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[Screening for inhibitor of vascular endothelial growth factor from random peptide library].

OBJECTIVE: To screen for the inhibitor of vascular endothelial growth factor (VEGF) 165 from random peptide library. METHODS: Positive phage clones were rescued after two rounds of panning and competitive elution. Its affinity activity to KDR was monitored through ELISA, immunohistochemical method, Chicken CAM assay and MTT. RESULTS: Five specific binding positive target molecule phage clones were obtained which were able to bind to cells whose surface had high KDR, among which, clone 3 and 13 could effectively block the vascularization of the chorioallantoic membrane of chick embryo, but they were not inhibitive on the proliferation of high KDR expression cells. CONCLUSION: The peptides, being the inhibitors of VEGF, may be useful in the treatment of cancers.

Animals↗

Selection of ligands for polyclonal antibodies from random peptide libraries: potential identification of (auto)antigens that may trigger B and T cell responses in autoimmune diseases.

The development of random peptide libraries has increased our possibility for analyzing the structural features involved in binding events. Recently, reports have appeared in which these libraries have been successfully used to investigate binding properties of homogeneous proteins such as monoclonal antibodies. However, a more general application of peptide libraries would be the use of polyclonal sera or fluids from patients with autoimmune diseases in biopanning experiments. This would subsequently allow the identification of (auto)antigen leads responsible for the initiation and/or perpetuation of the immune response in these patients. Moreover, the strategy allows the structural characterization of autoantibody specificities in body fluids that have been produced in vivo without the introduction of bias due to preferential B cell growth under in vitro conditions. The application of this novel strategy for selection of antibody ligands for polyclonal sera as well as to study the nature of immune responses to defined proteins will be discussed with emphasis on the development of peptide reagents for diagnostic and vaccine use.

Amino Acid Sequence↗

Selection of a high affinity angiogenin-binding peptide from a peptide library displayed on phage coat protein.

Although the phage-displayed peptide libraries have been widely used for the biopanning of peptide specific for various types of target molecules, the selected peptides often have affinities too low for practical purposes. In this report, selection of a high affinity peptide ligand specific for human angiogenin is described. We constructed a random dodecapeptide library displayed on the gene III protein of filamentous bacteriophage by use of a phagemid. The peptide insert was flanked by two cysteines to constrain the peptide structure by a disulfide bond. Phages were collected from 1.5 x 10(3) independent transformants. After the library phages were allowed to bind to the human angiogenin coated on a plate, the phages bound to the actin-binding site of angiogenin were selectively eluted with actin. The activity of each phage clone was estimated and three high affinity phage clones were identified. The peptides displayed by the three phage clones were synthesized as fusion proteins with Escherichia coli maltose-binding protein, and used for the quantitative estimation of their affinities. By this procedure, we were able to select a peptide having a dissociation constant of about 60 nM.

ATP-Binding Cassette Transporters↗

Inhibitors of human heart chymase based on a peptide library.

We have synthesized two sets of noncleavable peptide-inhibitor libraries to map the S and S' subsites of human heart chymase. Human heart chymase is a chymotrypsin-like enzyme that converts angiotensin I to angiotensin II. The first library consists of peptides with 3-fluorobenzylpyruvamides in the P1 position. (Amino acid residues of substrates numbered P1, P2, etc., are toward the N-terminal direction, and P'1, P'2, etc., are toward the C-terminal direction from the scissile bond.) The P'1 and P'2 positions were varied to contain each one of the 20 naturally occurring amino acids and P'3 was kept constant as an arginine. The second library consists of peptides with phenylalanine keto-amides at P1, glycine in P'1, and benzyloxycarbonyl (Z)-isoleucine in P4. The P2 and P3 positions were varied to contain each of the naturally occurring amino acids, except for cysteine and methionine. The peptides of both libraries are attached to a solid support (pins). The peptides are evaluated by immersing the pins in a solution of the target enzyme and evaluating the amount of enzyme absorbed. The pins with the best inhibitors will absorb most enzyme. The libraries select the best and worst inhibitors within each group of peptides and provide an approximate ranking of the remaining peptides according to Ki. Through this library, we determined that Z-Ile-Glu-Pro-Phe-CO2Me and (F)-Phe-CO-Glu-Asp-ArgOMe should be the best inhibitors of chymase in this collection of peptide inhibitors. We synthesized the peptides and found Ki values were 1 nM and 1 microM, respectively. The corresponding Ki values for chymotrypsin were 10 nM and 100 microM. The use of libraries of inhibitors has advantages over the classical method of synthesis of potential inhibitors in solution: the libraries are reusable, the same libraries can be used with a variety of different serine proteases, and the method allows the screening of hundreds of compounds in short periods of time.

