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Biology subjects

Gavriel, Y.

Publications and source records attributed to Gavriel, Y..

2 recordsLinked to original sources

Reduced taurine transporter expression in lymphoblastoid cell lines from Alzheimer's disease patients compared with age-matched controls: Therapeutic implications?

Taurine is an atypical amino acid that cannot form peptide bonds and thus does not take place in building proteins. Yet, taurine takes part in regulating many cell functions, including cell osmolarity and volume, mitochondrial function, membrane ion channels and neuronal activity, and cell survival. Taurine is synthesized by the liver, and available from consumption of meat and fish, but not plants. It has millimolar concentrations in the brain, skeletal muscle, blood, heart, retina, and other tissues. Taurine is transported from the liver (following synthesis) or the intestine (following consumption) to blood by the taurine transporter, encoded in humans by SLC6A6. A recent study reported that blood taurine declines dramatically in aged individuals. Several studies indicated that dietary taurine slows cognitive decline in Alzheimers disease (AD) model mice. We therefore measured SLC6A6 mRNA expression in human lymphoblastoid cell lines (LCLs) from AD patients and age-matched controls and observed 2.8-fold lower expression in AD LCLs (p=0.0005). Additionally, glutathione peroxidase 1 (GPX1), a key free-radical scavenging selenoenzyme, had reduced mRNA expression in LCLs from AD patients compared with controls. Our observations suggest that reduced taurine transporter expression may contribute to AD pathogenesis and that dietary taurine might be beneficial for slowing disease progression in early-stage AD. Clinical trials with dietary taurine supplementation of individuals with mild cognitive impairment (MCI) or early-stage AD are required to assess its tentative therapeutic potential.

genomics↗

Spatial and single-cell transcriptomics illuminate bat immunity and barrier tissue evolution

The Egyptian fruit bat displays tolerance to lethal viruses and unique dietary adaptations, but the molecular basis for this is poorly understood. To this end, we generated detailed maps of bat gut, lung and blood cells using spatial and single-cell transcriptomics. We compared bat with mouse and human cells to reveal divergence in genetic programs associated with environmental interactions and immune responses. Complement system genes are transcriptionally divergent, uniquely expressed in bat lung and gut epithelium, and undergo rapid coding-sequence evolution. Specifically in the tip of the gut villus, bat enterocytes express evolutionarily young genes while lacking expression of genes related to specific nutrient absorption. Profiling immune stimulation of PBMCs revealed a monocyte subset with conserved cross-species interferon expression, suggesting strong constraints to avoid an excessive immune response. Our study thus uncovers conserved and divergent immune pathways in bat tissues, providing a unique resource to study bat immunity and evolution.

genomics↗