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Idris, F.

Publications and source records attributed to Idris, F..

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Establishment of murine in vitro blood-brain barrier models using immortalized cell lines: co-cultures of brain endothelial cells, astrocytes, and neurons

Blood-brain barrier (BBB) is a selective barrier formed by the endothelial cells that line cerebral microvessels. It serves as a physical barrier due to the presence of complex tight junctions between adjacent endothelial cells which limits the paracellular movement of most molecules across the BBB. Many in vitro models of the BBB have been established to mimic these in vivo properties with limited success. In this study, we described the properties of a cell-based murine in vitro BBB model in five configurations constructed using immortalized cell lines in a 12-well format Transwell system: murine brain endothelial cells (bEnd.3) grown in a monoculture, or as co-culture in contact with astrocytes, or without contact with astrocytes or neurons, and triple co-culture combining the three cell lines. We found that only contact and triple co-culture model closely mimic the in vivo BBB tightness as evaluated by apparent permeability (Papp) of sucrose and albumin producing the lowest Papp values of 0.56 {+/-} 0.16 x 10-6 cms-1 and 3.30 {+/-} 0.51 x 10-6 cms-1, respectively, obtained in triple co-culture model. Co-culturing of bEnd.3 with astrocytes increased the expression of occludin as shown by western blot analysis, and immunohistochemistry showed an increase in peripheral localization of occludin and claudin-5. In addition, we found conditioned media were able to increase in vitro BBB model tightness through the modulation of tight junction proteins localization. We conclude that the presence of astrocytes and neurons in close proximity to brain endothelial cells is essential to produce a tight in vitro BBB model.

cell biology

Effectiveness of physical inactivation methods of dengue virus: heat- versus UV-inactivation

IntroductionComplete inactivation of virus is crucial before samples are manipulated outside of biological containment areas or general cleaning. There are several control methods that could decrease the risk from viral contamination on surfaces, which include chemical disinfectants, heating sterilisation, and ultraviolet germicidal irradiation depending on the nature and properties of the materials to be sterilised. To date, there are limited studies reporting the effectiveness of physical inactivation methods of dengue virus. Therefore, this study was designed to evaluate the effectiveness of two physical inactivation methods, which are heat- and ultraviolet-inactivation, against dengue virus.\n\nMaterial and methodsAll dengue virus serotypes were subjected to heat treatment at various temperatures and exposed to UV light (wavelength of 250-270 nm) at a distance of approximately 75 cm in a Class II Biosafety cabinet (ESCO) at room temperature. The effectiveness of inactivation methods was tested using viability testing on Vero cells and immunofluorescence assay.\n\nResultsDengue virus can be effectively inactivated by heat treatment at 56{degrees}C for at least 30 minutes or at higher temperature. On the other hand, the virus required 45 minutes or longer of ultraviolet light exposure at 75 cm distance from the source to be completely inactivated.\n\nConclusionThe results indicated that DENV can be effectively inactivated using high temperature, i.e. 56{degrees}C or above, and UV light irradiation. This result would serve as guidelines in proper decontamination and control of dengue virus in laboratory settings, provided proper conditions are met.

microbiology