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1.
人源抗狂犬病毒单克隆抗体Fab段基因的获得和表达 总被引:2,自引:2,他引:2
运用噬菌体表面呈现(phage display)技术获得了人源抗狂犬病毒糖蛋白基因工程单克隆抗体Fab段基因及其表达。从狂犬病毒PM株Vero细胞疫苗免疫的人抗凝血中分离获得外周淋巴细胞,提取细胞总RNA,通过RTPCR方法,用一组人IgG Fab基因4特异性引物,从合成的cDNA中扩增了一组轻链和重链Fab段基因,将轻链和重链Fab段基因,将轻链和重链先后克隆入噬菌体载体pComb3,成功地建立了抗狂犬病毒抗原的方法,对此抗体库进行富积筛选表达,成功地获得了抗狂犬病毒的人源单抗Fab段基因及其在大肠杆菌中的有效表达,对其中一株单抗G10进行了较为系统的分析,发现它与一株鼠源中和性狂犬病毒糖蛋白特异性单抗存在竞争,证实该单抗能识别狂犬病毒糖蛋白,其序列资料分析表明,该单抗为一株新的抗狂犬病毒人源基因工程抗体。 相似文献
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入源中和性抗甲型肝炎病毒抗体Fab段基因的序列分析及可溶性表达 总被引:1,自引:0,他引:1
在用噬菌体表面呈现系统获得人源抗甲型肝炎(甲肝)病毒中和性基因工程Fab抗体的基础上,对所获得的4株中和性Fab抗体轻重链可变区基因进行了序列分析、可溶性表达及生物学特性鉴定.4株Fab抗体重链可变区拥有99%同源的核苷酸序列和相同的CDR区氨基酸序列,属于VHⅢ基因家族.而轻链可变区核苷酸序列同源性为95%和相似的CDR区氨基酸序列,属于VL5基因家族.这些重组抗体都能与人甲肝恢复期血清及具有中和活性的鼠抗甲肝单克隆抗体产生竞争抑制反应,表明其针对甲肝病毒结构蛋白上的主要抗原决定簇. 相似文献
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Viviane Midori Murata Mariana Costa Braga Schmidt Jorge Kalil Lilian Rumi Tsuruta Ana Maria Moro 《Molecular biotechnology》2013,54(2):269-277
Digoxin is a pharmaceutical used in the control of cardiac dysfunction. Its therapeutic window is narrow, with effect dosage very close to the toxic dosage. To counteract the toxic effect, polyclonal Fab fragments are commercially available. Our study is based on a monoclonal anti-digoxin antibody, which would provide a product with a specific potency and more precise dosage for the detoxification of patients under digoxin treatment. Phage display technology was used to select variants with high affinity. From an anti-digoxin hybridoma, RNA was extracted for subsequent cDNA synthesis. Specific primers were used for the LC and Fd amplifications, then cloned sequentially in a phagemid vector (pComb3X) for the combinatorial Fab library construction. Clones were selected for their ability to bind to digoxin-BSA. The presence of light and heavy chains was checked, randomly selected clones then sequenced and induced to produce soluble Fabs, and subsequently analyzed for anti-digoxin expression. Out of ten clones randomly chosen, six resulted positive expression of the product. The sequencing of these revealed two identical clones and one presenting a pseudogene in the LC. Four clones presenting variations in the framework1 showed binding to digoxin-BSA by ELISA and western blotting. The specific binding was further confirmed by Biacore®, which allowed ranking of the clones. The development of these clones allowed the selection of variants with higher affinity than the original version. 相似文献
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应用噬菌体展示技术筛选人巨细胞病毒糖蛋白M新的中和抗原表位 总被引:1,自引:0,他引:1
人巨细胞病毒(HCMV)糖蛋白复合物Ⅱ包括两种蛋白,即糖蛋白M(gM)和糖蛋白N(gN).尽管来自于HCMV阳性病人血清中的糖蛋白复合物Ⅱ的IgG抗体能够中和HCMV粒子,但迄今为止,还没有gM中和性抗原表位的相关研究.应用消减杂交技术,通过噬菌体肽库筛选获得gM抗原的一个表位,即MAD.MAD氨基酸序列与gM第32~38位序列高度同源.将MAD与钥孔血蓝蛋白偶联免疫小鼠可产生抗MAD多抗,该多抗不仅结合天然HCMV病毒粒子,而且特异结合重组表达的gM30~78多肽.ELISA结果表明MAD能够特异结合HCMV阳性的病人血清.病毒中和实验结果进一步证明抗MAD多抗能够抑制HCMV AD169株病毒感染人胚肺细胞.总之,MAD表位有可能成为HCMV病毒疫苗潜在的保护性抗原. 相似文献
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Tuomas Huovinen Hanna Sanmark Jani Ylä-Pelto Markus Vehniäinen Urpo Lamminmäki 《Molecular biotechnology》2010,44(3):221-231
Efficient display of antibody on filamentous phage M13 coat is crucial for successful biopanning selections. We applied a
directed evolution strategy to improve the oligovalent display of a poorly behaving Fab fragment fused to phage gene-3 for
minor coat protein (g3p). The Fab displaying clones were enriched from a randomly mutated Fab gene library with polyclonal
anti-mouse IgG antibodies. Contribution of each mutation to the improved phenotype of one selected mutant was studied. It
was found out that two point mutations had significant contribution to the display efficiency of Fab clones superinfected
with hyperphage. The most dramatic effect was connected to a start codon mutation, from AUG to GUG, of the PelB signal sequence
preceding the heavy chain. The clone carrying this mutation, FabMGUG, displayed Fab 19-fold better and yielded twofold higher phage titers than the original Fab. 相似文献
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从具有高滴度狂犬病毒抗体的多位疫苗注射者采集外周血淋巴细胞,构建人源抗狂犬病毒Fab基因工程抗体文库。用纯化的狂犬aG和CTN株病毒颗粒富集筛选所得Fab噬菌体抗体文库,利用ELISA和间接免疫荧光法IFA鉴定所得人源单克隆抗体Fab段基因的功能特性,并通过序列测定确定所得抗体的轻链和重链的型别,成功获得11株抗狂犬病毒糖蛋白的人源单克隆Fab抗体。将其中5株人源单克隆Fab抗体的轻链和重链分别克隆入全抗体表达载体pAC-L-Fc后转染昆虫Sf9细胞,利用杆状病毒系统实现全抗体的分泌型表达。5株全抗体在体外与狂犬病毒CVS-11株的中和反应中均显示具有狂犬病毒中和活性。人源中和性抗狂犬病毒基因工程全抗体的获得为我国自行生产抗狂犬病单克隆抗体鸡尾酒奠定了物质基础。 相似文献
