Nanoparticles for use in treating neurological disorders

Nanoparticles with specific dielectric constants enhance the spatial resolution and localization of electrical stimulation, addressing the limitations of current treatments by normalizing neuronal oscillations and reducing side effects, effectively treating neurological disorders.

JP7766899B2Active Publication Date: 2025-11-11NANOBIOTIX SA
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Patent Information

Application Number
JP2019533316
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2016-12-21
Filing Date
2017-12-19
Publication Date
2025-11-11
Estimated Expiration
2037-12-19

AI Technical Summary

Technical Problem

Current neurological disorder treatments, such as deep brain stimulation (DBS) and transcranial electrical stimulation (TES), suffer from invasiveness, limited spatial resolution, and potential side effects due to the spread of electrical stimulation, necessitating more localized and deeper penetration without affecting surrounding brain regions.

Method used

Nanoparticles or nanoparticle aggregates with specific dielectric constants are used to enhance the spatial resolution and localization of electrical stimulation, normalizing neuronal oscillations and reducing the need for high current, voltage, or frequency, thereby minimizing potential toxicities.

Benefits of technology

The nanoparticles or nanoparticle aggregates improve the spatial resolution of electrical stimulation, reducing side effects and enhancing the treatment of neurological disorders by normalizing neuronal oscillations, thus restoring healthy brain function.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention relates to the medical field, in particular to the treatment of neurological disorders. More specifically, the present invention relates to nanoparticles or nanoparticle aggregates for use in the prevention or treatment of a neurological disorder or at least one symptom thereof in a subject when the nanoparticles or nanoparticle aggregates are exposed to an electric field, wherein the material of the nanoparticles or nanoparticle aggregates is a conductive material, a semiconducting material, a material with a dielectric constant ε of 200 or more, ijk Insulating materials with a dielectric constant ε of 100 or less ijk The present invention further relates to compositions and kits comprising such nanoparticles and / or nanoparticle aggregates, and uses thereof.
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Description

[Technical Field]

[0001] The present invention relates to the medical field, in particular to the treatment of neurological disorders. More specifically, the present invention relates to nanoparticles or nanoparticle aggregates for use in the prevention or treatment of a neurological disorder or at least one symptom thereof in a subject when the nanoparticles or nanoparticle aggregates are exposed to an electric field / electrical stimulation, wherein the material of the nanoparticles or nanoparticle aggregates is a conductive material, a semiconducting material, a material with a dielectric constant ε of 200 or more, ijk Insulating materials with a dielectric constant ε of 100 or less ijk The present invention further relates to compositions and kits comprising such nanoparticles and / or nanoparticle aggregates, and uses thereof. [Background technology]

[0002] background Neurological disorders are a major health concern (Neurological disorders public health challenges. WHO, 2006). Impairments in neural network function can have different origins. Parkinson's disease is a movement disorder caused by the death of dopamine neurons in the substantia nigra, located in the midbrain. Stroke corresponds to the interruption of the brain's blood supply. Without oxygen, neurons in the affected area die, and the parts of the body controlled by these cells are unable to function. Huntington's disease is a genetic disorder. Epilepsy is a disorder caused by the abnormal excitation of large groups of neurons in various brain regions. Alzheimer's disease is a neurodegenerative disorder characterized by the death of neurons in the hippocampus, cerebral cortex, and other brain regions. The causes of autism spectrum disorders are multifactorial, including genetic and environmental.

[0003] Neurological disorders can be classified according to the primary symptoms affecting the patient. As further explained herein below, three main types of symptoms are observed: movement disorders, psychiatric (mood / social) disorders, and cognitive disorders.

[0004] Movement disorders include tremor, motor dysfunction such as bradykinesia or dyskinesia, muscle twisting, rigidity, postural instability, freezing of gait, etc. Diseases that present with movement disorders typically include Parkinson's disease, dystonia, epilepsy, Huntington's disease, and Tourette's syndrome.

[0005] Psychiatric disorders comprise a variety of illnesses that present with mood / social disturbance symptoms. A non-exhaustive list includes autism spectrum disorders, schizophrenia disorders, bipolar disorders, depressive disorders, anxiety disorders, obsessive-compulsive disorders, and substance-related and / or addictive disorders (definitions from the Diagnostic and Statistical Manual of Mental Disorders, 2013, 5th ed., the American Psychiatric Association). Some patients with movement disorders, such as Parkinson's disease and dystonia, may develop psychiatric disorders later in the course of the disease.

[0006] Cognitive impairment is present in many, if not all, mental disorders (e.g., schizophrenia, bipolar disorder). Only disorders whose central feature is cognitive are included in the cognitive impairment category. Cognitive impairment affects the patient's daily life and makes it difficult to accomplish simple tasks. Dementia is a typical cognitive impairment and is a general term for a decline in mental ability severe enough to interfere with daily life. Alzheimer's disease is a unique type of dementia accompanied by neurodegenerative aspects.

[0007] Neurological disorders are treated, when possible, with drugs that play a role in regulating neurotransmitter levels in the brain and their interactions with specific neurotransmitter receptors. The main neurotransmitters involved are glutamate, gamma-aminobutyric acid (GABA), dopamine, and acetylcholine. The glutamate and GABA neurotransmitters are of particular interest because they play a major role in increasing (Platt et al., The Veterinary Journal, 2007, 173, 278-286: The role of glutamate in central nervous system health and disease - a review) and decreasing (Holmes et al., Mental Retardation and Developmental Disabilities, 1995, 1, 208-219: Role of glutamate and GABA in the pathophysiology of epilepsy), respectively. Dopamine is involved in several brain functions, including the control of movement via the basal ganglia (inadequate levels of dopamine in the basal ganglia lead to uncontrolled movement), pleasure-seeking behavior (disorders can lead to dysfunctional addictions), and cognition (disorders of dopamine in the frontal lobe can lead to neurocognitive decline) (Alcaro et al., Brain Res. Rev., 2007, 56(2), 283-321: Behavioral functions of the mesolimbic dopaminergic system: an affective neuroethological perspective). Acetylcholine is a neurotransmitter involved in learning and memory at the central nervous system level (Hasselmo et al., Curr Opin Neurobiol, 2006, 16(6), 710-715: The role of acetylcholine in learning and memory).

[0008] A common drug used to alleviate motor symptoms in Parkinson's disease is levodopa, which is converted to dopamine in the brain and thus helps balance dopamine deficiency. Levodopa is related to carbidopa, which helps prevent levodopa from being converted to dopamine throughout the body. One problem with levodopa treatment is the "on-off" phenomenon, which results in periods of immobility and inability associated with depression alternating with periods of jubilant thaw (Lees et al., J Neurology Neurosurgery Psychiatry, Special Supplement, 1989, 29-37: The on-off phenomenon). The lack of response of late-stage Parkinson's disease patients to this treatment is problematic (Fabbri et al., Parkinsonism and related disorders, 2016: Do patients with late-stage Parkinson's disease still respond to levodopa?). Other common medications for treating symptoms of neuropsychiatric disorders, such as the "positive" symptoms, delusions and hallucinations in schizophrenia, are antipsychotics.

[0009] However, therapeutic treatment of neuropathic symptoms with drugs is non-specific and can induce serious adverse events. In addition, therapeutic resistance to the drugs used can develop.

[0010] As neuroscience advances, the brain can be thought of as an electrical network that encodes and transmits information through its electrical wires, the neurons. The connectivity between neurons is both simple and complex. It is simple because the influx and outflow of ions within neurons results in action potentials (or "spikes" of electrical activity). It is complex because the brain network is composed of hundreds of billions of neurons, forming nodes, hubs, and modules that exhibit coordinated interactions at various spatial and temporal scales (Fornito et al., Nature Reviews Neuroscience, 2015, 16, 159-172: The connectomics of brain disorders). Neurotransmission is determined by the anatomical components connecting individual neurons (structure) and the processes by which information is transmitted (function). Both aspects affect the overall performance of the nervous system. Neuronal interactions are mediated by oscillations in the brain's electrical activity patterns, which can typically be measured using electroencephalography (EEG). Oscillations in different frequency bands are observed: delta, theta, alpha, beta, and gamma (Ward et al., Trends in Cognitive Sciences, 2003, 7(12), 553-559: Synchronous neural oscillations and cognitive processes). Structurally, the brain's most striking neuroanatomical feature is the rich connectivity between neurons, reflecting the importance of neural communication. The synchronization of oscillations between one brain region and another ("synchronization") is thought to constitute the final level of information encoding by providing spatiotemporal coordination: first level (neurons): action potentials; second level (neuronal networks): neuronal oscillations (Engel et al., Nature Reviews Neuroscience, 2001, 2, 704-716: Dynamic predictions: oscillations and synchrony in top-down processing).Importantly, there is emerging evidence that delicately balanced patterns of synchronization and desynchronization in space and time are fundamental to the functional performance of the nervous system (Schnitzler et al., Nature Reviews Neuroscience, 2005, 6, 285-296: Normal and pathological oscillatory communication in the brain).

[0011] Abnormal synchronization processes (too high and / or too long synchronization (i.e., also called hypersynchronization) or too low synchronization (i.e., also called dyssynchronization)) are associated with several brain disorders, such as epilepsy, schizophrenia, dementia, and Parkinson's disease (Schnitzler et al., Nature Reviews Neuroscience, 2005, 6, 285-296: Normal and pathological oscillatory communication in the brain).

[0012] Currently, modulation of neuronal electrical activity patterns (neuromodulation) can be induced by electrical stimulation. Current techniques for generating electrical stimulation in the brain utilize either direct electrical stimulation or induction of an electric field by applying current through a magnetic coil. Because certain neurological disorders affect deep brain regions and the penetration depth of electric fields is weak, surgical implantation of electrodes into the brain to deliver continuous electrical stimulation has been implemented, constituting a "deep brain stimulation" (DBS) technique. Its effectiveness depends on the parameters used for stimulation, particularly the frequency. In 1987, high-frequency stimulation (≥100 Hz) of the ventralis intermedius (VIM) with implanted electrodes was found to reduce tremor symptoms in patients with Parkinson's disease (Benabid et al., Applied Neurophysiology, 1987, 50, 344-346: Combined (thalamotomy and stimulation) stereotactic surgery of the VIM thalamic nucleus for bilateral Parkinson's disease). In monkeys, high-frequency stimulation (>100 Hz) compared with low-frequency stimulation (<50 Hz) has been shown to alter the temporal firing patterns of neurons in the external pallidal segment (GPe) and internal pallidal segment (GPi) (a regular firing pattern synchronized with the stimulation), which reduces bradykinesia and rigidity by blocking the transmission of altered patterns of neural activity in the basal ganglia to their target structures in the thalamus and brainstem (Hashimoto et al., The Journal of Neuroscience, 2003, 23(5), 1916-1923: Stimulation of the subthalamic nucleus changes the firing pattern of pallidal neurons). DBS is currently approved for treating several movement disorders (Parkinson's disease, dystonia, essential tremor, epilepsy) and psychiatric disorders (obsessive-compulsive disorder, depression).

[0013] However, several drawbacks may be associated with DBS, the primary drawback being the invasiveness of the technique and the risk of various complications, such as bleeding, seizures, infection, lead migration, and lead breakage (Fenoy et al., J Neurosurg, 2014, 120, 132-139: Risks of common complications in DBS surgery: management and avoidance).

[0014] The focality of the electric field generated within the target (i.e., spatial resolution) is another concern. The spread of electrical stimulation has also been associated with side effects such as depression. Much research has been devoted to designing new types of electrodes that can shift and confine stimulation within specific areas (Luan et al., Frontiers in Neuroengineering, 2014, 7(27), 1-9: Neuromodulation: present and emerging methods). Other technical aspects are under evaluation: the electrodes (or leads), their size, the invasiveness of DBS devices, the materials that make up the leads, their compatibility with (magnetic resonance) imaging techniques, and the battery life of internal pulse generators (IPGs) related to the need for continuous stimulation.

[0015] The other major existing types of electrical stimulation, i.e., transcranial electrical stimulation or transcranial magnetic stimulation, have the advantage of being non-invasive, but the penetration depth of the electric field is weak. Therefore, their application is limited to stimulating the cerebral cortex (they cannot reach deep brain regions). Furthermore, their spatial resolution remains low.

[0016] Electrical stimulation of the brain remains a relevant method for treating neurological disorders, however, to avoid side effects, e.g., psychiatric side effects, and ultimately to improve the benefit / risk ratio of treatment, there is a need for more localized delivery of electrical stimulation and increased penetration depth without affecting surrounding brain regions.

[0017] Recently, non-invasive neurostimulation techniques have been envisioned, such as the use of light or ultrasound to directly stimulate neurons, but these techniques suffer from poor spatial resolution.

[0018] Interestingly, nanomaterials with unique properties have been explored as mediators for converting wirelessly transmitted primary stimuli into localized secondary stimuli, mainly electric fields or heat, at the nanomaterial-neuron interface (Wang Y. & Guo L. Frontiers in Neuroscience. 2016; vol. 10, Article 69, Nanomaterial-enabled neural stimulation). To this end, photoelectric conversion using quantum dots, photothermal conversion using gold nanomaterials, magnetoelectric conversion using magnetoelectric nanoparticles, magnetothermal conversion using superparamagnetic nanoparticles, and acoustoelectric conversion using piezoelectric nanomaterials have been demonstrated.

[0019] Most of these emerging technologies using nanomaterials require the simultaneous development of an energy source to provide neural stimulation and the conversion of incoming energy into an efficient secondary stimulus, which requires well-defined nanoparticle structure and composition and persistence of the nanoparticle structure and composition over time.

