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Updated: May 17, 2026

A Method to Study Adaptation to Left-Right Reversed Audition
Published on: October 29, 2018
Searching for the mismatch negativity in primary auditory cortex of the awake monkey: deviance detection or stimulus
Yonatan I Fishman1, Mitchell Steinschneider
1Department of Neurology, Albert Einstein College of Medicine, Bronx, New York 10461, USA. yonatan.fishman@einstein.yu.edu
Abstract:
The mismatch negativity (MMN) is a preattentive component of the auditory event-related potential that is elicited by a change in a repetitive acoustic pattern. While MMN has been extensively used in human electrophysiological studies of auditory processing, the neural mechanisms and brain regions underlying its generation remain unclear. We investigate possible homologs of the MMN in macaque primary auditory cortex (A1) using a frequency oddball paradigm in which rare "deviant" tones are randomly interspersed among frequent "standard" tones. Standards and deviants had frequencies equal to the best frequency (BF) of the recorded neural population or to a frequency that evoked a response half the amplitude of the BF response. Early and later field potentials, current source density components, multiunit activity, and induced high-gamma band responses were larger when elicited by deviants than by standards of the same frequency. Laminar analysis indicated that differences between deviant and standard responses were more prominent in later activity, thus suggesting cortical amplification of initial responses driven by thalamocortical inputs. However, unlike the human MMN, larger deviant responses were characterized by the enhancement of "obligatory" responses rather than the introduction of new components. Furthermore, a control condition wherein deviants were interspersed among many tones of variable frequency replicated the larger responses to deviants under the oddball condition. Results suggest that differential responses under the oddball condition in macaque A1 reflect stimulus-specific adaptation rather than deviance detection per se. We conclude that neural mechanisms of deviance detection likely reside in cortical areas outside of A1.
Insights
Mismatch negativity (MMN) research in macaques suggests auditory cortex adaptation, not deviance detection. Further studies are needed to pinpoint MMN
Area of Science:
- Neuroscience
- Auditory Neuroscience
- Electrophysiology
Background:
- Mismatch negativity (MMN) is a key auditory event-related potential in humans, but its neural basis is not fully understood.
- Investigating MMN homologs in non-human primates can elucidate auditory processing mechanisms.
Purpose of the Study:
- To explore potential MMN homologs in macaque primary auditory cortex (A1).
- To differentiate between stimulus-specific adaptation and true deviance detection in auditory processing.
Main Methods:
- Used a frequency oddball paradigm with standard and deviant tones in macaque A1.
- Recorded field potentials, current source density, multiunit activity, and high-gamma responses.
- Conducted laminar analysis and a control condition with variable frequencies.
Main Results:
- Deviant tones elicited larger responses than standard tones of the same frequency in macaque A1.
- Differences were more pronounced in later activity, suggesting thalamocortical input amplification.
- Larger responses reflected enhanced obligatory responses, not new MMN components.
- Control condition confirmed stimulus-specific adaptation, not deviance detection.
Conclusions:
- Differential responses in macaque A1 under oddball conditions likely represent stimulus-specific adaptation.
- Neural mechanisms for deviance detection may be located in auditory cortical areas beyond A1.