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本实验采用木瓜酶水解,SPA柱亲合层析等手段得到人IgGFc段及Fab段,以Sigma抗人IgGfFc段和抗人IgG Fab段单抗为标准品,鉴定了细胞库中抗人IgG系列的部分细胞株,得到特异性分泌抗人IgG Fc段和抗人IgG Fab段单抗的细胞各一株。 在上述实验基础上,用抗人IgG Fc及抗人IgG Fab单抗分别制备了Sepharose4B亲合层析柱,提纯了酶解人IgG Fc、Fab片段,经ELISA法鉴定,相互之间无交叉反应。同时用此方法制备了人抗HBe Fab片段,并将该片段进行了过氧化物酶标记,用来配制HBe ELISA诊断盒,证明其生物活性未受影响,而且消除了类风湿因子引起的HBe Ag假阳性现象。因抗HBe单抗来源困难,如采用HBe多抗制备ELISA试剂,本法将是提高质量的一个好方法。 相似文献
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构建人源T7噬菌体单链抗体(scFv)库筛选抗汉坦病毒核衣壳蛋白(NP)抗体。从肾综合征出血热恢复期患者外周血淋巴细胞中提取总RNA,反转录合成cDNA第一条链,PCR分别扩增抗体重链可变区基因(VH)和轻链可变区基因(VL),经重叠延伸拼接(SOE)PCR组成scFv基因,并将其与T7噬菌体载体的2个臂相连接。体外包装后,在宿主菌BLT5403中,扩增重组噬菌体抗体库。以基因工程表达NP进行4轮“吸附-洗脱-扩增”的筛选,酶免疫实验检测抗体活性。所建抗体库库容为1.35×107,扩增后初级库滴度为2.12×1010pfu/mL。以NP抗原筛选后抗体出现特异性富集,经酶免疫实验鉴定,得到2株与NP抗原特异结合的噬菌体抗体。结果表明,研究成功构建了人源抗NP蛋白T7噬菌体抗体库。 相似文献
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为了筛选转铁蛋白黏附肽,应用噬菌体表面展示技术经过三轮生物淘选,成功地从随机七肽库中得到黏附转铁蛋白的重组噬菌体克隆,经过相对亲和力常数测定和DNA测序得到4个转铁蛋白黏附肽的序列。实验中以回收率和选择比为操作参数,对淘选进行了优化,并发展了一种基于噬菌体滴度的相对亲和力常数测定方法。转铁蛋白受体是一种有效的肿瘤标记物,利用转铁蛋白为载体可以实现药物靶向运输,因此转铁蛋白黏附肽将是重组蛋白质药物连接转铁蛋白的有用标签。 相似文献
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Thomas Keller Romana Kalt Ingrid Raab Helga Schachner Corina Mayrhofer Dontscho Kerjaschki Brigitte Hantusch 《PloS one》2015,10(5)
The identification of marker molecules specific for blood and lymphatic endothelium may provide new diagnostic tools and identify new targets for therapy of immune, microvascular and cancerous diseases. Here, we used a phage display library expressing human randomized single-chain Fv (scFv) antibodies for direct panning against live cultures of blood (BECs) and lymphatic (LECs) endothelial cells in solution. After six panning rounds, out of 944 sequenced antibody clones, we retrieved 166 unique/diverse scFv fragments, as indicated by the V-region sequences. Specificities of these phage clone antibodies for respective compartments were individually tested by direct cell ELISA, indicating that mainly pan-endothelial cell (EC) binders had been selected, but also revealing a subset of BEC-specific scFv antibodies. The specific staining pattern was recapitulated by twelve phage-independently expressed scFv antibodies. Binding capacity to BECs and LECs and differential staining of BEC versus LEC by a subset of eight scFv antibodies was confirmed by immunofluorescence staining. As one antigen, CD146 was identified by immunoprecipitation with phage-independent scFv fragment. This antibody, B6-11, specifically bound to recombinant CD146, and to native CD146 expressed by BECs, melanoma cells and blood vessels. Further, binding capacity of B6-11 to CD146 was fully retained after fusion to a mouse Fc portion, which enabled eukaryotic cell expression. Beyond visualization and diagnosis, this antibody might be used as a functional tool. Overall, our approach provided a method to select antibodies specific for endothelial surface determinants in their native configuration. We successfully selected antibodies that bind to antigens expressed on the human endothelial cell surfaces in situ, showing that BECs and LECs share a majority of surface antigens, which is complemented by cell-type specific, unique markers. 相似文献
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Isolation of Llama Antibody Fragments for Prevention of Dandruff by Phage Display in Shampoo 总被引:3,自引:0,他引:3 下载免费PDF全文
Edward Dolk Marcel van der Vaart David Lutje Hulsik Gert Vriend Hans de Haard Silvia Spinelli Christian Cambillau Leon Frenken Theo Verrips 《Applied microbiology》2005,71(1):442-450
As part of research exploring the feasibility of using antibody fragments to inhibit the growth of organisms implicated in dandruff, we isolated antibody fragments that bind to a cell surface protein of Malassezia furfur in the presence of shampoo. We found that phage display of llama single-domain antibody fragments (VHHs) can be extended to very harsh conditions, such as the presence of shampoo containing nonionic and anionic surfactants. We selected several VHHs that bind to the cell wall protein Malf1 of M. furfur, a fungus implicated in causing dandruff. In addition to high stability in the presence of shampoo, these VHHs are also stable under other denaturing conditions, such as high urea concentrations. Many of the stable VHHs were found to contain arginine at position 44. Replacement of the native amino acid at position 44 with arginine in the most stable VHH that lacked this arginine resulted in a dramatic further increase in the stability. The combination of the unique properties of VHHs together with applied phage display and protein engineering is a powerful method for obtaining highly stable VHHs that can be used in a wide range of applications. 相似文献
