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1.
Biomacromolecules ; 14(12): 4351-9, 2013 Dec 09.
Artigo em Inglês | MEDLINE | ID: mdl-24175988

RESUMO

Here we develop a novel approach allowing the noncovalent assembly of proteins on well-defined nanoscaffolds such as virus particles. The antibody-binding peptide Z33 was genetically fused to the monomeric yellow fluorescent protein and 4-coumarate:CoA-ligase 2. This Z33 "tag" allowed their patterning on the surface of zucchini yellow mosaic virus by means of specific antibodies directed against the coat protein of the virus. The approach was validated by affinity assays and correlative microscopy. The coverage efficiency was ≈ 87%. Fluorescence and enzymatic activity were fully retained after assembly. The principle of using the combination of a scaffold-specific antibody and Z33-fusion proteins can be extended to a wide variety of proteins/enzymes and antigenic scaffolds to support coupling for creating functional "biochips" with optical or catalytic properties.


Assuntos
Proteínas do Capsídeo/química , Nanoestruturas/química , Vírion/química , Proteínas de Arabidopsis/química , Proteínas de Bactérias/química , Coenzima A Ligases/química , Enzimas Imobilizadas/química , Imunoglobulina G/química , Cinética , Proteínas Luminescentes/química , Microscopia Eletrônica de Transmissão , Vírus do Mosaico/química , Tamanho da Partícula , Engenharia de Proteínas , Multimerização Proteica , Proteínas Recombinantes de Fusão/química , Vírion/ultraestrutura
2.
J Inorg Biochem ; 100(8): 1426-35, 2006 Aug.
Artigo em Inglês | MEDLINE | ID: mdl-16781777

RESUMO

Earlier crystallographic and spectroscopic studies had shown that horse spleen apoferritin was capable of removing the metal ion from hemin (Fe(III)-protoporphyrin IX) [G. Précigoux, J. Yariv, B. Gallois, A. Dautant, C. Courseille, B. Langlois d'Estaintot, Acta Cryst. D50 (1994) 739-743; R.R. Crichton, J.A. Soruco, F. Roland, M.A. Michaux, B. Gallois, G. Précigoux, J.-P. Mahy, D. Mansuy, Biochemistry 36 (1997) 15049-15054]. We have carried out a detailed re-analysis of this phenomenon using both horse spleen and recombinant horse L-chain apoferritins, by electron paramagnetic resonance spectroscopy (EPR) to unequivocally distinguish between heme and non-heme iron. On the basis of site-directed mutagenesis and chemical modification of carboxyl residues, our results show that the UV-visible difference spectroscopic method that was used to establish the mechanism of demetallation is not representative of hemin demetallation. EPR spectroscopy does establish, as in the initial crystallographic investigation, that hemin demetallation occurs, but it is much slower. The signal at g=4.3 corresponding to high spin non-heme-iron (III) increases while the signal at g=6 corresponding to heme-iron decreases. Demetallation by the mutant protein, while slower than the wild-type, still occurs, suggesting that the mechanism of demetallation does not only involve the cluster of four glutamate residues (Glu 53, 56, 57, 60), proposed in earlier studies. However, the mutant protein had lost its capacity to incorporate iron, as had the native protein in which the four Glu residues had been chemically modified. Interestingly, a signal at g=1.94 is also observed. This signal most likely corresponds to a mixed-valence Fe(II)-Fe(III) cluster suggesting that a redox reaction may also be involved in the mechanism of demetallation.