[0020] For example, magnetoelectric (ME) nanoparticles are composite nanoparticles that exhibit both piezoelectric and magnetostrictive properties. Specifically, the ME effect, enabled by CoFe2O4-BaTiO3 nanoparticles, for example, is the result of the combined action of two separate materials: a magnetostrictive (CoFe2O4) material and a piezoelectric (BaTiO3) material. More precisely, when CoFe2O4-BaTiO3 nanoparticles are exposed to a magnetic field, first, the magnetostrictive material generates local stress by changing its length (volume), and second, the piezoelectric material generates polarization (charge) in response to this local stress. Neither magnetostrictive nor piezoelectric materials can generate ME effect or polarization by themselves when exposed to a magnetic field, as explained by Grossinger R. et al. (Grossinger R. et al., Journal of Magnetism and Magnetic Materials, 2008, 320, 1972-1977: The physics of magnetoelectric composites). Summary of the Invention [Means for solving the problem]

[0021] The present invention features nanoparticles and / or nanoparticle aggregates (aggregates of nanoparticles) for use in preventing or treating a neurological disorder (typically a disorder of a neuronal network) or at least one symptom thereof when the nanoparticles or nanoparticle aggregates are exposed to an electric field, typically applied by deep brain stimulation (DBS), transcranial electrical stimulation (TES) or transcranial magnetic stimulation (TMS).

[0022] The nanoparticles or nanoparticle aggregates described herein by the inventors normalize (improve) the synchronization of neuronal oscillations within and / or between neuronal networks and within and / or between distinct brain regions, and increase the spatial resolution (focality) of electrical stimulation using standard electrical stimulation techniques, thereby helping to restore a subject / patient to a healthy state.

[0023] Furthermore, the nanoparticles or nanoparticle aggregates of the present invention allow for a reduction in the applied current, voltage, pulse width and / or frequency, thereby reducing the known potential toxicities associated with applied / induced currents.

[0024] Short description Advantageously described herein for the first time are nanoparticles or nanoparticle aggregates for use in preventing or treating a neurological disorder or at least one symptom thereof in a subject in need thereof, when the nanoparticles or nanoparticle aggregates are exposed to, excited or activated by, an electric field / electrical stimulation. The material of the nanoparticles or nanoparticle aggregates is typically a conductive material, a semiconducting material, a dielectric constant ε of 200 or greater, or a material having a dielectric constant ε of 200 or greater. ijk Insulating materials with a dielectric constant ε of 100 or less ijk The insulating material is selected from the group consisting of:

[0025] Also described herein is the use of nanoparticles or nanoparticle aggregates for preparing a composition for preventing or treating a neurological disorder described herein or at least one symptom thereof in a subject in need thereof.

[0026] Also provided herein is a composition for use in preventing or treating a neurological disorder or at least one symptom thereof in a subject exposed to an electric field, the composition comprising or consisting of nanoparticles and / or nanoparticle aggregates and a pharmaceutically acceptable support, wherein the material of the nanoparticles or nanoparticle aggregates is typically a conductive material, a semiconducting material, a material with a dielectric constant ε of 200 or greater, ijk Insulating materials with a dielectric constant ε of 100 or less ijk Also described is a composition wherein the insulating material is selected from an insulating material having the formula:

[0027] Further, the present invention includes at least two distinct nanoparticles and / or nanoparticle aggregates, each nanoparticle or nanoparticle aggregate being made of a conductive material, a semiconductive material, a material having a dielectric constant ε of 200 or greater. ijk Insulating materials with a dielectric constant ε of 100 or less ijk and its use, typically in / method of preventing or treating a neurological disorder or at least one symptom thereof in a subject. DETAILED DESCRIPTION OF THE INVENTION

[0028] Detailed Description The human nervous system is estimated to consist of approximately 800 to 120 billion nerve cells (Herculano-Houzel S. Frontier in Human Neuroscience (2009), 3(31): 1-11, The human brain in numbers: a linearly scaled-up primate brain). The defining property of a neuron (or nerve cell) is its ability to transmit electrical signals in the form of action potentials.

[0029] Neurons / nerve cells constitute the fundamental nodes of the brain. Neurons can communicate with each other in a highly structured manner to form neuronal networks. Neurons communicate via synaptic connections. Within neurons, nanocircuitry constitutes the underlying biochemical machinery for mediating important neuronal properties, such as learning and memory and the generation of neuronal rhythms.

[0030] Microcircuits can be formed by just a few interconnected neurons and can perform advanced tasks, such as mediating reflexes, processing sensory information, initiating movement, and mediating learning and memory. Macrocircuits are more complex networks consisting of multiple embedded microcircuits. Macrocircuits mediate higher brain functions, such as object recognition and cognition. Thus, multiple levels of networks populate the nervous system.

[0031] Neural Network Excitability Neurons transmit messages electrochemically (i.e., chemicals / ions create electrical signals). Important ions in the nervous system are sodium, potassium, calcium, and chloride. When a neuron is not transmitting a signal, it is in its "resting state." When a neuron is in its resting state, the inside of the neuron is negative relative to the outside. The concentrations of various ions attempt to balance on both sides of the membrane, but this balance is impossible. This is because the cell membrane allows only some ions to pass through channels (ion channels). In addition to these selective ion channels, there are pumps that use energy to move three sodium ions out of the neuron for every two potassium ions that enter. Finally, when all these forces are balanced and the voltage difference between the inside and outside of the neuron is measured, the resting membrane potential (also known as "resting potential") of the neuron is approximately -70 mV. This means that the inside of the neuron is 70 mV lower than the outside. In the resting state, there are relatively more sodium ions outside the neuron and more potassium ions inside the neuron. An action potential (also identified as a "spike" or "impulse") occurs when a neuron leaves the cell body to send information down the axon. This means that some event (stimulus) moves the resting potential toward 0 mV. When depolarization reaches approximately -55 mV, the neuron fires an action potential. If the depolarization does not reach this critical threshold level, no action potential will fire (on / off mechanism). Also, once the threshold level is reached, an action potential of fixed amplitude will always fire. Therefore, either the depolarization does not reach the threshold or a complete action potential is generated.

[0032] There is a great deal of variability in the propagation speed of an action potential. In fact, the propagation speed of an action potential in a nerve can vary from 100 meters per second to less than a tenth of a meter per second. The time constant is a measure of how quickly the membrane will respond in time to a stimulus, while the spatial constant (also called the length constant) is a measure of how well the potential will spread along the axon as a function of distance.

[0033] Connectivity within and between neuronal networks There are three types of connectivity networks used to investigate communication within and across the brain. Structural connectivity is based on the detection of fiber tracks that physically connect brain regions. These are anatomical network maps that show the possible paths signals can travel through the brain. Functional connectivity identifies activity in brain regions with similar frequency, phase, and / or amplitude of correlated activity. Effective connectivity uses functional connectivity information and goes one step further to determine the direct or indirect influence one neural system can have on another, more specifically the direction of dynamic information flow within the brain (Bowyer et al., Neuropsychiatric Electrophysiology, 2016, 2(1), 1-12: Coherence: a measure of the brain networks: past and present).

[0034] Synchronized activity within neuronal networks can be detected by imaging using magnetoencephalography (MEG), electroencephalography (EEG), functional magnetic resonance imaging (FMRI), or positron emission tomography (PET), followed by network connectivity analysis. MEG or EEG are preferred because they have high temporal resolution for resolving the dynamic flow of information. Brain connectivity analysis is performed to map the communication networks necessary for the brain to function. Specific brain regions are specialized to process specific types of information. Imaging techniques have revealed that these regions connect and communicate with other specialized regions across brain networks. "Coherence" (Bowyer et al., Neuropsychiatric Electrophysiology, 2016, 2(1), 1-12: Coherence a measure of the brain networks: past and present) is a mathematical technique that quantifies the frequency and amplitude of the synchrony (synchronization or synchronization) of neuronal patterns of oscillatory brain activity. Detection of neuronal synchronous activity can be used to determine the health or integrity of functional connectivity in the human brain. Overlaying functional connectivity maps onto structural connectivity images and using the direction of information flow derived from effective connectivity provides a comprehensive understanding of how the brain functions. These techniques are useful for evaluating treatments based on pre- and post-treatment brain connectivity imaging.

[0035] The intact brain displays complex patterns of synchronous activity associated with different "states" of the organism, ranging from slow delta rhythms (0.5-4 Hz) to theta (4-8 Hz), alpha (8-12 Hz), beta (15-30 Hz), and gamma (30-70 Hz) oscillations. Interestingly, isolated cultures of cortical structures provide a convenient system for examining the rules controlling the emergence, generation, and spread of network firing (spikes) and bursts (clusters of spikes) in populations of densely interconnected neurons. Network activity can be recorded noninvasively and over long periods with finite temporal resolution using multi-electrode arrays. Two-dimensionally isolated cultures can be used as a viable test system to study the rules that control the formation and maintenance of network activity in the brain, allowing the testing of hypotheses that cannot be addressed in the intact brain (Cohen E. et al., Brain Research, 2008, 1235, 21-30: Determinants of spontaneous activity in networks of cultured hippocampus).

[0036] Advantageously described herein for the first time are nanoparticles or nanoparticle aggregates for use in preventing or treating a neurological disorder or at least one symptom thereof in a subject in need thereof when the nanoparticles or nanoparticle aggregates are exposed to an electric field. The material of the nanoparticles or nanoparticle aggregates is typically a conductive material, a semiconducting material, a material with a dielectric constant ε of 200 or greater. ijk Insulating materials with a dielectric constant ε of 100 or less ijk The insulating material is selected from the group consisting of:

[0037] The term "treatment" refers to a therapeutic procedure or measure that can prevent, alleviate, or cure a disease, disorder, or dysfunctional condition described herein. Such treatment is intended for a mammalian subject, preferably a human subject, in need of such treatment. Thus, subjects are contemplated who have already been identified (diagnosed) as suffering from a disease, disorder, or dysfunctional condition described herein, or subjects who are considered to be "at risk of developing" such a disease, disorder, or dysfunctional condition for which the treatment is a preventive or prophylactic treatment.

[0038] Abnormal modulation of oscillatory transmission between neurons is actually present in different types of neurological diseases or disorders (also identified herein as "neural diseases or disorders") (Uhlhaas et al., Neuron, 2006, 52, 155-168: Neural synchrony in brain disorders: relevance for cognitive dysfunctions and pathophysiology; Basar E. et al. International Journal of Psychophysiology 103 (2016) 135-148, What does the broken brain say to the neuroscientist? Oscillations and connectivity in schizophrenia, Alzheimer's disease, and bipolar disorder).

[0039] The human nervous system is divided into the central nervous system (CNS) and the peripheral nervous system (PNS). The CNS is in turn divided into the brain and spinal cord, which reside in the cranial cavity of the skull and the spinal canal, respectively. The CNS and PNS work in coordination to integrate sensory information and control motor and cognitive functions. Figure 1 shows a simplified diagram of the brain structure.

[0040] Synchronization (or synchronization) within and / or between neuronal networks within and / or between distinct brain regions is achieved temporally through the coordination of neuronal oscillations (Buzsaki et al., Science, 2004, 304, 1926-1929: Neuronal oscillations in cortical networks). Movement disorders are typically due to hypersynchronization, which means that the synchronization of oscillations within and / or between neuronal networks within and / or between distinct brain regions is too high and / or too long. Psychiatric and cognitive disorders are typically due to synchronization disorders, which means that the synchronization of oscillations within and / or between neuronal networks within and / or between distinct brain regions is reduced (typically showing reduced activity) or even lost (see Table 1: Abnormal neural synchronization in neurological disorders (adapted from Uhlhaas et al., Neuron, 2006, 52, 155-168: Neural synchrony in brain disorders: relevance for cognitive dysfunctions and pathophysiology)).

[0041] [Table 1]

[0042] "Coherence" is a mathematical technique that quantifies the frequency and amplitude of the synchrony (synchronization or synchronization) of neuronal patterns of oscillatory brain activity. Therefore, excessively high and low coherence can be thought to be involved in motor and mental / cognitive disorders, respectively (Bowyer et al., Neuropsychiatric Electrophysiology, 2016, 2(1), 1-12: Coherence a measure of the brain networks: past and present) (see Figure 2).

[0043] In certain embodiments, the neurological disease or disorder targeted in the context of the present invention is selected from Parkinson's disease, Alzheimer's disease, epilepsy, obsessive-compulsive disorder, autism spectrum disorder, depressive disorder, dystonia, Tourette's syndrome, schizophrenia, stroke, aphasia, dementia, tinnitus, Huntington's disease, essential tremor, bipolar disorder, anxiety disorder, addiction disorder, vegetative state of consciousness, e.g., selected from Parkinson's disease, Alzheimer's disease, epilepsy, obsessive-compulsive disorder, autism spectrum disorder, depressive disorder, dystonia, Tourette's syndrome, schizophrenia, stroke, aphasia, dementia, tinnitus, Huntington's disease, essential tremor, bipolar disorder, addiction disorder, vegetative state of consciousness, and at least one symptom thereof.

[0044] As already explained herein above, neurological diseases or disorders can be classified according to the primary symptoms affecting the patient, which are movement disorders, psychiatric (mood / social) disorders and cognitive disorders, as further detailed herein below.

[0045] Examples of movement disorders Parkinson's disease Parkinson's disease (PD) affects approximately 7 to 10 million people worldwide and is characterized by tremor, dyskinesia, bradykinesia, and freezing of gait. PD is a slowly progressive degenerative disorder of the brain. PD affects neurons in the basal ganglia and substantia nigra, areas of the brain. Neurons in the substantia nigra produce dopamine, a neurotransmitter that acts as a chemical messenger in brain circuits important for planning and controlling physical movement. In PD, dopamine-producing neurons in the substantia nigra die prematurely in some individuals (Corti et al., Physiol Rev, 2011, 91, 1161-1218: What genetics tells us about the causes and mechanisms of Parkinson's disease). When dopamine receptors in the striatum are insufficiently stimulated, parts of the basal ganglia become either understimulated or overstimulated. In particular, the subthalamic nucleus (STN) becomes overactive and acts as a facilitator on the globus pallidus interna (GPi). Overstimulation of the GPi has an overinhibitory effect on the thalamus, which in turn reduces its output, resulting in motor slowing and rigidity (Guo et al., Frontiers in Computational Neuroscience, 2013, 7, 124, 1-11: Basal ganglia modulation of thalamocortical relay in Parkinson's disease and dystonia).