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Sabrina Kneissl Tobias Abel Anke Rasbach Julia Brynza Jürgen Schneider-Schaulies Christian J. Buchholz 《PloS one》2012,7(10)
Lentiviral vectors (LVs) are potent gene transfer vehicles frequently applied in research and recently also in clinical trials. Retargeting LV entry to cell types of interest is a key issue to improve gene transfer safety and efficacy. Recently, we have developed a targeting method for LVs by incorporating engineered measles virus (MV) glycoproteins, the hemagglutinin (H), responsible for receptor recognition, and the fusion protein into their envelope. The H protein displays a single-chain antibody (scFv) specific for the target receptor and is ablated for recognition of the MV receptors CD46 and SLAM by point mutations in its ectodomain. A potential hindrance to systemic administration in humans is pre-existing MV-specific immunity due to vaccination or natural infection. We compared transduction of targeting vectors and non-targeting vectors pseudotyped with MV glycoproteins unmodified in their ectodomains (MV-LV) in presence of α-MV antibody-positive human plasma. At plasma dilution 1∶160 MV-LV was almost completely neutralized, whereas targeting vectors showed relative transduction efficiencies from 60% to 90%. Furthermore, at plasma dilution 1∶80 an at least 4-times higher multiplicity of infection (MOI) of MV-LV had to be applied to obtain similar transduction efficiencies as with targeting vectors. Also when the vectors were normalized to their p24 values, targeting vectors showed partial protection against α-MV antibodies in human plasma. Furthermore, the monoclonal neutralizing antibody K71 with a putative epitope close to the receptor binding sites of H, did not neutralize the targeting vectors, but did neutralize MV-LV. The observed escape from neutralization may be due to the point mutations in the H ectodomain that might have destroyed antibody binding sites. Furthermore, scFv mediated cell entry via the target receptor may proceed in presence of α-MV antibodies interfering with entry via the natural MV receptors. These results are promising for in vivo applications of targeting vectors in humans. 相似文献
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Jorge Reyes-del Valle Cynthia de la Fuente Mallory A. Turner Christoph Springfeld Swapna Apte-Sengupta Marie E. Frenzke Amelie Forest Jillian Whidby Joseph Marcotrigiano Charles M. Rice Roberto Cattaneo 《Journal of virology》2012,86(21):11558-11566
Hepatitis C virus (HCV) infection remains a serious public health problem worldwide. Treatments are limited, and no preventive vaccine is available. Toward developing an HCV vaccine, we engineered two recombinant measles viruses (MVs) expressing structural proteins from the prototypic HCV subtype 1a strain H77. One virus directs the synthesis of the HCV capsid (C) protein and envelope glycoproteins (E1 and E2), which fold properly and form a heterodimer. The other virus expresses the E1 and E2 glycoproteins separately, with each one fused to the cytoplasmic tail of the MV fusion protein. Although these hybrid glycoproteins were transported to the plasma membrane, they were not incorporated into MV particles. Immunization of MV-susceptible, genetically modified mice with either vector induced neutralizing antibodies to MV and HCV. A boost with soluble E2 protein enhanced titers of neutralizing antibody against the homologous HCV envelope. In animals primed with MV expressing properly folded HCV C-E1-E2, boosting also induced cross-neutralizating antibodies against two heterologous HCV strains. These results show that recombinant MVs retain the ability to induce MV-specific humoral immunity while also eliciting HCV neutralizing antibodies, and that anti-HCV immunity can be boosted with a single dose of purified E2 protein. The use of MV vectors could have advantages for pediatric HCV vaccination. 相似文献
17.
