| Literature DB >> 21829726 |
Kenneth T Kishida1, Stefan G Sandberg, Terry Lohrenz, Youssef G Comair, Ignacio Sáez, Paul E M Phillips, P Read Montague.
Abstract
Fast-scan cyclic voltammetry at carbon fiber microelectrodes allows rapid (sub-second) measurements of dopamine release in behaving animals. Herein, we report the modification of existing technology and demonstrate the feasibility of making sub-second measurements of dopamine release in the caudate nucleus of a human subject during brain surgery. First, we describe the modification of our electrodes that allow for measurements to be made in a human brain. Next, we demonstrate in vitro and in vivo, that our modified electrodes can measure stimulated dopamine release in a rat brain equivalently to previously determined rodent electrodes. Finally, we demonstrate acute measurements of dopamine release in the caudate of a human patient during DBS electrode implantation surgery. The data generated are highly amenable for future work investigating the relationship between dopamine levels and important decision variables in human decision-making tasks.Entities:
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Year: 2011 PMID: 21829726 PMCID: PMC3150430 DOI: 10.1371/journal.pone.0023291
Source DB: PubMed Journal: PLoS One ISSN: 1932-6203 Impact factor: 3.240
Figure 1Human-compatible carbon fiber microelectrode can detect dopamine in human striatum.
(a) Human electrode assembly comprised of protective tube with reference electrode at the tip (1), large-gauge fused silica capillary (2), small-gauge fused silica (3) and carbon fiber (4). (b) Average change in peak oxidative current in rat striatum following electrical stimulation (60 Hz, 120 pulses, 300 µA) of dopamine axon pathway in vivo recorded at conventional voltammetric electrodes or human electrode assembly (referenced to Ag/AgCl or stainless steel respectively; r2 = 0.934, p<0.0001, n = 3). The inset shows the average electrochemical signature at the maximum response (r2 = 0.887, p<0.0001). (c) Linear responses (vertical axis: peak oxidative currents for dopamine) of sterilized electrode responses to known concentrations of dopamine (62.5, 125, 250, 500 and 1000 nM) before (r2>0.987, p<0.001) and after (r2>0.997, p<0.0001) implantation in brain tissue. Data are mean ± SEM, n = 3. (d) Electrode sensitivity and (e) root-mean-square (RMS) noise is unchanged by gas sterilization with ethylene oxide (p>0.75 and p>0.65, paired t-test). Data are expressed as mean ± SEM, n = 7. (f) Voltammetric signals measured at electrode implanted in the patient's right caudate: (left) sub-second changes and (right) changes over several seconds. Changes in electrochemical current are measured at the peak oxidation potential for dopamine (+0.65–0.75 V). Insets show cyclic voltammograms from the patient's brain (black trace) compared to a standard reference cyclic voltammogram for dopamine (dashed red trace; r2 = 0.75 (left) and r2 = 0.765 (right), p<0.0001 for both). These cyclic voltammograms were measured at the time points indicated by the black arrowheads in the lower panels. The lower panels show two-dimensional plots with electrochemical current (nA, pseudo color, see color bar to the right) plotted against time (horizontal-axis) and applied potential (vertical-axis).