[0046] The lack of dopamine in PD is associated with excessive synchronization of oscillations at beta frequencies throughout the cortico-basal ganglia motor network. Indeed, dopamine levels in the basal ganglia are predicted to suppress beta synchronization, which in turn mediates the dopaminergic involvement required for motor anticipation (Jenkinson et al., Trends in Neuroscience, 2011, 34(12), 611-618: New insights into the relationship between dopamine, beta oscillations, and motor function). If dopamine levels in the basal ganglia are not high enough, synchronization of beta oscillations can no longer be controlled, and motor slowness can appear. Other observations in patients with Parkinson's disease lead to the conclusion that cortical oscillations in the beta band initiate and drive cortical oscillations in the basal ganglia (Lalo et al., The Journal of Neuroscience, 2008, 28(12), 3008-3016: Patterns of bidirectional communication between cortex and basal ganglia during movement in patients with Parkinson's disease).

[0047] Deep brain stimulation (DBS) can be used to treat symptoms of tremor and rigidity (Eusebio et al., J Neurol Neurosurg Psychiatry, 2011, 82, 569-573: Deep brain stimulation can suppress pathological synchronization in parkinsonian patients). Treatment of PD symptoms with DBS has been approved by the FDA since 2002 (and for essential tremor since 1997). The most commonly used stimulation parameters that can be used in the context of the present invention in combination with the nanoparticles described herein are a frequency of 130-185 Hz, a pulse width of 60-210 μs, and a voltage amplitude of 1-3.5 V (Kuncel et al., Clinical Neurophysiology, 2004, 115, 2431-2441: Selection of stimulus parameters for DBS). Electrical stimulation is typically performed in the basal ganglia, STN, and GPi. As mentioned above, cortical beta oscillations are also involved in the pathophysiology of the disease, so transcranial stimulation of the cortex (e.g., transcranial magnetic stimulation - TMS) can also be used to treat the symptoms of Parkinson's disease (Cantello et al., Brain Research Reviews, 2002, 38, 309-327: Transcranial magnetic stimulation and Parkinson's disease).

[0048] dystonia Dystonia is a neurological disorder characterized by abnormal, involuntary twisting and rotating movements that reflect impaired motor system function. Several forms of dystonia exist, depending on the affected body part, their genetic origin, and the type of neurotransmitter involved. In dystonia, the central nervous system (CNS) exhibits incomplete inhibition, which causes a loss of reciprocal spinal inhibition between opposing muscles. For example, in upper limb dystonia, abnormal synchronization of neurons / nerves providing input signals to forearm antagonist muscles results in co-contraction of these antagonist muscles (the symptom of dystonia) (Farmer et al., Brain, 1998, 121, 801-814: Abnormal motor unit synchronization of antagonist muscles underlies pathological co-contraction in upper limb dystonia).

[0049] A DBS target site showing interesting anti-dystonic effects is the globus pallidus interna (GPi-DBS). GPi-DBS was approved by the FDA in 2003 for patients with chronic, medically refractory dystonia (Hu et al., Translational Neurodegeneration, 2014, 3(2), 1-5: Deep brain stimulation for dystonia). Stimulation of the ventral intermedius (VIM) nucleus of the thalamus (VIM-DBS) has a much weaker effect. Stimulation using the subthalamic nucleus (STN-DBS) has been experimental. GPi-DBS provides relief from the core symptoms of dystonia, but the full therapeutic effect can take weeks to months to manifest (Dressler et al., J Neural Transm, 2015, DOI 10.1007 / s00702-015-1453-x: Strategies for treatment of dystonia). The most commonly used stimulation parameters that can be used in the context of the present invention in combination with the nanoparticles described herein are a frequency of 130-180 Hz, a pulse width of 60-210 μs, and an amplitude of 2-5 volts.

[0050] epilepsy Epilepsy is a brain disorder that affects approximately 50 million people worldwide and is primarily characterized by recurrent and unpredictable interruptions of normal brain function, called epileptic seizures. Epilepsy is not a single disease entity, but a spectrum of disorders reflecting underlying brain dysfunction that can result from many different causes (genetic mutations, brain tumors, head trauma, stroke, alcoholism, brain inflammation; infections such as meningitis, HIV, or viral encephalitis) (Fisher et al., Neurology, 2015, 28(2), 130-135: Redefining epilepsy). An epileptic seizure is defined as a transient occurrence of signs and / or symptoms due to excessive synchronous neuronal activity in the brain (Fisher et al., Epilepsia, 2005, 46(4), 470-472: Epileptic seizures and epilepsy: definitions proposed by the International League Against Epilepsy (ILAE) and the International Bureau for Epilepsy (IBE)). The cerebral cortex is a major component in the development of epileptic seizures, and many people are diagnosed with focal frontal lobe seizures or mesial temporal lobe seizures (National Institute of Neurological Disorders and Stroke: http: / / www.ninds.nih.gov / disorders / epilepsy / detail_epilepsy.htm#3109_7). The identification of areas of elevated local synchronization or "hypersynchrony" in the cortex suggests that local hypersynchrony may be a marker of seizure-generating areas (Schevon et al., Neuroimage, 2007, 35(1), 140-148: Cortical abnormalities in epilepsy revealed by local EEG synchrony).

[0051] Neurostimulation for the treatment of epilepsy can take the form of peripheral nerve stimulation, e.g., vagus nerve stimulation (VNS), spinal cord stimulation, transcranial brain stimulation (TES or TMS), or deep brain stimulation (DBS). Responsive neurostimulation is another strategy. In this case, stimulation is delivered only when seizure onset is detected. In 2004, a proof-of-principle study of responsive neurostimulation was published in three epilepsy patients, two of whom were treated with cortical grid or strip electrodes and one with deep hippocampal electrodes. Individual seizures could be terminated at the onset of stimulation, resulting in a 50–75% reduction in overall seizure frequency (Kossoff et al., Epilepsia, 2004, 45, 1560–1567: Effect of an external responsive neurostimulator on seizures and electromagnetic discharges during subdural electrode monitoring). Both VNS and responsive neurostimulation are approved by the FDA in the United States for the treatment of certain types of epilepsy. DBS of the anterior thalamic nucleus (ANT) is approved in some European Union countries (Fisher et al., Nature Reviews Neurology, 2014, 10, 261-270: Electrical brain stimulation for epilepsy). A multicenter, randomized, controlled trial of bilateral stimulation of the anterior thalamic nucleus for epilepsy (SANTE) was conducted in 110 adult patients with at least six partial seizures per month but no more than 10 per day, with or without secondary generalization. Baseline seizure frequency was recorded for 3 months, followed by DBS lead implantation, a 1-month recovery period, and a 3-month blinded period of either active stimulation or no stimulation (placebo). On-stimulation parameters were 1 minute of 90-μs pulses of 5 V at 145 Hz, followed by 5 minutes of no stimulation. Seizure frequency decreased by a median of 20% from baseline during the 1-month recovery period. Subsequently, seizure frequency in the two treatment groups was clearly separated, with a median improvement of 40.4% in the active group and 14.5% in the placebo group.The active group had significantly fewer complex partial seizures and significantly fewer seizure types pre-designated by patients as "most severe" (Fisher et al., Epilepsia, 2010, 51, 899-908: Electrical stimulation of the anterior nucleus of thalamus for treatment of refractory epilepsy). The electrical stimulation / treatment conditions described herein can be used in the context of the present invention in combination with the nanoparticles described herein.

[0052] Examples of mental disorders (mood and social disorders) Obsessive-Compulsive Disorder (OCD) Obsessive-compulsive disorder (OCD) is a common psychiatric disorder that is often chronic, severe, and extremely debilitating, and is usually refractory to treatment, with a significant proportion of patients either not responding or achieving only partial relief.

[0053] Functional neuroimaging studies have demonstrated dysfunction in the orbitofrontal cortex, basal ganglia, and striatum.

[0054] One study showed that acute OCD symptoms may be associated with abnormal high-oscillatory activity in the subthalamic nucleus (STN), particularly in the left hemisphere and in the delta-alpha (1-12 Hz) frequency range (Bastin et al., Cortex, 2014, 60, 145-150: Changes of oscillatory activity in the subthalamic nucleus during obsessive-compulsive disorder symptoms: two case reports). Furthermore, some subthalamic neurons specifically increased their firing rate when doubts arose during a checking task (Burbaud et al., Brain, 2013, 136(1), 304-317: Neuronal activity correlated with checking behavior in the subthalamic nucleus of patients with obsessive-compulsive disorder).

[0055] DBS of the ventral anterior limb of the internal capsule (VC) and the adjacent ventral striatum (VS) has been approved in the EU for the treatment of severe and highly treatment-resistant OCD (VC / VS-DBS). To demonstrate the therapeutic promise of this technique, four clinical centers collaborated closely over an 8-year period in a small-scale study, and their data were analyzed (Greenberg et al., Molecular Psychiatry, 2010, 15, 64-79: Deep brain stimulation of the ventral internal capsule / ventral striatum for obsessive-compulsive disorder: worldwide experience). DBS leads were implanted bilaterally to stimulate the dorsal-ventral region of the anterior capsule. Electrical stimulation frequencies ranged from 100 to 130 Hz, and pulse widths ranged from 90 to a maximum of 450 μs. DBS intensity typically ranged from 2 to 8 V, resulting in currents ranging from approximately 2 to 15 mA, depending on electrode impedance (typically 500 to 1000 Ω). The conclusion of these combined data is that clinically significant symptom reduction and functional improvement were observed in approximately two-thirds of highly treatment-resistant patients (26 patients total), indicating encouraging therapeutic efficacy following VC / VS-DBS. The electrical stimulation / treatment conditions described herein can be used in the context of the present invention in combination with the nanoparticles described herein.

[0056] Autism spectrum disorder Autism is a neurodevelopmental syndrome defined by deficits in social interaction and communication and abnormally restricted and repetitive behaviors. It is a disorder that usually begins in infancy, or at the latest within the first three years of life. Autism is a heterogeneous condition (no two children or adults with autism have the same profile), which has led to the concept of "autism spectrum disorder," which is classified into several levels of the disorder according to the degree of language deficit or global cognitive delay and the severity of social or behavioral symptoms (Lord et al., Neuron, 2000, 28, 355-363: Autism spectrum disorders). At one end of the spectrum, individuals with autism are high-functioning and able to live independently and maintain employment. Individuals characterized as low-functioning exhibit more severe symptoms: language (or even non-verbal) difficulties, poor social communication, self-injurious behaviors (SIB), temper tantrums, and potentially life-threatening aggression. An important trend in structural and functional brain research in autism is the involvement of networks for socio-emotional processing: the limbic system, the face processing system, and the mirror neuron network. Deficits in the synchronization of gamma-band oscillations have been shown to be involved in the emergence of symptoms (Sinha et al., Neurosurgery Focus, 2015, 38(6), E3: Deep brain stimulation for severe autism: from pathophysiology to procedure).

[0057] Two major symptom domains that may require treatment in severe autism are social deficits, including being nonverbal and unresponsive to conversation and potentially life-threatening SIB. The amygdala is thought to play a key role in the pathophysiology of these abnormalities. Alterations in excitatory or inhibitory control are implicated in abnormalities in the pathophysiology of autism. Neuromodulation targeting the amygdala with DBS may represent a therapeutic intervention for patients with severe autism. Three cases of DBS treatment have been reported in the literature. The goal of treatment was primarily to reduce disease-related movement disorders, such as stereotypies (repetitive movement patterns) and self-injurious behaviors (SIB) (Sinha et al., Neurosurgery Focus, 2015, 38(6), E3: Deep brain stimulation for severe autism: from pathophysiology to procedure; Stocco et al., Parkinsonism and related disorders, 2014, 20, 1035-1036: Deep brain stimulation for severe secondary stereotypies). DBS parameters that can be used in the context of the present invention in combination with the nanoparticles described herein are a frequency of 80-130 Hz, a pulse width of 120-210 μs, and a voltage amplitude of 2.5-6.5 V (Sinha et al., Neurosurgery Focus, 2015, 38(6), E3: Deep brain stimulation for severe autism: from pathophysiology to procedure). In one of the three cases, DBS in the basolateral nucleus was reported to result in significant improvement of autism-related symptoms, such as social contact, and to affect modulation and nighttime sleep (Sturm et al., Frontiers in Human Neuroscience, 2013, 6, 341, 1-10).

[0058] Schizophrenia Schizophrenia is a chronic mental illness characterized, inter alia, by the following symptoms: positive symptoms reflecting abnormal mental activity (hallucinations and delusions); negative symptoms corresponding to deficits in normally present mental functioning (disordered thought, blunted affect, poverty of speech). In terms of causes of lifetime disability, schizophrenia ranks among the top ten.

[0059] Marked ventricular enlargement and increased cerebrospinal fluid volume on the brain surface suggest that the brain is shrinking. This loss of gray matter and the reduction in the number of synaptic structures on neurons suggest that schizophrenia is a neurodevelopmental disorder, meaning that brain abnormalities (as opposed to neurodegenerative disorders) are already present in patients with the first case.

[0060] It has been demonstrated that the observed neural circuit impairments in schizophrenic patients result from a failure of gamma-band synchronization (Spencer et al., The Journal of Neuroscience, 2003, 23(19), 7407-7411: Abnormal neural synchrony in schizophrenia; Gallinat et al., Clinical Neurophysiology, 2004, 115, 1863-1874: Reduced oscillatory gamma-band responses in unmedicated schizophrenic patients indicate impaired frontal network processing).

