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Pouso, P.

Publications and source records attributed to Pouso, P..

2 recordsLinked to original sources

ANALYSIS OF INTRINSIC CONNECTIVITY IN A MULTIFUNCTIONAL CENTRAL PACEMAKER NUCLEUS IN VERTEBRATES.

Gymnotiform fish emit electric organ discharges (EODs) for both active electroreception and electrocommunication. EOD waveform and rhythm can be modified to cope with diverse environmental challenges. In pulse-type species, EODs are generated by a hierarchical electromotor network controlled by a medullary pacemaker nucleus (PN), which comprises intrinsic pacemaker cells (PM-cells) and projecting relay cells (R-cells). Active electroreception requires the emission of stereotyped EODs, an electromotor output that implies a functional PN configuration in which PM-cells rhythmically time EODs and R-cells transmit coordinated commands to downstream components of the electromotor system. To test whether electrical coupling (EC) between PN neurons supports this functional organization, intrinsic connectivity of the PN in Gymnotus omarorum was examined in brainstem slices using electrophysiology, immunohistochemistry, and dye-coupling analysis. Homotypic connections (PM-PM and R-R) exhibited low-magnitude, bidirectional EC with symmetrical, low-pass filter properties, supporting synchronous yet adaptable pacemaker activity and coordinated descending commands. Heterotypic connections (PM-R) also displayed bidirectional, symmetrical coupling but revealed direction-dependent filtering: an apparent high-pass behavior from PM- to R-cells and a low-pass behavior in the opposite direction. Together with precise PM-to-R discharge timing, direction-dependent filtering suggests a role of PM-cell axons in shaping signal flow. Dye coupling and immunohistochemical evidence further indicate that PN neurons are interconnected via gap junctions, likely formed by connexin 35. Thus, EC-based connectivity endows the PN with crucial functional attributes of its exploration mode of operation while preserving the capacity to organize communication signals under the influence of descending inputs, revealing remarkable functional versatility. Summary statementGap junction-mediated intrinsic connections within the electromotor nucleus of electric fish may sustain the emission of signals essential for sensory sampling as well as those supporting communication.

neuroscience↗

Environmental Drivers of Calling Activity in a Southern Subtropical Anuran Assemblage: Insights from Passive Acoustic Monitoring

In anurans, acoustic communication is a crucial reproductive behavior shaped by individual traits, social interactions, and environmental cues. External factors such as temperature, rainfall, and photoperiod can elicit physiological responses that drive behavioral rhythms at individual and population scales. While temperature and rainfall effects on anuran calling activity are well-established, photoperiodic influences remain comparatively understudied, particularly within southern subtropical assemblages. We assessed hourly calling activity of Boana pulchella in Uruguay over a 12-month period using Passive Acoustic Monitoring (PAM) and validated semi-automated data processing methods to examine environmental drivers in a subtropical permanent pond. Calling behavior increased during the warmer months, showing a clear seasonal pattern. Peak activity timing remained consistent across seasons, but the temporal window of vocalizations expanded during winter (long nights) and contracted during summer (long days), reflecting photoperiodic variation. Linear regression analyses showed significant effects of photoperiod, temperature and their interaction on calling activity, while rainfall and atmospheric pressure showed no effect. These findings underscore the regulatory role of photoperiod in shaping reproductive acoustic behavior and highlight the need to further explore its physiological and adaptive significance, especially within underrepresented subtropical assemblages.

ecology↗