In vivo neurochemical measurements in cerebral tissues using a droplet-based monitoring system

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作者
Guillaume Petit-Pierre
Philippe Colin
Estelle Laurer
Julien Déglon
Arnaud Bertsch
Aurélien Thomas
Bernard L. Schneider
Philippe Renaud
机构
[1] Laboratory of Microsystems LMIS4,Unit of Toxicology, CURML
[2] Ecole Polytechnique Fédérale de Lausanne (EPFL),Faculty of Biology and Medicine
[3] Brain Mind Institute,undefined
[4] Ecole Polytechnique Fédérale de Lausanne (EPFL),undefined
[5] Lausanne University Hospital,undefined
[6] Geneva University Hospitals,undefined
[7] University of Lausanne,undefined
来源
Nature Communications | / 8卷
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摘要
Direct collection of extracellular fluid (ECF) plays a central role in the monitoring of neurological disorders. Current approaches using microdialysis catheters are however drastically limited in term of temporal resolution. Here we show a functional in vivo validation of a droplet collection system included at the tip of a neural probe. The system comprises an advanced droplet formation mechanism which enables the collection of neurochemicals present in the brain ECF at high-temporal resolution. The probe was implanted in a rat brain and could successfully collect fluid samples organized in a train of droplets. A microfabricated target plate compatible with most of the surface-based detection methods was specifically developed for sample analysis. The time-resolved brain-fluid samples are analyzed using laser ablation inductively coupled plasma mass spectrometry (LA-ICP-MS). The results provide a time evolution picture of the cerebral tissues neurochemical composition for selected elements known for their involvement in neurodegenerative diseases.
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  • [1] Gesteland R(1959)Comments on microelectrodes Proc. Irel. 47 1856-1862
  • [2] Howland B(2000)Micromachined, polyimide-based devices for flexible neural interfaces Biomed. Microdev. 2 283-294
  • [3] Lettvin J(2004)Flexible polyimide probes with microelectrodes and embedded microfluidic channels for simultaneous drug delivery and multi-channel monitoring of bioelectric activity Biosens. Bioelectron. 19 1309-1318
  • [4] Pitts W(2001)Flexible polyimide-based intracortical electrode arrays with bioactive capability IEEE Trans. Biomed. Eng. 48 361-370
  • [5] Stieglitz T(2013)SU-8 based microprobes for simultaneous neural depth recording and drug delivery in the brain Lab. Chip 13 1422-1430
  • [6] Beutel H(1978)Classification of neuroleptic drugs according to their ability to inhibit apomorphine-induced locomotion and gnawing: evidence for two different mechanisms of action Psychopharmacology 56 239-247
  • [7] Schuettler M(1984)Effects of apomorphine on the in vivo release of dopamine and its metabolites, studied by brain dialysis Eur. J. Pharmacol. 97 29-36
  • [8] Meyer J-U(2010)In vivo monitoring of the transfer kinetics of trace elements in animal brains with hyphenated inductively coupled plasma mass spectrometry techniques Mass Spectrom. Rev. 29 392-424
  • [9] Metz S(1999)An ultrastructural analysis of tissue surrounding a microdialysis probe J. Neurosci. Methods 90 129-142
  • [10] Bertsch A(2004)Review of microdialysis in brain tumors, from concept to application: first annual Carolyn Frye-Halloran symposium Neuro. Oncol. 6 65-74