bioRxiv ScienceSearch

Biology subjects

DuBreuil, D. M.

Publications and source records attributed to DuBreuil, D. M..

3 recordsLinked to original sources

A Cultured Sensorimotor Organoid Model Forms Human Neuromuscular Junctions

Human induced pluripotent stem cells (iPSCs) hold promise for modeling diseases in individual human genetic backgrounds and thus for developing precision medicine. Here, we generate sensorimotor organoids containing physiologically functional neuromuscular junctions (NMJs) within a cultured organoid system and apply the model to different subgroups of amyotrophic lateral sclerosis (ALS). Using a range of molecular, genomic, and physiological techniques, we identify and characterize motor neurons and skeletal muscle, along with sensory neurons, astrocytes, microglia, and vasculature. Organoid cultures derived from ALS subject iPSC lines and isogenic lines edited to harbor familial ALS mutations all show impairment at the level of the NMJ, as detected by both contraction and immunocytochemical measurements. The physiological resolution of the human NMJ synapse, combined with the generation of major cellular cohorts exerting autonomous and non-cell autonomous effects in motor and sensory diseases, may prove valuable for more comprehensive disease modeling.

neuroscience

A high-content platform for physiological profiling and unbiased classification of individual neurons

High-throughput physiological assays often lose single cell resolution, precluding subtype-specific analyses of neuronal activation mechanism and drug effects. Here, we demonstrate APPOINT, Automated Physiological Phenotyping Of Individual Neuronal Types. This physiological assay platform combines calcium imaging, robotic liquid handling, and automated analysis to generate physiological activation profiles of single neurons at a large scale. Using unbiased techniques, we quantify responses to multiple sequential stimuli, enabling subgroup identification by physiology and probing of distinct mechanisms of neuronal activation within subgroups. Using APPOINT, we quantify primary sensory neuron activation by metabotropic receptor agonists and identify potential contributors to pain signaling. Furthermore, we expand the role of neuroimmune interactions by showing that human serum can directly activate sensory neurons, elucidating a new potential pain mechanism. Finally, we apply APPOINT to develop a high-throughput, all-optical approach for quantification of activation threshold and pharmacologically separate the contributions of distinct ion channel subsets to optical activation.

neuroscience

Peripheral voltage-gated calcium channels in skin are essential for transient neurogenic thermal hyperalgesia in mice

Voltage-gated CaV2.2 calcium channels are expressed in nociceptors, at pre-synaptic terminals, soma, and axons. CaV2.2 channel inhibitors applied to the spinal cord relieve pain in humans and rodents, especially during pathological pain, but a biological function of nociceptor CaV2.2 channels in processing of nociception, outside pre-synaptic terminals, is not explored. Here, we demonstrate that functional CaV2.2 channels in skin are required for thermal hyperalgesia following intraplantar capsaicin exposure. We provide evidence that CaV2.2 channels at nociceptor free endings release inflammatory signals, ATP and IL-1{beta}. We assess the role of CaV2.2 splice isoforms to capsaicin-induced hyperalgesia measured by thermal and mechanical stimuli. Our data reveal a critical role for peripheral CaV2.2 channels in skin in neurogenic thermal hyperalgesia but not in mechanical hypersensitivity. Inhibition, or the complete lack, of peripheral CaV2.2 channels blunts the hyperalgesia response in vivo.

neuroscience