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Jang, I. K.

Publications and source records attributed to Jang, I. K..

3 recordsLinked to original sources

Control of tongue movements by the Purkinje cells of the cerebellum

We use our tongue much like our hands: to interact with objects and transport them. For example, we use our hands to sense properties of objects and transport them in the nearby space, and we use our tongue to sense properties of food morsels and transport them through the oral cavity. But what does the cerebellum contribute to control of tongue movements? Here, we trained head-fixed marmosets to make skillful tongue movements to harvest food from small tubes that were placed at sharp angles to their mouth. We identified the lingual regions of the cerebellar vermis and then measured the contribution of each Purkinje cell (P-cell) to control of the tongue by relying on the brief but complete suppression that they experienced following an input from the inferior olive. When a P-cell was suppressed during protraction, the tongues trajectory became hypermetric, and when the suppression took place during retraction, the tongues return to the mouth was slowed. Both effects were amplified when two P-cells were simultaneously suppressed. Therefore, suppression of P-cells in the lingual vermis disrupted the forces that would normally decelerate the tongue as it approached the target. Notably, the population simple spike activity peaked near deceleration onset when the movement required precision (aiming for a tube), but not when the movement was for the purpose of grooming. Thus, the P-cells appeared to signal when to stop protrusion as the tongue approached its target.

neuroscience↗

Characterisation of Plasmodium vivax lactate dehydrogenase dynamics in P. vivax infections

Plasmodium vivax lactate dehydrogenase (PvLDH) is an essential enzyme in the glycolytic pathway of Plasmodium vivax. It can also be used as a diagnostic biomarker. Quantitation of plasma PvLDH has been used as a measure of P. vivax biomass in clinical studies of uncomplicated and severe vivax malaria. With the increasing importance of PvLDH in studying P. vivax diagnosis and infection, improved characterisation of the dynamics of this biomarker is important. In this study, we developed mathematical models that capture parasite and matrix PvLDH dynamics in ex vivo culture and the human host. We estimated the biological parameters using ex vivo and in vivo longitudinal data of parasitemia and PvLDH concentration collected from P. vivax-infected humans using Bayesian hierarchical inference. We found that the ex vivo and in vivo estimates of PvLDH in a parasitized red blood cell differed significantly across the asexual life cycle, with in vivo estimates at least ten-fold higher than ex vivo estimates (for example, the median estimate of intraerythrocytic PvLDH mass at the end of the life cycle was 9.4x10-3 ng in vivo vs. 5.1x10-4 ng ex vivo). We also estimated the ex vivo PvLDH half-life to be 65.3 h (95% credible interval: 60.8--70.7 h), which is approximately three times longer than the median estimate of the in vivo PvLDH half-life, 21.9 h (16.7--29.9 h). Our findings provide an important foundation to further improve quantitative understanding of P. vivax biology and facilitate the development of PvLDH-based diagnostic tools.

biophysics↗

Effort cost of harvest affects decisions and movement vigor of marmosets during foraging

Our decisions are guided by how we perceive the value of an option, but this evaluation also affects how we move to acquire that option. Why should economic variables such as reward and effort alter the vigor of our movements? In theory, both the option that we choose and the vigor with which we move contribute to a measure of fitness in which the objective is to maximize rewards minus efforts, divided by time. To explore this idea, we engaged marmosets in a foraging task in which on each trial they decided whether to work by making saccades to visual targets, thus accumulating food, or to harvest by licking what they had earned. We varied the effort cost of harvest by moving the food tube with respect to the mouth. Theory predicted that the subjects should respond to the increased effort costs by choosing to work longer, stockpiling food before commencing harvest, but reduce their movement vigor to conserve energy. Indeed, in response to an increased effort cost of harvest, marmosets extended their work duration, but slowed their movements. These changes in decisions and movements coincided with changes in pupil size. As the effort cost of harvest declined, work duration decreased, the pupils dilated, and the vigor of licks and saccades increased. Thus, when acquisition of reward became effortful, the pupils constricted, the decisions exhibited delayed gratification, and the movements displayed reduced vigor. Significance statementOur results suggest that as the brainstem neuromodulatory circuits that control pupil size respond to effort costs, they alter computations in the brain regions that control decisions, encouraging work and delaying gratification, and the brain regions that control movements, reducing vigor and suppressing energy expenditure. This coordinated response suggests that decisions and actions are part of a single control policy that aims to maximize a variable relevant to fitness: the capture rate.

neuroscience↗