Peptide Ligands to Human Immunodeficiency Virus Type 1 gp120 Identified from Phage Display Libraries 总被引:7,自引:0,他引:7 下载免费PDF全文
We have used phage-displayed peptide libraries to identify novel ligands to the human immunodeficiency virus type 1 (HIV-1) envelope glycoprotein gp120. Screening of libraries of random 12-mers, 7-mers, and cyclic 9-mers produced two families of gp120 binding peptides. Members of a family with the prototype sequence RINNIPWSEAMM (peptide 12p1) inhibit the interaction between gp120 and both four-domain soluble CD4 (4dCD4) and monoclonal antibody (MAb) 17b, a neutralizing antibody that covers the chemokine receptor binding surface on gp120. Peptide 12p1 inhibits the interaction of 4dCD4 with gp120 from three different HIV strains, implying that it binds to a conserved site on gp120. Members of a second family of peptides, with the prototype sequence TSPYEDWQTYLM (peptide 12p2), bind more weakly to gp120. They do not detectably affect its interaction with 4dCD4, but they enhance its binding to MAb 17b. A common sequence motif in the two peptide families and cross-competition for gp120 binding suggest that they have overlapping contacts. Their divergent effects on the affinity of gp120 for MAb 17b may indicate that their binding stabilizes distinct conformational states of gp120. The functional properties of 12p1 suggest that it might be a useful lead for the development of inhibitors of HIV entry. 相似文献
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Henry D. Wilson Xiuling Li Haiyong Peng Christoph Rader 《Journal of molecular biology》2018,430(21):4387-4400
Phage display of combinatorial antibody libraries is a versatile tool in the field of antibody engineering, with diverse applications including monoclonal antibody (mAb) discovery, affinity maturation, and humanization. To improve the selection efficiency of antibody libraries, we developed a new phagemid display system that addresses the complication of bald phage propagation. The phagemid facilitates the biotinylation of fragment of antigen binding (Fab) antibody fragments displayed on phage via Sortase A catalysis and the subsequent enrichment of Fab-displaying phage during selections. In multiple contexts, this selection approach improved the enrichment of target-reactive mAbs by depleting background phage. Panels of cancer cell line-reactive mAbs with high diversity and specificity were isolated from a naïve chimeric rabbit/human Fab library using this approach, highlighting its potential to accelerate antibody engineering efforts and to empower concerted antibody drug and target discovery. 相似文献
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Maino Tahara Yuri Ito Melinda A. Brindley Xuemin Ma Jilan He Songtao Xu Hideo Fukuhara Kouji Sakai Katsuhiro Komase Paul A. Rota Richard K. Plemper Katsumi Maenaka Makoto Takeda 《Journal of virology》2013,87(1):666-675
Effective vaccination programs have dramatically reduced the number of measles-related deaths globally. Although all the available data suggest that measles eradication is biologically feasible, a structural and biochemical basis for the single serotype nature of measles virus (MV) remains to be provided. The hemagglutinin (H) protein, which binds to two discrete proteinaceous receptors, is the major neutralizing target. Monoclonal antibodies (MAbs) recognizing distinct epitopes on the H protein were characterized using recombinant MVs encoding the H gene from different MV genotypes. The effects of various mutations on neutralization by MAbs and virus fitness were also analyzed, identifying the location of five epitopes on the H protein structure. Our data in the present study demonstrated that the H protein of MV possesses at least two conserved effective neutralizing epitopes. One, which is a previously recognized epitope, is located near the receptor-binding site (RBS), and thus MAbs that recognize this epitope blocked the receptor binding of the H protein, whereas the other epitope is located at the position distant from the RBS. Thus, a MAb that recognizes this epitope did not inhibit the receptor binding of the H protein, rather interfered with the hemagglutinin-fusion (H-F) interaction. This epitope was suggested to play a key role for formation of a higher order of an H-F protein oligomeric structure. Our data also identified one nonconserved effective neutralizing epitope. The epitope has been masked by an N-linked sugar modification in some genotype MV strains. These data would contribute to our understanding of the antigenicity of MV and support the global elimination program of measles. 相似文献
20.
