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1.
J Vis Exp ; (125)2017 07 19.
Artigo em Inglês | MEDLINE | ID: mdl-28745647

RESUMO

Transmission electron microscopy (TEM) is used to observe the ultrastructure of viruses and other microbial pathogens with nanometer resolution. Most biological materials do not contain dense elements capable of scattering electrons to create an image; therefore, a negative stain, which places dense heavy metal salts around the sample, is required. In order to visualize viruses in suspension under the TEM they must be applied to small grids coated with a transparent surface only nanometers thick. Due to their small size and fragility, these grids are difficult to handle and easily moved by air currents. The thin surface is easily damaged, leaving the sample difficult or impossible to image. Infectious viruses must be handled in a biosafety cabinet (BSC) and some require a biocontainment laboratory environment. Staining viruses in biosafety levels (BSL)-3 and -4 is especially challenging because these environments are more turbulent and technicians are required to wear personal protective equipment (PPE), which decreases dexterity. In this study, we evaluated a new device to assist in negative staining viruses in biocontainment. The device is a capsule that works as a specialized pipette tip. Once grids are loaded into the capsule, the user simply aspirates reagents into the capsule to deliver the virus and stains to the encapsulated grid, thus eliminating user handling of grids. Although this technique was designed specifically for use in BSL-3 or -4 biocontainment, it can ease sample preparation in any lab environment by enabling easy negative staining of virus. This same method can also be applied to prepare negative stained TEM specimens of nanoparticles, macromolecules and similar specimens.


Assuntos
Cápsulas/uso terapêutico , Microscopia Eletrônica de Transmissão/métodos , Coloração Negativa/métodos , Manejo de Espécimes
2.
J Virol Methods ; 248: 136-144, 2017 10.
Artigo em Inglês | MEDLINE | ID: mdl-28668710

RESUMO

A method for accurate quantitation of virus particles has long been sought, but a perfect method still eludes the scientific community. Electron Microscopy (EM) quantitation is a valuable technique because it provides direct morphology information and counts of all viral particles, whether or not they are infectious. In the past, EM negative stain quantitation methods have been cited as inaccurate, non-reproducible, and with detection limits that were too high to be useful. To improve accuracy and reproducibility, we have developed a method termed Scanning Transmission Electron Microscopy - Virus Quantitation (STEM-VQ), which simplifies sample preparation and uses a high throughput STEM detector in a Scanning Electron Microscope (SEM) coupled with commercially available software. In this paper, we demonstrate STEM-VQ with an alphavirus stock preparation to present the method's accuracy and reproducibility, including a comparison of STEM-VQ to viral plaque assay and the ViroCyt Virus Counter.


Assuntos
Microscopia Eletrônica de Transmissão e Varredura/instrumentação , Microscopia Eletrônica de Varredura/métodos , Carga Viral/métodos , Vírus/isolamento & purificação , Vírus/ultraestrutura , Microscopia Eletrônica de Varredura/instrumentação , Reprodutibilidade dos Testes , Software
3.
J Virol Methods ; 238: 70-76, 2016 12.
Artigo em Inglês | MEDLINE | ID: mdl-27751950

RESUMO

Transmission electron microscopy can be used to observe the ultrastructure of viruses and other microbial pathogens with nanometer resolution. In a transmission electron microscope (TEM), the image is created by passing an electron beam through a specimen with contrast generated by electron scattering from dense elements in the specimen. Viruses do not normally contain dense elements, so a negative stain that places dense heavy metal salts around the sample is added to create a dark border. To prepare a virus sample for a negative stain transmission electron microscopy, a virus suspension is applied to a TEM grid specimen support, which is a 3mm diameter fragile specimen screen coated with a few nanometers of plastic film. Then, deionized (dI) water rinses and a negative stain solution are applied to the grid. All infectious viruses must be handled in a biosafety cabinet (BSC) and many require a biocontainment laboratory environment. Staining viruses in biosafety levels (BSL) 3 and 4 is especially challenging because the support grids are small, fragile, and easily moved by air currents. In this study we evaluated a new device for negative staining viruses called mPrep/g capsule. It is a capsule that holds up to two TEM grids during all processing steps and for storage after staining is complete. This study reports that the mPrep/g capsule method is valid and effective to negative stain virus specimens, especially in high containment laboratory environments.


Assuntos
Contenção de Riscos Biológicos , Microscopia Eletrônica de Transmissão/métodos , Coloração Negativa/métodos , Manejo de Espécimes/métodos , Vírus/ultraestrutura , Vírus Chikungunya/ultraestrutura , Contenção de Riscos Biológicos/métodos , Ebolavirus/ultraestrutura , Microscopia Eletrônica de Transmissão/instrumentação , Microscopia Eletrônica de Transmissão/normas , Vírus/isolamento & purificação
4.
Biomaterials ; 105: 195-205, 2016 10.
Artigo em Inglês | MEDLINE | ID: mdl-27522254

RESUMO

Extracellular vesicles (EV), including exosomes and microvesicles, are nano-sized intercellular communication vehicles that participate in a multitude of physiological processes. Due to their biological properties, they are also promising candidates for the systemic delivery of therapeutic compounds, such as cytokines, chemotherapeutic drugs, siRNAs and viral vectors. However, low EV production yield and rapid clearance of administered EV by liver macrophages limit their potential use as therapeutic vehicles. We have used a hollow-fiber bioreactor for the efficient production of bioactive EV bearing the heterodimeric cytokine complex Interleukin-15:Interleukin-15 receptor alpha. Bioreactor culture yielded ∼40-fold more EV per mL conditioned medium, as compared to conventional cell culture. Biophysical analysis and comparative proteomics suggested a more diverse population of EV in the bioreactor preparations, while serum protein contaminants were detectable only in conventional culture EV preparations. We also identified the Scavenger Receptor Class A family (SR-A) as a novel monocyte/macrophage uptake receptor for EV. In vivo blockade of SR-A with dextran sulfate dramatically decreased EV liver clearance in mice, while enhancing tumor accumulation. These findings facilitate development of EV therapeutic methods.


Assuntos
Técnicas de Cultura Celular por Lotes/instrumentação , Reatores Biológicos , Fracionamento Celular/instrumentação , Vesículas Extracelulares/fisiologia , Vesículas Extracelulares/ultraestrutura , Macrófagos/metabolismo , Neoplasias Experimentais/ultraestrutura , Técnicas de Cultura Celular por Lotes/métodos , Fracionamento Celular/métodos , Células Cultivadas , Desenho de Equipamento , Células HEK293 , Humanos , Engenharia Tecidual/instrumentação
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