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1.
Proc Natl Acad Sci U S A ; 117(24): 13699-13707, 2020 06 16.
Artigo em Inglês | MEDLINE | ID: mdl-32467158

RESUMO

Adenovirus minor coat protein VI contains a membrane-disrupting peptide that is inactive when VI is bound to hexon trimers. Protein VI must be released during entry to ensure endosome escape. Hexon:VI stoichiometry has been uncertain, and only fragments of VI have been identified in the virion structure. Recent findings suggest an unexpected relationship between VI and the major core protein, VII. According to the high-resolution structure of the mature virion, VI and VII may compete for the same binding site in hexon; and noninfectious human adenovirus type 5 particles assembled in the absence of VII (Ad5-VII-) are deficient in proteolytic maturation of protein VI and endosome escape. Here we show that Ad5-VII- particles are trapped in the endosome because they fail to increase VI exposure during entry. This failure was not due to increased particle stability, because capsid disruption happened at lower thermal or mechanical stress in Ad5-VII- compared to wild-type (Ad5-wt) particles. Cryoelectron microscopy difference maps indicated that VII can occupy the same binding pocket as VI in all hexon monomers, strongly arguing for binding competition. In the Ad5-VII- map, density corresponding to the immature amino-terminal region of VI indicates that in the absence of VII the lytic peptide is trapped inside the hexon cavity, and clarifies the hexon:VI stoichiometry conundrum. We propose a model where dynamic competition between proteins VI and VII for hexon binding facilitates the complete maturation of VI, and is responsible for releasing the lytic protein from the hexon cavity during entry and stepwise uncoating.


Assuntos
Adenovírus Humanos/metabolismo , Proteínas do Nucleocapsídeo/metabolismo , Montagem de Vírus , Internalização do Vírus , Adenovírus Humanos/genética , Adenovírus Humanos/ultraestrutura , Microscopia Crioeletrônica , Humanos , Proteínas do Nucleocapsídeo/química , Proteínas do Nucleocapsídeo/genética , Ligação Proteica , Domínios Proteicos
2.
Nucleic Acids Res ; 47(17): 9231-9242, 2019 09 26.
Artigo em Inglês | MEDLINE | ID: mdl-31396624

RESUMO

Some viruses package dsDNA together with large amounts of positively charged proteins, thought to help condense the genome inside the capsid with no evidence. Further, this role is not clear because these viruses have typically lower packing fractions than viruses encapsidating naked dsDNA. In addition, it has recently been shown that the major adenovirus condensing protein (polypeptide VII) is dispensable for genome encapsidation. Here, we study the morphology and mechanics of adenovirus particles with (Ad5-wt) and without (Ad5-VII-) protein VII. Ad5-VII- particles are stiffer than Ad5-wt, but DNA-counterions revert this difference, indicating that VII screens repulsive DNA-DNA interactions. Consequently, its absence results in increased internal pressure. The core is slightly more ordered in the absence of VII and diffuses faster out of Ad5-VII- than Ad5-wt fractured particles. In Ad5-wt unpacked cores, dsDNA associates in bundles interspersed with VII-DNA clusters. These results indicate that protein VII condenses the adenovirus genome by combining direct clustering and promotion of bridging by other core proteins. This condensation modulates the virion internal pressure and DNA release from disrupted particles, which could be crucial to keep the genome protected inside the semi-disrupted capsid while traveling to the nuclear pore.


Assuntos
Adenoviridae/genética , Proteínas do Capsídeo/genética , DNA Viral/genética , Proteínas do Core Viral/genética , Genoma Viral/genética , Humanos , Proteínas Virais/genética , Vírion/genética , Montagem de Vírus
3.
J Biol Phys ; 44(2): 225-235, 2018 06.
Artigo em Inglês | MEDLINE | ID: mdl-29654426

RESUMO

We use the nano-dissection capabilities of atomic force microscopy to induce structural alterations on individual virus capsids in liquid milieu. We fracture the protein shells either with single nanoindentations or by increasing the tip-sample interaction force in amplitude modulation dynamic mode. The normal behavior is that these cracks persist in time. However, in very rare occasions they self-recuperate to retrieve apparently unaltered virus particles. In this work, we show the topographical evolution of three of these exceptional events occurring in T7 bacteriophage capsids. Our data show that single nanoindentation produces a local recoverable fracture that corresponds to the deepening of a capsomer. In contrast, imaging in dynamic mode induced cracks that separate the virus morphological subunits. In both cases, the breakage patterns follow intratrimeric loci.