Pamela R. Hall Brian Hjelle Hadya Njus Chunyan Ye Virginie Bondu-Hawkins David C. Brown Kathleen A. Kilpatrick Richard S. Larson 《Journal of virology》2009,83(17):8965-8969
Specific therapy is not available for hantavirus cardiopulmonary syndrome caused by Andes virus (ANDV). Peptides capable of blocking ANDV infection in vitro were identified using antibodies against ANDV surface glycoproteins Gn and Gc to competitively elute a cyclic nonapeptide-bearing phage display library from purified ANDV particles. Phage was examined for ANDV infection inhibition in vitro, and nonapeptides were synthesized based on the most-potent phage sequences. Three peptides showed levels of viral inhibition which were significantly increased by combination treatment with anti-Gn- and anti-Gc-targeting peptides. These peptides will be valuable tools for further development of both peptide and nonpeptide therapeutic agents.Andes virus (ANDV), an NIAID category A agent linked to hantavirus cardiopulmonary syndrome (HCPS), belongs to the family Bunyaviridae and the genus Hantavirus and is carried by Oligoryzomys longicaudatus rodents (11). HCPS is characterized by pulmonary edema caused by capillary leak, with death often resulting from cardiogenic shock (9, 16). ANDV HCPS has a case fatality rate approaching 40%, and ANDV is the only hantavirus demonstrated to be capable of direct person-to-person transmission (15, 21). There is currently no specific therapy available for treatment of ANDV infection and HCPS.Peptide ligands that target a specific protein surface can have broad applications as therapeutics by blocking specific protein-protein interactions, such as preventing viral engagement of host cell receptors and thus preventing infection. Phage display libraries provide a powerful and inexpensive tool to identify such peptides. Here, we used selection of a cyclic nonapeptide-bearing phage library to identify peptides capable of binding the transmembrane surface glycoproteins of ANDV, Gn and Gc, and blocking infection in vitro.To identify peptide sequences capable of recognizing ANDV, we panned a cysteine-constrained cyclic nonapeptide-bearing phage display library (New England Biolabs) against density gradient-purified, UV-treated ANDV strain CHI-7913 (a gift from Hector Galeno, Santiago, Chile) (17, 18). To increase the specificity of the peptides identified, we eluted phage by using monoclonal antibodies (Austral Biologicals) prepared against recombinant fragments of ANDV Gn (residues 1 to 353) or Gc (residues 182 to 491) glycoproteins (antibodies 6B9/F5 and 6C5/D12, respectively). Peptide sequences were determined for phage from iterative rounds of panning, and the ability of phage to inhibit ANDV infection of Vero E6 cells was determined by immunofluorescent assay (IFA) (7). Primary IFA detection antibodies were rabbit polyclonal anti-Sin Nombre hantavirus (SNV) nucleoprotein (N) antibodies which exhibit potent cross-reactivity against other hantavirus N antigens (3). ReoPro, a commercially available Fab fragment which partially blocks infection of hantaviruses in vitro by binding the entry receptor integrin β3 (5), was used as a positive control (80 μg/ml) along with the original antibody used for phage elution (5 μg/ml). As the maximum effectiveness of ReoPro in inhibiting hantavirus entry approaches 80%, we set this as a threshold for maximal expected efficacy for normalization. The most-potent phage identified by elution with the anti-Gn antibody 6B9/F5 bore the peptide CPSNVNNIC and inhibited hantavirus entry by greater than 60% (61%) (Table (Table1).1). From phage eluted with the anti-Gc antibody 6C5/D12, those bearing peptides CPMSQNPTC and CPKLHPGGC also inhibited entry by greater than 60% (66% and 72%, respectively).
Open in a separate windowaStandard deviations of four experiments are shown in parentheses. Peptide-bearing phage were added at 109 phage/μl.bP values for the pairwise amino acid alignment score of each peptide versus that of integrin β3 were determined using an unpaired Student''s t test. P values considered statistically significant are shown in bold.To determine whether the peptide sequences of any of the identified inhibitory phage showed homology to integrin β3, a known entry receptor for pathogenic hantaviruses (6, 7), we used the Gap program to perform a pairwise amino acid alignment of each peptide versus the extracellular portion of integrin β3 and determined P values for the alignments. Of 45 phage eluted with the anti-Gn antibody, 6B9/F5, 27 of the peptide sequences showed homology to integrin β3 (P < 0.05), and 9 were highly significant (P ≤ 0.0005) (Fig. (Fig.1A).1A). Of the latter, CKFPLNAAC and CSQFPPRLC map to the hybrid domain (Fig. (Fig.1B),1B), which