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1.
J Virol ; 91(20)2017 10 15.
Artículo en Inglés | MEDLINE | ID: mdl-28747504

RESUMEN

The neurotropic herpesvirus varicella-zoster virus (VZV) establishes a lifelong latent infection in humans following primary infection. The low abundance of VZV nucleic acids in human neurons has hindered an understanding of the mechanisms that regulate viral gene transcription during latency. To overcome this critical barrier, we optimized a targeted capture protocol to enrich VZV DNA and cDNA prior to whole-genome/transcriptome sequence analysis. Since the VZV genome is remarkably stable, it was surprising to detect that VZV32, a VZV laboratory strain with no discernible growth defect in tissue culture, contained a 2,158-bp deletion in open reading frame (ORF) 12. Consequently, ORF 12 and 13 protein expression was abolished and Akt phosphorylation was inhibited. The discovery of the ORF 12 deletion, revealed through targeted genome sequencing analysis, points to the need to authenticate the VZV genome when the virus is propagated in tissue culture.IMPORTANCE Viruses isolated from clinical samples often undergo genetic modifications when cultured in the laboratory. Historically, VZV is among the most genetically stable herpesviruses, a notion supported by more than 60 complete genome sequences from multiple isolates and following multiple in vitro passages. However, application of enrichment protocols to targeted genome sequencing revealed the unexpected deletion of a significant portion of VZV ORF 12 following propagation in cultured human fibroblast cells. While the enrichment protocol did not introduce bias in either the virus genome or transcriptome, the findings indicate the need for authentication of VZV by sequencing when the virus is propagated in tissue culture.


Asunto(s)
ADN Viral/aislamiento & purificación , Genoma Viral , Herpesvirus Humano 3/genética , Sistemas de Lectura Abierta , Eliminación de Secuencia , Línea Celular , ADN Complementario , Herpesvirus Humano 3/crecimiento & desarrollo , Humanos , Análisis de Secuencia de ADN/métodos , Transcriptoma , Proteínas Virales , Virión , Latencia del Virus
2.
Nat Biomed Eng ; 4(9): 916-932, 2020 09.
Artículo en Inglés | MEDLINE | ID: mdl-32601395

RESUMEN

Sacrificial templates for patterning perfusable vascular networks in engineered tissues have been constrained in architectural complexity, owing to the limitations of extrusion-based 3D printing techniques. Here, we show that cell-laden hydrogels can be patterned with algorithmically generated dendritic vessel networks and other complex hierarchical networks by using sacrificial templates made from laser-sintered carbohydrate powders. We quantified and modulated gradients of cell proliferation and cell metabolism emerging in response to fluid convection through these networks and to diffusion of oxygen and metabolites out of them. We also show scalable strategies for the fabrication, perfusion culture and volumetric analysis of large tissue-like constructs with complex and heterogeneous internal vascular architectures. Perfusable dendritic networks in cell-laden hydrogels may help sustain thick and densely cellularized engineered tissues, and assist interrogations of the interplay between mass transport and tissue function.


Asunto(s)
Vasos Sanguíneos/citología , Carbohidratos/química , Ingeniería de Tejidos/métodos , Andamios del Tejido/química , Vasos Sanguíneos/fisiología , Proliferación Celular , Diseño de Equipo , Hepatocitos/citología , Humanos , Hidrogeles/química , Consumo de Oxígeno , Perfusión , Impresión Tridimensional , Ingeniería de Tejidos/instrumentación
3.
PLoS One ; 11(2): e0147399, 2016.
Artículo en Inglés | MEDLINE | ID: mdl-26841023

RESUMEN

Selective Laser Sintering (SLS) is an additive manufacturing process that uses a laser to fuse powdered starting materials into solid 3D structures. Despite the potential for fabrication of complex, high-resolution structures with SLS using diverse starting materials (including biomaterials), prohibitive costs of commercial SLS systems have hindered the wide adoption of this technology in the scientific community. Here, we developed a low-cost, open-source SLS system (OpenSLS) and demonstrated its capacity to fabricate structures in nylon with sub-millimeter features and overhanging regions. Subsequently, we demonstrated fabrication of polycaprolactone (PCL) into macroporous structures such as a diamond lattice. Widespread interest in using PCL for bone tissue engineering suggests that PCL lattices are relevant model scaffold geometries for engineering bone. SLS of materials with large powder grain size (~500 µm) leads to part surfaces with high roughness, so we further introduced a simple vapor-smoothing technique to reduce the surface roughness of sintered PCL structures which further improves their elastic modulus and yield stress. Vapor-smoothed PCL can also be used for sacrificial templating of perfusable fluidic networks within orthogonal materials such as poly(dimethylsiloxane) silicone. Finally, we demonstrated that human mesenchymal stem cells were able to adhere, survive, and differentiate down an osteogenic lineage on sintered and smoothed PCL surfaces, suggesting that OpenSLS has the potential to produce PCL scaffolds useful for cell studies. OpenSLS provides the scientific community with an accessible platform for the study of laser sintering and the fabrication of complex geometries in diverse materials.


Asunto(s)
Materiales Biocompatibles/síntesis química , Células Madre Mesenquimatosas/fisiología , Nylons/química , Poliésteres/química , Ingeniería de Tejidos/métodos , Andamios del Tejido , Huesos/cirugía , Adhesión Celular/fisiología , Diferenciación Celular/fisiología , Supervivencia Celular/fisiología , Células Cultivadas , Módulo de Elasticidad , Humanos , Rayos Láser , Ensayo de Materiales
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