Publications by authors named "Jacob Pena"

Breast cancer metastases exhibit many different genetic alterations, including copy number amplifications (CNA). CNA are genetic alterations that are increasingly becoming relevant to breast oncology clinical practice. Here we identify CNA in metastatic breast tumor samples using publicly available datasets and characterize their expression and function using a metastatic mouse model of breast cancer.

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Two subtypes of striatal spiny projection neurons, iSPNs and dSPNs, whose axons form the "indirect" and "direct" pathways of the basal ganglia, respectively, both make synaptic connections in the external globus pallidus (GPe) but are usually found to have different effects on behavior. Activation of the terminal fields of iSPNs or dSPNs generated compound currents in almost all GPe neurons. To determine whether iSPNs and dSPNs have the same or different effects on pallidal neurons, we studied the unitary synaptic currents generated in GPe neurons by action potentials in single striatal neurons.

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Breast cancer metastases exhibit many different genetic alterations, including copy number amplifications. Using publicly available datasets, we identify copy number amplifications in metastatic breast tumor samples and using our organoid-based metastasis assays, and we validate FGFR1 is amplified in collectively migrating organoids. Because the heterogeneity of breast tumors is increasingly becoming relevant to clinical practice, we demonstrate our organoid method captures genetic heterogeneity of individual tumors.

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Article Synopsis
  • The study investigates the effects of local inhibitory networks formed by GABAergic neurons in the external globus pallidus (GPe) on their firing patterns, using male and female mice as subjects.
  • Experiments revealed that silencing specific GPe neuron types led to increased firing rates and regularity, particularly in parvalbumin-positive neurons, while other types showed minimal changes.
  • The findings suggest that the irregular firing of GPe neurons is largely driven by continuous inhibitory signals from neighboring neurons, highlighting the complexity of local synaptic interactions in this brain region.
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