[0061] Electroconvulsive therapy (ECT), or shock treatment, has proven to be one of the most successful non-pharmacological treatments for schizophrenia (Payne et al., J. Psychiatr. Pract., 2009, 15(5), 346-368: Electroconvulsive therapy part I: a perspective on the evolution and current practice of ECT) and can be used in the context of the present invention in combination with the nanoparticles described herein. Electroconvulsive therapy (ECT) involves the continuous application of an electric current to the brain, which induces seizures comparable to epileptic seizures.

[0062] DBS can also be used for electrical stimulation to treat the symptoms of schizophrenia. For example, DBS of the nucleus accumbens (NAcc) in depression (frequency 145Hz, pulse width 90μs, voltage amplitude 4V) can alleviate anhedonia, i.e., restore pleasure (Schlaepfer et al., Neuropsychopharmacology, 2008, 33, 368-377: Deep brain stimulation to reward circuitry alleviates anhedonia in refractory major depression), and can be used in the context of the present invention in combination with the nanoparticles described herein.

[0063] Examples of cognitive impairment Alzheimer's disease Alzheimer's disease (AD) is a neurodegenerative disorder that results in mental, behavioral, and functional decline and progressive loss of learning ability. Approximately 200,000 people under 65 with AD make up the younger-onset AD population, while 5 million are 65 or older.

[0064] Recent evidence indicates that the cognitive impairment seen in Alzheimer's disease is related to functional disconnection of neurocognitive networks. Analysis of global EEG synchronization reveals widespread decreases in alpha, beta, and gamma band synchronization, accompanied by increases in delta band synchronization. In patients with mild Alzheimer's disease, loss of beta band synchronization has been shown to correlate with cognitive impairment (Schnitzler et al., Nature Reviews Neuroscience, 2005, 6, 285-296: Normal and pathological oscillatory communication in the brain). Clinical studies are underway to evaluate the potential of DBS for the treatment of Alzheimer's disease. In combination with the nanoparticles described herein, stimulation parameters that can typically be used in the context of the present invention are a frequency of 130 Hz, a pulse width of 60 or 90 μs, and an amplitude voltage of 3-5 V (Laxton et al., World Neurosurgery, 2013, 80, S28.E1-S28.E8: Deep brain stimulation for the treatment of Alzheimer's disease and dementias).

[0065] Electrical stimulation In the context of the present invention, the electric field is preferably applied by deep brain stimulation, transcranial electrical stimulation or transcranial magnetic stimulation. Vagus nerve stimulation (VNS) and spinal cord stimulation can also be applied in the context of the present invention, for example, in the context of epilepsy. Any other known separate electrical stimulation method, such as noninvasive deep brain stimulation via temporally interfering electric fields, can be used in the context of the present invention, for example, the method described in Grossman N. et al. (Cell, 2017, 169, 1029-1041: Noninvasive deep brain stimulation via temporally interfering electric fields).

[0066] In the context of the present invention, the two main brain regions for electrical stimulation are the deep brain and the cerebral cortex.

[0067] Electrical stimulation can reach deep brain regions by surgical implantation of electrodes [the penetration depth of the electrodes below the skin surface is more than 10 cm, and the penetration range of the electric field generated by the electrodes is several millimeters: deep brain stimulation (DBS)].

[0068] When reaching the cerebral cortex, electrical stimulation is performed superficially (the penetration depth of the electric field is usually 2 cm or less below the skin surface; with certain techniques—specific coils for transcranial magnetic stimulation—the electric field can reach a depth of 5 cm). Techniques for providing such electric fields typically include transcranial magnetic stimulation (TMS), repetitive transcranial magnetic stimulation (rTMS), transcranial direct current stimulation (tDCS), high-definition transcranial direct current stimulation (HD-tDCS), transcranial electrical stimulation (TES), transcranial alternating current stimulation (tACS), transcranial pulsed current stimulation (tPCS), and transcranial random noise stimulation (tRNS; alternating current with random amplitude and frequency). The most widely used in clinical trials and preferred in the context of the present invention are TMS and tDCS.

[0069] deep brain stimulation DBS devices contain three key components: stimulation electrodes (also called leads), extension cables, and a programmable pulse generator (PG), similar to a cardiac pacemaker. The device is implanted in two stages. During the first stage, unilateral or bilateral leads are stereotactically implanted into specific treatment targets deep in the brain. During the second stage, which can occur the same day or later, a pulse generator is implanted under the skin of the anterior chest wall (under the clavicle) or abdomen and connected to the lead wires via subcutaneously tunneled extension cables. Leads are typically 40 cm long, 1.27 mm in diameter, and, depending on the indication, 1.5 mm or 3 mm wide. They provide multiple contact electrodes (most often four contact electrodes on the lead, i.e., tetrapolar electrodes) spaced 0.5–4 mm apart. One or two contact electrodes can be stimulated (if two electrodes are used, one is the anode and the other is the cathode). Via the contact electrodes, electrical stimulation is applied directly to regions deep in the brain, particularly the basal ganglia. Typical electrical currents that can be used in the context of the present invention are pulsed at high frequency [100-200 Hz, 130 Hz being most frequently used], pulse width 60-120 μs, low voltage (less than 4 V) and low current (less than 2 mA)].

[0070] The application of high frequency electrical stimulation to the basal ganglia is typically approved (at least in the United States and / or the European Union) and can be used in the context of the present invention for several movement / motor disorders, such as Parkinson's disease, dystonia, epilepsy, obsessive-compulsive disorder (OCD), and Tourette's syndrome.

[0071] Transcranial Magnetic Stimulation (TMS) Transcranial magnetic stimulation (TMS) is a non-invasive technique that has been used or is being investigated for many research and therapeutic applications, including the study of normal and pathological brain function and the treatment of neurological disorders, and can be used in the context of the present invention. TMS uses short, intense pulses of electrical current delivered to a coil placed on the subject's head to generate an electric field in the brain via electromagnetic induction. The induced electric field modulates neural transmembrane potentials, thereby modulating neural activity. The location of activation in the brain is approximately the region where the induced electric field is maximal, which in turn is determined by the geometry and placement of the stimulation coil. Two electric field spatial characteristics of interest are depth of penetration and focality, both of which are determined by the coil geometry and can be easily determined by one skilled in the art. Repetitive TMS (rTMS) is typically used for depression, pain, stroke, etc.

[0072] Transcranial direct current stimulation (tDCS) Transcranial direct current stimulation (tDCS) is a non-invasive technique that can be used in the context of the present invention. In this case, brain stimulation is performed with direct current, resulting in changes in cortical excitability. tDCS is typically administered over a 20-35 cm 2 tDCS uses a low-intensity (0.5–2 mA) constant current applied directly to the head via two electrodes (anode / cathode). Depending on the design, one electrode (reference electrode) can be placed on the forehead (above the supraorbital ridge), and the other electrode (active electrode) can be placed on the contralateral hemisphere, typically over the motor cortex (M1) or dorsolateral prefrontal cortex. The duration of stimulation most often ranges from 20–40 minutes. A portion of the current penetrates the brain, generating a peak electric field of approximately 0.3 V / m per 1 mA applied. The sustained electric field generated during tDCS modulates transmembrane neuronal potentials, affecting the level of excitability and responsiveness to synaptic inputs and modulating the firing rate of individual neurons. An increase in excitability occurs with anodal stimulation, while a decrease in excitability typically occurs with cathodal stimulation.

[0073] tDCS can be used to treat autism (Chi et al., Medical Hypotheses, 2014, 83, 614-618: Treating autism by targeting the temporal lobes), motor rehabilitation after stroke (Gillick et al., Frontiers in Human Neuroscience, 2014, 8(739), 1-9: Pediatric stroke and tDCS: method for rational individualized dose optimization), and major depressive disorder (Croarkin et al., Frontiers in Human Neuroscience, 2014, 8(669), 1-9: Developmental aspects of cortical excitability and inhibition in depressed and healthy youth: an exploratory study).

[0074] nanoparticles Described herein are nanoparticles or nanoparticle aggregates for use in the present invention for preventing or treating a neurological disorder or at least one symptom thereof in a subject when the nanoparticles or nanoparticle aggregates are exposed to an electric field, wherein the material of the nanoparticles or nanoparticle aggregates is typically a conductive material, a semiconductive material, a dielectric constant ε of 200 or greater, or a material that is ... ijk Insulating materials with a dielectric constant ε of 100 or less ijk The insulating material is selected from the group consisting of:

[0075] Nanoparticle composition Nanoparticles prepared from conductive materials The nanoparticles prepared from conductive materials may be organic or inorganic nanoparticles.

[0076] Inorganic nanoparticles prepared from conductive materials typically exhibit E° values ​​more positive than that of the standard hydrogen electrode, as measured at 25°C and 1 atm pressure (see "Reduction reactions having E° values ​​more positive than that of the standard hydrogen electrode," Handbook of chemistry and physics; David R. Lide; 88 th The nanoparticles are prepared using a metal element having a standard reduction potential E° value of about 0.01 or more, more preferably about 0.1, 0.2, 0.4, or 0.5 or more (see Table 2 of the International Publication). Typical metal elements used to prepare the nanoparticles can be selected from Tl, Po, Ag, Pd, Ir, Pt, Au, and mixtures thereof. Preferably, the metal element usable as a conductor material for preparing the nanoparticles is selected from Ir, Pd, Pt, Au, and mixtures thereof.

[0077] Organic nanoparticles prepared from conductive materials are typically prepared by organic materials having adjacent sp2 hybridized carbon centers in their structure (i.e., carbon-carbon double bonds or aromatic rings containing heteroatoms, typically N or S, within or outside the aromatic ring). Preferred organic materials are selected from polyaniline, polypyrrole, polyacetylene, polythiophene, polycarbazole, propylene, poly(3,4-ethylenedioxythiophene) and / or poly(3,4-ethylenedioxythiophene) polystyrene sulfonate.

[0078] Nanoparticles prepared from semiconductor materials Nanoparticles prepared from semiconductor materials are typically inorganic nanoparticles.

[0079] Inorganic nanoparticles are typically prepared from semiconductor materials that exhibit a relatively small energy band gap (Eg) between their valence band and conduction band. Typically, the semiconductor material has a band gap Eg of less than 3.0 eV, typically measured at room temperature (25°C). In certain embodiments, the material is an intrinsic or extrinsic semiconductor material, as further described herein below.

[0080] Intrinsic semiconductor materials typically consist of elements from Group IVA of the Mendeleev periodic table, such as silicon (Si) or germanium (Ge), mixed compositions of elements from Groups III and V of the Mendeleev periodic table, such as AlSb, AlN, GaP, GaN, InP, InN, etc., or mixed compositions of elements from Groups II and VI of the Mendeleev periodic table, such as ZnSe, ZnTe, CdTe, etc.

[0081] Extrinsic semiconductor materials typically comprise or consist of intrinsic semiconductors prepared with a high degree of chemical purity, where the intrinsic semiconductor material includes a dopant. In certain embodiments, the extrinsic semiconductor material of the nanoparticles or nanoparticle aggregates, when composed of elements from Group IV A of the Mendeleev periodic table, is doped with charge carriers selected from Al, B, Ga, In, and P. Such extrinsic semiconductor materials can be either n-type, where negative charge carriers predominate, or p-type, where positive charge carriers predominate. Typical extrinsic p-type semiconductor materials consist of silicon (Si) or germanium (Ge) doped with charge carriers selected from aluminum (Al), boron (B), gallium (Ga), and indium (In). Typical extrinsic p-type semiconductor materials consist of silicon (Si) or germanium (Ge), typically doped with phosphorus (P).

[0082] Nanoparticles prepared from insulating materials with a high relative permittivity, i.e., a relative permittivity of 200 or more. High relative permittivity ε ijkNanoparticles prepared from or consisting of insulating materials typically have a band gap Eg of 3.0 eV or greater when typically measured at room temperature (25°C) and a dielectric constant of 10 eV or greater when measured at 20°C to 30°C and 10 2 Typically measured at frequencies between 1000 and 1000 Hz (see, e.g., "Permittivity (dielectric constant) of inorganic solids"; Handbook of chemistry and physics; David R. Lide; 88 th (See Tables 12-45 in "Compilation of the static dielectric constant of inorganic solids," K.F. Young and H.P.R. Frederikse, J. Phys. Chem. Ref. Data, Vol. 2, No. 2, 1973) Relative permittivity ε of 200 or more ijk and prepared from a material having the following properties.

[0083] Such nanoparticles are typically prepared with a dielectric material that is a mixed metal oxide preferably selected from BaTiO3, KTaNbO3, KTaO3, SrTiO3, BaSrTiO3, and the like.

[0084] Nanoparticles prepared from insulating materials with a low dielectric constant (dielectric constant), i.e., a dielectric constant of 100 or less. Nanoparticles prepared from or consisting of insulating materials with low dielectric constants typically have a band gap Eg of 3.0 eV or greater when typically measured at room temperature (25°C) and a band gap Eg of 1.0 eV or greater when measured at 20°C to 30°C and 10°C. 2 Typically measured at frequencies between 1000 and 1000 Hz (see, e.g., "Permittivity (dielectric constant) of inorganic solids"; Handbook of chemistry and physics; David R. Lide; 88 thEdition; Compilation of the static dielectric constant of inorganic solids. K.F. Young and H.P.R. Frederikse. J. Phys. Chem. Ref. Data, Vol. 2, No. 2, 1973. See Tables 12-45.) A relative dielectric constant ε of 100 or less, preferably 50 or less or 20 or less. ijk and prepared from a material having the following properties.

[0085] Such nanoparticles are typically prepared with a dielectric material selected from metal oxides, mixed metal oxides, and carbon materials, where the metal element is a metal element or a lanthanide from periods 3, 5, or 6 of the Mendeleev periodic table. The dielectric material is preferably selected from Al2O3, LaAlO3, La2O3, CeO2, SiO2, SnO2, Ta2O5, ZrO2, HfO2, YO3, and carbon diamond.

