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    See Also:

    Sites:
  • Shuffle Brain: "How does a brain store a mind?" A large collection of articles, essays, and links related to brain science. From Indiana University.
  • Advanced Brain Monitoring: Develops portable devices that interpret electrical activity and identify levels of alertness or drowsiness.
  • Auditory Physiology and Biophysics: Cellular basis of information processing in the auditory system. Potassium channels, modeling, synaptic transmission, and dendritic integration.
  • Behavioral Neuroscience: Memorial to Shirley L. Buchanan and her contribution to behavioral neuroscience research. Includes information about her and other associated scientists, particularly journal publications.
  • BESA: Innovators in digital EEG and MEG software for research and clinical applications.
  • Biophysics of Neuronal Computation: Using the detailed biophysics and microanatomy of cortical neurons to study their complexity from an information theory point of view - from the California Inst. of Technology.
  • Brain and Behavior, from Serendip: Interactive exhibits, forum, and links aimed at exploring the observational basis and significance of the assertion that the nervous system underlies all aspects of human behavior and experience.
  • Brain Update: "Science Friday" audio discussion with Martin Citron, Charles Gross, and Evan Snyder on the 1999 discovery that new neurons are continually being added to the brains of adult monkeys, even to parts of the brain responsible for very high-level functioning, and what this might mean for learning, memory and the treatment of neurological diseases. Features related links.
  • Brain-Mind.com: Everything you ever wanted to know about the brain and the mind, but were afraid to ask.
  • BrainInfo: A Primate Brain Information System: Extensive resource to belp site visitors identify structures in the brain. Provides information about each structure, including comparative neuroanatomy of primates and rodents.
  • Brandi Ormerod: Describes how neurogenesis in the adult brain is regulated by steroids and the immune system. Lists research, papers, talks, posters and awards. Phd from University of British Columbia. Currently doing post doctorate work at the Michael J. Fox Foundation.
  • Center for Consciousness Studies: Interdisciplinary program promoting open, scientifically rigorous discussions of all phenomena related to the mind. Includes course, conference and workshop listings - from the Univ. of Arizona.
  • CNS Healthcare - Clinical Neuroscience Solutions: Advanced evaluations, treatments, monitoring, education, for those with psychiatric and neurological diseases.
  • Contemporary Philosophy of Mind: An annotated bibliography of recent work in the philosophy of mind, philosophy of cognitive science, philosophy of artificial intelligence, and on consciousness in the sciences.
  • Ear & Brain Seminar: Describes people and projects of hearing and balance research in Germany.
  • Evogen LC: Offering a compilation of current research on: genetics, brain and mind.
  • Hardin MD: Neurology & Neurosciences: Lists of Internet sources in neurology, neurosurgery, and neurosciences, and nervous system diseases.
  • Imaging the Deaf Brain: A research project exploring how British Sign Language (BSL) is processed by deaf people, with BSL translations of findings to date.
  • Ion Channels, Transmitters, Receptors, and Disease: Extensive review of ion channel biology and related neuromuscular pathology - from Washington Univ.-St. Louis.
  • Microiontophoresis: A practical guide to the art of microiontophoresis employed in neuroscience research.
  • Mitochondria and Neurons: Innovative and speculative hypotheses on how mitochondria might act as flip-flop memory elements in the dendrites of neurons. Explanation of how mitochondria could trigger impulses and detect frequencies.
  • NeuroDetective: Contract research firm specializing in testing the functional efficacy of potential CNS therapeutics in animal models, with an additional focus on behavioural evaluation of genetically altered animals.
  • Neurodudes: A blog edited by several neuroscientists, which discusses neuroscience, consciousness, and AI.
  • Neurology and Neurosciences Journals: Many useful links and information for neuroscientists, neurologists and fMRI researchers, such as funding opportunities, jobs, conferences, and brain atlas.
  • Neuroscience for Kids: Intended for elementary and secondary school students and teachers who are interested in learning more about the nervous system and brain. Hands on activities, experiments, information for all grade levels.
  • Neuroscience on the Internet: A searchable and browsable index of neuroscience resources available on the Internet.
  • Neurosciences: Examine everything from how neurons communicate with each other to the physiological processes that govern the way we act and think. From About.com.
  • Neurotrophic Factors: Information on neurotrophic factors.
  • NINDS Neuron Fact Sheet: Educational booklet about how neurons develop, function, and die, prepared by the National Institute of Neurological Disorders and Stroke.
  • Olfaction: Current understanding of the physiological basis for olfaction (sense of smell) and the possible molecular interactions that specify odorant signaling.
  • OpenStim: The Open Noninvasive Brain Stimulator: An open-source project to build a transcranial device. Includes Wiki for self-reporting of brain-stimulation experience.
  • Principles of Psychobiology: Interactive software study guide in psychobiology and neuroscience - for purchase from Red Reef Publications.
  • Processes in Animal Vision: A new advanced text on all aspects of the visual system. Major sections on physiology, the photoreceptor cell, the neuron and the performance of the eye.
  • Research Network on Early Experience & Brain Development: Strives to be inter- and multi-disciplinary by drawing on experts from developmental psychology, developmental neurobiology, and developmental/behavioral pediatrics.
  • Scientific American Frontiers: Learn more about the fascinating human brain and uncover startling new evidence of our brain's ability to change, plus, take a virtual tour of the famous organ.
  • Synapse Web: Scientific resources for the study of synapse structure and function, including tutorials on neurocytology, software, 3D data, and reconstructions from serial electron microscopy.
  • Telluride Workshop on Neuromorphic Engineering: A three-week workshop focused on bringing together researchers from academia with their counterparts in industry, working on sensory systems and sensory-motor integration.
  • The Brain Page: Eclectic collection of thought-provoking, quasi-scientific opinions on brain function.
  • The Human Brain: A Mystery to Itself: Learn about the human brain in a simple, fun, and interactive environment.
  • The Myelin Group: Research concerning the correct formation and maintenance of the myelin sheath. Includes publications, members, photo gallery, and views and opinions. University of Oulu.
  • The Octopus Research Group: Research group, at the Hebrew University of Jerusalem, working on the motor control of the cephalopod's (octopus vulgaris) flexible arm.
  • The Science of Sleep: Science Friday audio discussion of why we need sleep, with Clifford Saper, David White, and Craig Heller.
  • The W.U.S.M. Neuroscience Tutorial: Excellent tutorial for neuroscience.


