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Ghenwa El Chawich Joelle El Hayek Vincent Rouessac Didier Cot Bertrand Rebire Roland Habchi Hlne Garay Mikhael Bechelany Mirvat Zakhour Philippe Miele Chrystelle Salameh 《Materials》2022,15(2)
Additive manufacturing of Polymer-Derived Ceramics (PDCs) is regarded as a disruptive fabrication process that includes several technologies such as light curing and ink writing. However, 3D printing based on material extrusion is still not fully explored. Here, an indirect 3D printing approach combining Fused Deposition Modeling (FDM) and replica process is demonstrated as a simple and low-cost approach to deliver complex near-net-shaped cellular Si-based non-oxide ceramic architectures while preserving the structure. 3D-Printed honeycomb polylactic acid (PLA) lattices were dip-coated with two preceramic polymers (polyvinylsilazane and allylhydridopolycarbosilane) and then converted by pyrolysis respectively into SiCN and SiC ceramics. All the steps of the process (printing resolution and surface finishing, cross-linking, dip-coating, drying and pyrolysis) were optimized and controlled. Despite some internal and surface defects observed by topography, 3D-printed materials exhibited a retention of the highly porous honeycomb shape after pyrolysis. Weight loss, volume shrinkage, roughness and microstructural evolution with high annealing temperatures are discussed. Our results show that the sacrificial mold-assisted 3D printing is a suitable rapid approach for producing customizable lightweight highly stable Si-based 3D non-oxide ceramics. 相似文献
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Martina Lenzuni Giulia Suarato Dalila Miele Riccardo Carzino Marco Ruggeri Rosalia Bertorelli Giuseppina Sandri Athanassia Athanassiou 《RSC advances》2021,11(39):24345
Drug-eluting stents (DES) have been widely used for the treatment of cardiovascular diseases. Nevertheless, chronic inflammation and delayed re-endothelialization still represent challenges for their clinical use. In the present work, we developed novel bilayer coatings for stent applications that could overcome these limitations, exclusively using biodegradable plant-based drugs and polymers. In particular, stainless steel surfaces were coated with rutin-loaded zein (the active layer) and cross-linked alginate (the sacrificial layer) via facile dip and spray coating methods. Various mechanical tests and analysis tools, such as infrared spectroscopy, water contact angle measurements, and scanning electron microscopy were used to characterize the coated surfaces. Degradation and release studies of the films were extensively carried out and compared. The release rate of rutin from the bilayer coating reached 66.1 ± 3.2% within 24 hours of incubation (initial burst period), while the rest of the drug was released over 21 days in a sustained manner. Antioxidant assays confirmed that rutin retained its free radical scavenging ability after being eluted in phosphate buffer at 37 °C. In vitro results with human fibroblasts and endothelial cells suggested that the coating materials and their degradation products are highly biocompatible. In conclusion, our novel drug-eluting coatings, fabricated with natural biodegradable polymers, are promising materials for DES applications, allowing a sustained drug delivery and improving the biocompatibility of cardiovascular implanted devices.Zein-based biodegradable bilayer coatings were successfully prepared and characterized. Release profiles, antioxidant potential, and biocompatibility were investigated, aiming for more sustainable coatings for drug-eluting stents. 相似文献
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Andoni Echaniz-Laguna MD PhD Xavière Lornage PhD Pascal Laforêt MD PhD Mette C. Orngreen MD Evelina Edelweiss PhD Guy Brochier PhD Mai T. Bui MS Roberto Silva-Rojas MS Catherine Birck PhD Béatrice Lannes MD PhD Norma B. Romero MD PhD John Vissing MD PhD Jocelyn Laporte PhD Johann Böhm PhD 《Annals of neurology》2020,88(2):274-282
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Mechanisms that regulate localization of a DNA double-strand break to the nuclear periphery 下载免费PDF全文
Pranav Oza Sue L. Jaspersen Adriana Miele Job Dekker Craig L. Peterson 《Genes & development》2009,23(8):912-927
