TY - JOUR
T1 - Locus coeruleus tonic upregulation increases selectivity to inconspicuous auditory information in autistic compared to non-autistic individuals
T2 - a combined pupillometry and electroencephalography study
AU - Bast, Nico
AU - Ahmad, Jumana
AU - Mason, Luke
AU - Jones, Emily J.H.
AU - Matyjek, Magdalena
AU - Polzer, Leonie
AU - Luckhardt, Christina
AU - Müller, Anna Katharina
AU - McAlonan, Grainne M.
AU - Banaschewski, Tobias
AU - Baumeister, Sarah
AU - Loth, Eva
AU - Freitag, Christine M.
AU - Zwiers, Marcel P.
AU - Wooldridge, Caroline
AU - Williams, Steve C.R.
AU - Waldman, Jack
AU - Tost, Heike
AU - Toro, Roberto
AU - Tillmann, Julian
AU - Spooren, Will
AU - Simonoff, Emily
AU - Cáceres, Antonia San José
AU - Sacco, Roberto
AU - Sabet, Jessica
AU - Ruigrok, Amber
AU - Ruggeri, Barbara
AU - Persico, Antonio M.
AU - Pandina, Gahan
AU - Oranje, Bob
AU - Oldehinkel, Marianne
AU - O’Dwyer, Laurence
AU - Oakley, Bethany
AU - Murphy, Declan G.M.
AU - Moessnang, Carolin
AU - Meyer-Lindenberg, Andreas
AU - Mennes, Maarten
AU - Marquand, Andre
AU - Mandl, René
AU - Lythgoe, David J.
AU - Loth, Eva
AU - Lombardo, Michael V.
AU - D’ardhuy, Xavier Liogier
AU - Lai, Meng Chuan
AU - Kundu, Prantik
AU - Johnson, Mark
AU - Holt, Rosemary
AU - Hipp, Joerg
AU - Durston, Sarah
AU - Ambrosino, Sara
N1 - Publisher Copyright:
© The Author(s) 2025.
PY - 2025/8/21
Y1 - 2025/8/21
N2 - Background: Sensory processing requires selectivity to salient sensory input. Many autistic individuals report different sensory processing, which has been associated with altered sensory selectivity. The locus-coeruleus norepinephrine (LC-NE) system modulates the neuronal gain of sensory input, which represents a neurophysiological mechanism of sensory selectivity. In autistic individuals, we hypothesized that LC-NE tonic upregulation reduces sensory selectivity and underlies different sensory processing. Methods: Autistic (n = 139) and non-autistic (n = 98) individuals were assessed during a passive auditory oddball task with pupillometry and electroencephalography. For every trial, a baseline pupil size (BPS) assessed LC-NE tonic activity that coincides with current arousal, while a stimulus-evoked pupillary response (SEPR) assessed LC-NE phasic activity that estimated sensory selectivity. Electroencephalography assessed amplitudes of mismatch negativity (MMN-amp) that estimated pre-attentive change detection as a brain-activity readout of sensory selectivity. Measures were modeled between groups within the task by combining Frequentist and Bayesian approaches. Results: Across groups, higher BPS was associated with more negative MMN-amp to standards and oddballs. A more negative MMN-amp to standards was associated with a higher SEPR to standards. Controlling for these associations, autistic versus non-autistic individuals showed a higher SEPR in response to standards. In addition, a positive association of BPS and SEPR to standards was specific to autistic individuals. With task progression, autistic versus non-autistic individuals showed a higher initial increase and subsequently steeper decrease of BPS. This was supported by Bayesian posterior distribution estimates. Limitations: A short trial duration required concatenating trials to epochs and applying a linear-time invariant filter to capture the slow pupil changes. Without an LC-NE manipulation, we cannot rule out that pupil changes are evoked by other cortical pathways than the LC-NE. Conclusions: Across groups, LC-NE tonic upregulation is emphasized as a general mechanism that un-specifically increases pre-attentive change detection to all sensory stimuli, which then increases sensory selectivity to frequent stimuli. In autistic individuals, different sensory processing is characterized by increased sensory selectivity to frequent stimuli. This is likely caused by an LC-NE tonic upregulation. It associates autistic sensory processing with increased arousal upregulation that increases sensory selectivity to inconspicuous auditory information.
AB - Background: Sensory processing requires selectivity to salient sensory input. Many autistic individuals report different sensory processing, which has been associated with altered sensory selectivity. The locus-coeruleus norepinephrine (LC-NE) system modulates the neuronal gain of sensory input, which represents a neurophysiological mechanism of sensory selectivity. In autistic individuals, we hypothesized that LC-NE tonic upregulation reduces sensory selectivity and underlies different sensory processing. Methods: Autistic (n = 139) and non-autistic (n = 98) individuals were assessed during a passive auditory oddball task with pupillometry and electroencephalography. For every trial, a baseline pupil size (BPS) assessed LC-NE tonic activity that coincides with current arousal, while a stimulus-evoked pupillary response (SEPR) assessed LC-NE phasic activity that estimated sensory selectivity. Electroencephalography assessed amplitudes of mismatch negativity (MMN-amp) that estimated pre-attentive change detection as a brain-activity readout of sensory selectivity. Measures were modeled between groups within the task by combining Frequentist and Bayesian approaches. Results: Across groups, higher BPS was associated with more negative MMN-amp to standards and oddballs. A more negative MMN-amp to standards was associated with a higher SEPR to standards. Controlling for these associations, autistic versus non-autistic individuals showed a higher SEPR in response to standards. In addition, a positive association of BPS and SEPR to standards was specific to autistic individuals. With task progression, autistic versus non-autistic individuals showed a higher initial increase and subsequently steeper decrease of BPS. This was supported by Bayesian posterior distribution estimates. Limitations: A short trial duration required concatenating trials to epochs and applying a linear-time invariant filter to capture the slow pupil changes. Without an LC-NE manipulation, we cannot rule out that pupil changes are evoked by other cortical pathways than the LC-NE. Conclusions: Across groups, LC-NE tonic upregulation is emphasized as a general mechanism that un-specifically increases pre-attentive change detection to all sensory stimuli, which then increases sensory selectivity to frequent stimuli. In autistic individuals, different sensory processing is characterized by increased sensory selectivity to frequent stimuli. This is likely caused by an LC-NE tonic upregulation. It associates autistic sensory processing with increased arousal upregulation that increases sensory selectivity to inconspicuous auditory information.
KW - Arousal
KW - Auditory oddball paradigm
KW - Autism spectrum condition
KW - Mismatch negativity
KW - Predictive coding
KW - Pupillometry
UR - https://www.scopus.com/pages/publications/105015230285
U2 - 10.1186/s13229-025-00678-w
DO - 10.1186/s13229-025-00678-w
M3 - Article
C2 - 40841687
AN - SCOPUS:105015230285
SN - 2040-2392
VL - 16
JO - Molecular Autism
JF - Molecular Autism
IS - 1
M1 - 41
ER -