     from Wikipedia

    Neurobiology

    From Wikipedia, the free encyclopedia

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    Neurobiology is the study of cells of the nervous system and the organization of these cells into functional circuits that process information and mediate behavior.[1] It is a subdiscipline of both biology and neuroscience. Neurobiology differs from neuroscience, a much broader field that is concerned with any scientific study of the nervous system. Neurobiology should also not be confused with other subdisciplines of neuroscience such as computational neuroscience, cognitive neuroscience, behavioral neuroscience, biological psychiatry, neurology, and neuropsychology despite the overlap with these subdisciplines. Scientists that study neurobiology are called neurobiologists.

    Neurons and glial cells

    Main articles: neuron, glial cell

    stained neuron
    stained neuron

    Neurons are cells that are specialized to receive, propagate, and transmit electrochemical impulses. In the human brain alone, there are over a hundred billion neurons. Neurons are diverse with respect to morphology and function. Thus, not all neurons correspond to the stereotypical motor neuron with dendrites and myelinated axons that conduct action potentials. Some neurons such as photoreceptors, for example, do not have myelinated axons that conduct action potentials. Other unipolar neurons found in invertebrates do not even have distinguishing processes such as dendrites. Moreover, the distinctions based on function between neurons and other cells such as cardiac and muscle cells are not helpful. Thus, the fundamental difference between a neuron and a nonneuronal cell is a matter of degree.

    Another major class of cells found in the nervous system are glial cells. Despite the abundance of glial cells relative to neurons in the nervous system (there are ten glial cells for every single neuron), glial cells are only recently beginning to receive attention from neurobiologists for being involved not just in nourishment and support of neurons, but also in modulating synapses. For example, Schwann cells, a type of glial cells found in the peripheral nervous system, modulate synaptic connections between the presynaptic terminal from a motor neuron and endplate muscle fiber in the neuromuscular junction.

