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O'Neil, M. A.

Publications and source records attributed to O'Neil, M. A..

2 recordsLinked to original sources

Whisker-based pre-neuronal and peripheral encoding of surface stickiness

Texture is a multidimensional perceptual feature of touch, with coarseness, stickiness, and compliance as its major axes of variability. Of these, coarseness is the best understood in the rodent whisker system. However, variation in surface stickiness is also a common feature of natural scenes, and is likely to alter the mechanical interactions between whiskers and surfaces that drive neuronal responses and are the basis for perceptual experience. In this study, we asked whether and how stickiness information could be extracted from whisker-surface interactions and represented in the activity of whisker follicle innervating mechanosensory neurons. We developed a 3D whisker tracking system applicable to texture sensing, and used it to characterize the whisker-surface interactions occurring during whisking against surfaces of jointly varying stickiness, coarseness, and position, as well as the responses of whisker follicle innervating neurons in the trigeminal ganglion. The bending, twisting, and roll of the whisker shaft, the rates and amplitudes of stick-slip events at the whisker tip, and the firing rates of a subset of mechanosensory neurons could all be used to distinguish between surfaces of high and low stickiness. These results demonstrate that stickiness information is available to the whisker system.

neuroscience↗

Dose-dependent, opioid-induced sleep disruption is partially mediated by motor activity but not by body temperature in C57BL/6J mice

States of sleep and wakefulness, motor activity, and body temperature are temporally linked, yet these variables are often studied independently. Here we report novel results from male C57BL/6J mice (n = 24) that quantify the causal and correlational relationships between these temporally linked measures. The initial experiments used 12 mice to identify the lowest antinociceptive doses of fentanyl (0.1 mg/kg) and morphine (1 mg/kg). Twelve additional mice were implanted with telemeters to simultaneously record EEG, electromyogram, motor activity, and subcutaneous body temperature. Doses of fentanyl (0.1, 0.3, 1, 3 mg/kg) and morphine (1, 3, 10, 30 mg/kg) caused significant (P<0.05) increases in wakefulness and decreases in NREM and REM sleep. Fentanyl (0.1 to 3 mg/kg) and morphine (3 to 30 mg/kg) significantly increased motor activity. Body temperature during wakefulness was significantly decreased by fentanyl (1, 3 mg/kg). Morphine increased (3 mg/kg) and decreased (30 mg/kg) body temperature. Mediation analyses showed that the increase in wakefulness caused by fentanyl and morphine was partially mediated by motor activity, but not by changes in body temperature. These results provide the first complete dose-response data for effects of fentanyl and morphine on simultaneously acquired measures of sleep/wake states, body temperature, and motor activity. Compared to human data, these results from mice reveal similarities (sleep disruption, hyperthermia and hypothermia) and differences (increased motor activity) caused by fentanyl and morphine. The results also demonstrate the power of mediation analyses for providing nuanced insights into opioid effects on clinically relevant neurobehavioral phenotypes. Significance StatementSleep disruption is an undesired, clinically significant effect of opioids prescribed to manage pain. Sleep disruption exacerbates pain and can lead to increased opioid requirement, as well as increased risk of addiction relapse. The significance of this study is the discovery that in mice, even the lowest doses of fentanyl and morphine that caused antinociception also caused sleep disruption. Thus, in mice, it is not possible to provide antinociception using fentanyl or morphine without causing sleep disruption.

pharmacology and toxicology↗