Amino Acid Sequence↗

A mimotope from a solid-phase peptide library induces a measles virus-neutralizing and protective antibody response.

A solid-phase 8-mer random combinatorial peptide library was used to generate a panel of mimotopes of an epitope recognized by a monoclonal antibody to the F protein of measles virus (MV). An inhibition immunoassay was used to show that these peptides were bound by the monoclonal antibody with different affinities. BALB/c mice were coimmunized with the individual mimotopes and a T-helper epitope peptide (from MV fusion protein), and the reactivity of the induced anti-mimotope antibodies with the corresponding peptides and with MV was determined. The affinities of the antibodies with the homologous peptides ranged from 8.9 x 10(5) to 4.4 x 10(7) liters/mol. However, only one of the anti-mimotope antibodies cross-reacted with MV in an enzyme-linked immunosorbent assay and inhibited MV plaque formation. Coimmunization of mice with this mimotope and the T-helper epitope peptide induced an antibody response which conferred protection against fatal encephalitis induced following challenge with MV and with the structurally related canine distemper virus. These results indicate that peptide libraries can be used to identify mimotopes of conformational epitopes and that appropriate immunization with these mimotopes can induce protective antibody responses.

Amino Acid Sequence↗

Preparation of cyclic peptide libraries using intramolecular oxime formation.

A new method for the synthesis of cyclic head-to-side chain peptide libraries has been developed in which the key cyclization step involves reaction between a C-terminal ketone and an N-terminal hydroxylamine to form a macrocyclic oxime. This methodology efficiently delivers cyclic products that consist of mixtures of syn and anti isomers.

Combinatorial Chemistry Techniques↗

Creation and functional screening of a multi-use peptide library.

Studies of functional interactions between transmembrane proteins such as G-protein-coupled receptors and ligands would benefit from the ability to utilize synthetic molecule libraries. This is realized here by the construction and application of a multi-use combinatorial peptide library (MUPL). Peptides are liberated from their supports in a dry state so that the problem of signal interference due to mixing of peptide molecules, particularly agonists and antagonists, is avoided. In addition, the peptides are released from their supports in a controlled manner so that fractions are available for multiple independent tests, thus eliminating the need for iterative library analysis and resynthesis. The MUPL concept was validated with a functional screen which detects agonists to G-protein-coupled receptors and led to the discovery of new ligands. It is expected that combining MUPLs with functional assays will enhance both basic scientific research and the rates of drug discovery and development.

Amino Acid Sequence↗

Screening of synthetic peptide libraries with radiolabeled acceptor molecules.

A method has been developed for the identification of specific acceptor molecule-binding sequences from a chemically synthesized peptide library. The peptide resin beads, each bead carrying one peptide sequence, are incubated with radiolabeled acceptor molecule and subsequently immobilized in a thin layer of agarose. Resin beads that carry acceptor molecule-specific sequences are identified by autoradiography and subjected to automated gas-phase sequencing. The method was tested by screening a synthetic pentapeptide library with an anti-beta-endorphin monoclonal antibody.

Amino Acid Sequence↗

Use of a cell-based, lawn format assay to rapidly screen a 442,368 bead-based peptide library.

A cell-based, lawn format assay utilizing an in situ photocleavage method has been developed that allows the rapid examination of large bead-based compound libraries as discrete molecules. The format uses frog melanophore cells in a contiguous, adherent, confluent layer in small petri dishes covered with a 0.5-1-mm layer of agarose containing 130 micron diameter TentaGel beads at a density of 2-20 beads/mm2. Employing this technique a 9-mer, 442,368-member peptide library (designed around the 13 amino acid alpha-MSH peptide sequence) made up of 12 separate pools of 36,864 peptides/pool was assayed. Initially, a fraction (approximately 10%) of each pool was scanned (approximately 3700 beads from each pool) in 60-mm petri dishes to identify the most active pools. Upon direct photocleavage of the beads with UV light (365 nm), each petri dish was photographed over a 60-min period with a CCD camera to record changes in light intensity as an index of melanosome dispersion. Active beads were those that were surrounded by a localized decrease in light transmittance indicating melanosome dispersed cells. Upon examination with a dissecting microscope, single beads centrally located to a circular array of dispersed cells were identified and removed from the agarose and sequenced by Edman degradation to determine the peptide sequence. Re-synthesized peptides were re-examined against alpha-MSH receptor to confirm and quantify the activity. Several 9-mer peptides were identified with potencies similar to the natural 13-mer peptide. This method allows for the rapid screening of large bead-based photo-cleavable peptide libraries with the advantage that each compound is screened as a discrete molecule in a well-less format.