is proximal to the plexin-semaphorin-integrin domain (PSI) containing residue D39, shown to be critical for viral entry in vitro (19). Five sequences (CPSSPFNH, CPKHVLKVC, CNANKPKMC, CQSQTRNHC, and CDQRTTRLC) map to the I-like (or βA) domain near the binding site of ReoPro (2). Finally, CLPTDPIQC maps to the epidermal growth factor 4 (EGF-4) domain, and CSTRAENQC aligns to a portion of β3 untraceable in the crystal structure, specifically the linker region between the hybrid domain and EGF-1. Although this represents a disordered portion of the protein (22), the location of this loop proximal to the PSI domain is worth noting, due to the role of the PSI domain in facilitating viral entry (19). Therefore, 60% of phage eluted with the anti-Gn antibody showed some homology to integrin β3, and those with highly significant P values predominantly mapped to or proximal to regions of known interest in viral entry.Open in a separate windowFIG. 1.Inhibitory peptides identified through phage panning against ANDV show homology to integrin β3. (A) Alignment of phage peptide sequences with P values for integrin β3 pairwise alignment of less than 0.05. Residues comprising the signal peptide, transmembrane, and cytoplasmic domains, which were not included during pairwise alignment, are underlined. Residues 461 to 548, which are missing in the crystal structure, are italicized. Residues involved in the ReoPro binding site are highlighted in green (2). Residue D39 of the PSI domain is highlighted in yellow (19). Peptides are shown above the sequence of integrin β3, with antibody 6C5/D12-eluted sequences shown in blue text and sequences eluted with antibody 6B9/F5 shown in red. Peptide sequences with alignment P values of ≤0.0005 are highlighted in yellow. Percent inhibition of the peptide-bearing phage is shown in parentheses. (B) View of integrin αvβ3 (PDB ID 1U8C [23]). αv is shown in blue ribbon diagram, and β3 is shown in salmon-colored surface representation, with specific domains circled. Residues corresponding to the ReoPro binding site are shown in green, as in panel A, and D39 is shown in yellow. Regions corresponding to 6C5/D12-eluted peptides with P values of ≤0.0005 for alignment with integrin β3 (highlighted in panel A) are shown in blue, and those corresponding to 6B9/F5-eluted peptides with P values of ≤0.0005 for alignment with integrin β3 are shown in red. Alignment of peptide PLASTRT (P value of 0.0040) adjacent to D39 of the PSI domain is shown in magenta. Graphics were prepared using Pymol (DeLano Scientific LLC, San Carlos, CA).Of the 41 peptide-bearing phage eluted with the anti-Gc antibody 6C5/D12, 14 showed sequence homology to integrin β3 (P < 0.05), 4 of which had P values of ≤0.0005 (Fig. (Fig.1A).1A). Of the latter, sequence CTTMTRMTC mapped to the base of the I-like domain (Fig. (Fig.1B),1B), while CHGVYALHC and CRDTTPWWC mapped to the EGF-3 domain. Finally, sequence CTPTMHNHC mapped to the linker region untraceable in the crystal structure. Therefore, in contrast to peptide sequences identified by competition with the anti-Gn antibody, sequences identified by competition with the anti-Gc antibody 6C5/D12 appear to be mostly unrelated to integrin β3.As a low level of pathogenic hantavirus infection can be seen in cells lacking integrin β3, such as CHO cells (19), we asked if any of the identified peptide sequences could represent a previously unidentified receptor. We used the Basic Local Alignment Search Tool to search a current database of human protein sequences for potential alternate receptors represented by these peptides. However, none of the alignments identified proteins that are expressed at the cell surface, eliminating them as potential candidates for alternate viral entry receptors. This suggests that the majority of the peptides identified here likely represent novel sequences for binding ANDV surface glycoproteins.To determine whether synthetic peptides would also block infection, we synthesized cyclic peptides based on the 10 most-potent peptide-bearing phage. These peptides, in the context of phage presentation, showed levels of inhibition ranging from 44 to 72% (Table (Table2).2). When tested by IFA at 1 mM, four of the synthetic peptides showed inhibition levels significantly lower than those of the same peptide presented in the context of phage. This is not surprising, as steric factors due to the size of the phage and the multivalent presentation of peptide in the context of phage may both contribute to infection inhibition (8). However, there was no significant difference in inhibition by synthetic peptide versus peptide-bearing phage for six of the sequences, implying that inhibition in the context of phage was due solely to the nature of the peptide itself and not to steric factors or valency considerations contributed by the phage, which contrasts with our previous results, determined by using phage directed against αvβ3 integrin (10).
