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Pham, D. Q.

Publications and source records attributed to Pham, D. Q..

3 recordsLinked to original sources

Initiating mammalian reproduction from a single male genome

Sex in mammals is unidirectionally determined by the configuration of sex chromosomes. In contrast, several species, including fishes, can switch sexes in response to environmental cues, illustrating the reproductive advantages of sexual plasticity. Thus, technologies that can bypass the unidirectional nature of mammalian sex determination could open new avenues in reproductive biology. Here, by establishing a method that enables robust Y-chromosome elimination in embryos, we provide a strategy to regulate sex in mice. We show that this approach efficiently induces male-to-female sex reversal by releasing the Y chromosome as micronuclei during early development. When integrated with optimized somatic cell nuclear transfer, it enabled the parallel production of both male and sex-reversed female mice from a single male genome source. Offspring were successfully obtained from crosses between these male and sex-reversed female clones, demonstrating that this "dual-sex cloning" strategy can initiate sexual reproduction solely from a male somatic genome. These findings highlight dual-sex cloning as a valuable platform for securing mammalian reproduction and biodiversity from limited genetic resources.

developmental biology↗

Persistent vulnerability to heroin relapse across the adult lifespan in rats

Relapse to opioid use during abstinence is often triggered by drug-associated cues but the persistence of this effect across the lifespan is unknown. Using a rat model, we found that relapse provoked by heroin-predictive discriminative stimuli persisted for over one year of abstinence, suggesting enduring, potentially lifelong opioid relapse vulnerability.

animal behavior and cognition↗

Distinct prelimbic cortex ensembles encode response execution and inhibition

Learning when to initiate or withhold actions is essential for survival and requires integration of past experiences with new information to adapt to changing environments. While stable prelimbic cortex (PL) ensembles have been identified during reward learning, it remains unclear how they adapt when contingencies shift. Does the same ensemble adjust its activity to support behavioral suppression upon reward omission, or is a distinct ensemble recruited for this new learning? We used single-cell calcium imaging to longitudinally track PL neurons in rats across operant food reward Training, Extinction and Reinstatement, trained rat-specific decoders to predict trial-wise behavior, and implemented an in-silico deletion approach to characterize ensemble contributions to behavior. We show that operant training and extinction recruit distinct PL ensembles that encode response execution and inhibition, and that both ensembles are re-engaged and maintain their roles during Reinstatement. These findings highlight ensemble-based encoding of multiple learned associations within a region, with selective ensemble recruitment supporting behavioral flexibility under changing contingencies.

neuroscience↗