[0086] Shape of nanoparticles or nanoparticle aggregates The shape of a particle or aggregate can affect its "biocompatibility," so particles or aggregates with a fairly uniform shape are preferred. For pharmacokinetic reasons, therefore, nanoparticles or aggregates that are essentially spherical, rounded, or ovoid in shape are preferred. Such shapes also favor the interaction of the nanoparticles or aggregates with or uptake by cells. Spherical or rounded shapes are particularly preferred.

[0087] The shape of nanoparticles or nanoparticle aggregates is typically assessed using transmission electron microscopy (TEM).

[0088] Dimensions or size of nanoparticles or nanoparticle aggregates For the purposes of the present invention, the terms "nanoparticles" or "nanoparticle aggregates" refer to products, in particular synthetic products, having a size in the nanometer range, typically between 1 nm and 500 nm.

[0089] The terms "aggregate of nanoparticles" or "nanoparticles' aggregate" refer to a collection of nanoparticles that are strongly bound, typically covalently bonded, to one another.

[0090] Transmission electron microscopy (TEM) can be used to measure the size of nanoparticles or nanoparticle aggregates. Similarly, dynamic light scattering (DLS) can be used to measure the hydrodynamic diameter of nanoparticles or nanoparticle aggregates in solution. These two methods can be further used one after the other to compare size measurements and confirm the size. The preferred method is DLS (see International Standard ISO22412 Particle Size Analysis - Dynamic Light Scattering, International Organization for Standardization (ISO) 2008), while the average hydrodynamic diameter of nanoparticles or nanoparticle aggregates in solution is given by the intensity.

[0091] Typically, the largest dimension or size is the diameter of a rounded or spherical nanoparticle or the longest dimension of an oval or elliptical nanoparticle.

[0092] The maximum dimension of the nanoparticles or aggregates as defined herein is typically from about 2 nm to about 250 nm, preferably from about 4 nm or 10 nm to about 100 nm or about 200 nm, and even more preferably from about 10 nm to about 150 nm.

[0093] Biocompatible coatings of nanoparticles or nanoparticle aggregates In a preferred embodiment, the nanoparticles or nanoparticle aggregates used in the context of the present invention to prepare the composition of interest can be coated with a biocompatible material selected from agents exhibiting stealth properties. The agent exhibiting stealth properties can be an agent exhibiting a steric group. Such groups can be selected from, for example, polyacrylates; polyacrylamides (poly(N-isopropylacrylamide)); polycarbamides; biopolymers; polysaccharides, such as dextran or xylan; and collagen. In another preferred embodiment, the nanoparticles or nanoparticle aggregates can be coated with a biocompatible material selected from agents that enable interaction with biological targets. Such agents can typically impart a positive or negative charge to the surface of the nanoparticles or nanoparticle aggregates. An agent that forms a positive charge on the surface of the nanoparticles or nanoparticle aggregates can be, for example, aminopropyltriethoxysilane or polylysine. The agent that forms a negative charge on the surface of the nanoparticles or nanoparticle aggregates can be, for example, a phosphate (e.g., polyphosphate, metaphosphate, pyrophosphate, etc.), a carboxylate (e.g., citrate or a dicarboxylic acid, particularly succinic acid), or a sulfate.

[0094] In a preferred embodiment, the nanoparticles or nanoparticle aggregates used in the context of the present invention are coated with a biocompatible material (i.e., a coating agent) selected from hydrophilic agents that exhibit a hydrophilic neutral surface charge or that impart a neutral surface charge to the nanoparticles. Indeed, when the nanoparticles of the present invention are administered to a subject, nanoparticles that exhibit a hydrophilic neutral surface charge or that are coated with a biocompatible agent selected from hydrophilic agents that impart a neutral surface charge to the nanoparticles are particularly advantageous for optimizing the use of the nanoparticles to treat a neurological disorder or at least one symptom thereof when exposed to an electrical stimulus / electric field.

[0095] The hydrophilic agent that imparts a neutral surface charge to the nanoparticles or nanoparticle aggregates can be an agent presenting a functional group selected from alcohols (R-OH), aldehydes (R-COH), ketones (R-CO-R), esters (R-COOR), acids (R-COOH), thiols (R-SH), sugars (e.g., glucose, fructose, ribose), acid anhydrides (RCOOOC-R), and pyrroles. The hydrophilic agent that imparts a neutral surface charge to the nanoparticles or nanoparticle aggregates can be a monomer, dimer, oligomer, polymer, or copolymer. When the agent is an oligomer, the oligomer can be an oligosaccharide, e.g., cyclodextrin. When the agent is a polymer, the polymer can be a polyester (e.g., poly(lactic acid) or polyhydroxyalkanoic acid), polyether, polyethylene oxide, polyethylene glycol, polyvinyl alcohol, polycaprolactone, polyvinylpyrrolidone, polysaccharides, e.g., cellulose, polypyrrole, etc.

[0096] Additionally, the hydrophilic agent that imparts a neutral surface charge to the nanoparticles or nanoparticle aggregates can be an agent that presents a specific group (R-) that can interact with the surface of the nanoparticles or nanoparticle aggregates, where R is typically selected from thiol, silane, carboxylic acid, and phosphate groups.

[0097] When the nanoparticles or nanoparticle aggregates are conductive or semiconductive and metal nanoparticles, R is preferably a thiol, thioether, thioester, dithiolane or carboxylic acid group. Preferably, the hydrophilic neutral coating agent is selected from thioglucose, 2-mercaptoethanol, 1-thioglycerol, thiodiglycol and hydroxybutyric acid.

[0098] When the nanoparticles or nanoparticle aggregates are insulator and oxide or mixed oxide nanoparticles, R is preferably a silane or phosphate group. Preferably, the hydrophilic neutral coating agent is hydroxymethyltriethoxysilane, fructose 6-phosphate or glucose 6-phosphate compound.

[0099] The hydrophilic agent that imparts a neutral surface charge to the nanoparticles or nanoparticle aggregates can be a zwitterionic compound, such as an amino acid, a peptide, a polypeptide, a vitamin, or a phospholipid.

[0100] The surface charge of nanoparticles or nanoparticle aggregates is typically determined by zeta potential measurements, typically in water, for a nanoparticle concentration of 0.2 to 10 g / L, as is well known to those skilled in the art, for a pH of 6 to 8, and by adding an electrolyte at a concentration in water of 0.001 to 0.2 M, e.g., 0.01 M or 0.15 M. Under the above-defined conditions, the surface charge of nanoparticles or nanoparticle aggregates is typically comprised between -10 mV and +10 mV (corresponding to a neutral surface charge), between -20 mV and +20 mV, or between -35 mV and +35 mV.

[0101] A complete biocompatible coating of the nanoparticles or aggregates can be advantageous in the context of the present invention, in order to avoid any charge on the surface of the nanoparticles, if the nanoparticles present a hydrophilic neutral surface charge. "Complete coating" means the presence of such a high density / compactness of biocompatible molecules that they are able to form at least a complete monolayer on the surface of the particle.

[0102] The biocompatible coating allows stability of the nanoparticles in particular in fluids such as physiological fluids (blood, plasma, serum, etc.) or any isotonic or physiological medium required for pharmaceutical administration.

[0103] Stability can be confirmed by dry extract quantification using a drying oven, typically measured on nanoparticle suspensions before and after filtration through a 0.45 μm filter.

[0104] Advantageously, the coating preserves the integrity of the particle in vivo, ensures or improves its biocompatibility, and facilitates its optional functionalization (e.g., with spacer molecules, biocompatible polymers, targeting agents, proteins, etc.).

[0105] The biocompatible nanoparticles or nanoparticle aggregates of the present invention should not dissolve and release toxic species after in vivo administration (i.e., at physiological pH), nor should they exhibit redox behavior in the absence of electrical stimulation.

[0106] Another particular object described herein relates to a composition, in particular a pharmaceutical composition, comprising nanoparticles and / or nanoparticle aggregates as defined above, preferably together with a pharmaceutically acceptable carrier or vehicle.

[0107] In particular, described herein are compositions for use in preventing or treating a neurological disorder described herein or at least one symptom thereof in a subject exposed to an electric field, the compositions comprising or consisting of nanoparticles and / or nanoparticle aggregates and a pharmaceutically acceptable support, wherein the material of the nanoparticles or nanoparticle aggregates is typically a conductive material, a semiconductive material, a dielectric constant ε of 200 or greater, as described herein above, or a pharmaceutically acceptable carrier. ijk Insulating materials with a dielectric constant ε of 100 or less ijk The insulating material is selected from the group consisting of:

[0108] In a preferred embodiment, the composition comprises or consists of at least two distinct nanoparticles and / or nanoparticle aggregates, each nanoparticle or nanoparticle aggregate consisting of a distinct material, typically a conductive material, a semiconductive material, a dielectric constant ε of 200 or greater, ijk Insulating materials with a dielectric constant ε of 100 or less ijk The insulating material is selected from the group consisting of:

[0109] In certain embodiments, the composition can include the nanoparticles or nanoparticle aggregates of the present invention in combination with a therapeutic agent. The therapeutic agent can be selected from any drug used to treat neurological disorders. The therapeutic agent is typically selected from antipsychotics, antidopaminergics, dopaminergics, anticholinergics, cholinergics, antiglutamatergics, glutamatergics, acetylcholinesterase inhibitors, N-methyl D-aspartate (NMDA) receptor antagonists, gamma-aminobutyric acid (GABA) agonists, botulinum toxin, antidystonic agents, antiepileptics, anticonvulsants, mood stabilizers, antidepressants, and sedatives.

[0110] The composition can be in the form of a solid, liquid (particles in suspension), aerosol, gel, paste, etc. Preferred compositions are in the form of a liquid or gel. Particularly preferred compositions are in the form of a liquid.

[0111] The pharmaceutically acceptable support or carrier employed can be any classical support for those skilled in the art, such as physiological saline, isotonic, sterile, buffered solutions, non-aqueous media solutions, and the like.

[0112] The composition may also include stabilizers, sweeteners, surfactants, polymers, and the like.

[0113] The compositions may be formulated, for example, as ampoules, aerosols, bottles, tablets or capsules using techniques of pharmaceutical formulation known to those skilled in the art.

[0114] The nanoparticles or nanoparticle aggregates of the present invention can be administered to a subject using a variety of possible routes, for example, intracranial, intravenous (IV), airway (inhalation), intrathecal, intraocular or oral routes (oral), preferably using intracranial or intrathecal routes.

[0115] Repeated injections or administrations of nanoparticles can be given as needed.

[0116] The nanoparticles or nanoparticle aggregates described herein and compositions comprising such nanoparticles or nanoparticle aggregates are for use in subjects, typically in animals, preferably in mammals, and even more preferably in humans, typically in human patients, regardless of their age or sex.

[0117] A typical amount of nanoparticles or nanoparticle aggregates administered to the cerebral cortex of a subject is 10 5 ~10 15 pieces, preferably 10 7 ~10 14 10, more preferably 10 9 ~10 12 A typical amount of nanoparticles or nanoparticle aggregates administered to the cerebral cortex of a subject is 1 cm 3 10 per 2 ~10 12 The nanoparticles are individual nanoparticles or nanoparticle aggregates.

[0118] A typical amount of nanoparticles or nanoparticle aggregates administered deep into the brain of a subject is 10 4 ~10 14 pieces, preferably 10 6 ~10 12 10, more preferably 10 8 ~10 11 A typical amount of nanoparticles or nanoparticle aggregates administered deep into the brain of a subject is 1 cm 3 10 per 1 ~10 11 The nanoparticles are individual nanoparticles or nanoparticle aggregates.

[0119] In the context of the present invention, exposing nanoparticles or nanoparticle aggregates to an electric field / electrical stimulation is equivalent to exposing a subject to which the nanoparticles or nanoparticle aggregates have been administered to an electric field / electrical stimulation.

[0120] Also described herein are methods for preventing or treating a neurological disorder or at least one symptom thereof in a subject, the method comprising administering to the subject any of the nanoparticles or nanoparticle aggregates described herein and exposing the subject to an electric field / electrical stimulation.

[0121] A further object of the present invention is to provide a method for producing nanoparticles comprising the steps of: (a) forming nanoparticles of at least two distinct nanoparticles and / or at least two distinct nanoparticle aggregates as described herein, wherein each nanoparticle or nanoparticle aggregate is made of a distinct material, typically a conductive material, a semiconducting material, a dielectric constant ε of 200 or greater, as described herein. ijk Insulating materials with a dielectric constant ε of 100 or less ijk The kit relates to an insulating material having a thickness of 1000 nm to 1000 nm.

[0122] In certain embodiments, the kit comprises, in separate containers, separate nanoparticles and / or nanoparticle aggregates described herein that are intended to be contacted, typically in situ, i.e., at the target site, or mixed either in vitro or ex vivo prior to deposition of the mixture at the target site.

[0123] A further object relates to kits that further comprise at least one additional therapeutic agent, different from the nanoparticles or nanoparticle aggregates described herein, that one skilled in the art could select depending on the nature of the target disease, such as, for example, an antipsychotic, an antidopaminergic, a dopaminergic, an anticholinergic, a cholinergic, an antiglutamatergic, a glutamatergic, an acetylcholinesterase inhibitor, an N-methyl D-aspartate (NMDA) receptor antagonist, a gamma-aminobutyric acid (GABA) agonist, a botulinum toxin, an antidystonic agent, an antiepileptic, an anticonvulsant, a mood stabilizer, an antidepressant, and a sedative.

[0124] Also described herein is the in vivo, in vitro, or ex vivo use of such kits in methods for preventing or treating a neurological disorder described herein, or at least one symptom thereof, in a subject. Also disclosed herein are kits described herein for use in preventing or treating a neurological disorder, or at least one symptom thereof, in a subject.

[0125] The present invention is directed to treating a neurological disorder or at least one symptom thereof through the use of nanoparticles or nanoparticle aggregates exposed to an electrical stimulus / electric field.

