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Tafoya, C.

Publications and source records attributed to Tafoya, C..

2 recordsLinked to original sources

A humanized Aβ mouse model reveals E4-dependent cognitive impairments, microglial activation, and cerebrovascular dysfunction

Apolipoprotein E4 (E4) increases the risk of Alzheimers disease (AD) by up to 12-fold. However, understanding of the mechanisms underlying this increased risk has been limited by a lack of preclinical models that accurately reflect the effects of E4 in the presence of humanized non-mutant amyloid-{beta} precursor protein (hA{beta}PP). Therefore, we studied novel humanized APOE and hA{beta}PP mice to investigate the contributions of the E4 genotype to cognitive, inflammatory, and vascular dysfunction, specifically comparing male and female E3/hA{beta}PP and E4/hA{beta}PP mice. E4/hA{beta}PP mice exhibited impaired nest-building behavior and novel object recognition compared with E3/hA{beta}PP mice. Microglial content was higher in E4/hA{beta}PP mice, whereas astrocyte content was not different across groups. E4/hA{beta}PP mice had greater carotid and cerebral artery stiffness, and higher collagen I content in cerebral arteries than E3/hA{beta}PP mice. Under static pressure, cerebral artery endothelium-dependent and endothelium-independent vasodilation were similar across genotypes. However, high pulse pressure selectively impaired cerebral artery endothelial function in E4/hA{beta}PP mice, with the greatest impairment observed in females. The E4/hA{beta}PP mice also exhibited higher cortical expression of Nox2 and Sod1 and elevated cerebral artery Il1b expression. As such, E4/hA{beta}PP mice exhibit convergent cognitive, inflammatory, and vascular abnormalities that recapitulate several features of AD. Elevated pulse pressure revealed an E4-dependent vulnerability of the cerebral vasculature, suggesting that vascular stress may be an important contributor to disease risk. Together, our findings support the use of the APOExhA{beta}PP model to investigate the mechanisms by which E4 promotes vascular dysfunction, neuroinflammation, and cognitive impairment in AD.

physiology↗

Genome-wide screen overexpressing mycobacteriophage Amelie genes identifies multiple inhibitors of mycobacterial growth

The genome sequences of thousands of bacteriophages have been determined and functions for many of the encoded genes have been assigned based on homology to characterized sequences. However, functions have not been assigned to more than two-thirds of the identified phage genes as they have no recognizable sequence features. Recent genome-wide overexpression screens have begun to identify bacteriophage genes that encode proteins that reduce or inhibit bacterial growth. This study describes the construction of a plasmid-based overexpression library of 76 genes encoded by Cluster K1 mycobacteriophage Amelie, which is genetically similar to Cluster K phages Waterfoul and Hammy recently described in similar screens and closely related to phages that infect clinically important mycobacteria. 26 out of the 76 genes evaluated in our screen, encompassing 34% of the genome, reduced growth of the host bacterium Mycobacterium smegmatis to various degrees. More than one-third of these 26 toxic genes have no known function, and 10 of the 26 genes almost completely abolished host growth upon overexpression. Notably, while several of the toxic genes identified in Amelie shared homologs with other Cluster K phages recently screened, this study uncovered eight previously unknown gene families that exhibit cytotoxic properties, thereby broadening the repertoire of known phage-encoded growth inhibitors. This work, carried out under the HHMI-supported SEA-GENES project (Science Education Alliance Gene-function Exploration by a Network of Emerging Scientists), underscores the importance of comprehensive overexpression screens in elucidating genome-wide patterns of phage gene function and novel interactions between phages and their hosts.

microbiology↗