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Salama, N.

Publications and source records attributed to Salama, N..

2 recordsLinked to original sources

Long-term persistence of viral RNA and inflammation in the CNS of macaques exposed to aerosolized Venezuelan equine encephalitis virus.

Venezuelan equine encephalitis virus (VEEV) is a positively-stranded RNA arbovirus of the genus Alphavirus that causes encephalitis in humans. Cynomolgus macaques are a relevant model of the human disease caused by VEEV and are useful in exploring pathogenic mechanisms and the host response to VEEV infection. Macaques were exposed to small-particle aerosols containing virus derived from an infectious clone of VEEV strain INH-9813, a subtype IC strain isolated from a human infection. VEEV-exposed macaques developed a biphasic fever after infection similar to that seen in humans. Maximum temperature deviation correlated with the inhaled dose, but fever duration did not. Neurological signs, suggestive of virus penetration into the CNS, were predominantly seen in the second febrile period. Electroencephalography data indicated a statistically significant decrease in all power bands and circadian index during the second febrile period that returned to normal after fever resolved. Intracranial pressure increased late in the second febrile period. On day 6 post-infection macaques had high levels of MCP-1 and IP-10 chemokines in the CNS, as well as a marked increase of T lymphocytes and activated microglia. More than four weeks after infection, viral genomic RNA was found in the brain, cerebrospinal fluid and cervical lymph nodes. Pro-inflammatory cytokines & chemokines, infiltrating leukocytes and pathological changes were seen in the CNS tissues of macaques euthanized at these times. These data are consistent with persistence of virus replication and/or genomic RNA and potentially, inflammatory sequelae in the central nervous system after resolution of acute VEEV disease.

immunology

Helicobacter pylori accelerates KRAS-dependent gastric dysplasia

More than 80% of gastric cancer is attributable to stomach infection with Helicobacter pylori (Hp), even though the bacterium is not always present at time of diagnosis. Infection is thought to lead to cancer by promoting the accumulation of oncogenic mutations downstream of inflammation; once oncogenic pathways become activated, infection may become dispensable for cancer development. Gastric preneoplastic progression involves sequential changes to the tissue, including loss of parietal cells, spasmolytic polypeptide-expressing metaplasia (SPEM), intestinal metaplasia (IM) and dysplasia. In mice, active KRAS expression recapitulates these tissue changes in the absence of Hp infection. This model provides an experimental system to investigate whether Hp infection has additional roles in preneoplastic progression, beyond initiating inflammation. Mice were assessed by evaluating tissue histology, gene expression changes, the immune cell repertoire, and expression of metaplasia and dysplasia markers. Compared to Hp-/KRAS+ mice, Hp+/KRAS+ mice had i) severe T cell infiltration and altered macrophage polarization; ii) altered expression of metaplasia markers, including increased expression of CD44v9 (SPEM) and decreased expression of TFF3 (IM); iii) more dysplastic (TROP2+) glands; and iv) greater proliferation of metaplastic and dysplastic glands. Hp was able to persistently colonize the stomach during the onset of these tissue changes, and eradication of Hp with antibiotics prevented metaplastic, dysplastic and proliferation marker changes. Collectively, these results suggest that gastric preneoplastic progression differs between Hp+ and Hp-cases, and that sustained Hp infection can promote the later stages of gastric preneoplastic progression, in addition to its established role in initiating chronic inflammation.

cancer biology