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Bartholomew, S. K.

Publications and source records attributed to Bartholomew, S. K..

2 recordsLinked to original sources

Dyrk1a inhibition with the Novel Compound DYR533: A Cross-Disease Therapeutic Strategy Targeting Amyloidosis, Tau Pathogenesis, and Neuroinflammation

Alzheimers disease (AD) and related dementias are rapidly increasing in prevalence, yet disease-modifying therapies remain largely focused on amyloid-{beta} (A{beta}) with limited efficacy against tau pathology and neuroinflammation--key drivers of neurodegeneration and clinical decline. Dual-specificity tyrosine-phosphorylation-regulated kinase 1a (Dyrk1a) phosphorylates tau and amyloid precursor protein and regulates inflammatory signaling, positioning it as a convergence point across pathogenic pathways. We show that brain Dyrk1a protein levels are consistently elevated across ADRDs, replicating findings in AD, confirming prior observations in Picks disease, and demonstrating dysregulation in corticobasal degeneration and progressive supranuclear palsy. We developed DYR533, a selective, orally bioavailable, brain-penetrant Type 1 Dyrk1a kinase inhibitor that also inhibits autophosphorylation and reduces kinase abundance. Across three mouse models (3xTg-AD, PS19, Ts65Dn), DYR533 reduced pathological tau hyperphosphorylation, attenuated neuroinflammation, ameliorated amyloidosis, and improved anxiety-like behavior and spatial memory, collectively supporting Dyrk1a inhibition and DYR533 as a therapeutic strategy for ADRD.

neuroscience↗

Adult choline supplementation in a Down syndrome model reduces co-morbidities and improves cognition

Down syndrome (DS) is the most common cause of early-onset Alzheimers disease (AD). Dietary choline has been proposed as a modifiable factor to improve cognitive and pathological outcomes of AD, especially as many do not reach adequate daily intake levels. Perinatal choline supplementation (Ch+) in the Ts65Dn mouse model of DS protects offspring against AD-relevant pathology and improves cognition, and dietary Ch+ in adult AD models also ameliorates pathology and improves cognition. However, dietary Ch+ in adult Ts65Dn mice has not yet been explored. To test whether Ch+ in adulthood improves DS co-morbidities, we fed trisomic Ts65Dn mice and disomic littermate controls with either choline normal (ChN; 1.1 g/kg) or Ch+ (5 g/kg) diets from 4.5-14 months of age. We found that Ch+ improved cognitive flexibility in a reverse place preference task and reduced weight gain and peripheral inflammation in female mice, whereas Ch+ improved glucose metabolism in male mice. In conclusion, we found that adulthood Ch+ benefits behavioral and biological factors important for general well-being in DS and related to AD risk.

neuroscience↗