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Vivian, J. A.

Publications and source records attributed to Vivian, J. A..

2 recordsLinked to original sources

Behavioral and Pharmacological Validation of the Differential Reinforcement of Low-Rate Behavior Paradigm in Non-Human Primates

Depression remains a leading cause of disability worldwide, yet the predictive validity of many preclinical behavioral assays for antidepressant efficacy remains limited. The Differential Reinforcement of Low-Rate Behavior (DRL) task has classically been used in rodents to identify antidepressant-like effects, but its utility in non-human primates (NHPs) has not been established. Here, we adapted the DRL task for use in adult male cynomolgus macaques (Macaca fascicularis) and evaluated its pharmacological sensitivity and translational relevance across 19 compounds spanning multiple drug classes. Antidepressants, including SSRIs, SNRIs, NRIs, NDRIs, TCAs, MAOIs, and PDE4 inhibitors, generally shifted DRL performance in an antidepressant-like direction, increasing reinforcers earned and inter-response times while decreasing response output. In contrast, benzodiazepine and antipsychotic control compounds did not produce a consistent antidepressant-like profile, whereas stimulant effects were mixed, with nicotine and cocaine also producing overlapping antidepressant-like behavioral effects. Importantly, the primate DRL task identified antidepressant-like effects of PDE4 inhibitors while also capturing emesis, a dose-limiting side effect not observable in rodent models. These findings support the primate DRL task as a translationally relevant platform for screening antidepressant-like efficacy, while also highlighting important design considerations for interpreting pharmacological sensitivity in the NHP setting. By modeling behavioral processes implicated in depression, including response inhibition and temporal regulation, this assay offers a unique opportunity to bridge preclinical and clinical antidepressant development with improved sensitivity to both efficacy and tolerability.

animal behavior and cognition↗

Incomplete remyelination via endogenous or therapeutically enhanced oligodendrogenesis is sufficient to recover visual cortical function

Myelin loss induces deficits in action potential propagation that result in neural dysfunction and contribute to the pathophysiology of neurodegenerative diseases, injury conditions, and aging. Because remyelination is often incomplete, better understanding endogenous remyelination and developing remyelination therapies that seek to restore neural function are clinical imperatives. Here, we used in vivo two-photon microscopy and electrophysiology to study the dynamics of endogenous and therapeutic-induced cortical remyelination and functional recovery after cuprizone-mediated demyelination in mice. We focused on the visual pathway, which is uniquely positioned to provide insights into structure-function relationships during de/remyelination. We show that endogenous remyelination is driven by recent oligodendrocyte loss and is highly efficacious following mild demyelination, but fails to restore the oligodendrocyte population when high rates of oligodendrocyte loss occur too quickly. Testing a novel thyromimetic compared to clemastine fumarate, we find it better enhances oligodendrocyte gain during remyelination and hastens recovery of neuronal function. Surprisingly, its therapeutic benefit was temporally restricted, and it acted exclusively following moderate to severe demyelination to eliminate endogenous remyelination deficits. However, complete remyelination is unnecessary as partial oligodendrocyte restoration was sufficient to recover visual neuronal function. These findings advance our understanding of remyelination and its impact on functional recovery to inform future therapeutic strategies.

neuroscience↗