Assuntos
Apoferritinas/química , Espectroscopia de Ressonância de Spin Eletrônica/métodos , Hemina/química , Ferro/química , Ferroproteínas não Heme/química , Animais , Apoferritinas/genética , Apoferritinas/metabolismo , Hemina/metabolismo , Cavalos , Ferro/metabolismo , Modelos Moleculares , Mutação , Ferroproteínas não Heme/metabolismo , Proteínas Recombinantes/química , Proteínas Recombinantes/genética , Proteínas Recombinantes/metabolismo , Espectrofotometria Ultravioleta/métodos , Baço/química
3.
ACS Nano ; 9(5): 4911-24, 2015 May 26.
Artigo em Inglês | MEDLINE | ID: mdl-25905663

RESUMO

We show herein that electrochemical atomic force microscopy (AFM-SECM), operated in molecule touching (Mt) mode and combined with redox immunomarking, enables the in situ mapping of the distribution of proteins on individual virus particles and makes localization of individual viral proteins possible. Acquisition of a topography image allows isolated virus particles to be identified and structurally characterized, while simultaneous acquisition of a current image allows the sought after protein, marked by redox antibodies, to be selectively located. We concomitantly show that Mt/AFM-SECM, due to its single-particle resolution, can also uniquely reveal the way redox functionalization endowed to viral particles is distributed both statistically among the viruses and spatially over individual virus particles. This possibility makes Mt/AFM-SECM a unique tool for viral nanotechnology.


Assuntos
Proteínas do Capsídeo/metabolismo , Microscopia de Força Atômica/métodos , Potyvirus/metabolismo , Vírion/metabolismo , Eletroquímica , Ouro/química , Microscopia Eletroquímica de Varredura , Nanotecnologia , Oxirredução , Potyvirus/química , Propriedades de Superfície , Vírion/química
4.
Trends Biotechnol ; 30(7): 369-76, 2012 Jul.
Artigo em Inglês | MEDLINE | ID: mdl-22560649

RESUMO

The cooperative organization of enzymes by cells is a key feature for the efficiency of living systems. In the field of nanotechnologies, effort currently aims at mimicking this natural organization. Nanoscale resolution and high-registration alignment are necessary to control enzyme distribution in nano-containers or on the surface of solid supports. Virus capsid self-assembly is driven by precise supramolecular combinations of protein monomers, which have made them attractive building blocks to engineer enzyme nano-carriers (ENCs). We discuss some examples of what in our opinion constitute the latest advances in the use of plant viruses, bacteriophages and virus-like particles (VLPs) as nano-scaffolds for enzyme selection, enzyme confinement and patterning, phage therapy, raw material processing, and single molecule enzyme kinetics studies.


Assuntos
Bacteriófagos/química , Biotecnologia/métodos , Enzimas/química , Nanoestruturas , Nanotecnologia/métodos , Vírus de Plantas/química , Animais , Bacteriófagos/genética , Bacteriófagos/metabolismo , Capsídeo/química , Clonagem Molecular , Enzimas/genética , Enzimas/metabolismo , Engenharia Genética/métodos , Humanos , Vírus de Plantas/genética , Vírus de Plantas/metabolismo , Vírion/química , Vírion/genética , Vírion/metabolismo
5.
Nat Nanotechnol ; 2(4): 226-9, 2007 Apr.
Artigo em Inglês | MEDLINE | ID: mdl-18654267

RESUMO

Virus particles are probably the most precisely defined nanometre-sized objects that can be formed by protein self-assembly. Although their natural function is the storage and transport of genetic material, they have more recently been applied as scaffolds for mineralization and as containers for the encapsulation of inorganic compounds. The reproductive power of viruses has been used to develop versatile analytical methods, such as phage display, for the selection and identification of (bio)active compounds. To date, the combined use of self-assembly and reproduction has not been used for the construction of catalytic systems. Here we describe a self-assembled system based on a plant virus that has its coat protein genetically modified to provide it with a lipase enzyme. Using single-object and bulk catalytic studies, we prove that the virus-anchored lipase molecules are catalytically active. This anchored biocatalyst, unlike man-made supported catalysts, has the capability to reproduce itself in vivo, generating many independent catalytically active copies.


Assuntos
Cristalização/métodos , Nanoestruturas/química , Nanoestruturas/ultraestrutura , Nanotecnologia/métodos , Vírion/química , Vírion/ultraestrutura , Catálise , Substâncias Macromoleculares/química , Teste de Materiais , Conformação Molecular , Tamanho da Partícula , Propriedades de Superfície
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