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X-ray crystallographic analysis of the structural basis for the interactions of pokeweed antiviral protein with its active site inhibitor and ribosomal RNA substrate analogs.美洲商陆抗病毒蛋白与其活性位点抑制剂及核糖体RNA底物类似物相互作用的结构基础的X射线晶体学分析。
Protein Sci. 1999 Sep;8(9):1765-72. doi: 10.1110/ps.8.9.1765.
2
X-ray crystallographic analysis of the structural basis for the interaction of pokeweed antiviral protein with guanine residues of ribosomal RNA.美洲商陆抗病毒蛋白与核糖体RNA鸟嘌呤残基相互作用结构基础的X射线晶体学分析。
Protein Sci. 1999 Nov;8(11):2399-405. doi: 10.1110/ps.8.11.2399.
3
Deguanylation of human immunodeficiency virus (HIV-1) RNA by recombinant pokeweed antiviral protein.重组商陆抗病毒蛋白对人类免疫缺陷病毒(HIV-1)RNA的去鸟苷酸化作用
Biochem Biophys Res Commun. 1999 Sep 24;263(2):419-24. doi: 10.1006/bbrc.1999.1335.
4
Pokeweed antiviral protein region Gly209-Lys225 is critical for RNA N-glycosidase activity of the prokaryotic ribosome.商陆抗病毒蛋白区域Gly209-Lys225对原核核糖体的RNA N-糖苷酶活性至关重要。
Phytochemistry. 2008 May;69(8):1653-60. doi: 10.1016/j.phytochem.2008.02.012. Epub 2008 Apr 2.
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The 2.5 A structure of pokeweed antiviral protein.商陆抗病毒蛋白的2.5埃结构。
J Mol Biol. 1993 Oct 20;233(4):705-15. doi: 10.1006/jmbi.1993.1547.
6
Evidence for retro-translocation of pokeweed antiviral protein from endoplasmic reticulum into cytosol and separation of its activity on ribosomes from its activity on capped RNA.商陆抗病毒蛋白从内质网逆向转运至胞质溶胶的证据,以及其核糖体活性与对加帽RNA活性的分离。
Biochemistry. 2005 Feb 22;44(7):2478-90. doi: 10.1021/bi048188c.
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Crystal structures of the complexes of trichosanthin with four substrate analogs and catalytic mechanism of RNA N-glycosidase.天花粉蛋白与四种底物类似物复合物的晶体结构及RNA N-糖苷酶的催化机制
Proteins. 2000 Apr 1;39(1):37-46.
8
X-ray crystallographic analysis of pokeweed antiviral protein-II after reductive methylation of lysine residues.赖氨酸残基经还原甲基化后商陆抗病毒蛋白-II的X射线晶体学分析
Biochem Biophys Res Commun. 2000 Aug 28;275(2):549-52. doi: 10.1006/bbrc.2000.3329.
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The action of pokeweed antiviral protein and ricin A-chain on mutants in the alpha-sarcin loop of Escherichia coli 23S ribosomal RNA.商陆抗病毒蛋白和蓖麻毒素A链对大肠杆菌23S核糖体RNAα-肌动蛋白环突变体的作用。
J Mol Biol. 1995 Dec 15;254(5):848-55. doi: 10.1006/jmbi.1995.0660.
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Solution structure of an active mutant of maize ribosome-inactivating protein (MOD) and its interaction with the ribosomal stalk protein P2.活性突变体玉米核糖体失活蛋白(MOD)的结构及其与核糖体柄蛋白 P2 的相互作用
J Mol Biol. 2010 Feb 5;395(5):897-907. doi: 10.1016/j.jmb.2009.10.051. Epub 2009 Nov 6.

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7
CNS activity of Pokeweed anti-viral protein (PAP) in mice infected with lymphocytic choriomeningitis virus (LCMV).美洲商陆抗病毒蛋白(PAP)在感染淋巴细胞性脉络丛脑膜炎病毒(LCMV)的小鼠中的中枢神经系统活性。
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Generation of pokeweed antiviral protein mutations in Saccharomyces cerevisiae: evidence that ribosome depurination is not sufficient for cytotoxicity.在酿酒酵母中产生商陆抗病毒蛋白突变:核糖体脱嘌呤不足以导致细胞毒性的证据。
Nucleic Acids Res. 2004 Aug 10;32(14):4244-56. doi: 10.1093/nar/gkh757. Print 2004.
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Structure-based design and engineering of a nontoxic recombinant pokeweed antiviral protein with potent anti-human immunodeficiency virus activity.基于结构设计并工程化改造具有高效抗人类免疫缺陷病毒活性的无毒重组商陆抗病毒蛋白。
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Pokeweed antiviral protein binds to the cap structure of eukaryotic mRNA and depurinates the mRNA downstream of the cap.商陆抗病毒蛋白与真核生物mRNA的帽结构结合,并使帽下游的mRNA脱嘌呤。
RNA. 2002 Sep;8(9):1148-59. doi: 10.1017/s1355838202026638.