    Neuronal function

    One prominent characteristic of many neurons is excitability. Neurons generate electrical impulses or changes in voltage of two types: graded potentials and action potentials. Graded potentials occur when the membrane potential depolarizes and hyperpolarizes in a graded fashion relative to the amount of stimulus that is applied to the neuron. An action potential on the other hand is an all-or-none electrical impulse. Despite being slower than graded potentials, action potentials have the advantage of traveling long distances in axons with little or no decrement. Much of the current knowledge of action potentials comes from squid axon experiments by Sir Alan Lloyd Hodgkin and Sir Andrew Huxley.

    Action potential

    "Current Clamp" is a common technique in electrophysiology. This is a whole cell current clamp recording of a neuron firing a train of action potentials due to it being depolarized by current injection
    "Current Clamp" is a common technique in electrophysiology. This is a whole cell current clamp recording of a neuron firing a train of action potentials due to it being depolarized by current injection

    The Hodgkin-Huxley Model of an action potential in the squid giant axon has been the basis for much of the current understanding of the ionic bases of action potentials. Briefly, the model states that the generation of an action potential is determined by two ions: Na+ and K+. An action potential can be divided into several sequential phases: threshold, rising phase, falling phase, undershoot phase, and recovery. Following several local graded depolarizations of the membrane potential, the threshold of excitation is reached, voltage-gated sodium channels are activated, which leads to an influx of Na+ ions. As Na+ ions enter the cell, the membrane potential is further depolarized, and more voltage-gated sodium channels are activated. Such a process is also known as a positive-feedback loop. As the rising phase reaches its peak, voltage-gated Na+ channels are inactivated whereas voltage-gated K+ channels are activated, resulting in a net outward movement of K+ ions, which repolarizes the membrane potential towards the resting membrane potential. Repolarization of the membrane potential continues, resulting in an undershoot phase or absolute refractory period. The undershoot phase occurs because unlike voltage-gated sodium channels, voltage-gated potassium channels inactivate much more slowly. Nevertheless, as more voltage-gated K+ channels become inactivated, the membrane potential recovers to its normal resting steady state.

    Structure and formation of synapses

    Illustration of the major elements in a prototypical synapse. Synapses allow nerve cells to communicate with one another through axons and dendrites, converting electrical impulses into chemical signals.
    Illustration of the major elements in a prototypical synapse. Synapses allow nerve cells to communicate with one another through axons and dendrites, converting electrical impulses into chemical signals.

    Neurons communicate with one another via synapses. Synapses are specialized junctions between two cells in close apposition to one another. In a synapse, the neuron that sends the signal is the presynaptic neuron and the target cell receives that signal is the postsynaptic neuron or cell. Synapses can be either electrical or chemical. Electrical synapses are characterized by the formation of gap junctions that allow ions and other organic compound to instantaneously pass from one cell to another.[2] Chemical synapses are characterized by the presynaptic release of neurotransmitters that diffuse across a synaptic cleft to bind with postsynaptic receptors. A neurotransmitter is a chemical messenger that is synthesized within neurons themselves and released by these same neurons to communicate with their postsynaptic target cells. A receptor is a transmembrane protein molecule that a neurotransmitter or drug binds. Chemical synapses are slower than electrical synapses.

    Neurotransmitter transporters, receptors, and signaling mechanisms

    After neurotransmitters are synthesized, they are packaged and stored in vesicles. These vesicles are pooled together in terminal boutons of the presynaptic neuron. When there is a change in voltage in the terminal bouton, voltage-gated calcium channels embedded in the membranes of these boutons become activated. These allow Ca2+ ions to diffuse through these channels and bind with synaptic vesicles within the terminal buttons. Once bounded with Ca2+, the vesicles dock and fuse with the presynaptic membrane, and release neurotransmitters into the synaptic cleft by a process known as exocytosis. The neurotransmitters then diffuse across the synaptic cleft and binds to postsynaptic receptors embedded on the postsynaptic membrane of another neuron. There are two families of receptors: ionotropic and metabotropic receptors. Ionotropic receptors are a combination of a receptor and an ion channel. When ionotropic receptors are activated, certain ion species such as Na+ to enter the postsynaptic neuron, which depolarizes the postsynaptic membrane. If more of the same type of postsynaptic receptors are activated, then more Na+ will enter the postsynaptic membrane and depolarize cell. Metabotropic receptors on the other hand activate second messenger cascade systems that result in the opening of ion channel located some place else on the same postsynaptic membrane. Although slower than ionotropic receptors that function as on-and-off switches, metabotropic receptors have the advantage of changing the cell's responsiveness to ions and other metabolites, examples being Gamma Amino-Butyric Acid (inhibitory transmitter), Glutamic Acid (excitatory transmitter), Dopamine, Norepinephrine, Epinephrine, Melanin, Serotonin, Melatonin, and Substance-P.

