bioRxiv Science⌕ Search

Biology subjects

Lengersdorff, L.

Publications and source records attributed to Lengersdorff, L..

2 recordsLinked to original sources

Nature exposure induces hypoalgesia by acting on nociception-related neural processing

Nature exposure has numerous psychological benefits, and previous findings suggest that exposure to nature reduces self-reported acute pain. Given the multi-faceted and subjective quality of pain and methodological limitations of prior research, it is unclear whether the evidence indicates genuine hypoalgesia or results from domain-general effects and subjective reporting biases. This preregistered functional neuroimaging study aimed to identify how nature exposure modulates nociception-related and domain-general brain responses to acute pain. We compared the self-reported and neural responses of healthy neurotypical participants (N = 49) receiving painful electrical shocks while exposed to virtual nature or to closely matched urban and indoor control settings. Replicating existing behavioral evidence, pain was reported to be lower during exposure to the natural compared to the urban or indoor control settings. Crucially, machine-learning-based multi-voxel signatures of pain demonstrated that this subjective hypoalgesia was associated with reductions in nociception-related rather than domain-general cognitive-emotional neural pain processing. Preregistered region-of-interest analyses corroborated these results, highlighting reduced activation of areas connected to lower-level somatosensory aspects of pain processing (such as the thalamus, secondary somatosensory cortex, and posterior insula). These findings demonstrate that nature exposure results in genuine hypoalgesia and that neural changes in lower-level nociceptive pain processing predominantly underpin this effect. This advances our understanding of how nature may be used as a non-pharmacological pain treatment. That this hypoalgesia was achieved with brief and easy-to-administer virtual nature exposure has important practical implications and opens novel avenues for research on the precise mechanisms by which nature impacts our mind and brain.

neuroscience↗

Emotional ego- and altercentric biases in high-functioning autism spectrum disorder: Behavioral and neurophysiological evidence

Self-other distinction is a crucial aspect of social cognition, as it allows us to differentiate our own mental and emotional states from those of others. Research suggests that this ability might be impaired in individuals with autism spectrum disorder (ASD), but convincing evidence of self-other distinction deficits in the emotional domain is lacking. Here we aimed at evaluating emotional self-other distinction abilities in adults with and without ASD, in two behavioral pilot studies and one fMRI study. By using a newly developed virtual ball-tossing game that induced simultaneous positive and negative emotional states in each participant and another person, we were able to measure emotional egocentric and altercentric biases (namely the tendency to ascribe self-/other-related emotions to others/ourselves, respectively). Despite no behavioral differences, individuals with ASD showed decreased activation 1) in the right temporoparietal junction (rTPJ) during active overcoming of the emotional egocentric bias vs. passive game viewing, and 2) in the right supramarginal gyrus (rSMG) during ego-vs. altercentric biases, compared to neurotypical participants. These results suggest a different recruitment of these two regions in ASD when dealing with conflicting emotional states of oneself and another person. Furthermore, they highlight the importance of considering different control conditions when interpreting the involvement of rTPJ and rSMG during self-other distinction processes.

neuroscience↗