Conformational Fingerprinting Using Monoclonal Antibodies (on the Example of Angiotensin I-Converting Enzyme-ACE)

被引:9
|
作者
Danilov, S. M. [1 ,2 ,3 ]
机构
[1] Univ Illinois, Chicago, IL 60607 USA
[2] Arizona Univ, Tucson, AZ 85721 USA
[3] Moscow MV Lomonosov State Univ, Med Sci & Educ Ctr, Moscow 119991, Russia
关键词
angiotensin I-converting enzyme; monoclonal antibodies; conformation; tissue specificity; drug/gene lung targeting; N-DOMAIN; GENE-THERAPY; PULMONARY ENDOTHELIUM; TERMINAL DOMAIN; LUNG; SERUM; EXPRESSION; ELEVATION; CELLS; CD143;
D O I
10.1134/S0026893317060048
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
During the past 30 years my laboratory has generated 40+ monoclonal antibodies (mAbs) directed to structural and conformational epitopes on human ACE as well as ACE from rats, mice and other species. These mAbs were successfully used for detection and quantification of ACE by ELISA, Western blotting, flow cytometry and immunohistochemistry. In all these applications mainly single mAbs were used. We hypothesized that we can obtain a completely new kind of information about ACE structure and function if we use the whole set of mAbs directed to different epitopes on the ACE molecule. When we finished epitope mapping of all mAbs to ACE (and especially, those recognizing conformational epitopes), we realized that we had obtained a new tool to study ACE. First, we demonstrated that binding of some mAbs is very sensitive to local conformational changes on the ACE surface-due to local denaturation, inactivation, ACE inhibitor or mAbs binding or due to diseases. Second, we were able to detect, localize and characterize several human ACE mutations. And, finally, we established a new concept-conformational fingerprinting of ACE using mAbs that in turn allowed us to obtain evidence for tissue specificity of ACE, which has promising scientific and diagnostic perspectives. The initial goal for the generation of mAbs to ACE 30 years ago was obtaining mAbs to organ-specific endothelial cells, which could be used for organ-specific drug delivery. Our systematic work on characterization of mAbs to numerous epitopes on ACE during these years has lead not only to the generation of the most effective mAbs for specific drug/gene delivery into the lung capillaries, but also to the establishment of the concept of conformational fingerprinting of ACE, which in turn gives a theoretical base for the generation of mAbs, specific for ACE from different organs. We believe that this concept could be applicable for any glycoprotein against which there is a set of mAbs to different epitopes.
引用
收藏
页码:906 / 920
页数:15
相关论文
共 50 条
  • [41] Angiotensin I-converting enzyme (ACE) polymorphism and ABO blood groups as factors codetermining plasma ACE activity
    Cidl, K
    Strelcova, L
    Znojil, V
    Vacha, J
    EXPERIMENTAL HEMATOLOGY, 1996, 24 (07) : 790 - 794
  • [42] Optimization of angiotensin I-converting enzyme (ACE) inhibition by rice dregs hydrolysates using response surface methodology
    何国庆
    玄国东
    阮晖
    陈启和
    徐莹
    Journal of Zhejiang University Science, 2005, (06) : 508 - 513
  • [43] Optimization of angiotensin I-converting enzyme (ACE) inhibition by rice dregs hydrolysates using response surface methodology
    He G.-Q.
    Xuan G.-D.
    Ruan H.
    Chen Q.-H.
    Xu Y.
    Journal of Zhejiang University-SCIENCE B, 2005, 6 (6): : 508 - 513
  • [44] Antiproteinuric effect of angiotensin I-converting enzyme inhibits (ACE) in the youth with diabetic nephropathy and ACE gen polymorphism
    Sivous, GI
    Kasatkina, EP
    Demurov, LM
    Voichik, EA
    Kondratiev, YY
    Chistyakov, DA
    Strokov, IA
    Nosikov, VV
    DIABETOLOGIA, 1998, 41 : A294 - A294
  • [45] Absence of association between angiotensin I-converting enzyme (ACE) DD genotype and the frequency of ACE inhibitor therapy
    Sigusch, HH
    Surber, R
    Vogt, S
    Muller, S
    Hoffmann, A
    PHARMAZIE, 1997, 52 (07): : 565 - 566
  • [46] Mice lacking endothelial angiotensin I-converting enzyme have increased intrarenal angiotensin I-converting enzyme 2 protein abundance
    Juretzko, A.
    Steinbach, A.
    Lendeckel, U.
    Rettig, R.
    ACTA PHYSIOLOGICA, 2017, 219 : 119 - 121
  • [47] Association of angiotensin I-converting enzyme gene polymorphism with susceptibility to antiproteinuric effect of angiotensin I-converting enzyme inhibitors in patients with proteinuria
    Moriyama, T
    Kitamura, H
    Ochi, S
    Izumi, M
    Yokoyama, K
    Yamauchi, A
    Ueda, N
    Kamada, T
    Imai, E
    JOURNAL OF THE AMERICAN SOCIETY OF NEPHROLOGY, 1995, 6 (06): : 1674 - 1678
  • [48] ANGIOTENSIN I-CONVERTING ENZYME (ACE) INHIBITORY PEPTIDES FROM WHEY FERMENTED BY LACTOBACILLUS SPECIES
    Ahn, J. E.
    Park, S. Y.
    Atwal, A.
    Gibbs, B. F.
    Lee, B. H.
    JOURNAL OF FOOD BIOCHEMISTRY, 2009, 33 (04) : 587 - 602
  • [49] Effect of Various Fruit Extracts on Angiotensin I-Converting Enzyme (ACE) and Kallikrein (KLK) Activities
    Gu, Shuang
    Ling, Qiaojia
    Bao, Guifeng
    Xie, Lin
    Shi, Yongqing
    Wang, Xiangyang
    PLANT FOODS FOR HUMAN NUTRITION, 2024, 79 (04) : 860 - 866
  • [50] Influence of the structure and composition of the Pais grape proanthocyanidins on the inhibition of angiotensin I-converting enzyme (ACE)
    Godoy, Susana
    Roeckel, Marlene
    Fernandez, Katherina
    FOOD CHEMISTRY, 2012, 134 (01) : 346 - 350