Results for 'Synapse'

166 found
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  1. Astrocyte-Synapse Receptor Coupling in Tripartite Synapses: A Mechanism for Self-Observing Robots.Bernhard J. Mitterauer - 2018 - Advances in Bioscience and Biotechnology 9 (2):63-82.
    A model of an intentional self-observing system is proposed based on the structure and functions of astrocyte-synapse interactions in tripartite synapses. Astrocyte-synapse interactions are cyclically organized and operate via feedforward and feedback mechanisms, formally described by proemial counting. Synaptic, extrasynaptic and astrocyte receptors are interpreted as places with the same or different quality of information processing described by the combinatorics of tritograms. It is hypothesized that receptors on the astrocytic membrane may embody intentional programs that select corresponding synaptic (...)
     
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  2.  84
    Synapse Pruning: Mitochondrial ROS with Their Hands on the Shears.James N. Cobley - 2018 - Bioessays 40 (7):1800031.
    No overarching hypotheses tie the basic mechanisms of mitochondrial reactive oxygen species (ROS) production to activity dependent synapse pruning—a fundamental biological process in health and disease. Neuronal activity divergently regulates mitochondrial ROS: activity decreases whereas inactivity increases their production, respectively. Placing mitochondrial ROS as innate synaptic activity sentinels informs the novel hypothesis that: (1) at an inactive synapse, increased mitochondrial ROS production initiates intrinsic apoptosis dependent pruning; and (2) at an active synapse, decreased mitochondrial ROS production masks (...)
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  3.  76
    My synapses, myself.William Calvin - unknown
    The self, Joseph LeDoux tells us, is “the totality of the living organism”. Most disciplines in the natural sciences focus on only one or two levels of organization. Indeed, Dmitri Mendeleev figured out the periodic table of the elements without knowing any of the underlying quantum mechanics or stereochemistry. There are, however, at least a dozen levels of organization within the neurosciences — and, if we use a metaphor, we temporarily create yet another. This leads to considerable confusion and arguments (...)
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  4.  72
    Synapses, Schizophrenia, and Civilization: What Made Homo Sapient?Lyman A. Page - 2007 - Zygon 42 (3):767-778.
    . Progress in technology has allowed dynamic research on the development of the human brain that has revolutionized concepts. Particularly, the notions of plasticity, neuronal selection, and the effects of afferent stimuli have entered into thinking about brain development. Here I focus on development from the age of four years to early adulthood, during which a 30 percent reduction in some brain synapses occurs that is out of proportion to changes in neuronal numbers. This corresponds temporally with changes in normal (...)
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  5.  81
    NMDA synapses can bias competition between object representations and mediate attentional selection.Antonino Raffone, Jaap M. J. Murre & Gezinus Wolters - 2003 - Behavioral and Brain Sciences 26 (1):100-101.
    Phillips & Silverstein emphasize the gain-control properties of NMDA synapses in cognitive coordination. We endorse their view and suggest that NMDA synapses play a crucial role in biased attentional competition and (visual) working memory. Our simulations show that NMDA synapses can control the storage rate of visual objects. We discuss specific predictions of our model about cognitive effects of NMDA-antagonists and schizophrenia.
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  6. Evolutionary origin of synapses and neurons - Bridging the gap.Pawel Burkhardt & Simon G. Sprecher - 2017 - Bioessays 39 (10):1700024.
    The evolutionary origin of synapses and neurons is an enigmatic subject that inspires much debate. Non-bilaterian metazoans, both with and without neurons and their closest relatives already contain many components of the molecular toolkits for synapse functions. The origin of these components and their assembly into ancient synaptic signaling machineries are particularly important in light of recent findings on the phylogeny of non-bilaterian metazoans. The evolution of synapses and neurons are often discussed only from a metazoan perspective leaving a (...)
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  7. From Biological Synapses to "Intelligent" Robots.Birgitta Dresp-Langley - 2022 - Electronics 11:1-28.
