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Biology subjects

Young, K. E.

Publications and source records attributed to Young, K. E..

3 recordsLinked to original sources

Long-term voluntary exercise reveals limited translation of hippocampal molecular responses into neuroprotection in 5xFAD mice

Physical exercise promotes systemic and neural adaptations that support healthy brain aging and may mitigate Alzheimers disease (AD) progression. However, the capacity of the AD-afflicted brain to mount and translate exercise-responsive molecular adaptations into neuroprotection remains unclear. Here, we examined the effects of long-term voluntary wheel running (VWR) on molecular, neuropathological, and behavioral outcomes in independently studied male and female 5xFAD mice. VWR elicited expected metabolic and transcriptional remodeling of inguinal white adipose tissue, confirming engagement of exercise-responsive peripheral biology. In contrast, hippocampal transcriptional responses were modest, with few differentially expressed genes and coordinated changes emerging primarily at the pathway level. These responses involved synaptic, neuroimmune, mitochondrial, neurotrophic, and monoaminergic processes and differed qualitatively between the two groups. Several components of the canonical hippocampal exercise response also failed to converge into coordinated cellular adaptations: synaptic protein abundance changed without altering synapse density, while neurotrophic, neurogenic, and vascular responses showed little correspondence across molecular and cellular measures. VWR also produced little change in hippocampal amyloid pathology or behavioral function despite sustained exercise engagement. Together, these findings demonstrate that the 5xFAD brain retains modest molecular responsiveness to prolonged voluntary exercise but may be unable to mount a sufficiently robust or coordinated response to produce broad neuroprotective effects. These findings highlight disease context as an important determinant of the efficacy of exercise-based interventions in neurodegenerative disease.

neuroscience↗

A Proximity-Driven Functional Screening Platform for the Discovery of Noninhibitory USP7 Ligand Enabling Targeted Protein Stabilization

Targeted protein stabilization by deubiquitinase-targeting chimeras (DUBTACs) has emerged as a promising therapeutic strategy for preserving the function of essential proteins. DUBTACs are bifunctional molecules that recruit deubiquitinating enzymes (DUBs) to remove ubiquitin chains from substrate proteins, thereby preventing their proteasomal degradation. A key requirement for DUBTACs development is the identification of ligands that bind DUBs without impairing their catalytic activity. However, such noninhibitory ligands are exceedingly rare. Here, we report a novel proximity-driven on-bead functional screening platform for the discovery of noninhibitory DUB ligands. Using this approach, we discovered a previously unreported noninhibitory ligand for USP7. Furthermore, we generated DUBTACs by conjugating this USP7 ligand to a CFTR-binding ligand. Our lead compound, WJ045, effectively stabilized CFTR protein levels in cells, demonstrating the potential of this platform for discovering DUB recruiters and facilitating the development of targeted protein stabilization therapeutics.

biochemistry↗

Females Adapt to Dietary Protein Restriction on Enhanced Gut-Brain Axis during Aging

Growing evidence supports a critical role for the gut-brain axis in regulating metabolic health, inflammation, and cognitive function during aging. Age-associated gut dysbiosis has been linked to metabolic dysfunction and cognitive decline, with females exhibiting increased susceptibility to these age-related impairments. Diet is a major determinant of gut microbiome composition and function. Previous studies from our laboratory demonstrated that dietary protein restriction (DPR) induces fibroblast growth factor 21 (FGF21), improves metabolic health, and extends lifespan in male mice. However, the effects of DPR on the gut microbiome and associated health outcomes in aged female mice remain poorly understood. Female mice were assigned at 16 months of age to either a normal-protein (NP) or low-protein (LP) diet for 26 weeks. Metabolic assessments included food intake, fasting glucose concentrations, and glucose tolerance testing. Senescence-associated markers in mesenteric white adipose tissue (mWAT), fecal microbiome composition, and behavioral outcomes were evaluated to determine relationships among dietary protein intake, microbial communities, metabolic health, and cognitive function. Low-protein diet significantly improved metabolic health in aged female mice, as evidenced by improved glucose regulation. Microbiome analyses revealed increased abundance of Akkermansia at 17 months and Faecalibaculum in LP-fed animals at 22 months of age. More so, functional profiling and gene set enrichment analyses indicated enrichment of microbial pathways associated with membrane integrity and metal ion binding. Lastly, LP-fed female mice displayed improved memory performance at 22 months of age compared with age-matched NP-fed controls. Collectively, these findings demonstrate that DPR remodels the gut microbiome and improves metabolic and cognitive health in aged female mice. The observed microbial adaptations may contribute to the beneficial effects of DPR on aging-related physiology, highlighting the gut microbiome as a potential mediator of dietary interventions that promote healthy aging.

physiology↗