Assuntos
Bacteriófago T7/metabolismo , Microscopia de Força Atômica , Bacteriófago T7/fisiologia , Fenômenos Biomecânicos , Capsídeo/química , Capsídeo/metabolismo , Fatores de Tempo , Vírion/química , Vírion/metabolismo
4.
Biochem Soc Trans ; 45(2): 499-511, 2017 04 15.
Artigo em Inglês | MEDLINE | ID: mdl-28408490

RESUMO

Microscopes are used to characterize small objects with the help of probes that interact with the specimen, such as photons and electrons in optical and electron microscopies, respectively. In atomic force microscopy (AFM), the probe is a nanometric tip located at the end of a microcantilever which palpates the specimen under study just as a blind person manages a walking stick. In this way, AFM allows obtaining nanometric resolution images of individual protein shells, such as viruses, in a liquid milieu. Beyond imaging, AFM also enables not only the manipulation of single protein cages, but also the characterization of every physicochemical property capable of inducing any measurable mechanical perturbation to the microcantilever that holds the tip. In the present revision, we start revising some recipes for adsorbing protein shells on surfaces. Then, we describe several AFM approaches to study individual protein cages, ranging from imaging to spectroscopic methodologies devoted to extracting physical information, such as mechanical and electrostatic properties. We also explain how a convenient combination of AFM and fluorescence methodologies entails monitoring genome release from individual viral shells during mechanical unpacking.


Assuntos
Proteínas Virais/metabolismo , Vírus/ultraestrutura , Adsorção , Fenômenos Biomecânicos , Genoma Viral , Microscopia de Força Atômica/métodos , Vírus/genética
5.
Phys Rev Lett ; 119(3): 038102, 2017 Jul 21.
Artigo em Inglês | MEDLINE | ID: mdl-28777631

RESUMO

A virus binding to a surface causes stress of the virus cage near the contact area. Here, we investigate the potential role of substrate-induced structural perturbation in the mechanical response of virus particles to adsorption. This is particularly relevant to the broad category of viruses stabilized by weak noncovalent interactions. We utilize atomic force microscopy to measure height distributions of the brome mosaic virus upon adsorption from solution on atomically flat substrates and present a continuum model that captures our observations and provides estimates of elastic properties and of the interfacial energy of the virus, without recourse to indentation.


Assuntos
Bromovirus , Microscopia de Força Atômica , Vírion , Adsorção
6.
Proc Natl Acad Sci U S A ; 109(30): 12028-33, 2012 Jul 24.
Artigo em Inglês | MEDLINE | ID: mdl-22797893

RESUMO

In this study we test the hypothesis that mechanically elastic regions in a virus particle (or large biomolecular complex) must coincide with conformationally dynamic regions, because both properties are intrinsically correlated. Hypothesis-derived predictions were subjected to verification by using 19 variants of the minute virus of mice capsid. The structural modifications in these variants reduced, preserved, or restored the conformational dynamism of regions surrounding capsid pores that are involved in molecular translocation events required for virus infectivity. The mechanical elasticity of the modified capsids was analyzed by atomic force microscopy, and the results corroborated every prediction tested: Any mutation (or chemical cross-linking) that impaired a conformational rearrangement of the pore regions increased their mechanical stiffness. On the contrary, any mutation that preserved the dynamics of the pore regions also preserved their elasticity. Moreover, any pseudo-reversion that restored the dynamics of the pore regions (lost through previous mutation) also restored their elasticity. Finally, no correlation was observed between dynamics of the pore regions and mechanical elasticity of other capsid regions. This study (i) corroborates the hypothesis that local mechanical elasticity and conformational dynamics in a viral particle are intrinsically correlated; (ii) proposes that determination by atomic force microscopy of local mechanical elasticity, combined with mutational analysis, may be used to identify and study conformationally dynamic regions in virus particles and large biomolecular complexes; (iii) supports a connection between mechanical properties and biological function in a virus; (iv) shows that viral capsids can be greatly stiffened by protein engineering for nanotechnological applications.


