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Cowbrough, B.

Publications and source records attributed to Cowbrough, B..

2 recordsLinked to original sources

Acute Viral Infection Accelerates Neurodegeneration in a Mouse Model of ALS

While several viral infections have been associated with amyotrophic lateral sclerosis (ALS), the mechanism(s) through which they promote disease has remained almost entirely elusive. This study investigated the impact of common, acute viral infections prior to disease onset on ALS progression in the SOD1G93A mouse model. A single sublethal infection prior to onset of ALS clinical signs was associated with markedly accelerated ALS disease progression characterized by rapid loss of hindlimb function. Prior infection resulted in gliosis in the lumbar spine and upregulation of transcriptional pathways involved in inflammatory responses, metabolic dysregulation, and muscular dysfunction. Therapeutic suppression of gliosis with an anti-inflammatory small molecule, or administration of a direct-acting antiviral, was associated with significantly improved ALS clinical signs, akin to what was observed in uninfected animals. This study provides causal and mechanistic evidence that the immune response elicited by acute viral infections may be an important etiological factor that alters ALS disease trajectory, and provides insight into novel therapeutic and preventative strategies for ALS. One Sentence SummaryAcute viral infection with influenza A virus and SARS-CoV-2 accelerates the progression of ALS in SOD1G93A mice.

immunology↗

Maternal adaptations in mouse lactation are vulnerable to diet-induced excess adiposity

Lifetime maternal risk of obesity is increased by excess gestational weight gain, which alters maternal metabolic adaptations in pregnancy, but the effects of excess weight retention/adiposity in the early postpartum period have not been extensively studied. The pathophysiology of excess adiposity and its accompanying immunometabolic dysregulation are associated with impaired intestinal barrier function in both non-pregnant and pregnant contexts. Using a mouse model, we investigated effects of diet-induced excess adiposity on maternal physiological adaptations during lactation. We report that in lactation, excess adiposity altered maternal intestinal morphology, influenced local immune cell composition and phenotype, increased intestinal permeability, and altered whole-body glucose metabolism as well as peripheral inflammation and immune cell composition. Many of these effects persisted two months post-lactation in mice with excess adiposity. Our findings have important implications for the development of interventions for periconceptual/perinatal excess adiposity and emphasize that further studies are needed to better understand effects of excess adiposity on maternal postpartum health.

developmental biology↗