DNA double-strand breaks (DSBs) are among the most deleterious forms of DNA lesions in cells. Here we induced site-specific DSBs in yeast cells and monitored chromatin dynamics surrounding the DSB using Chromosome Conformation Capture (3C). We find that formation of a DSB within G1 cells is not sufficient to alter chromosome dynamics. However, DSBs formed within an asynchronous cell population result in large decreases in both intra- and interchromosomal interactions. Using live cell microscopy, we find that changes in chromosome dynamics correlate with relocalization of the DSB to the nuclear periphery. Sequestration to the periphery requires the nuclear envelope protein, Mps3p, and Mps3p-dependent tethering delays recombinational repair of a DSB and enhances gross chromosomal rearrangements. Furthermore, we show that components of the telomerase machinery are recruited to a DSB and that telomerase recruitment is required for its peripheral localization. Based on these findings, we propose that sequestration of unrepaired or slowly repaired DSBs to the nuclear periphery reflects a competition between alternative repair pathways. 相似文献
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The capacity to heal wounds without scars is generally lost during the development in vertebrates. To explore the involvement of cells of the adaptive immune system in a scar-like tissue based repair, we studied the thymus in 15-month-old Xenopus after skin incisional wounding. After injury, the organ size significantly increased and marked changes in structure and TNF-α immunoreactivity were detected in the medullary microenvironment when the granulation tissue was present in the repair area. Most of the lymphocytes present in this wound connective tissue were found to be immunoreactive to specific T cell markers. Thymic mucocyte-like cells and epithelial cysts increased in number, the myoid cells acquired a faster turnover and associated in large clusters, blood vessels were dilated and corpuscles similar to mammalian Hassall's bodies were formed in medulla. A higher number of stronger medullary TNF-α immunoreactive cells, i.e., dendritic, epithelial, granular basophilic and myoid cells were also induced after wounding. With progression of healing the thymus gradually returned to histochemical patterns of controls. Our results suggest that during the scar-based skin repair of Xenopus adults the activity of the thymus may be stimulated and associated with the T lymphocyte infiltration observed into injured granulation tissue. 相似文献
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Esposito C Giurin I Farina A Ascione G Miele E Staiano A Di Benedetto V Settimi A 《European journal of pediatrics》2012,171(7):1139-1140
The blue rubber bleb nevus syndrome or Bean syndrome is a rare disorder characterized by cutaneous and gastrointestinal vascular malformations. A 5-year-old girl with Bean syndrome hospitalized in a pediatric unit came under our observation with abdominal pain and vomiting. An X-ray of the abdomen showed an intestinal occlusion and an ultrasonography showed a suspected intestinal invagination. She underwent emergency laparoscopic surgery using three trocars. Laparoscopy revealed a huge ascitis and multiple vascular lesions located on the loops and on the parietal peritoneum, and we identified also an ileo-ileal invagination. We performed a laparoscopic disinvagination that showed one huge vascular lesion producing the invagination and causing a stenosis of intestinal lumen. We performed an intestinal resection after exteriorizing the loops through the umbilicus as well as a termino-terminal ileal anastomosis. Conclusions: Our case shows that an intestinal invagination due to Bean syndrome is extremely rare in pediatric patients but possible. In the emergency, laparoscopy seems to be a safe and effective procedure to confirm the diagnosis and to perform the disinvagination mini-invasivally. In addition, laparoscopy permits to have a clear picture of other intra-abdominal lesions linked to Bean syndrome. 相似文献
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Rafael J. Argüello Marisa Reverendo Evelina Gatti Philippe Pierre 《Immunological reviews》2016,272(1):28-38
Antigenic peptides presented in the context of major histocompatibility complex (MHC) molecules originate from the degradation of both self and non-self proteins. T cells can therefore recognize at the surface of surveyed cells, the self-peptidome produced by the cell itself (mostly inducing tolerance) or immunogenic peptides derived from exogenous origins. The initiation of adaptive immune responses by dendritic cells (DCs), through the antigenic priming of naïve T cells, is associated to microbial pattern recognition receptors engagement. Activation of DCs by microbial product or inflammatory cytokines initiates multiple processes that maximize DC capacity to present exogenous antigens and stimulate T cells by affecting major metabolic and membrane traffic pathways. These include the modulation of protein synthesis, the regulation of MHC and co-stimulatory molecules transport, as well as the regulation of autophagy, that, all together promote exogenous antigen presentation while limiting the display of self-antigens by MHC molecules. 相似文献