Open in a separate windowaStandard deviations of the results of at least four experiments are shown in parentheses.bMean percent inhibition between phage and synthetic peptide differs significantly (P < 0.05).The three most-potent synthetic peptides were examined for their ability to inhibit ANDV entry in a dose-dependent manner. The concentration of each peptide that produces 50% of its maximum potential inhibitory effect was determined. As shown in Fig. Fig.2A,2A, the 50% inhibitory concentration for each of the peptides was in the range of 10 μM, which from our experience is a reasonable potency for a lead compound to take forward for optimization.Open in a separate windowFIG. 2.Activities of synthetic peptides in inhibition of ANDV infection in vitro. (A) Peptides were examined for their ability to block ANDV infection of Vero E6 cells in a dose-dependent manner by IFA. (B) Peptides were tested in parallel for the ability to block infection of Vero E6 cells by ANDV, SNV, HTNV, and PHV. (C) Peptides were tested, singly or in combination, for the ability to block ANDV infection of Vero E6 cells. For all experiments, controls included media, ReoPro at 80 μg/ml, and monoclonal antibodies 6C5/D12 and 6B9/F5 at 5 μg/ml. All peptides were used at 1 mM. Data points represent n = 2 to 6, with error bars showing the standard errors of the means. Statistical analyses were performed on replicate samples using an unpaired Student''s t test.In order to determine the specificity of the three most-potent synthetic cyclic peptides in blocking ANDV, we examined them for inhibition of ANDV infection versus two other pathogenic hantaviruses, SNV and Hantaan virus (HTNV), or the nonpathogenic hantavirus Prospect Hill virus (PHV). As shown in Fig. Fig.2B,2B, ReoPro, which binds integrin β3, showed inhibition of infection by each of the pathogenic hantavirus strains, known to enter cells via β3, but not the nonpathogenic PHV, which enters via integrin β1 (6, 7). In contrast, peptides selected for the ability to bind ANDV were highly specific inhibitors of ANDV versus SNV, HTNV, or PHV. The specificities of peptides eluted by the anti-Gn monoclonal antibody are not surprising, as they are likely due to global differences in the Gn amino acid sequence. Specifically, sequence homologies between ANDV and SNV, HTNV, and PHV are 61%, 36%, and 51%, respectively, for the region corresponding to the immunogen for antibody 6B9/F5. Although homology between the immunogen for antibody 6C5/D12 and the corresponding Gc region of these viruses is somewhat higher (82% with SNV, 63% with HTNV, and 71% with PHV), the possibility that the monoclonal antibody used here recognizes a three-dimensional epitope lends itself to the high specificity of the peptides.The current model for cellular infection by hantaviruses (14) is as follows. Viral binding of the host cell surface target integrin is followed by receptor-mediated endocytosis and endosome acidification. Lowered pH induces conformational changes in Gn and/or Gc, which facilitate membrane fusion and viral release into the cytosol. As there is currently little information available about whether one glycoprotein is dominant in mediating infection, and as neutralizing epitopes have been found on both Gn and Gc glycoproteins (1, 4, 12, 13, 20), we examined whether combining anti-Gn- and anti-Gc-targeted synthetic peptides would lead to an increased infection blockade compared to those for single treatments. As shown in Fig. Fig.2C,2C, the combination of anti-Gn and anti-Gc peptides CMQSAAAHC and CTVGPTRSC resulted in a significant increase in infection inhibition (P = 0.0207 for CMQSAAAHC, and P = 0.0308 for CTVGPTRSC) compared to that resulting from single treatments. Although the high specificity of the peptides for ANDV makes it unlikely that this combination treatment will lead to more cross-reactivity with other pathogenic hantaviruses, this can be determined only by additional testing. Regardless, these data suggest a unique role for each of these viral proteins in the infection process as well as the benefits of targeting multiple viral epitopes for preventing infection.To our knowledge, the peptides reported here are the first identified that directly target ANDV, and this work further illustrates the power of coupling phage display and selective elution techniques in the identification of novel peptide sequences capable of specific protein-protein interactions from a large, random pool of peptide sequences. These novel peptide inhibitors (R. S. Larson, P. R. Hall, H. Njus, and B. Hjelle, U.S. patent application 61/205,211) provide leads for the development of more-potent peptide or nonpeptide organics for therapeutic use against HCPS. 相似文献