    This selective review explores biologically inspired learning as a model for intelligent robot control and sensing technology on the basis of specific examples. Hebbian synaptic learning is discussed as a functionally relevant model for machine learning and intelligence, as explained on the basis of examples from the highly plastic biological neural networks of invertebrates and vertebrates. Its potential for adaptive learning and control without supervision, the generation of functional complexity, and control architectures based on self-organization is brought forward. Learning without (...)
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  8. A theory of the epigenesis of neuronal networks by selective stabilization of synapses.Jean Pierre Changeux, Philippe Courrège & Antoine Danchin - 1973 - Proceedings of the National Academy of Sciences Usa 70 (10):2974-8.
    A formalism is introduced to represent the connective organization of an evolving neuronal network and the effects of environment on this organization by stabilization or degeneration of labile synapses associated with functioning. Learning, or the acquisition of an associative property, is related to a characteristic variability of the connective organization: the interaction of the environment with the genetic program is printed as a particular pattern of such organization through neuronal functioning. An application of the theory to the development of the (...)
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  9.  74
    Synapses edited by W. Maxwell Cowan, Thomas C. Sudhof, and Charles F. Stevens.James Brorson - 2003 - Perspectives in Biology and Medicine 46 (4):600-602.
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  10.  88
    Synapse signalling complexes and networks: machines underlying cognition.Seth G. N. Grant - 2003 - Bioessays 25 (12):1229-1235.
  11. Synapse formation and elimination.J. W. Lichtman, S. J. Burden, S. M. Culican & R. O. L. Wong - 1999 - In M. J. Zigmond & F. E. Bloom, Fundamental Neuroscience.
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  12.  45
    A Synapse by any Other Name: Could Neuronal Compartmentalization be an Evolutionary and Developmental Parallel of Immune Cell Organization?Andrew Moore - 2020 - Bioessays 42 (8):2000177.
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  13.  90
    Beyond inhibition: GABA synapses tune the neuroendocrine stress axis.Wataru Inoue & Jaideep S. Bains - 2014 - Bioessays 36 (6):561-569.
    We recently described a novel form of stress‐associated bidirectional plasticity at GABA synapses onto hypothalamic parvocellular neuroendocrine cells (PNCs), the apex of the hypothalamus‐pituitary‐adrenal axis. This plasticity may contribute to neuroendocrine adaptation. However, this GABA synapse plasticity likely does not translate into a simple more and less of inhibition because the ionic driving force for Cl−, the primary charge carrier for GABAA receptors, is dynamic. Specifically, stress impairs a Cl− extrusion mechanism in PNCs. This not only renders the steady‐state (...)
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  14.  75
    The Hebbian synapse: Progenitor of consciousness.Willard Miranker - 2005 - Mind and Matter 3 (2):87-102.
    A dualistic approach to consciousness is presented that employs Hebbian synaptic dynamics and the basic notion of measurement in science to bridge the so-called explanatory gap between first-person consciousness and third-person science. Unconscious processing by neural circuitry characterizes (i) the neuron as a measuring instrument and (ii) the neural signal as the quantity to be measured. Hebbian synaptic dynamics, effectuating the storage of information, implements the role of an observer of a measurement outcome. The approach extends physical renormalization techniques, as (...)
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  15.  73
    Recombinant neuromuscular synapses.William D. Phillips & John P. Merlie - 1992 - Bioessays 14 (10):671-679.
    The developing neuromuscular junction has provided an important paradigm for studying synapse formation. An outstanding feature of neuromuscular differentiation is the aggregation of acetylcholine receptors (AChRs) at high density in the postsynaptic membrane. While AChR aggregation is generally believed to be induced by the nerve, the mechanisms underlying aggregation remain to be clarified. A 43‐kD protein (43k) normally associated with the cytoplasmic aspect of AChR clusters has long been suspected of immobilizing AChRs by linking them to the cytoskeleton. In (...)
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  16.  99
    From songs to synapses: Molecular mechanisms of birdsong memory.Sanne Moorman, Claudio V. Mello & Johan J. Bolhuis - 2011 - Bioessays 33 (5):377-385.
    There are remarkable behavioral, neural, and genetic similarities between the way songbirds learn to sing and human infants learn to speak. Furthermore, the brain regions involved in birdsong learning, perception, and production have been identified and characterized in detail. In particular, the caudal medial nidopallium (the avian analog of the mammalian auditory‐association cortex) has been found to contain the neural substrate of auditory memory, paving the way for analyses of the underlying molecular mechanisms. Recently, the zebra finch genome was sequenced, (...)
