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May 8, 2026Angewandte Chemie0 citationsOpen Access

Local Chemical Gradients in a Mammalian Cortex Measured In Vivo With a Silicon Nanodialysis Mass Spectrometry Platform

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WSWeihua ShiKLKeyin LiYDYu Ding

Key Points

  • This research aims to measure the local chemical gradients of neurotransmitters and metabolites in the mammalian cortex in vivo.
  • Utilized an open-flow silicon nanodialysis sampling platform coupled with mass spectrometry.
  • Conducted measurements in the mouse cortex to analyze gradients of various neurochemicals.
  • Investigated interactions between neurons and glial cells affecting local chemical dynamics.
  • Revealed millimeter-scale spatial gradients in concentration of neurotransmitters and neuromodulators in the mouse cortex.
  • Demonstrated the significant influence of glial-neuron interactions on local brain neurochemistry.
  • Indicated potential impacts on both physiological and pathophysiological brain functions.

Abstract

ABSTRACT Chemical extrasynaptic signaling in the mammalian brain is involved in the control of behavior via modulation of neural activity, in wiring the brain by directing the axonal growth, in localization of pharmacological effects of drugs, and in regulating the neuroinflammation. Local gradients of various neurochemicals in the brain are difficult to study in vivo due to their complex spatiotemporal dynamics induced by intricate interactions between neurons and glial cells that are not well understood. Here, to directly measure in vivo gradients of multiple neurotransmitters and metabolites simultaneously, we utilize an open‐flow silicon nanodialysis sampling platform coupled with sensitive mass spectrometry. Results reveal strong millimeter‐scale spatial gradients in concentration of neurotransmitters, neuromodulators, and astroglial modulators in a mouse cortex. Formation and maintenance of such local chemical compartments indicate strong regulation of brain neurochemistry by glial‐neuron interactions that may heavily influence physiological and pathophysiological modulation of brain functions.

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Cite This Study

Shi et al. (2026) studied this question.

synapsesocial.com/papers/69fd7e00bfa21ec5bbf06383https://doi.org/10.1002/ange.3609448
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