TABLE 1.
Peptide-bearing phage eluted from ANDVPhage | % Inhibition (SD)a | P valueb |
---|---|---|
Phage bearing the following peptides eluted with anti-Gn antibody 6B9/F5 | ||
Group 1 (<30% inhibition) | ||
CDQRTTRLC | 8.45 (15.34) | 0.0002 |
CPHDPNHPC | 9.94 (7.72) | 0.333 |
CQSQTRNHC | 11.76 (13.25) | 0.0001 |
CLQDMRQFC | 13.26 (9.92) | 0.0014 |
CLPTDPIQC | 15.70 (14.05) | 0.0005 |
CPDHPFLRC | 16.65 (15.22) | 0.8523 |
CSTRAENQC | 17.56 (16.50) | 0.0004 |
CPSHLDAFC | 18.98 (20.06) | 0.0017 |
CKTGHMRIC | 20.84 (7.47) | 0.0563 |
CVRTPTHHC | 20.89 (27.07) | 0.1483 |
CSGVINTTC | 21.57 (19.61) | 0.0643 |
CPLASTRTC | 21.65 (5.98) | 0.004 |
CSQFPPRLC | 22.19 (8.26) | 0.0004 |
CLLNKQNAC | 22.34 (7.78) | 0.001 |
CKFPLNAAC | 22.89 (6.15) | 0.0001 |
CSLTPHRSC | 23.63 (16.74) | 0.0563 |
CKPWPMYSC | 23.71 (6.68) | 0.0643 |
CLQHDALNC | 24.01 (7.60) | 1 |
CNANKPKMC | 24.67 (11.67) | 0.0004 |
CPKHVLKVC | 25.30 (28.36) | 0.0003 |
CTPDKKSFC | 26.91 (11.15) | 0.399 |
CHGKAALAC | 27.22 (32.53) | 0.005 |
CNLMGNPHC | 28.08 (21.35) | 0.0011 |
CLKNWFQPC | 28.64 (18.49) | 0.0016 |
CKEYGRQMC | 28.76 (29.33) | 0.0362 |
CQPSDPHLC | 29.44 (31.22) | 0.0183 |
CSHLPPNRC | 29.70 (17.37) | 0.0061 |
Group 2 (30-59% inhibition) | ||
CSPLLRTVC | 33.05 (20.26) | 0.0023 |
CHKGHTWNC | 34.17 (12.50) | 0.0795 |
CINASHAHC | 35.62 (13.03) | 0.3193 |
CWPPSSRTC | 36.75 (26.95) | 0.0006 |
CPSSPFNHC | 37.78 (7.11) | 0.0001 |
CEHLSHAAC | 38.47 (7.60) | 0.0115 |
CQDRKTSQC | 38.74 (9.12) | 0.1802 |
CTDVYRPTC | 38.90 (25.03) | 0.006 |
CGEKSAQLC | 39.11 (27.52) | 0.0013 |
CSAAERLNC | 40.13 (6.33) | 0.0033 |
CFRTLEHLC | 42.07 (5.01) | 0.0608 |
CEKLHTASC | 43.60 (27.92) | 0.1684 |
CSLHSHKGC | 45.11 (49.81) | 0.0864 |
CNSHSPVHC | 45.40 (28.80) | 0.0115 |
CMQSAAAHC | 48.88 (44.40) | 0.5794 |
CPAASHPRC | 51.84 (17.09) | 0.1935 |
CKSLGSSQC | 53.90 (13.34) | 0.0145 |
Group 3 (60-79% inhibition) | ||
CPSNVNNIC | 61.11 (25.41) | 0.1245 |
Negative control | 0 (6.15) | |
6B9/F5 (5 μg/ml) | 26.77 (5.33) | |
ReoPro (80 μg/ml) | 79.86 (4.88) | |
Phage bearing the following peptides eluted with anti-Gc antibody 6C5/D12 | ||
Group 1 (<30% inhibition) | ||
CHPGSSSRC | 1.01 (7.03) | 0.0557 |
CSLSPLGRC | 10.56 (13.62) | 0.7895 |
CTARYTQHC | 12.86 (3.83) | 0.3193 |
CHGVYALHC | 12.91 (7.32) | 0.0003 |
CLQHNEREC | 16.79 (13.72) | 0.0958 |
CHPSTHRYC | 17.23 (14.53) | 0.0011 |
CPGNWWSTC | 19.34(9.91) | 0.1483 |
CGMLNWNRC | 19.48 (19.42) | 0.0777 |
CPHTQFWQC | 20.44 (13.65) | 0.0008 |
CTPTMHNHC | 20.92 (11.68) | 0.0001 |
CDQVAGYSC | 21.79 (23.60) | 0.0063 |
CIPMMTEFC | 24.33 (9.28) | 0.2999 |
CERPYSRLC | 24.38 (9.09) | 0.0041 |
CPSLHTREC | 25.06 (22.78) | 0.1202 |
CSPLQIPYC | 26.30 (34.29) | 0.4673 |
CTTMTRMTC (×2) | 29.27 (8.65) | 0.0001 |
Group 2 (30-59% inhibition) | ||
CNKPFSLPC | 30.09 (5.59) | 0.4384 |
CHNLESGTC | 31.63 (26.67) | 0.751 |
CNSVPPYQC | 31.96 (6.51) | 0.0903 |
CSDSWLPRC | 32.95 (28.54) | 0.259 |
CSAPFTKSC | 33.40 (10.64) | 0.0052 |
CEGLPNIDC | 35.63 (19.90) | 0.0853 |
CTSTHTKTC | 36.28 (13.42) | 0.132 |
CLSIHSSVC | 36.40 (16.44) | 0.8981 |
CPWSTQYAC | 36.81 (32.81) | 0.5725 |
CTGSNLPIC | 36.83 (31.64) | 0.0307 |
CSLAPANTC | 39.73 (4.03) | 0.1664 |
CGLKTNPAC | 39.75 (16.98) | 0.2084 |
CRDTTPWWC | 40.08 (18.52) | 0.0004 |
CHTNASPHC | 40.26 (4.77) | 0.5904 |
CTSMAYHHC | 41.89 (8.61) | 0.259 |
CSLSSPRIC | 42.13 (29.75) | 0.2463 |
CVSLEHQNC | 45.54 (6.55) | 0.5065 |
CRVTQTHTC | 46.55 (8.45) | 0.3676 |
CPTTKSNVC | 49.28 (14.00) | 0.3898 |
CSPGPHRVC | 49.50 (42.60) | 0.0115 |
CKSTSNVYC | 51.20 (4.60) | 0.0611 |
CTVGPTRSC | 57.30 (11.31) | 0.0176 |
Group 3 (60-79% inhibition) | ||
CPMSQNPTC | 65.60 (13.49) | 0.014 |
CPKLHPGGC | 71.88 (27.11) | 0.0059 |
Negative control | 0.26 (4.53) | |
6C5/D12 (5 μg/ml) | 22.62 (8.40) | |
ReoPro (80 μg/ml) | 80.02 (76.64) |
TABLE 2.
Synthetic cyclic peptides inhibit ANDV infectionTarget | Sample | % Inhibition bya:
| |
---|---|---|---|
Peptide-bearing phage | Synthetic peptide | ||
Gn | CMQSAAAHC | 48.88 (44.40) | 59.66 (11.17) |
Gc | CTVGPTRSC | 57.30 (11.31) | 46.47 (7.61) |
Gn | CPSNVNNIC | 61.11 (25.41) | 44.14 (10.74) |
Gn | CEKLHTASC | 43.60 (27.92) | 34.87 (9.26) |
Gc | CPKLHPGGC | 71.88 (27.11) | 30.95 (7.73)b |
Gn | CSLHSHKGC | 45.11 (49.81) | 29.79 (9.34) |
Gc | CPMSQNPTC | 65.60 (13.49) | 18.19 (8.55)b |
Gn | CKSLGSSQC | 53.90 (13.34) | 18.10 (7.55)b |
Gn | CNSHSPVHC | 45.40 (28.80) | 15.52 (10.48) |
Gn | CPAASHPRC | 51.84 (17.09) | 0 (10.72)b |
Integrin β3 | ReoPro | 80.10 (7.72) | |
Gn | 6B9/F5 antibody | 42.72 (6.75) | |
Gc | 6C5/D12 antibody | 31.04 (7.81) |