[0126] At the neuronal level, nanoparticles have been described to enhance or inhibit the electrical excitability of neurons. For example, zinc oxide, carbon nanotubes, and gold nanoparticles have been found to enhance the electrical excitability of neurons, while copper oxide, silver, carbon black, iron oxide, and titanium oxide have been found to inhibit the electrical excitability of neurons (Polak P & Shefi O. Nanomedicine: Nanotechnology, Biology and Medicine 11 (2015) 1467-1479, Nanometric agents in the service of neuroscience: Manipulation of neuronal growth and activity using nanoparticles).

[0127] Systemic effects of coated silver nanoparticles (cAgNPs)—using the amphiphilic polymer polyethylene glycol—[cAgNPs with a hydrodynamic diameter of 13 nm ± 2 nm in pure water (dynamic light scattering technique) and a zeta potential of -69 mV (Zetasizer Nano)] on neuronal systems have shown that the nanoparticles induce changes in mechanisms that affect excitability. Furthermore, neuronal network simulations have shown that localized cAgNP-induced changes lead to changes in network activity throughout the network, indicating that local application of cAgNPs can affect network-wide activity (Busse M. et al. International Journal of Nanomedicine 2013:8 3559-3572, Estimating the modulatory effects of nanoparticles on neuronal circuits using computational upscaling).

[0128] It has also been described that the increased neuronal excitability associated with intracellular gold nanoparticles potentially has detrimental effects on neurons under pathological conditions, e.g., seizures (Jung S, et al. PLOS ONE 2014, 9(3) e91360, Intracellular gold nanoparticles increase neuronal excitability and aggravate seizure activity in the mouse brain).

[0129] The nanoparticles or nanoparticle aggregates of the present invention are for use in / to prevent or treat a neurological disorder or at least one symptom thereof by normalizing the synchronization of oscillations within and / or between neuronal networks within and / or between distinct regions of the brain when exposed to an electric field / electrical stimulation.

[0130] As illustrated in Figures 2 and 3, communication within and / or between distinct brain regions is affected in neurological disorders. Depending on the neurological disorder and associated symptoms, exposure of specific brain regions to the nanoparticles of the present invention (see Table 2), in combination with electrical stimulation, may improve communication by normalizing the synchronization of oscillations (i.e., normalizing coherence) within and / or between neuronal networks within and / or between distinct brain regions (Figures 4 and 5 and Table 2).

[0131] [Table 2]

[0132] As those skilled in the art can easily understand, the effect of electrical stimulation on neural networks is related to the penetration depth and spatial resolution of the electric field in the target brain region. Low spatial resolution and penetration depth are important drawbacks of electrical stimulation. The presence of the nanoparticles or nanoparticle aggregates of the present invention advantageously allows for improved spatial resolution (focality) of the electric field where the nanoparticles are localized and improved penetration depth of the electric current (improving its therapeutic effect).

[0133] The presence of nanoparticles or nanoparticle aggregates in the target tissue also allows for a reduction in the applied / induced electrical stimulation threshold required for neuronal stimulation, i.e., by reducing the values ​​of the applied parameters, e.g., current, voltage, pulse width, and / or frequency. In addition, this effect reduces potential toxicity associated with applied / induced currents. This can also have technical implications, such as extending the shelf life of internal pulse generator (IPG) batteries or modifying (reducing) the size and geometry of DBS electrodes.

[0134] The following examples and their corresponding figures illustrate the invention without limiting its scope. [Brief explanation of the drawings]

[0135] [Figure 1] Schematic diagram of the brain (sagittal plane). [Figure 2] Hypersynchronization and desynchronization between two neuronal networks. [Figure 3] Brain regions involved in various neurological disorders. [Figure 4] Effect of nanoparticles (NP1) on normalizing hypersynchronization (movement disorder) when exposed to an electric field (E). [Figure 5] Effect of nanoparticles (NP2) on normalizing synchronization disorders (psychiatric and cognitive disorders) when exposed to an electric field (E). [Figure 6] Experimental scheme for Parkinson's disease induction with MPP+ treatment and electrical activity recording. Mouse ventral midbrain / cortex cocultures were prepared from E14.5 NMRI mice and cultured in 48-well MEAs for 3 weeks (culture period). After 7 days of culture (day 7), the cultures were treated with nanoparticle suspension ("nanoparticle" group) or water ("control" and "MPP+" groups), and on day 8, they were treated with MPP+ (20 μM) ("nanoparticle" and "MPP+" groups) or water ("control" group). Spontaneous activity was recorded on day 21. After recording on day 21, the cultures were electrically stimulated on one electrode, and activity recording was performed on the non-stimulating electrode. [Figure 7]Two simplified burst schemes outline some parameters that can be extracted from electrical activity recordings. Shown are parameters describing overall activity (spikes, bursts, interburst interval (IBI), and burst duration) and burst structure (burst duration, burst plateau, burst amplitude, burst interspike interval (ISI), and burst area). The standard deviations (SD) of these parameters are measures of the regularity of overall activity and burst structure, respectively. The coefficient of variation in time (CVtime) reflects the temporal regularity of each unit's activity pattern. CVtime is calculated by the ratio of the parameter's standard deviation to its mean. The network-wide coefficient of variation (CVnet) reflects the synchronization between neurons within the network. CVnet is calculated by the ratio of the parameter's standard deviation to its mean across the network. A larger CVnet value indicates a wider variation in activity across the network and less synchronization. [Figure 8] The functional effects observed in the "nanoparticle" group under electrical stimulation were compared with the "control" group (under electrical stimulation) and the "MPP+" group (under electrical stimulation) for midbrain / cortex network activity. All MPP+-induced functional effects in network activity under electrical stimulation in the presence or absence of the tested nanoparticles, as well as the "control" group (under electrical stimulation), were normalized to "pre-stimulation" activity, i.e., activity measured on day 21, which was set at 100% for each experiment. The data show MPP+-induced functional effects under electrical stimulation and demonstrate the preventive / rescue efficacy of the nanoparticles of the present invention under electrical stimulation (i.e., their ability to prevent / rescue functional effects to a level similar to that of the "control" group). [Figure 9] Effect score analysis for the "nanoparticle" group, the "control" group (effect score = 0) and the "MPP+" group (effect score = 1). [Figure 10]Experimental scheme for induction, treatment, and electrical activity recording of Alzheimer's disease with amyloid beta 1-42 (Abeta 1-42). After 4 weeks of culture (culture period), Abeta 1-42 (100 nM) ("nanoparticle" and "Abeta" groups) or water ("control" group) was added to the neuronal network (T0). Four hours later, nanoparticle suspension ("nanoparticle" group) or water ("control" and "Abeta" groups) was added. Spontaneous activity was recorded as follows: at T0 (before Abeta 1-42 addition), at T0+1 h, T0+2 h, T0+3 h, T0+4 h (before nanoparticle or water addition), T0+5 h, and T0+6 h. [Figure 11] The functional effects observed in the "nanoparticle" group under electrical stimulation were compared with the "control" group (under electrical stimulation) and the "Abeta 1-42" group (under electrical stimulation) for cortical network activity. All Abeta 1-42-induced functional effects in network activity under electrical stimulation in the presence or absence of tested nanoparticles and the "control" group (under electrical stimulation) were normalized to the "pre-stimulation" activity, i.e., the activity measured at T0+6 hours, which was set to 100% for each experiment. The data show the Abeta 1-42 functional effects under electrical stimulation and demonstrate the rescue efficacy (i.e., the ability to rescue functional effects to a level similar to that of the "control" group) that can be achieved by the nanoparticles of the present invention under electrical stimulation. [Figure 12] Effect score analysis for the "nanoparticle" group, the "control" group (effect score = 0) and the "Abeta" group (effect score = 1). [Example]

[0136] simulation Simulations can be used to assess the effect of nanoparticles exposed to electrical stimuli (electric fields) on neuronal networks.

[0137] In vitro studies of neurons At the neuronal level, the patch clamp technique is extremely useful for detecting action potentials because it allows for simultaneous direct measurement and control of the neuronal membrane potential.

[0138] This technique is used to assess the effects of nanoparticles on single neurons.

[0139] In vitro studies of neuronal networks Multi-electrode arrays (MEAs) allow stimulation and recording of large numbers of neurons (neuronal networks). Isolated neuronal cultures on MEAs provide a simplified model in which network activity can be manipulated by electrical stimulation sequences through the array's multiple electrodes. This technique is highly useful for assessing physiologically relevant problems at the network and cellular levels, leading to a better understanding of brain function and dysfunction.

[0140] In fact, isolated neuronal cultures coupled to MEAs have been widely used to better understand the complexity of brain networks. Additionally, the use of isolated neuronal assemblies allows for the manipulation and control of network connectivity. The use of isolated neuronal cultures coupled to MEAs allows for the design of experiments in which neurons can be stimulated extracellularly with electrical pulses delivered through the same electrodes of the device. In this way, it becomes reasonable to investigate how the emerging neuronal dynamics can be modulated by electrical stimulation, thereby modifying the underlying functional connectivity (Poli D. et al., Frontiers in Neural Circuits, 2015, 9 (article 57), 1-14: Functional connectivity in in vitro neuronal assemblies).

[0141] The MEA system allows noninvasive, long-lasting, simultaneous extracellular recording from multiple sites in a neuronal network in real time, providing robust measurements of network activity with improved spatial resolution. The simultaneous collection of action potential and field potential data over long periods of time allows monitoring of network function resulting from the interplay of all cellular mechanisms responsible for spatiotemporal pattern generation (Johnstone AFM et al., Neurotoxicology (2010), 31: 331-350, Microelectrode arrays: a physiologically based neurotoxicity testing platform for the 21 stcentury). Compared with patch clamp and other single-electrode recording techniques, MEA measures responses across the entire network, integrating global information about the interactions of all receptors, synapses, and neuronal types present in the network (Novellino A. et al., Frontiers in Neuroengineering. (2011), 4(4), 1-14, Development of microelectrode array-based tests for neurotoxicity: assessment of interlaboratory reproducibility with neuroactive chemicals.). Therefore, MEA recordings have been used to understand neuronal transmission, information encoding, propagation, and processing in neuronal cultures (Taketani, M., and Baudry, M. (2006). Advances in Network Electrophysiology. New York, NY: Springer; Obien et al., Frontiers in Neurosciences, 2015, 8(423): Revealing neuronal functions through microelectrode array recordings). The MEA technology is an advanced phenotypic high-content screening method for characterizing functional changes in network activity in electrically active cell cultures and is highly sensitive to aspects of neurogenesis as well as neuroregeneration and neurodegeneration.Furthermore, neuronal networks grown on MEAs are known to be responsive to neuroactive or neurotoxic compounds in concentrations similar to those that alter the function of the intact mammalian nervous system (Xia et al., Alcohol, 2003, 30, 167-174: Histiotypic electrophysiological responses of cultured neuronal networks to ethanol; Gramowski et al., European Journal of Neuroscience, 2006, 24, 455-465: Functional screening of traditional antidepressants with primary cortical neuronal networks grown on multielectrode neurochips; Gramowski et al., Frontiers in Neurology, 2015, 6(158): Enhancement of cortical network activity in vitro and promotion of GABAergic neurogenesis by stimulation with an electromagnetic field with a 150 MHz carrier wave pulsed with an alternating 10 and 16 Hz modulation).

[0142] This technique is used to evaluate the effects of nanoparticles on neuronal networks.

[0143] In vivo studies of neuronal networks To assess the effect of the nanoparticles of the present invention on the neuronal networks of animals when exposed to electrical stimulation, suitable animal models are considered.

[0144] For example, a mouse model of Parkinson's disease will be used to evaluate the effect of nanoparticles stimulated by tDCS (transcranial direct current stimulation) in reducing behavioral impairment (movement disorder), and a rat model of Alzheimer's disease will be used to evaluate the effect of nanoparticles stimulated by tDCS in reducing spatial learning and memory dysfunction (cognitive impairment) in animals.

[0145] Example 1. Nanoparticles Prepared with Conductive Materials: Synthesis of Gold Nanoparticles Coated with a Biocompatible Coating with Neutral Surface Charge Gold nanoparticles were synthesized by reducing gold chloride (HAuCl4) with a capping agent (sodium citrate) (protocol adapted from G. Frens, Nature Physical Science 241 (1973) 21). In a typical experiment, the HAuCl4 solution was heated to boiling. Subsequently, sodium citrate solution was added. The resulting solution was kept boiling for an additional 5 minutes. The nanoparticle suspension was filtered through a 0.22 μm filter (filter membrane: poly(ether sulfone) (PES)), and the gold concentration in the suspension was determined by UV-visible spectroscopic assay at 530 nm.

[0146] Surface coating was performed using α-methoxy-ω-mercaptopoly(ethylene glycol) 20 kDa ("Thiol-PEG 20 kDa"). A sufficient amount of "Thiol-PEG 20 kDa" was added to the nanoparticle suspension to reach at least half a monolayer coverage on the gold nanoparticle surface (2.5 molecules / nm). 2 The pH was adjusted to 7-7.2, and the nanoparticle suspension was stirred overnight.

[0147] The hydrodynamic diameter (measured by intensity) was determined by dynamic light scattering (DLS) using a Nano-Zetasizer (Malvern) at a scattering angle of 173° with a laser emitting at 633 nm by diluting the nanoparticle suspension in water (final concentration: 0.1 g / L). The hydrodynamic diameter of the thus obtained suspension of biocompatible gold nanoparticles was found to be equal to 118 nm, and the polydispersity index (dispersion of the population of nanoparticles in size) was found to be 0.13.

[0148] The zeta potential was determined by measuring the electrophoretic mobility of the nanoparticles (Nano-Zetasizer, Malvern) by diluting the nanoparticle suspension in 1 mM NaCl solution (final concentration: 0.1 g / L) at pH 7. The zeta potential at pH 7 was found to be equal to -1 mV.

