoki
    Takemoto, Hiroshi
    Yamane, Shoji
    Fujii, Ikuo
    Nishimura, Shin-Ichiro
    Numata, Yoshito
    ACS OMEGA, 2017, 2 (11): : 7493 - 7505
  • [28] Rise and Fall of an Anti-MUC1 Specific Antibody
    Thie, Holger
    Toleikis, Lars
    Li, Jiandong
    von Wasielewski, Reinhard
    Bastert, Gunther
    Schirrmann, Thomas
    Esteves, Isabel Tourais
    Behrens, Christian K.
    Fournes, Benedict
    Fournier, Nathalie
    de Romeuf, Christophe
    Hust, Michael
    Duebel, Stefan
    PLOS ONE, 2011, 6 (01):
  • [29] Anti-MUC1*CAR T for solid tumors
    Bamdad, Cynthia C.
    Stewart, Andrew K.
    Smagghe, Benoit J.
    Huang, Pengyu
    Deary, Luke T.
    Glennie, Nelson D.
    CANCER RESEARCH, 2018, 78 (13)
  • [30] Detection of circulating anti-MUC1 mucin core protein antibodies in patients with colorectal cancer
    Hideaki Nakamura
    Yuji Hinoda
    Naoaki Nakagawa
    Yusuke Makiguchi
    Fumio Itoh
    Takao Endo
    Kohzoh Imai
    Journal of Gastroenterology, 1998, 33 : 354 - 361