Animals↗

Combinatorial peptide libraries: robotic synthesis and analysis by nuclear magnetic resonance, mass spectrometry, tandem mass spectrometry, and high-performance capillary electrophoresis techniques.

Combinatorial peptide libraries are a new source of compounds from which a large number of pharmacological leads will emerge in the next few years. A large body of literature shows that this approach is of considerable interest in many areas of biological sciences for the search of enzyme substrates and inhibitors, of receptor agonists or antagonists, or of antigen sequences. Nevertheless, the analytical investigation of such complex mixtures as libraries which contain up to millions of individual molecules is still poorly documented. In this work, we present analytical solutions for their characterization. NMR and tandem mass spectrometry (MS/MS) can provide an in deep description of any type of combinatorial libraries, while MS and high-performance capillary electrophoresis can bring a rapid and overall information at the routine level, sufficient to ensure a first assessment of their composition. MS in the fast atom bombardment mode was used to describe the libraries O1X2X3X4X5 or O1X2X3X4 (Oi and Xi are fixed and random residue in position i, respectively). Advantage was taken of the high proton affinity of arginine and of its induction of charge remote fragmentation to interpret the MS spectra of whole libraries and neutral losses (MS/MS) in the model sublibraries ArgGlyX3X4 and NipValX3X4 (Nip,4-nitrophenylalanine). Two-dimensional NMR allowed the incorporation of the individual residues during synthesis to be tested in 24 sublibraries O1X2X3X4. While from the pharmacological point of view, impressive discoveries made with combinatorial peptide libraries have already been reported, our results show that they should be complemented by appropriate analytical tools, crucial for the proper characterization and exploitation of these libraries.

Amino Acid Sequence↗

Combinatorial peptide libraries as an alternative approach to the identification of ligands for tumor-reactive cytolytic T lymphocytes.

The recent identification of molecularly defined human tumor antigens recognized by autologous CTLs has opened new opportunities for the development of antigen-specific cancer vaccines. Despite extensive work, however, the number of CTL-defined tumor antigens that are suitable targets for generic vaccination of cancer patients is still limited, mostly because of the painstaking and lengthy nature of the procedures currently used for their identification. A novel approach is based on the combined use of combinatorial peptide libraries in positional scanning format (positional scanning synthetic combinatorial peptide libraries, PS-SCLs) and tumor-reactive CTL clones. To validate this approach, we herein analyzed in detail the recognition of PS-SCLs by Melan-A-specific CTL clones. Our results indicate that, at least for some clones, most of the amino acids composing the native antigenic peptide can be identified through the use of PS-SCLs. Interestingly, this analysis also allowed the identification of peptide analogues with increased antigenic activity as well as agonist peptides containing multiple amino-acid substitutions. In addition, biometrical analysis of the data generated by PS-SCL screening allowed the identification of the native ligand in a public database. Overall, these data demonstrate the successful use of PS-SCLs for the identification and optimization of tumor-associated CTL epitopes.

Amino Acid Sequence↗

An automated prediction of MHC class I-binding peptides based on positional scanning with peptide libraries.

Specificities of three mouse major histocompatibility complex (MHC) class I molecules, Kb, Db, and Ld, were analyzed by positional scanning using combinatorial peptide libraries. The result of the analysis was used to create a scoring program to predict MHC-binding peptides in proteins. The capacity of the scoring was then challenged with a number of peptides by comparing the prediction with the experimental binding. The score and the experimental binding exhibited a linear correlation but with substantial deviations of data points. Statistically, for approximately 80% of randomly chosen peptides, MHC-binding capacity could be predicted within one log concentration of peptides for a half-maximal binding. Known cytotoxic T-lymphocyte epitope peptides could be predicted, with a few exceptions. In addition, frequent findings of MHC-binding peptides with incomplete or no anchor amino acid(s) suggested a substantial bias introduced by natural antigen processing in peptide selection by MHC class I molecules.

Animals↗

[Screening for the peptides blocking cholera phage VP1 transfection to host cell by phage random amino acid peptide library].

Use Vibrio cholerae El Tor Typing Phage VP1 as ligand to screen phage-display random 7 amino acid peptide library, ELISA and inactivation experiment were used to identify positive clone. The ratio of output to input was increased after three rounds of screening. Pseudo-positive was decreased stepwise. It indicated the efficient enrichment. After three rounds of screening, 312 out of 360 phage clones were positive in ELISA, 1 clone shows blocking VP1 adsorbs to Vibrio cholerae by inactivation experiment. Sequencing result indicate that amino acid sequences are p245: LeuGlnGlnLysHisLeuLeu; p40, p55: GlnLeuIleMetIleArgHis; p69, p274 IleThrProArgAsnArgSer. Getting some peptides can mimick the VP1 receptor epitopes, one peptide can block VP1 transfection to host cell, it was a clue to study receptor's structure and phage infectious mechanism to host cell.

