Completed Brain & Nervous System Psychology & Behaviour

Interfacing with the brain for therapy

In plain English

AI plain-English summary

Deep brain stimulators for Parkinson’s disease and essential tremor currently deliver a constant electrical pulse, regardless of what the brain is doing at that moment. This programme will develop feedback-controlled systems that adjust stimulation in real time based on the state of neural circuits. The problem is that drugs cannot keep up with the rapid, moment-to-moment interactions between nerve cells that drive brain dysfunction. Electrical stimulation can intervene fast enough, but today’s devices lack the ability to titrate the dose to the brain’s changing needs. That fixed approach limits effectiveness and can cause side effects. If this succeeds, patients with Parkinson’s disease and essential tremor could receive therapy that adapts on the fly—boosting stimulation when symptoms worsen and reducing it when the brain is stable. That could mean fewer side effects and better symptom control throughout the day. The same feedback principle could eventually extend to other brain disorders where neural dynamics shift rapidly, such as epilepsy or depression. The work also covers non-invasive stimulation via electrodes on the scalp or limbs, widening the range of patients who could benefit.

View original technical description
The treatment of diseases of the brain remains a major challenge. This is partly because drugs ignore the moment-to-moment interactions between nerve cells that determine brain function and dysfunction. Electrical stimulation therapies, however, can intervene fast enough to modify these interactions. Our central hypothesis is that we can improve therapies based on electrical stimulation by titrating stimulation according to the state of neural circuits at any given instance. In this research programme we will focus on patients with two exemplar conditions, Parkinson’s disease and Essential Tremor, and develop feedback controlled forms of deep brain stimulation, and of non-invasive stimulation techniques where stimulation is delivered by electrodes on the skin to the surface of the brain or to nerves in the limbs. Using these approaches we seek to develop treatment approaches that serve to increase efficacy and lessen side-effects.

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Researchers

Huiling Tan (Principal Investigator)Peter Brown (Principal Investigator)

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Original classification

Intramural

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