Non-regular electrical stimulation patterns for treating neurological disorders
Systems and methods for stimulation of neurological tissue generate stimulation trains with temporal patterns of stimulation, in which the interval between electrical pulses (the inter-pulse intervals) changes or varies over time. Compared to conventional continuous, high rate pulse trains having regular (i.e., constant) inter-pulse intervals, the non-regular (i.e., not constant) pulse patterns or trains that embody features of the invention provide a lower average frequency.
1. A method for treating a neurological disorder by way of a temporal pattern of stimulation comprising:
(i) in conjunction with a computational based model for a given temporal pattern of stimulation having an efficacy (E) and an efficiency (f), quantitatively balancing E and f to effect changes in neuronal firing patterns to generate non-regular temporal patterns of stimulation with a clinically beneficial cost in comparison to constant-frequency waveforms in a temporal pattern of stimulation,
(ii) subjecting the generated temporal patterns to a genetic algorithm to create new generations of temporal patterns bred from the generated temporal patterns,
(iii) selecting a non-regular pulse train from among the new generations of temporal patterns;
(iv) providing and positioning a deep brain stimulation electrode proximate to a thalamus, globus, pallidus, and/or subthalamus of a brain in a person having a neurological disorder selected from Parkinson's disease, essential tremor, movement disorders, dystonia, epilepsy, pain, obsessive-compulsion disorder, depression, and Tourette's Symdrome, said electrode operatively connected to an implantable pulse generator programmed to generated the temporal patterns; and
(v) applying the selected non-regular pulse train to a brain using the electrode to treat the neurological disorder.
2. A method according to claim 1 further including applying the pulse train to achieve deep brain stimulation in an animal at an average frequency of less than 100 Hz.
3. A temporal pattern of stimulation for application to targeted neurological tissue comprising a pulse trains selected according to the method defined in claim 1 .
4. A temporal pattern according to claim 3 wherein the selected pulse train comprises an average frequency of less than 100 Hz.
5. A method according to claim 1 wherein the generated temporal patterns give greater weight to E.