    Postsynaptic depolarizations can be either excitatory or inhibitory. Those that are excitatory are referred to as excitatory postsynaptic potential (EPSP). Alternatively, some postsynaptic receptors allow Cl- ions to enter the cell or K+ ions to leave the cell, which results in an inhibitory postsynaptic potential (IPSP). If the EPSP is dominant, the threshold of excitation in the postynaptic neuron may be reached, resulting in the generation and propagation of an action potential in the postynaptic neuron.

    Synaptic plasticity

    Synaptic plasticity is the process whereby strengths of synaptic connections are altered. For example, long-term changes in synaptic connection may result in more postynaptic receptors being embedded in the postsynaptic membrane, resulting in the strengthening of the synapse. Synaptic plasticity is also found to be the neural mechanism that underlies learning and memory.

    Sensory systems

    Gray's FIG. 722– Scheme showing central connections of the optic nerves and optic tracts.
    Gray's FIG. 722– Scheme showing central connections of the optic nerves and optic tracts.

    The auditory system is a sensory system for the sense of hearing. It consists of the outer ear, the middle ear, and the inner ear.

    The olfactory system is the sensory system used for olfaction. The accessory olfactory system senses pheromones. The olfactory system is often spoken of along with the gustatory system as the chemosensory senses because both transduce chemical signals into perception. Linda B. Buck and Richard Axel won the 2004 Nobel Prize in Physiology or Medicine for their work on the olfactory system.

    The visual system is the part of the nervous system which allows organisms to see. It interprets the information from visible light to build a representation of the world surrounding the body. The visual system has the complex task of (re)constructing a three dimensional world from a two dimensional projection of that world. Note that different species are able to see different parts of the light spectrum; for example, some can see into the ultraviolet, while others can see into the infrared.

    Neural development

    Neural development is the process whereby the nervous system grows and develops. In humans, aside from the primitive gut, the nervous system is the first organ system to develop and the last system to reach maturity. Development of the nervous system begins when the ectoderm thickens to form a neural plate. The neural plate in turns thickens to form the neural tube, which then twists, turns and kinks to form the three primary brain vesicles and five secondary brain vesicles. Within this neural tube totipotent cells migrate and differentiate into neurons and glial cells.

    References

    1. ^ Shepard, G. M. (1994). Neurobiology. 3rd Ed. Oxford University Press. ISBN 0-19-508843-3
    2. ^ Martin, A. R., Wallace, B. G., Fuchs, P. A. & Nicholls, J. G. (2001). From Neuron to Brain: A Cellular and Molecular Approach to the Function of the Nervous System. 4th Ed. Sinauer Associates. ISBN 0-87893-439-1

    Neuroscience subfields:

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    Behavioral Neurology | Biological Psychology | Cognitive Neuroscience | Cognitive Psychophysiology | Computational Neuroscience | Molecular Cellular Cognition | Neural Engineering | Neuroanatomy | Neurobiology | Neurochemistry | Neuroendocrinology | Neuroimaging | Neurolinguistics | Neurology | Neuromonitoring | Neuropharmacology | Neurophysiology | Neuropsychology | Neuropsychiatry | Neurosurgery | Psychiatry | Psychobiology | Psychopharmacology | Psychophysiology | Systems Neuroscience

    Psychology subfields:

    Edit
    Behavioral Neurology | Cognitive Psychology | Cognitive Neuroscience | Biological Psychology | Neuroimaging | Psycholinguistics | Psychophysics | Psychophysiology | Neuropsychology | Neuropsychiatry | Psychopharmacology | Systems Neuroscience | Mathematical Psychology | Developmental Psychology | Social Psychology | Clinical Psychology | Evolutionary Psychology | Forensic Psychology

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