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On Dec. 20th 2016, the HRB published their "Health Research In Action" booklet that detailed a small selection of recent success stories from their research funding portfolio which "...really show health research in action". The corneal-limbal stem cell research work carried out at NICB (by Finbarr O’Sullivan and Prof. Martin Clynes) and which led to the first corneal-limbal stem cell transplant in Ireland (carried out by Mr. William Power of the RVEEH) on June 7th, 2016 got an honorable mention (Page 17)
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First ESACT Frontiers Retreat, 22-26th October, 2016 (Lyon, France) Program & Abstract Book The European Society for Animal Cell Technology (ESACT) brings together scientists, engineers and other specialists working with animal cells in order to promote communication of experiences between European and International investigators and progress the development of cell systems and their derived products. ESACT was founded in 1976 to create a forum for the exchange of ideas on biological and engineering techniques to promote knowledge and the use of human and animal cells e.g. for the manufacturing of products. Members include scientists and engineers in academic, medical and industrial R&D and Production at applied science institutions and universities, in the medical services, in industry, and in the political and regulatory bodies. ESACT actively encourages interactions between academia, governmental and policy making agencies and the manufacturing and service industries.
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National Institute for Cellular Biotechnology
This is a booklet developed by NICB staff as part of a Symposium held at the Helix, DCU (with a reception afterwards at Clontarf Castle, Dublin) on 01-02-2008 to mark 20 years of Research at DCU, incorporating work done as part of the National Cell & Tissue Culture Centre (NCTCC), which subsequently became the National Institute for Cerllular Biotechnology (NICB)
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Increase the cell densities of your CHO processes and improve your product yield using our novel DECOY-7 miRNA technology. We used advanced profiling technologies to identify microRNA 7 (miR-7) as a key contributor to improved CHO bioreactor performance following a temperature shift from 37°C to 31°C. Subsequent functional studies using mimics and inhibitors confirmed the potential of miR-7 as a genetic engineering target within CHO cells, whereby depletion has a beneficial effect on some of the traits desirable in production CHO cells, particularly increasing cell density during the early growth phase and viability during later culture and doubling product yield of a model secreted glycoprotein. These features together have the potential to increase per-run profitability, decrease time required to deliver requisite titres and decrease downstream purification time. Cells grow to a higher density and last longer in culture, resulting in increased per-run titres, increased per-run profitability and decreased time required to deliver product titres. Cell viability is improved, resulting in less contaminating protein from dead cells, facilitating downstream purification.
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The NICB (National Institute for Cellular Biotechnology) is located on the Dublin City University (DCU) campus in Dublin, Ireland. It is a leading multidisciplinary centre of translational research in fundamental and applied cellular biotechnology, molecular cell Biology, ocular diseases and biological chemistry. It includes a multidisciplinary team of Cell and Molecular Biologists, Biotechnologists, Chemists and Informatics specialists. The NICB prioritises translational research involving collaborations with industry and with clinicians, and is committed to educating people from all backgrounds in the area of Biomedical Science. This slideshare summarises the main research areas of the NICB, including: Molecular basis for biopharmaceutical production by animal cells Cancer – drug resistance, invasion and biomarkers Tissue Engineering/Stem Cell Therapy – ocular diseases, diabetes Using animal cells as research tools and models for disease research
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The NICB (National Institute for Cellular Biotechnology) is located on the Dublin City University (DCU) campus in Dublin, Ireland. It is a leading multidisciplinary centre of translational research in fundamental and applied cellular biotechnology, molecular cell Biology, ocular diseases and biological chemistry. It includes a multidisciplinary team of Cell and Molecular Biologists, Biotechnologists, Chemists and Informatics specialists. The NICB prioritises translational research involving collaborations with industry and with clinicians, and is committed to educating people from all backgrounds in the area of Biomedical Science. This slideshare summarises the main research areas of the NICB, including: Molecular basis for biopharmaceutical production by animal cells Cancer – drug resistance, invasion and biomarkers Tissue Engineering/Stem Cell Therapy – ocular diseases, diabetes Using animal cells as research tools and models for disease research
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Context. WASP-76 b has been a recurrent subject of study since the detection of a signature in high-resolution transit spectroscopy data indicating an asymmetry between the two limbs of the planet. The existence of this asymmetric signature has been confirmed by multiple studies, but its physical origin is still under debate. In addition, it contrasts with the absence of asymmetry reported in the infrared (IR) phase curve. Aims. We provide a more comprehensive dataset of WASP-76 b with the goal of drawing a complete view of the physical processes at work in this atmosphere. In particular, we attempt to reconcile visible high-resolution transit spectroscopy data and IR broadband phase curves. Methods. We gathered 3 phase curves, 20 occultations, and 6 transits for WASP-76 b in the visible with the CHEOPS space telescope. We also report the analysis of three unpublished sectors observed by the TESS space telescope (also in the visible), which represents 34 phase curves. Results. WASP-76 b displays an occultation of 260±11 and 152±10 ppm in TESS and CHEOPS bandpasses respectively. Depending on the composition assumed for the atmosphere and the data reduction used for the IR data, we derived geometric albedo estimates that range from 0.05 ± 0.023 to 0.146 ± 0.013 and from <0.13 to 0.189 ± 0.017 in the CHEOPS and TESS bandpasses, respectively. As expected from the IR phase curves, a low-order model of the phase curves does not yield any detectable asymmetry in the visible either. However, an empirical model allowing for sharper phase curve variations offers a hint of a flux excess before the occultation, with an amplitude of ∼40 ppm, an orbital offset of ∼−30◦ , and a width of ∼20◦ . We also constrained the orbital eccentricity of WASP-76 b to a value lower than 0.0067, with a 99.7% confidence level. This result contradicts earlier proposed scenarios aimed at explaining the asymmetry observed in high-resolution transit spectroscopy. Conclusions. In light of these findings, we hypothesise that WASP-76 b could have night-side clouds that extend predominantly towards its eastern limb. At this limb, the clouds would be associated with spherical droplets or spherically shaped aerosols of an unknown species, which would be responsible for a glory effect in the visible phase curves.
Asymmetry in the atmosphere of the ultra-hot Jupiter WASP-76 b
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Sérgio Sacani
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fruit fly, this slide mainly made for pumpkin fruit fly, this is also known as drosophila melangastor, this type of fruit fly destroyed the mainly vegetables crops. if you want to known examples this types of fly which is destroy the pumpkin, tomato, brinjal, potato, bottle guard, ridge guard, bitter guard, cucumber, water melon, musk melon, bean, long bean and other many vegetables which has fruits. they distryed fruit fly. thank you...
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