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  17.  77
    Fat facets does a Highwire act at the synapse.Janice A. Fischer & Erin Overstreet - 2002 - Bioessays 24 (1):13-16.
    Neuromuscular synapses are highly dynamic structures that respond to both intercellular and intracellular cues to manipulate synaptic form. A variety of post‐translational modifications of synaptic proteins are used to regulate synaptic plasticity. A recent report by DiAntonio et al.(1) shows that two ubiquitin pathway proteins, Highwire and Fat facets, may be mutually antagonistic regulators of presynaptic growth at the Drosophila neuromuscular junction. This work adds support to the emerging idea that ubiquitin, a polypeptide that targets proteins for proteasomal degradation, regulates (...)
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  18.  13
    Synchronization Through Excitatory Synapses: Epilepsy but Also Conscious Perception.Roger Traub & Andreas Draguhn - 2024 - In Roger Traub & Andreas Draguhn, Brain Leitmotifs: The Structure and Activity Patterns of Neuronal Networks. Cham: Springer Verlag. pp. 139-151.
    In this chapter we shall argue for a notion that will strike many as paradoxical, even absurd: we shall argue that neuronal circuitry allowing conscious perception to occur will, by its very nature, also allow for the possibility of epilepsy – not necessarily all the time but certainly after various perturbations.
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  19. From Blickets to Synapses: Inferring Temporal Causal Networks by Observation.Chrisantha Fernando - 2013 - Cognitive Science 37 (8):1426-1470.
    How do human infants learn the causal dependencies between events? Evidence suggests that this remarkable feat can be achieved by observation of only a handful of examples. Many computational models have been produced to explain how infants perform causal inference without explicit teaching about statistics or the scientific method. Here, we propose a spiking neuronal network implementation that can be entrained to form a dynamical model of the temporal and causal relationships between events that it observes. The network uses spike-time (...)
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  20.  52
    A link between cholesterol, synapse plasticity, degeneration and neurological disorders: Reinvention or integration?Alexei Koudinov - 2003 - Bioessays 25 (7):736-737.
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  21.  94
    Imaging firing synapses.Louise Kay - 2010 - Philosophy of Photography 1 (1):55-57.
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  22.  62
    What is a synapse?R. W. Ryall - 1979 - Behavioral and Brain Sciences 2 (3):435-436.
  23.  82
    Signaling mechanisms mediating synapse formation.Bruce G. Wallace - 1996 - Bioessays 18 (10):777-780.
    Recent experiments have begun to decipher the molecular dialog that mediates differentiation at sites of synaptic between neurons and their targets. It had been hypothesized that the protein agrin is released by axon terminals at embryonic neuromuscular junctions and binds to a receptor on the myofiber surface to trigger postsynaptic differentiation. Now a genetic ‘Knockout’ experiment has confirmed the essential role of agrin in signaling between developing nerve and muscle(1). A second ‘knockout’ has shown that the muscle‐specific receptor tyrosine kinase (...)
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  24.  70
    Communication at synapses.Forrest F. Weight - 1979 - Behavioral and Brain Sciences 2 (3):438-439.
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  25. Nip and tuck at the neuromuscular junction: A role for proteases in developmental synapse elimination.Qiang Chang & Rita J. Balice-Gordon - 1997 - Bioessays 19 (4):271-275.
    During late embryonic and early postnatal development, synaptic connections are extensively modified so that some functional connections are weakened and eliminated from a neural circuit while others are strengthened and maintained. The mechanisms that underlie synapse elimination are beginning to be understood from studies of the neuromuscular junction. A recent paper(1) provides some intriguing insights into the role proteases may play in the developmental disassembly of neuromuscular synapses.
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  26.  88
    The role of the ubiquitin proteasome system in synapse remodeling and neurodegenerative diseases.Mei Ding & Kang Shen - 2008 - Bioessays 30 (11-12):1075-1083.
