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Bennet, K. E.

Publications and source records attributed to Bennet, K. E..

2 recordsLinked to original sources

Anti-manic effect of deep brain stimulation of the ventral tegmental area in an animal model of mania induced by methamphetamine

BackgroundTreatment of refractory bipolar disorder (BD) is extremely challenging. Deep brain stimulation (DBS) holds promise as an effective treatment intervention. However, we still understand very little about the mechanisms of DBS and its application on BD. AimThe present study aimed to investigate the behavioural and neurochemical effects of ventral tegmental area (VTA) DBS in an animal model of mania induced by methamphetamine (m-amph). MethodsWistar rats were given 14 days of mamph injections, in the last day animals were submitted to 20 minutes of VTA DBS in two different patterns: intermittent low frequency stimulation (LFS) or continuous high frequency stimulation (HFS). Immediately after DBS, manic-like behaviour and nucleus accumbens (NAc) phasic dopamine (DA) release were evaluated in different groups of animals through open-field test and fast-scan cyclic voltammetry. Levels of NAc dopaminergic markers were evaluated by immunohistochemistry. ResultsM-amph induced hyperlocomotion in the animals and both DBS parameters reversed this alteration. Mamph increased DA reuptake time post-sham compared to baseline levels, and both LFS and HFS were able to block this alteration. LFS was also able to reduce phasic DA release when compared to baseline. LFS was able to increase dopamine transporter (DAT) expression in the NAc. ConclusionThese results demonstrate that both VTA LFS and HFS DBS exert anti-manic effects and modulation of DA dynamics in the NAc. More specifically the increase in DA reuptake driven by increased DAT expression may serve as a potential mechanism by which VTA DBS exerts its anti-manic effects.

neuroscience↗

Micromagnetic Stimulation (μMS) Controls Dopamine Release: An in vivo Study Using WINCS Harmoni

ObjectiveResearch into the role of neurotransmitters in regulating normal and pathologic brain functions has made significant progress. Yet, clinical trials that aim to improve therapeutic interventions do not take advantage of the in vivo changes in the neurochemistry that occur in real time during disease progression, drug interactions or response to pharmacological, cognitive, behavioral, and neuromodulation therapies. In this work, we used the WINCS Harmoni tool to study the real time in vivo changes in dopamine release in rodent brains for the micromagnetic neuromodulation therapy. ApproachAlthough still in its infancy, micromagnetic stimulation (MS) using micro-meter sized coils or microcoils (coils) has shown incredible promise in spatially selective, galvanic contact free and highly focal neuromodulation. These coils are powered by a time-varying current which generates a magnetic field. As per Faradays Laws of Electromagnetic Induction, this magnetic field induces an electric field in a conducting medium (here, the brain tissues). We used a solenoidal-shaped coil to stimulate the medial forebrain bundle (MFB) of the rodent brain in vivo. The evoked in vivo dopamine releases in the striatum were tracked in real time by carbon fiber microelectrodes (CFM) using fast scan cyclic voltammetry (FSCV). ResultsOur experiments report that coils can successfully activate the MFB in rodent brains, triggering dopamine release in vivo. We further show that the successful release of dopamine upon micromagnetic stimulation is dependent on the orientation of the coil. Furthermore, varied intensities of MS can control the concentration of dopamine releases in the striatum. SignificanceThis work helps us better understand the brain and its conditions arising from a new therapeutic intervention, like MS, at the level of neurotransmitter release. Despite its early stage, this study potentially paves the path for MS to enter the clinical world as a precisely controlled and optimized neuromodulation therapy.

neuroscience↗