[0149] Example 2. Nanoparticles prepared with conductive materials: Synthesis of gold nanoparticles coated with a biocompatible coating with a negative surface charge Gold nanoparticles were prepared as described in Example 1 (same gold inorganic core).

[0150] After 0.22 μm filtration through a PES membrane filter, the gold concentration in the suspension was determined by UV-visible spectrophotometric assay at 530 nm.

[0151] Biocompatible surface coating was achieved using meso-2,3-dimercaptosuccinic acid (DMSA). A sufficient amount of DMSA was added to the nanoparticle suspension to reach at least half a monolayer coverage on the surface (2.5 molecules / nm). 2 The pH was adjusted to 7-7.2, and the nanoparticle suspension was stirred overnight.

[0152] The hydrodynamic diameter (measured by intensity) was determined by dynamic light scattering (DLS) using a Nano-Zetasizer (Malvern) at a scattering angle of 173° with a laser emitting at 633 nm by diluting the nanoparticle suspension in water (final concentration: 0.1 g / L). The hydrodynamic diameter of the nanoparticles in suspension thus obtained was equal to 76 nm, and the polydispersity index (dispersion of the population of nanoparticles in size) was 0.46.

[0153] The zeta potential was determined by measuring the electrophoretic mobility of the nanoparticles (Nano-Zetasizer, Malvern) by diluting the nanoparticle suspension in 1 mM NaCl solution (final concentration: 0.1 g / L) at pH 7. The zeta potential at pH 7 was found to be equal to -23 mV.

[0154] Example 3. Nanoparticles prepared by insulating materials with low dielectric constants below 100: Synthesis of zirconium oxide nanoparticles coated with a biocompatible coating with neutral surface charge Zirconium oxide (ZrO2) nanoparticles were synthesized by precipitation of zirconium chloride (ZrCl4) with tetramethylammonium hydroxide (TMAOH) at basic pH. The resulting suspension was transferred to an autoclave and heated at temperatures above 110 °C. After cooling, the suspension was washed with deionized water and acidified.

[0155] The (ZrO2) nanoparticle concentration was determined by 0.22 μm filtration through a PES membrane filter, drying the aqueous solution to a powder, and weighing the resulting mass.

[0156] Biocompatible coatings were prepared using silane-poly(ethylene) glycol 2 kDa ("Si-PEG 2 kDa"). A sufficient amount of "Si-PEG 2 kDa" was added to the nanoparticle suspension to reach at least half a monolayer coverage on the surface (2.5 molecules / nm 2 The nanoparticle suspension was stirred overnight and subsequently the pH was adjusted to 7.

[0157] The hydrodynamic diameter (measured by intensity) was determined by dynamic light scattering (DLS) using a Nano-Zetasizer (Malvern) at a scattering angle of 173° with a laser emitting at 633 nm by diluting the nanoparticle suspension in water (final concentration: 0.1 g / L). The hydrodynamic diameter of the nanoparticles was found to be equal to 55 nm and the polydispersity index (dispersion of the population of nanoparticles in size) to be 0.1.

[0158] The zeta potential was determined by measuring the electrophoretic mobility of the nanoparticles (Nano-Zetasizer, Malvern) by diluting the nanoparticle suspension in 1 mM NaCl solution (final concentration: 0.1 g / L) at pH 7. The zeta potential at pH 7 was found to be equal to -1 mV.

[0159] Example 4. Nanoparticles prepared by insulating materials with low dielectric constants below 100: Synthesis of zirconium oxide nanoparticles coated with a biocompatible coating with negative surface charge Zirconium oxide nanoparticles were prepared as described in Example 3 (same inorganic core).

[0160] The (ZrO2) nanoparticle concentration was determined by drying the aqueous suspension to a powder after 0.22 μm filtration through a PES membrane filter and weighing the resulting mass.

[0161] Surface functionalization was performed using sodium hexametaphosphate. A sufficient mass of sodium hexametaphosphate was added to the nanoparticle suspension to reach at least half a monolayer coverage on the surface (2.5 molecules / nm 2 The nanoparticle suspension was stirred overnight and subsequently the pH was adjusted to 7.

[0162] The hydrodynamic diameter (measured by intensity) was determined by dynamic light scattering (DLS) using a Nano-Zetasizer (Malvern) at a scattering angle of 173° with a laser emitting at 633 nm by diluting the nanoparticle suspension in water (final concentration: 0.1 g / L). The hydrodynamic diameter of the nanoparticles was found to be equal to 70 nm, and the polydispersity index (dispersion of the population of nanoparticles in size) was found to be 0.11.

[0163] The zeta potential was determined by measuring the electrophoretic mobility of the nanoparticles (Nano-Zetasizer, Malvern) by diluting the nanoparticle suspension in 1 mM NaCl solution (final concentration: 0.1 g / L) at pH 7. The zeta potential at pH 7 was found to be equal to -33 mV.

[0164] Example 5. Nanoparticles prepared with semiconductor materials: Silicon nanoparticles coated with a biocompatible coating having a negative surface charge Silicon (Si) nanoparticles (powder) were obtained from US Research Nanomaterials Inc. They were dispersed in water at 30 g / L under ultrasonication (by probe).

[0165] The (Si) nanoparticle concentration was determined by 0.22 μm filtration through a PES membrane filter, drying the suspension to a powder, and weighing the resulting mass.

[0166] The hydrodynamic diameter (measured by intensity) was determined by dynamic light scattering (DLS) using a Nano-Zetasizer (Malvern) at a scattering angle of 173° with a laser emitting at 633 nm by diluting the nanoparticle suspension in water (final concentration: 0.1 g / L). The hydrodynamic diameter of the nanoparticles was found to be equal to 164 nm, and the polydispersity index (dispersion of the population of nanoparticles in size) was found to be 0.16.

[0167] The zeta potential was determined by measuring the electrophoretic mobility of the nanoparticles (Nano-Zetasizer, Malvern) by diluting the nanoparticle suspension in 1 mM NaCl solution (final concentration: 0.1 g / L) at pH 7. The zeta potential at pH 7 was found to be equal to -19 mV.

[0168] Example 6. Nanoparticles prepared from insulating materials with high dielectric constants of 200 or more: Barium titanate nanoparticles coated with a biocompatible coating having a negative surface charge A suspension of barium titanate (BaTiO3) nanoparticles (20 wt% in water) was obtained from US Research Materials Inc. (US3835).

[0169] Surface functionalization was performed using silane-poly(ethylene) glycol 10 kDa ("Si-PEG 10 kDa"). Briefly, "Si-PEG 10 kDa" was first dissolved in an ethanol / water solution (1 / 3 v / v) and added to a BaTiO suspension (20 wt% in water) to achieve complete monolayer coverage on the nanoparticle surface. The suspension was sonicated and subsequently stirred overnight. After 0.22 μm filtration (filter membrane: poly(ether sulfone)), a washing step was performed to remove unreacted "Si-PEG 10 kDa" polymer.

[0170] The hydrodynamic diameter (measured by intensity) was determined by dynamic light scattering (DLS) using a Nano-Zetasizer (Malvern) at a scattering angle of 173° with a laser emitting at 633 nm by diluting the nanoparticle suspension in water (final concentration: 0.1 g / L). The hydrodynamic diameter of the nanoparticles was found to be equal to 164 nm, and the polydispersity index (dispersion of the population of nanoparticles in size) was found to be 0.16.

[0171] The zeta potential was determined by measuring the electrophoretic mobility of the nanoparticles (Nano-Zetasizer, Malvern) by diluting the nanoparticle suspension in 1 mM NaCl solution (final concentration: 0.1 g / L) at pH 7. The zeta potential at pH 7 was found to be -11 mV.

[0172] Example 7. MPP using phenotypic MEA screening technology + Evaluation of the preventive / rescue efficacy of nanoparticles from Examples 1, 2, 5 and 6 exposed to electrical stimulation in evoked neuronal networks The preventive / rescue efficacy of the nanoparticles of the present invention was evaluated by measuring the number of MPPs cultured on a 48-well MEA for 3 weeks. + The nanoparticles were tested in ventral midbrain / cortex co-cultures from treated mice. This model represents an in vitro Parkinson's model for screening compounds based on functional rescue of dopaminergic neurons using lesioned midbrain / cortex cultures grown on MEA. The midbrain is a brain region that includes the substantia nigra, which is part of the basal ganglia and contains the majority of dopaminergic neurons. The preventive / rescue effects of the nanoparticles were evaluated by measuring the extracellular electrical activity of neuronal co-cultures seeded on microelectrode array (MEA) chips.

[0173] In vitro induction of parkinsonian phenotype in mouse neurons using 1-methyl-4-phenylpyridinium iodide (MPP) + There is strong evidence that mitochondrial dysfunction plays a role in the pathogenesis of Parkinson's disease (PD). +It has been found to be a mitochondrial toxin that inhibits cellular respiration through blocking the electron transport enzyme complex I (NADH:ubiquinone oxidoreductase). Several laboratories have reported that selective deficiency in complex I of the mitochondrial electron transport chain is present in the substantia nigra of postmortem tissue from PD patients, and that complex I activity is also reduced in platelets from early-stage PD patients (Peng J. et al., Journal of Biomolecular screening, 2013, 18(5), 522-533: Using human pluripotent stem cell-derived dopaminergic neurons to evaluate candidate Parkinson's disease therapeutic agents in MPP+ and rotenone models.).

[0174] Materials and Methods Primary cell culture, treatment conditions and electrical stimulation Midbrain tissue was collected from embryonic day 14.5 chr:NMRI mice (Charles River). Mice were sacrificed by cervical dislocation. Tissue was dissociated by enzymatic digestion (133.3 Kunitz units / ml DNase; 10 units / ml Papain) and mechanical trituration, counted, and viability controlled. The tissue was seeded onto MEAs in 20 μl drops of DMEM containing laminin (10 μg / ml), 10% fetal bovine serum, and 10% horse serum. Cultures on MEAs were incubated at 37°C in a 10% CO atmosphere until ready for use. The culture medium was replenished twice weekly with DMEM containing 10% horse serum.

[0175] In the "nanoparticle" group, wells were treated on day 7 with nanoparticle suspensions from Examples 1, 2, 5 (800 μM) and nanoparticle suspensions from Example 6 (2000 μM), followed on day 8 by 20 μM MPP + In the "control" group, water was added to the wells on the 7th day, followed by water on the 8th day. + In the " group, water was added to the wells on the 7th day, followed by 20 μM MPP on the 8th day. +MPP + (or water for the "control" group), 24 hours after addition, the medium was changed and the MPP + Afterwards, the medium was changed twice a week.

[0176] On day 21, 120 minutes of neuronal activity was recorded, and 30 minutes of stable activity was analyzed. After recording on day 21, all wells were activated with one of the actively spiking electrodes via electrical stimulation. Stimulation was performed for 30 minutes (stimulation of one electrode per well in a 48-well MEA, minimum stimulation duration = 100 μs, artifact removal after 2 ms, pulse 10 × biphasic + / - 500 mV). Responses of non-stimulated electrodes were averaged and normalized to pre-stimulation activity (Figure 6).

[0177] Microelectrode array neurochip 48-well microelectrode array neurochips were purchased from Axion Biosystems Inc. These chips have 16 passive electrodes per well. The surface was coated with polyethyleneimine (PEI, 50% in borate buffer) for 1 hour, washed, and air-dried.

[0178] Multi-channel recording and multi-parametric data analysis Recordings were performed using a multichannel MAESTRO recording system from Axion Biosystems (USA). For extracellular recordings, 48-well MEAs were placed in a MAESTRO recording station and maintained at 37°C. Recordings were performed in DMEM / 10% heat-inactivated horse serum. The pH was maintained at 7.4 with a continuous flow of filtered, humidified air containing 10% CO2.

[0179] Each unit represents the activity arising from one neuron recorded with one electrode. Units are isolated at the beginning of the recording. For each unit, action potentials (i.e., spikes) are recorded as spike trains, which are clustered into so-called "bursts." Bursts were quantitatively described by direct spike train analysis using the programs Spike Wrangler and NPWaveX (both NeuroProof GmbH, Rostock, Germany). Bursts were defined by the onset and end of short spike events (Figure 7).

[0180] Multiparametric high-content analysis of network activity patterns extracted 204 activity-descriptive spike train parameters that allow for a precise description of activity changes in four categories: overall activity, burst structure, oscillatory behavior, and synchrony. - Changes in "global activity parameters" describe the effect on action potential firing rate (spike rate), burst rate and burst duration as time between bursts. - "Burst structure parameters" define the internal structure of spikes within a high frequency spike phase ("burst"), e.g., spike frequency within a burst, spike rate within a burst, and burst spike density, as well as the overall structure of the burst, e.g., duration, area, and plateau. - "Oscillatory parameters" quantify the regularity of the occurrence or structure of bursts, this regularity being calculated by the coefficient of variation of the main activity parameters describing the variability of the parameters (global activity, burst structure) within an experimental episode (Gramowski A. et al., Eur. J. Neurosci., 2004, 19, 2815-2825: Substance identification by quantitative characterization of oscillator activity in murine spinal cord networks on microelectrode arrays). Higher values ​​indicate a less regular burst structure or a less regular global activity (e.g. spikes, bursts). - As a measure of synchrony in spike trains, the "CVnet parameter" reflects the "synchronization" between neurons within a network (Gramowski A. et al., Eur. J. Neurosci., 2004, 19, 2815-2825: Substance identification by quantitative characterization of oscillator activity in murine spinal cord networks on microelectrode arrays). CVnet is the coefficient of variation across the network. A larger CVnet value indicates a wider variation in activity across the network and less synchronization (Gramowski A. et al., Frontiers in Neurology, 2015, 6(158): Enhancement of cortical network activity in vitro and promotion of GABAergic neurogenesis by stimulation with an electromagnetic field with a 150MHz carrier wave pulsed with an alternating 10 and 16 Hz modulation).