    The ubiquitin proteasome system is a potent regulatory mechanism used to control protein stability in numerous cellular processes, including neural development. Many neurodegenerative diseases are featured by the accumulation of UPS‐associated proteins, suggesting the UPS dysfunction may be crucial for pathogenesis. Recent experiments have highlighted the UPS as a key player during synaptic development. Here we summarize recent discoveries centered on the role of the UPS in synapse remodeling and draw attention to the potential link between the synaptic UPS (...)
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  27.  68
    SNARE interactions in membrane trafficking: A perspective from mammalian central synapses.Ege T. Kavalali - 2002 - Bioessays 24 (10):926-936.
    SNAREs (soluble N‐ethylmaleimide‐sensitive factor attachment protein receptors) are a large family of proteins that are present on all organelles involved in intracellular vesicle trafficking and secretion. The interaction of complementary SNAREs found on opposing membranes presents an attractive lock‐and‐key mechanism, which may underlie the specificity of vesicle trafficking. Moreover, formation of the tight complex between a vesicle membrane SNARE and corresponding target membrane SNAREs could drive membrane fusion. In synapses, this tight complex, also referred to as the synaptic core complex, (...)
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  28.  63
    The rate of learning measured at a single synapse.P. S. Shurrager & H. C. Shurrager - 1946 - Journal of Experimental Psychology 36 (4):347.
  29.  66
    Corrigendum to: From Neural Synapses to Culture-Historical Boundaries: An Archaeological Comment on the Plastic Mind , doi: 10.1163/15685373-12342135). [REVIEW]Mette Løvschal - 2015 - Journal of Cognition and Culture 15 (1-2):233-234.
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  30. Sequential Spiking Neural P Systems with Local Scheduled Synapses without Delay.Alia Bibi, Fei Xu, Henry N. Adorna & Francis George C. Cabarle - 2019 - Complexity 2019:1-12.
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  31.  25
    Basic Properties of Biological Neurons and Synapses.Roger Traub & Andreas Draguhn - 2024 - In Roger Traub & Andreas Draguhn, Brain Leitmotifs: The Structure and Activity Patterns of Neuronal Networks. Cham: Springer Verlag. pp. 25-43.
    In this chapter we shall make the case that in the study of brain function – from computational or clinical points of view – it is essential to take biological detail into consideration. In doing so, we must address three types of question: (1) why is this necessary, given that biological detail is seemingly unbounded? (2) How much detail is important – and which details to include? (3) How does one go about it? (This last question we shall approach in (...)
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  32. Evidence That Long-Term Potentiation Occurs within Individual Hippocampal Synapses during Learning.Linda Palmer - unknown
    Vadim Fedulov,1 Christopher S. Rex,2 Danielle A. Simmons,3 Linda Palmer,4 Christine M. Gall,1,2 and Gary Lynch.
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  33.  25
    Building network learning algorithms from Hebbian synapses.Terrence J. Sejnowski & Gerald Tesauro - 1990 - In J. McGaugh, Jerry Weinberger & G. Lynch, Brain Organization and Memory: Cells, Systems, and Circuits. Guilford Press. pp. 338--355.
  34.  33
    Complexity in the coupled dynamics of fast neurons and slow synapses.D. Sherrington, R. W. Penney & A. C. C. Coolen - 1995 - In Robert J. Russell, Nancey Murphy & Arthur R. Peacocke, Chaos and Complexity. Vatican Observatory Publications.
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  35.  71
    How do taste cells lacking synapses mediate neurotransmission? CALHM1, a voltage‐gated ATP channel.Akiyuki Taruno, Ichiro Matsumoto, Zhongming Ma, Philippe Marambaud & J. Kevin Foskett - 2013 - Bioessays 35 (12):1111-1118.
    CALHM1 was recently demonstrated to be a voltage‐gated ATP‐permeable ion channel and to serve as a bona fide conduit for ATP release from sweet‐, umami‐, and bitter‐sensing type II taste cells. Calhm1 is expressed in taste buds exclusively in type II cells and its product has structural and functional similarities with connexins and pannexins, two families of channel protein candidates for ATP release by type II cells. Calhm1 knockout in mice leads to loss of perception of sweet, umami, and bitter (...)