Amino Acid Sequence↗

Inhibition of human complement by a C3-binding peptide isolated from a phage-displayed random peptide library.

We have screened a phage-displayed random peptide library for binding to C3b, the proteolytically activated form of complement component C3, and have identified a novel peptide that suppresses complement activation. This phage-displayed peptide bound to C3, C3b, and C3c, but not to C3d, indicating that it binds to the C3c region of C3. A synthetic 27-amino acid peptide corresponding to the phage-displayed peptide also bound to C3 and C3 fragments and inhibited both the classical and alternative pathways of complement activation. The inhibition of complement activation was reversible. Studies with overlapping peptides indicated that the functional activity was located in the cyclic 13-amino acid N-terminal region (ICVVQDWGHHRCT) of the parent peptide. Reduction and alkylation of this 13-residue synthetic peptide destroyed its inhibitory activity. Analysis of the mechanism of inhibition revealed that the peptide inhibited C3 cleavage in normal human serum as well as when the alternative pathway was reconstituted with purified complement components, and the observed inhibition was not due to sterically hindered access to the C3a/C3b cleavage site. Further, the peptide did not inhibit the cleavage of factor B, indicating that it did not affect the interaction of CA with factor B or the formation of C3b,Bb. The peptide also had no effect on the binding of properdin to C3, demonstrating that the observed inhibition of C3 cleavage in normal human serum was not due in part to its effect on the properdin-stabilized C3 convertase, C3b,Bb,P. These results indicate that the peptide we have identified interacts with C3 to inhibit its activation.

Amino Acid Sequence↗

Rapid identification of substrates for novel proteases using a combinatorial peptide library.

Fluorogenic substrates for assaying novel proteolytic enzymes could be rapidly identified using an easy, solid-phase combinatorial assay technology. The methodology was validated with leader peptidase of Escherichia coli using a subset of an intramolecularly quenched fluorogenic peptide library. The technique was extended toward the discovery of substrates for a new aspartic protease of pharmaceutical relevance (human napsin A). We demonstrated for the first time known to us that potent fluorogenic substrates can be discovered using extracts of cells expressing recombinant enzyme to screen the peptide library. The straightforward and rapid optimization of protease substrates greatly facilitates the drug discovery process by speeding up the development of high throughput screening assays and thus helps more effective exploitation of the enormous body of information and chemical structures emerging from genomics and combinatorial chemistry technologies.

Amino Acid Sequence↗

Retroviral technology--applications for expressed peptide libraries.

The cell is an extremely complex network of interactions between large numbers of molecules. Understanding this entire network and the information arising from it is an overwhelming and challenging task. Reverse genetics has given us the possibility to discover unknown interactions and their related pathways. With the help of peptide libraries, interactions between biomolecules can be disrupted or distorted and the signaling pathways where these proteins are involved, altered. Consequently, novel biological pathways can be discerned. The peptide libraries become a pool of shapes, some of them might behave as dominant effectors. With the use of retroviral transfer vectors those libraries can be expressed in a stable manner in the mammalian cell. A strong selection and screening process can finally lead to specific peptides. Novel high-throughput approaches might allow for the rapid creation of small-molecule switches in protein-protein interactions. Reverse genetics and as such the expression of small molecules that will have a specific biological outcome, can become an answer to our queries.

Animals↗

Identification of calmodulin-binding peptide consensus sequences from a phage-displayed random peptide library.

The calcium-binding protein, calmodulin (CaM), was used to screen a phage library displaying random peptides 26 amino acids (aa) in length. Twenty CaM-binding peptides were identified, 17 of which contained one of three consensus sequence motifs: + W-OlambdaR, WRAAV or WRXXAAAL, where +, -, O, lambda and X are positively charged, negatively charged, hydrophobic, leucine or valine, and any residue, respectively. The Trp residue in these motifs is located within 14 aa of the N-terminus of the displayed peptide. Previous studies [Dedman et al., J. Biol. Chem. 268 (1993) 23025-23030] using a library displaying random peptides 15 aa in length identified CaM-binding peptides which contained a Trp-Pro dipeptide motif. These results suggest that the type of CaM-binding motif identified can vary between different types of combinatorial peptides.

Amino Acid Sequence↗