[0181] MPP in neuronal networks under electrical stimulation + The functional effects induced by steroids and the preventive / rescue efficacy of the nanoparticles of the present invention under electrical stimulation were evaluated through the above parameters (and some of them are summarized in Table 3 below).

[0182] [Table 3]

[0183] MPP in network activity under electrical stimulation in the presence or absence of tested nanoparticles + Evoked functional effects were normalized to "pre-stimulation" activity, i.e., activity measured on day 21, which was set to 100% for each experiment. Values ​​related to spontaneous native activity were obtained from 60-second binned data obtained from a 30-minute period after 30 minutes of stabilization of activity. Results (parameter values) were expressed as mean ± SEM of independent networks. For each "nanoparticle" group, at least 8 active wells were used, for the "control" group, at least 30 active wells were used, and for the "MPP" group, at least 10 active wells were used. + For the "group," at least 26 active wells ("active" means wells with a sufficient number of electrodes to measure electrical activity) were included in the analysis. Absolute parameter distributions were tested for normality, and statistically significant differences between groups were assessed by one-way ANOVA.

[0184] Figure 8 shows some representative parameters from the following categories: oscillatory behavior and synchrony. These parameters allow us to estimate MPP under electrical stimulation. + The induced functional effect and the preventive / remedial efficacy (i.e., the ability to prevent / remediate the functional effect to a level similar to that of the "control" group) afforded by the nanoparticles of the invention under electrical stimulation are characterized.

[0185] To assess the effect of compounds, the multiparametric result of the selection of 204 parameters was expressed in a single parameter called the "effect score." This is a linear combination of the selected features, dividing the dataset into two groups: a "control" group exposed to the electric field with a mean value of "0" and an "MPP" group exposed to the electric field with a mean value of "1." + The calculation of the Z factor of the effect score is performed by dividing the "control" group into a vector with the "MPP" group and the "MPP" group. + Through feature selection of 18 of 204 parameters, which were measured and optimized to find the best discrimination between the groups, efficacy score analysis is shown in Figure 9.

[0186] The preventive / relief efficacy of the nanoparticles of the present invention exposed to electrical stimulation is shown in Table 4.

[0187] [Table 4]

[0188] Treatment of Parkinson's disease symptoms with DBS has been approved by the FDA since 2002. The most commonly used stimulation parameters that can be used in the context of the present invention, in combination with the nanoparticles described herein, are a frequency of 130-185 Hz, a pulse width of 60-210 μs, and a voltage amplitude of 1-3.5 V. In the experiments described herein, stimulation was performed on neuronal network co-cultures for 30 minutes. Stimulation = 10 biphasic pulses (pulse duration = 100 μs), pulse amplitude = + / - 500 mV, pulse frequency = 20 Hz, and pulse train duration = 0.2 Hz.

[0189] 12 and 13 and Table 4 show that pretreatment of neuronal networks with nanoparticles of the present invention and exposure to an electric field reduces MPP in neuronal networks under an electric field. +It shows that the induced functional effects are prevented / relieved. Interestingly, the preventive / rescue efficacy is observed for the category parameters related to oscillatory behavior and synchrony, and can reach the level observed in the "control" group. These oscillatory behavior and synchronization parameters are typically monitored as a measure of altered network development. These parameters can be advantageously rescued in the presence of the nanoparticles of the present invention exposed to electrical stimulation.

[0190] These results suggest that when exposed to an electric field, MPP in neuronal networks occurs under the electric field. + The advantageous performance of the nanoparticles described in this application in relieving induced functional effects is highlighted.

[0191] Example 8. Evaluation of the effect of nanoparticles from Examples 2, 3, 4 and 5 exposed to electrical stimulation on amyloid beta 1-42 induced functional effects in primary mouse neuronal networks using phenotypic MEA screening technology The rescue efficacy of the nanoparticles of the present invention exposed to electrical stimulation was tested in vitro via MEAs in an amyloid beta 1-42 (Abeta 1-42)-induced model of Alzheimer's disease in frontal cortex cultures of mouse neurons.

[0192] To induce Alzheimer's-related functional phenotypes, we used a subtoxic dose (100 nM) of synthetic hexafluoroisopropanol (HFIP)-treated Abeta 1-42 peptide (HFIP treatment generates amyloid beta monomers). High levels of Abeta impair glutamatergic synaptic transmission and cause synaptic loss (Palop et al., Nat Neurosci., 2010, 13(7), 812-818: Amyloid-beta induced neuronal dysfunction in Alzheimer's disease: from synapses toward neural networks; Hsia et al., Proc. Natl. Acad. Sci., 1999, 96, 3228-3233: Plaque-independent disruption of neural circuits in Alzheimer's disease mouse models). Abeta production and its secretion into the extracellular space are tightly regulated by neuronal activity in vitro and in vivo. Enhanced neuronal activity enhances Abeta production, while blocking neuronal activity has the opposite effect. This synaptic regulation of Abeta is mediated, at least in part, by clathrin-mediated endocytosis of surface amyloid precursor protein (APP) at presynaptic terminals, endosomal proteolytic cleavage of APP, and Abeta release at synaptic terminals (Cirrito et al., Neuron, 2005, 48, 913-922: Synaptic activity regulates interstitial fluid amyloid-beta levels in vivo).

[0193] Materials and Methods primary cell culture Frontal cortical tissue was harvested from embryonic day 15 / 16 chr:NMRI mice (Charles River). Mice were sacrificed by cervical dislocation. Tissue was dissociated by enzymatic digestion (133.3 Kunitz units / ml DNase; 10 units / ml Papain) and mechanical trituration, counted, and viability controlled. The tissue was seeded onto MEAs in 20 μl drops of DMEM containing laminin (10 μg / ml), 10% fetal bovine serum, and 10% horse serum. Cultures on MEAs were incubated at 37°C in a 10% CO atmosphere until ready for use. DMEM containing 10% horse serum was replenished to the culture medium twice weekly. Developing co-cultures were treated with the mitotic inhibitors 5-fluoro-2'-deoxyuridine (25 μM) and uridine (63 μM) 5 days after seeding to prevent further glial proliferation.

[0194] In the "nanoparticle" group, the wells were first treated with Abeta 1-42 (synthetic HFIP-treated amyloid-beta 1-42 peptide) at T0 (T0 being the end of the 28-day in vitro culture period). Then, in an independent and parallel experiment, the wells were treated with nanoparticle suspensions from Examples 2, 3, 4, and 5 (each suspension at a concentration of 800 μM) at T0+4 hours. In the "control" group, water was added to the wells at T0 and then at T0+4 hours. In the "Abeta" group, Abeta 1-42 was added to the wells at T0, and then water was added to the wells at T0+4 hours.

[0195] Neuronal activity was recorded as follows: -T0, before addition of Abeta 1-42 (or water in the "control" group) - At T0+1h, T0+2h, T0+3h, T0+4h (before the addition of nanoparticles in the <<nanoparticles>> group or "water" in the control group), T0+5h and T0+6h.

[0196] Values ​​were obtained from 60-second binned data obtained from a 30-minute period after 30 minutes of stabilization of activity.

[0197] After recording at T0 + 6 h, all wells were activated with one of the actively spiking electrodes by electrical stimulation. Stimulation was performed for 30 min (stimulation of one electrode per well in a 48-well MEA, minimum stimulus duration = 100 μs, 2 ms post-pulse artifact removal, pulse 10 × biphasic + / - 500 mV). Responses of non-stimulated electrodes were averaged and normalized to pre-stimulus activity (Figure 10).

[0198] Microelectrode array neurochip 48-well microelectrode array neurochips were purchased from Axion Biosystems Inc. These chips have 16 passive electrodes per well. The surface was coated with polyethyleneimine (PEI, 50% in borate buffer) for 1 hour, washed, and air-dried.

[0199] Multi-channel recording and multi-parametric data analysis Recordings were performed using a multichannel MAESTRO recording system from Axion Biosystems (USA). For extracellular recordings, 48-well MEAs were placed in a MAESTRO recording station and maintained at 37°C. Recordings were performed in DMEM / 10% heat-inactivated horse serum. The pH was maintained at 7.4 with a continuous flow of filtered, humidified air containing 10% CO2. Action potentials, or "spikes," were recorded in spike trains and clustered into so-called "bursts." Bursts were quantitatively described by direct spike train analysis using the programs Spike Wrangler and NPWaveX (both NeuroProof GmbH, Rostock, Germany). Bursts were defined by the onset and end of short spike events.

[0200] Multiparametric high-content analysis of network activity patterns extracted 204 activity-descriptive spike train parameters that allow for a precise description of activity changes in four categories: overall activity, burst structure, oscillatory behavior, and synchrony.

[0201] The functional effects of amyloid beta 1-42 on neuronal networks exposed to electrical stimulation and the efficacy of rescuing the functional effects of neuronal networks exposed to electrical stimulation by the nanoparticles of the present invention were evaluated through the above parameters (and some of them are summarized in Table 5 below).

[0202] [Table 5]

[0203] Network activity under stimulation was normalized to the associated spontaneous native activity (recorded at T0 + 6 h), which was set to 100% for each experiment. Values ​​related to spontaneous native activity were obtained from 60-second bins of data obtained from a 30-minute period after 30 minutes of stabilization of activity. Results (parameter values) were expressed as the mean ± SEM of independent networks. For each "nanoparticle" group, at least 9 active wells were included in the analysis; for the "control" group, at least 18 active wells; for the "Abeta" group, at least 18 active wells ("active" refers to wells with a sufficient number of electrodes to measure electrical activity). Absolute parameter distributions were tested for normality, and statistical significance between groups was assessed by one-way ANOVA.

[0204] Figure 11 shows some representative parameters from the following categories: overall activity, burst structure, oscillatory behavior and synchrony.

[0205] These parameters characterize the Abeta 1-42-induced functional effects under electrical stimulation and the rescue efficacy (i.e., the ability to prevent / rescue the functional effects to a level similar to that of the "control" group) made possible by the nanoparticles of the present invention under electrical stimulation.

[0206] To assess compound efficacy, the multiparametric results of the selection of 204 parameters were expressed as a single parameter called the "effect score." This is a linear combination of the selected features, transforming the dataset into a vector with a "control" group exposed to the electric field with a mean value of "0" and an "Abeta" group exposed to the electric field with a mean value of "1." The Z factor of the effect score was calculated through feature selection of 15 of the 204 parameters, which were measured and optimized to find the best discrimination between the "control" and "Abeta" groups (Kummel A, et al. J Biomol Screen., 2010, 15(1), 95-10: Integration of multiple readouts into the z' factor for assay quality assessment). The effect score analysis is shown in Figure 12.

[0207] The rescue efficacy of the nanoparticles of the present invention exposed to electrical stimulation is shown in Table 6.

[0208] [Table 6]

[0209] Clinical studies are underway to evaluate the potential of DBS for the treatment of Alzheimer's disease. In combination with the nanoparticles described herein, typical stimulation parameters that can be used in the context of the present invention are a frequency of 130 Hz, a pulse width of 60 or 90 μs, and a voltage amplitude of 3-5 V. In the experiments described herein, stimulation was performed on neuronal network co-cultures for 30 minutes. Stimulation = 10 biphasic pulses, minimum pulse duration = 100 μs, pulse amplitude = + / - 500 mV, pulse frequency = 20 Hz, and pulse train duration = 0.2 Hz.

[0210] Figures 11 and 12 and Table 6 show that treatment of neuronal networks with nanoparticles of the present invention rescues the Abeta 1-42-induced functional effects of neuronal networks under electric field exposure. Interestingly, rescue efficacy is observed for categories of parameters related to oscillatory behavior and synchrony, and can reach the level observed in the "control" group.

[0211] These oscillatory behavior and synchronization parameters are typically monitored as a measure of altered network development, and these parameters can be advantageously rescued in the presence of the nanoparticles of the present invention exposed to electrical stimulation.

[0212] These results highlight the advantageous performance of the nanoparticles described herein in rescuing Abeta 1-42-induced functional effects in neuronal networks under electric fields when exposed to electric fields.

Claims

1. A pharmaceutical composition comprising gold (Au) nanoparticles or nanoparticle aggregates for use in the prevention or treatment of Parkinson's disease or at least one symptom thereof in a subject exposed to an electric field.

2. 10. The pharmaceutical composition of claim 1, wherein the nanoparticles or nanoparticle aggregates are coated with a biocompatible material that is an agent that forms a negative charge on the surface of the nanoparticles or nanoparticle aggregates.

3. 3. The pharmaceutical composition of claim 2, wherein the agent that forms a negative charge on the surface of the nanoparticles or nanoparticle aggregates is selected from phosphates, carboxylates, and sulfates.

4. 4. The pharmaceutical composition of any one of claims 1 to 3, wherein the nanoparticles or nanoparticle aggregates present a hydrophilic neutral surface charge or are coated with a biocompatible material selected from hydrophilic agents that impart a neutral surface charge to the nanoparticles or nanoparticle aggregates.

5. 5. The pharmaceutical composition of claim 4, wherein the hydrophilic agent that imparts a neutral surface charge to the nanoparticles or nanoparticle aggregates is an agent presenting a functional group selected from alcohol (R—OH), aldehyde (RCOH), ketone (R—CO—R), ester (R—COOR), acid (R—COOH), thiol (R—SH), sugar, acid anhydride (RCOOOC-R), and pyrrole.

6. A pharmaceutical composition described in any one of claims 1 to 5, wherein the electric field is applied by deep brain stimulation, transcranial electrical stimulation, or transcranial magnetic stimulation.

7. 7. The pharmaceutical composition of any one of claims 1 to 6, wherein the pharmaceutical composition comprises at least two distinct nanoparticles and / or nanoparticle aggregates, each nanoparticle or nanoparticle aggregate consisting of a distinct material.

8. 10. A kit for use in the prevention or treatment of Parkinson's disease or at least one symptom thereof in a subject exposed to an electric field, comprising at least two separate gold (Au) nanoparticles and / or nanoparticle aggregates as defined in any one of claims 1 to 5.