本文引用的文献

1
Effect of N-terminal deletions on the activity of pokeweed antiviral protein expressed in E. coli.N端缺失对大肠杆菌中表达的商陆抗病毒蛋白活性的影响。
Biochimie. 1998 Dec;80(12):1069-76. doi: 10.1016/s0300-9084(99)80014-5.
2
Ricin A-chain: kinetics, mechanism, and RNA stem-loop inhibitors.蓖麻毒素A链:动力学、作用机制及RNA茎环抑制剂
Biochemistry. 1998 Aug 18;37(33):11605-13. doi: 10.1021/bi980990p.
3
The pokeweed antiviral protein specifically inhibits Ty1-directed +1 ribosomal frameshifting and retrotransposition in Saccharomyces cerevisiae.商陆抗病毒蛋白可特异性抑制酿酒酵母中Ty1介导的+1核糖体移码和逆转座作用。
J Virol. 1998 Feb;72(2):1036-42. doi: 10.1128/JVI.72.2.1036-1042.1998.
4
C-terminal deletion mutant of pokeweed antiviral protein inhibits viral infection but does not depurinate host ribosomes.商陆抗病毒蛋白的C端缺失突变体可抑制病毒感染,但不会使宿主核糖体脱嘌呤。
Proc Natl Acad Sci U S A. 1997 Apr 15;94(8):3866-71. doi: 10.1073/pnas.94.8.3866.
5
Structure-based identification of a ricin inhibitor.基于结构的蓖麻毒素抑制剂鉴定。
J Mol Biol. 1997 Mar 14;266(5):1043-9. doi: 10.1006/jmbi.1996.0865.
6
Polynucleotide:adenosine glycosidase activity of ribosome-inactivating proteins: effect on DNA, RNA and poly(A).多核苷酸:核糖体失活蛋白的腺苷糖苷酶活性:对DNA、RNA和聚腺苷酸的影响
Nucleic Acids Res. 1997 Feb 1;25(3):518-22. doi: 10.1093/nar/25.3.518.
7
Major structural differences between pokeweed antiviral protein and ricin A-chain do not account for their differing ribosome specificity.商陆抗病毒蛋白和蓖麻毒蛋白A链之间的主要结构差异并不能解释它们不同的核糖体特异性。
Eur J Biochem. 1996 Jan 15;235(1-2):159-66. doi: 10.1111/j.1432-1033.1996.00159.x.
8
The 2.5 A structure of pokeweed antiviral protein.商陆抗病毒蛋白的2.5埃结构。
J Mol Biol. 1993 Oct 20;233(4):705-15. doi: 10.1006/jmbi.1993.1547.
9
Ribosome-inactivating proteins from plants.来自植物的核糖体失活蛋白。
Biochim Biophys Acta. 1993 Dec 21;1154(3-4):237-82. doi: 10.1016/0304-4157(93)90002-6.
10
Pokeweed antiviral protein (PAP) mutations which permit E.coli growth do not eliminate catalytic activity towards prokaryotic ribosomes.允许大肠杆菌生长的商陆抗病毒蛋白(PAP)突变不会消除对原核核糖体的催化活性。
Nucleic Acids Res. 1994 May 11;22(9):1536-40. doi: 10.1093/nar/22.9.1536.

美洲商陆抗病毒蛋白与其活性位点抑制剂及核糖体RNA底物类似物相互作用的结构基础的X射线晶体学分析。

X-ray crystallographic analysis of the structural basis for the interactions of pokeweed antiviral protein with its active site inhibitor and ribosomal RNA substrate analogs.

作者信息

Kurinov I V, Myers D E, Irvin J D, Uckun F M

机构信息

Hughes Institute, Roseville, Minnesota 55113, USA.

出版信息

Protein Sci. 1999 Sep;8(9):1765-72. doi: 10.1110/ps.8.9.1765.

DOI:10.1110/ps.8.9.1765
PMID:10493577
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC2144398/
Abstract

The pokeweed antiviral protein (PAP) belongs to a family of ribosome-inactivating proteins (RIP), which depurinate ribosomal RNA through their site-specific N-glycosidase activity. We report low temperature, three-dimensional structures of PAP co-crystallized with adenyl-guanosine (ApG) and adenyl-cytosine-cytosine (ApCpC). Crystal structures of 2.0-2.1 A resolution revealed that both ApG or ApCpC nucleotides are cleaved by PAP, leaving only the adenine base clearly visible in the active site pocket of PAP. ApCpC does not resemble any known natural substrate for any ribosome-inactivating proteins and its cleavage by PAP provides unprecedented evidence for a broad spectrum N-glycosidase activity of PAP toward adenine-containing single stranded RNA. We also report the analysis of a 2.1 A crystal structure of PAP complexed with the RIP inhibitor pteoric acid. The pterin ring is strongly bound in the active site, forming four hydrogen bonds with active site residues and one hydrogen bond with the coordinated water molecule. The second 180 degrees rotation conformation of pterin ring can form only three hydrogen bonds in the active site and is less energetically favorable. The benzoate moiety is parallel to the protein surface of PAP and forms only one hydrogen bond with the guanido group of Arg135.

摘要

商陆抗病毒蛋白(PAP)属于核糖体失活蛋白(RIP)家族,该家族蛋白通过其位点特异性N-糖苷酶活性使核糖体RNA脱嘌呤。我们报道了PAP与腺苷-鸟苷(ApG)和腺苷-胞嘧啶-胞嘧啶(ApCpC)共结晶的低温三维结构。分辨率为2.0 - 2.1 Å的晶体结构显示,ApG和ApCpC核苷酸均被PAP切割,在PAP的活性位点口袋中仅能清晰看到腺嘌呤碱基。ApCpC与任何已知的核糖体失活蛋白天然底物均不相似,PAP对其进行切割为PAP对含腺嘌呤的单链RNA具有广谱N-糖苷酶活性提供了前所未有的证据。我们还报道了对PAP与RIP抑制剂蝶酸复合物的2.1 Å晶体结构的分析。蝶呤环紧密结合在活性位点,与活性位点残基形成四个氢键,并与配位水分子形成一个氢键。蝶呤环的第二种180度旋转构象在活性位点仅能形成三个氢键,能量上不太有利。苯甲酸部分与PAP的蛋白质表面平行,仅与Arg135的胍基形成一个氢键。