Assuntos
Proteínas do Capsídeo/química , Elasticidade , Vírus Miúdo do Camundongo , Modelos Moleculares , Conformação Proteica , Vírion/química , Proteínas do Capsídeo/ultraestrutura , Microscopia de Força Atômica , Microscopia de Varredura por Sonda , Mutagênese Sítio-Dirigida , Nanotecnologia/métodos , Plasmídeos/genética , Engenharia de Proteínas/métodos , Espectrometria de Fluorescência , Termodinâmica , Vírion/ultraestrutura
7.
Colloids Surf B Biointerfaces ; 222: 113136, 2023 Feb.
Artigo em Inglês | MEDLINE | ID: mdl-36641873

RESUMO

Studies of virus adsorption on surfaces with optimized properties have attracted a lot of interest, mainly due to the influence of the surface in the retention, orientation and stability of the viral capsids. Besides, viruses in whole or in parts can be used as cages or vectors in different areas, such as biomedicine and materials science. A key requirement for virus nanocage application is their physical properties, i.e. their mechanical response and the distribution of surface charge, which determine virus-substrate interactions and stability. In the present work we show two examples of viruses exhibiting strong surface interactions on homogeneous hydrophobic surfaces. The surfaces were prepared by titanate assisted organosilanization, a sol-gel spin coating process, followed by a mild annealing step. We show by surface and interface spectroscopies that the process allows trapping triethoxy-octylsilane (OCTS) molecules, exhibiting a hydrophobic alkane rich surface finishing. Furthermore, the surfaces remain flat and behave as more efficient sorptive surfaces for virus particles than mica or graphite (HOPG). Also, we determine by atomic force microscopy (AFM) the mechanical properties of two types of viruses (human adenovirus and reovirus) and compare the results obtained on the OCTS functionalized surfaces with those obtained on mica and HOPG. Finally, the TIPT+OCTS surfaces were validated as platforms for the morphological and mechanical characterization of virus particles by using adenovirus as initial model and using HOPG and mica as standard control surfaces. Then, the same characteristics were determined on reovirus using TIPT+OCTS and HOPG, as an original contribution to the catalogue of physical properties of viral particles.


Assuntos
Alcanos , Silicatos de Alumínio , Humanos , Análise Espectral , Adsorção , Microscopia de Força Atômica/métodos , Propriedades de Superfície
8.
Sci Adv ; 9(14): eade9910, 2023 04 07.
Artigo em Inglês | MEDLINE | ID: mdl-37027464

RESUMO

Out of the three core proteins in human adenovirus, protein V is believed to connect the inner capsid surface to the outer genome layer. Here, we explored mechanical properties and in vitro disassembly of particles lacking protein V (Ad5-ΔV). Ad5-ΔV particles were softer and less brittle than the wild-type ones (Ad5-wt), but they were more prone to release pentons under mechanical fatigue. In Ad5-ΔV, core components did not readily diffuse out of partially disrupted capsids, and the core appeared more condensed than in Ad5-wt. These observations suggest that instead of condensing the genome, protein V antagonizes the condensing action of the other core proteins. Protein V provides mechanical reinforcement and facilitates genome release by keeping DNA connected to capsid fragments that detach during disruption. This scenario is in line with the location of protein V in the virion and its role in Ad5 cell entry.


Assuntos
Adenovírus Humanos , Capsídeo , Humanos , Capsídeo/metabolismo , Proteínas do Core Viral/genética , Proteínas do Core Viral/metabolismo , Adenoviridae/genética , Proteínas do Capsídeo/genética , Proteínas do Capsídeo/metabolismo , Adenovírus Humanos/metabolismo
9.
Small ; 8(15): 2366-70, 2012 Aug 06.
Artigo em Inglês | MEDLINE | ID: mdl-22648860

RESUMO

Using AFM nanoindentation experiments, DNA-full phi29 phage capsids are shown to be stiffer than when empty. The presence of counterions softens full viruses in a reversible manner, indicating that pressure originates from the confined DNA. A finite element analysis of the experiments provides an estimate of the pressure of ∼40 atm inside the capsid, which is similar to theoretical predictions.


Assuntos
Bacteriófagos/metabolismo , DNA Viral , Microscopia de Força Atômica
10.
Langmuir ; 28(3): 1909-13, 2012 Jan 24.
Artigo em Inglês | MEDLINE | ID: mdl-22149025

RESUMO

In the present work, we investigate wetting phenomena on freshly prepared nanostructured porous silicon (nPS) with tunable properties. Surface roughness and porosity of nPS can be tailored by controlling fabrication current density in the range 40-120 mA/cm(2). The length scale of the characteristic surface structures that compose nPS allows the application of thermodynamic wettability approaches. The high interaction energy between water and surface is determined by measuring water contact angle (WCA) hysteresis, which reveals Wenzel wetting regime. Moreover, the morphological analysis of the surfaces by atomic force microscopy allows predicting WCA from a semiempiric model adapted to this material.

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