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Dive into the research topics where Nir Grossman is active.

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Featured researches published by Nir Grossman.


Journal of Neural Engineering | 2010

Multi-site optical excitation using ChR2 and micro-LED array.

Nir Grossman; Vincent Poher; Matthew S. Grubb; Gordon T. Kennedy; Konstantin Nikolic; Brian McGovern; Rolando Berlinguer Palmini; Zheng Gong; Emmanuel M. Drakakis; Mark A. A. Neil; Martin D. Dawson; Juan Burrone; Patrick Degenaar

Studying neuronal processes such as synaptic summation, dendritic physiology and neural network dynamics requires complex spatiotemporal control over neuronal activities. The recent development of neural photosensitization tools, such as channelrhodopsin-2 (ChR2), offers new opportunities for non-invasive, flexible and cell-specific neuronal stimulation. Previously, complex spatiotemporal control of photosensitized neurons has been limited by the lack of appropriate optical devices which can provide 2D stimulation with sufficient irradiance. Here we present a simple and powerful solution that is based on an array of high-power micro light-emitting diodes (micro-LEDs) that can generate arbitrary optical excitation patterns on a neuronal sample with micrometre and millisecond resolution. We first describe the design and fabrication of the system and characterize its capabilities. We then demonstrate its capacity to elicit precise electrophysiological responses in cultured and slice neurons expressing ChR2.


Photochemistry and Photobiology | 2009

Photocycles of Channelrhodopsin-2

Konstantin Nikolic; Nir Grossman; Matthew S. Grubb; Juan Burrone; Chris Toumazou; Patrick Degenaar

Recent developments have used light‐activated channels or transporters to modulate neuronal activity. One such genetically‐encoded modulator of activity, channelrhodopsin‐2 (ChR2), depolarizes neurons in response to blue light. In this work, we first conducted electrophysiological studies of the photokinetics of hippocampal cells expressing ChR2, for various light stimulations. These and other experimental results were then used for systematic investigation of the previously proposed three‐state and four‐state models of the ChR2 photocycle. We show the limitations of the previously suggested three‐state models and identify a four‐state model that accurately follows the ChR2 photocurrents. We find that ChR2 currents decay biexponentially, a fact that can be explained by the four‐state model. The model is composed of two closed (C1 and C2) and two open (O1 and O2) states, and our simulation results suggest that they might represent the dark‐adapted (C1‐O1) and light‐adapted (C2‐O2) branches. The crucial insight provided by the analysis of the new model is that it reveals an adaptation mechanism of the ChR2 molecule. Hence very simple organisms expressing ChR2 can use this form of light adaptation.


Journal of Neural Engineering | 2009

Optobionic vision?a new genetically enhanced light on retinal prosthesis

Patrick Degenaar; Nir Grossman; Muhammad Ali Memon; Juan Burrone; Martin D. Dawson; Emmanuel M. Drakakis; Mark A. A. Neil; Konstantin Nikolic

The recent discovery that neurons can be photostimulated via genetic incorporation of artificial opsins is creating a revolution in the field of neural stimulation. In this paper we show its potential in the field of retinal prosthesis. We show that we need typically 100 mW cm(-2) in instantaneous light intensity on the neuron in order to stimulate action potentials. We also show how this can be reduced down to safe levels in order to negate thermal and photochromic damage to the eye. We also describe a gallium nitride LED light source which is also able to generate patterns of the required intensity in order to transfer reliable images.


Journal of Physics D | 2008

Micro-LED arrays: a tool for two-dimensional neuron stimulation

Vincent Poher; Nir Grossman; Gordon T. Kennedy; Konstantin Nikolic; H.X. Zhang; Zheng Gong; Emmanuel M. Drakakis; Erdan Gu; Martin D. Dawson; Paul M. W. French; Patrick Degenaar; Mark A. A. Neil

Stimulating neuron cells with light is an exciting new technology that is revolutionizing the neurosciences. To date, due to the optical complexity that is involved, photostimulation has only been achieved at a single site using high power light sources. Here we present a GaN based micro-light emitting diode (LED) array that can open the way to multi-site photostimulation of neuron cells. The device is a two-dimensional array of micrometre size LED emitters. Each emitter has the required wavelength, optical power and modulation bandwidth to trigger almost any photosensitizer and is individually addressable. We demonstrate micrometre resolution photoactivation of a caged fluorophore and photostimulation of sensitized living neuron cells. In addition, a complete system that combines the micro-LED array with multi-site electrophysiological recording based on microelectrode array technology and/or fluorescence imaging is presented.


IEEE Transactions on Biomedical Engineering | 2011

Modeling Study of the Light Stimulation of a Neuron Cell With Channelrhodopsin-2 Mutants

Nir Grossman; Konstantin Nikolic; Christofer Toumazou; Patrick Degenaar

Channelrhodopsin-2 (ChR2) has become a widely used tool for stimulating neurons with light. Nevertheless, the underlying dynamics of the ChR2-evoked spikes are still not yet fully understood. Here, we develop a model that describes the response of ChR2-expressing neurons to light stimuli and use the model to explore the light-to-spike process. We show that an optimal stimulation yield is achieved when the optical energies are delivered in short pulses. The model allows us to theoretically examine the effects of using various types of ChR2 mutants. We show that while increasing the lifetime and shuttering speed of ChR2 have limited effect, reducing the threshold irradiance by increased conductance will eliminate adaptation and allow constant dynamic range. The model and the conclusion presented in this study can help to interpret experimental results, design illumination protocols, and seek improvement strategies in the nascent optogenetic field.


