Brain, Body, & Technology Lab

@bbt-lab.bsky.social

Our goal is to understand the neural computations used by the brain to construct and update internal models of the body Donders Institute, Radboud University, Nijmegen, NL PI: @lukemillerneuro.bsky.social

Great time at the Donders Institute Open Day – De Brein Show! 🧠✨ We brought our Exoskeleton demo, where visitors experienced extending the body with extra long fingers. Thanks to everyone who stopped by, and our team: Floris van Wettum, Eleni Manias, Thomas Kooiman, and Chris Vajdík 🦾

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Curious how YOUR brain adapts to body augmentations? 🧠 On 21 March we will be at the Donders Institute Open Day (De Brein Show) in Nijmegen. Our lab @bbt-lab.bsky.social will be part of the demos, where you can try our finger-extending exoskeleton 🦾 More info 👉 www.ru.nl/donders-inst...

Donders Institute Open Dag | 21 maart | Radboud Universiteit

Een dag vol interactieve belevenissen van spannende escape rooms en illusies tot live demonstraties, talks en experimenten – voor jong en oud.

ru.nl

The human body is remarkably adaptable, capable of integrating artificial enhancements from tools to prosthetic limbs. Researchers have used finger extensions to test how the brain updates its expectations over time. 🔗 buff.ly/HxxCzTz

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🎉 BRNet ECR Pioneer Award winner 🎉 Congrats to Dr Valeria Peviani 🏆 A postdoc at the Donders Institute & UKE Hamburg, Valeria’s work explores how body perception emerged from multisensory signals, combining computational modelling, psychophysics & electrophysiology. 👏 Well deserved!

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Congratulations to @pevianiv.bsky.social for an amazing talk! Don't forget to check out her latest preprint 👉 www.biorxiv.org/content/10.1...

The spatial coding of touch is defined in intrinsic, limb-specific coordinates: an EEG study

The brain localizes touch in space by integrating tactile and proprioceptive signals, a process known as tactile remapping. While it is often assumed that the remapped touch is encoded in an extrinsic, limb-independent reference frame, an alternative view proposes that touch may instead be represented within an intrinsic, limb-specific coordinate system. To test these hypotheses, we used electroencephalography (EEG) and a novel tactile stimulation paradigm in which participants received touch on their hands positioned at various locations relative to the body. Previous findings suggest that neural activity in primate sensorimotor and parietal regions monotonically encodes limb position. We therefore analyzed amplitude gradients in somatosensory evoked potentials (SEPs) to test predictions from each coding scheme. If touch is coded extrinsically, neural gradients should reflect changes of the external stimulus location, regardless of the limb. If coded intrinsically, gradients should be tied to the position of each limb and mirror each other between hands. Both univariate and multivariate EEG analyses found no evidence for extrinsic coding. Instead, we observed neural signatures of limb-specific, intrinsic spatial codes, the earliest emerging about 160 ms after touch in centro-parietal regions, later shifting to fronto-temporal and parieto-occipital areas. Furthermore, a population-based neural network model of tactile remapping successfully reproduced the observed gradient patterns. These results show that the human brain localizes touch using an intrinsic, limb-specific spatial code, challenging the dominant assumption of extrinsic encoding in tactile remapping. ### Competing Interest Statement The authors have declared no competing interest. NWO, NWO-SGW-406.21.GO.009, Interreg NWE-RE:HOME, NWA-ORC-1292.19.298 ERC, ERC 101076991 SOMATOGPS

biorxiv.org

Dominika Radziun@nikaradziun.bsky.social · last yr.

Valeria C. Peviani @pevianiv.bsky.social presenting her talk "A mirror symmetric spatial code maps touch on both hands in the human brain".

How does the brain integrate artificial body extensions? Using a custom-built finger-extending exoskeleton, we show that wearable augmentations are quickly integrated into body representation, with proprioceptive space adapting to the device’s structure and function. www.biorxiv.org/content/10.1...

Dynamics of sensorimotor plasticity during exoskeletal finger augmentation

How does the brain integrate artificial body extensions into its somatosensory representation? While prior work has shown that tool use alters body representation, little is known about how artificial...

biorxiv.org