PubMed Health⌕ Search

Biomedical subjects

A Latanov

Publications and source records attributed to A Latanov.

3 recordsLinked to original sources

Deviance-related electrophysiological activity in mice: is there mismatch negativity in mice?

OBJECTIVE: Mismatch negativity (MMN) is an auditory event-related potential (ERP) that provides an index of auditory sensory memory and has become an important tool to investigate auditory sensory memory in cognitive neuroscience and disorders such as schizophrenia and dyslexia. The development of a mouse model of human MMN would permit to investigate the molecular biology of normal and dysfunctional MMN generation. However, the presence of MMN-like electrophysiological activity in mice has not been demonstrated. METHODS: Deviance-related ERPs were recorded in awake mice using 3 frequency deviance paradigms and one duration deviance paradigm. These paradigms were modelled after paradigms used in human studies to characterize MMN. RESULTS: Significant deviance-related activity was observed in all paradigms. However, in all frequency deviance paradigms this activity manifested as an enhancement of similar activity to the standard due to differences in stimulation rate between deviant and standard stimuli rather than qualitatively different MMN-like activity. In the duration deviance paradigm negative deflections were observed that showed characteristics typical of human MMN. CONCLUSIONS: MMN-like activity can be observed in mice in duration deviance paradigms. In frequency deviance paradigms effects of different stimulation rates of deviant and standard stimuli seem to be the main determinants of deviance-related activity. SIGNIFICANCE: Investigations of MMN-like ERPs in mice may permit to investigate the molecular basis for normal and abnormal MMN generation in neuropsychiatric disorders and dyslexia.

Acoustic Stimulation↗

Context dependent amplitude modulations of express and regular saccades in man and monkey.

Saccadic reaction times and amplitudes were determined in four human subjects and two rhesus monkeys when they made saccades to visual targets appearing in different spatial or temporal contexts. Two stimuli were presented at different positions, either simultaneously (global condition) or in random order (range condition). Both the gap and the overlap paradigm were used. The characteristics of different groups of saccades defined by the separate peaks in the distribution of the saccadic reaction times as express and regular saccades, were analysed and compared. It is shown that, in man and monkey, the amplitudes of express saccades undergo the same or even stronger context-dependent changes as do those of regular saccades. Furthermore, the presence or absence of the fixation point also influences the saccadic amplitudes, at least for the express saccades. We conclude that the neural mechanisms that determine the amplitudes of the express saccades are more strictly under the control of the physical and physiological conditions of the stimulus situation, whereas regular saccades have greater--although not complete--dependence on the psychological context and, in particular, the subject's effort.

Adult↗

Dead zone for express saccades.

The saccadic eye movements of three humans and one non-human primate (a male rhesus monkey) have been measured for target eccentricities between 0.3 and 15 deg. With a gap task (fixation point offset precedes target onset by 200 ms) and a target at 4 deg, all subjects produced reasonable amounts of express saccades as indicated by a clear peak in the distribution of their saccadic reaction times (SRT): about 100 ms in human subjects and 70 ms in the monkey. This peak disappeared with decreasing target eccentricity below 2 deg, but saccades of longer (regular) reaction times were still present. Thus it was found that there exists a dead zone for express saccades. In addition, small saccades have a much stronger tendency to overshoot the target and their velocity falls above the main sequence as defined by the least square fit of an exponential v = vo(1-exp(-a/ao)) to the maximal velocity (v) versus amplitude (a) relationship (vo and ao are constants fitted). It is concluded that for small saccades the express way is blocked functionally or does not exist anatomically.

Animals↗