Cell | 2017

Noninvasive Deep Brain Stimulation via Temporally Interfering Electric Fields

Nir Grossman; David Bono; Nina Dedic; Suhasa B. Kodandaramaiah; Andrii Rudenko; Ho Jun Suk; Antonino M. Cassara; Esra Neufeld; Niels Kuster; Li-Huei Tsai; Alvaro Pascual-Leone; Edward S. Boyden

Summary We report a noninvasive strategy for electrically stimulating neurons at depth. By delivering to the brain multiple electric fields at frequencies too high to recruit neural firing, but which differ by a frequency within the dynamic range of neural firing, we can electrically stimulate neurons throughout a region where interference between the multiple fields results in a prominent electric field envelope modulated at the difference frequency. We validated this temporal interference (TI) concept via modeling and physics experiments, and verified that neurons in the living mouse brain could follow the electric field envelope. We demonstrate the utility of TI stimulation by stimulating neurons in the hippocampus of living mice without recruiting neurons of the overlying cortex. Finally, we show that by altering the currents delivered to a set of immobile electrodes, we can steerably evoke different motor patterns in living mice.


IEEE Transactions on Biomedical Circuits and Systems | 2010

A New Individually Addressable Micro-LED Array for Photogenetic Neural Stimulation

Brian McGovern; R Berlinguer Palmini; Nir Grossman; Emmanuel M. Drakakis; Vincent Poher; Mark A. A. Neil; Patrick Degenaar

Here, we demonstrate the use of a micro light emitting diode (LED) array as a powerful tool for complex spatiotemporal control of photosensitized neurons. The array can generate arbitrary, 2-D, excitation patterns with millisecond and micrometer resolution. In particular, we describe an active matrix control address system to allow simultaneous control of 256 individual micro LEDs. We present the system optically integrated into a microscope environment and patch clamp electrophysiology. The results show that the emitters have sufficient radiance at the required wavelength to stimulate neurons expressing channelrhodopsin-2 (ChR2).


Journal of Computational Neuroscience | 2013

The spatial pattern of light determines the kinetics and modulates backpropagation of optogenetic action potentials

Nir Grossman; Vasiliki Simiaki; Claire Martinet; Christofer Toumazou; Simon R. Schultz; Konstantin Nikolic

Optogenetics offers an unprecedented ability to spatially target neuronal stimulations. This study investigated via simulation, for the first time, how the spatial pattern of excitation affects the response of channelrhodopsin-2 (ChR2) expressing neurons. First we described a methodology for modeling ChR2 in the NEURON simulation platform. Then, we compared four most commonly considered illumination strategies (somatic, dendritic, axonal and whole cell) in a paradigmatic model of a cortical layer V pyramidal cell. We show that the spatial pattern of illumination has an important impact on the efficiency of stimulation and the kinetics of the spiking output. Whole cell illumination synchronizes the depolarization of the dendritic tree and the soma and evokes spiking characteristics with a distinct pattern including an increased bursting rate and enhanced back propagation of action potentials (bAPs). This type of illumination is the most efficient as a given irradiance threshold was achievable with only 6 % of ChR2 density needed in the case of somatic illumination. Targeting only the axon initial segment requires a high ChR2 density to achieve a given threshold irradiance and a prolonged illumination does not yield sustained spiking. We also show that patterned illumination can be used to modulate the bAPs and hence spatially modulate the direction and amplitude of spike time dependent plasticity protocols. We further found the irradiance threshold to increase in proportion to the demyelination level of an axon, suggesting that measurements of the irradiance threshold (for example relative to the soma) could be used to remotely probe a loss of neural myelin sheath, which is a hallmark of several neurodegenerative diseases.


international conference of the ieee engineering in medicine and biology society | 2007

A Non-Invasive Retinal Prosthesis - Testing the Concept

Konstantin Nikolic; Nir Grossman; H. Yan; Emmanuel M. Drakakis; Christofer Toumazou; Patrick Degenaar

We have developed a testing platform for a novel type of retinal prosthesis. Our system uses an array of light sources as non-contact stimulators. The platform consists of an imaging system based on a CMOS camera, PC based image processing, and a stimulation address system carried out on a Field Programmable Gated Array which addresses a matrix array of LEDs. Special optics are used to focus the light from the LED array onto light sensitized cells.


international conference of the ieee engineering in medicine and biology society | 2013

Computational models of optogenetic tools for controlling neural circuits with light

Konstantin Nikolic; Sarah Jarvis; Nir Grossman; Simon R. Schultz

Optogenetics is a new neurotechnology innovation based on the creation of light sensitivity of neurons using gene technologies and remote light activation. Optogenetics allows for the first time straightforward targeted neural stimulation with practically no interference between multiple stimulation points since either light beam can be finely confined or the expression of light sensitive ion channels and pumps can be genetically targeted. Here we present a generalised computational modeling technique for various types of optogenetic mechanisms, which was implemented in the NEURON simulation environment. It was demonstrated on the example of a two classical mechanisms for cells optical activation and silencing: channelrhodopsin-2 (ChR2) and halorhodopsin (NpHR).We theoretically investigate the dynamics of the neural response of a layer 5 cortical pyramidal neuron (L5) to four different types of illuminations: 1) wide-field whole cell illumination 2) wide-field apical dendritic illumination 3) focal somatic illumination and 4) focal axon initial segment (AIS) illumination. We show that whole-cell illumination of halorhodopsin most effectively hyperpolarizes the neuron and is able to silence the cell even when driving input is present. However, when channelrhodopsin-2 and halorhodopsin are concurrently active, the relative location of each illumination determines whether the response is modulated with a balance towards depolarization. The methodology developed in this study will be significant to interpret and design optogenetic experiments and in the field of neuroengineering in general.

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Edward S. Boyden

Massachusetts Institute of Technology

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