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  36.  48
    Richard Rapport. Nerve Endings: The Discovery of the Synapse. 240 pp., bibl., index. New York: W. W. Norton, 2005. $23.95. [REVIEW]Bonnie Ellen Blustein - 2008 - Isis 99 (1):207-208.
  37.  64
    Book Review: Nerve endings: a sensitive subject nerve endings: The discovery of the synapse and the quest to find how brain cells communicate. [REVIEW]Roger Keynes - 2006 - Bioessays 28 (2):225-226.
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  38.  60
    New concepts of molecular communication among neurons.R. Key Dismukes - 1979 - Behavioral and Brain Sciences 2 (3):409-416.
    Recently a number of complex electrophysiological responses to neurotransmitters have been observed that cannot be described as simple excitation or inhibition. These responses are often characterized as modulatory, although there is no consensus on what defines modulation. Morphological studies reveal certain neurotransmitters stored in what might be release sites without synaptic contact. There is no direct evidence for nonsynaptic release from CNS sites, although such release does occur in the periphery and in invertebrates. Nonsynaptic release might provide a basis for (...)
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  39. Quantum propensities in the brain cortex and free will.Danko D. Georgiev - 2021 - Biosystems 208:104474.
    Capacity of conscious agents to perform genuine choices among future alternatives is a prerequisite for moral responsibility. Determinism that pervades classical physics, however, forbids free will, undermines the foundations of ethics, and precludes meaningful quantification of personal biases. To resolve that impasse, we utilize the characteristic indeterminism of quantum physics and derive a quantitative measure for the amount of free will manifested by the brain cortical network. The interaction between the central nervous system and the surrounding environment is shown to (...)
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  40. Long-term potentiation: What's learning got to do with it?Tracey J. Shors & Louis D. Matzel - 1997 - Behavioral and Brain Sciences 20 (4):597-614.
    Long-term potentiation (LTP) is operationally defined as a long-lasting increase in synaptic efficacy following high-frequency stimulation of afferent fibers. Since the first full description of the phenomenon in 1973, exploration of the mechanisms underlying LTP induction has been one of the most active areas of research in neuroscience. Of principal interest to those who study LTP, particularly in the mammalian hippocampus, is its presumed role in the establishment of stable memories, a role consistent with descriptions of memory formation. Other characteristics (...)
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  41. Recent advances in brain physiology and cognitive processing.Alfredo Pereira Jr, Maria Ornellas Pereira & Fábio Furlan - 2011 - Mens Sana Monographs 9 (1):183.
    The discovery of participation of astrocytes as active elements in glutamatergic tripartite synapses (composed by functional units of two neurons and one astrocyte) has led to the construction of models of cognitive functioning in the human brain, focusing on associative learning, sensory integration, conscious processing and memory formation/retrieval. We have modelled human cognitive functions by means of an ensemble of functional units (tripartite synapses) connected by gap junctions that link distributed astrocytes, allowing the formation of intra- and intercellular calcium waves (...)
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  42.  71
    Long-lasting potentiation of GABAergic inhibitory synaptic transmission in cerebellar Purkinje cells: Its properties and possible mechanisms.Masanobu Kano - 1996 - Behavioral and Brain Sciences 19 (3):354-361.
    The cellular basis of motor learning in the cerebellum has been attributed mostly to long-term depression (LTD) at excitatory parallel fiber (PF)-Purkinje cell (PC) synapses. LTD is induced when PFs are activated in conjunction with a climbing fiber (CF), the other excitatory input to PCs. Recently, by using whole-cell patch-clamp recording from PCs in cerebellar slices, a new form of synaptic plasticity was discovered. Stimulation of excitatory CFs induced a long-lasting (usually longer than 30 min) of 30 sec) and the (...)
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  43.  46
    “[G]azing into the synaptic chasm”: the Brain in Beckett’s Writing.Rina Kim - 2016 - Journal of Medical Humanities 37 (2):149-160.
    This paper argues that Samuel Beckett’s interest in functions of the brain is not only evidenced in his notebooks, taken from a number of psychology and psycho-physiognomy texts in the early 1930s, but is also explored and expanded in his fiction and drama. This paper investigates Beckett’s fascination with the limits of “cerebral consciousness” and the brain’s failure to consciously perceive certain bodily modifications especially when processing emotion. Like Antonio Damasio’s definition of emotion as essentially the bodily modifications that include (...)
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  44.  77
    Les tableaux-pièges de daniel spoerri entre art et ethnographie.Nicole Gabriel & Gerhard Neumann - 2005 - Hermes 43:141.
    Les rituels sont les synapses dans le tissu culturel d'où sont issus les éléments qui gouvernent la vie en commun et la communication des êtres humains. Il en est ainsi depuis le commencement de toute société humaine. Mais ce n'est qu'au XX siècle que se manifeste un véritable intérêt pour le fonctionnement et l'importance culturelle des rituels. Il s'agit d'un tournant inspiré par les théories des ethnologues, et placé sous le signe du cultural turn et du performative turn du XX (...)
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  45. From simulating to duplicating the brain.Johannes Brinz - 2026 - Synthese 207 (3):110.
    The philosophy of AI has a long-standing tradition of discussing brain duplicates and brain simulations as well as a tendency to blur the lines between the two. The distinction between simulating and duplicating the brain has become increasingly important with the emergence of “ʼneuromorphic computers”, hardware operating with bio-inspired mechanisms and interconnecting artificial neurons and synapses. This paper explores what it means to duplicate the brain rather than merely simulate it. I claim that while simulations share only a mathematical structure (...)
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  46. Function, selection, and construction in the brain.Justin Garson - 2012 - Synthese 189 (3):451-481.
    A common misunderstanding of the selected effects theory of function is that natural selection operating over an evolutionary time scale is the only functionbestowing process in the natural world. This construal of the selected effects theory conflicts with the existence and ubiquity of neurobiological functions that are evolutionary novel, such as structures underlying reading ability. This conflict has suggested to some that, while the selected effects theory may be relevant to some areas of evolutionary biology, its relevance to neuroscience is (...)
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  47. The representation of egocentric space in the posterior parietal cortex.J. F. Stein - 1992 - Behavioral and Brain Sciences 15 (4):691-700.
    The posterior parietal cortex (PPC) is the most likely site where egocentric spatial relationships are represented in the brain. PPC cells receive visual, auditory, somaesthetic, and vestibular sensory inputs; oculomotor, head, limb, and body motor signals; and strong motivational projections from the limbic system. Their discharge increases not only when an animal moves towards a sensory target, but also when it directs its attention to it. PPC lesions have the opposite effect: sensory inattention and neglect. The PPC does not seem (...)
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  48. Signaling in the Brain: In Search of Functional Units.Rosa Cao - 2014 - Philosophy of Science 81 (5):891-901.
    What are the functional units of the brain? If the function of the brain is to process information-carrying signals, then the functional units will be the senders and receivers of those signals. Neurons have been the default candidate, with action potentials as the signals. But there are alternatives: synapses fit the action potential picture more cleanly, and glial activities (e.g., in astrocytes) might also be characterized as signaling. Are synapses or nonneuronal cells better candidates to play the role of functional (...)
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  49. Scientific Concepts as Forward-Looking: How Taxonomic Structure Facilitates Conceptual Development.Corinne L. Bloch-Mullins - 2020 - Journal of the Philosophy of History 14 (2):205-231.
    This paper examines the interplay between conceptual structure and the evolution of scientific concepts, arguing that concepts are fundamentally ‘forward-looking’ constructs. Drawing on empirical studies of similarity and categorization, I explicate the way in which the conceptual taxonomy highlights the ‘relevant respects’ for similarity judgments involved in categorization. I then propose that this taxonomy provides some of the cognitive underpinnings of the ongoing development of scientific concepts. I use the concept synapse to illustrate my proposal, showing how conceptual taxonomy (...)
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  50. Apical amplification—a cellular mechanism of conscious perception?Tomas Marvan, Michal Polák, Talis Bachmann & William A. Phillips - 2021 - Neuroscience of Consciousness 7 (2):1-17.
    We present a theoretical view of the cellular foundations for network-level processes involved in producing our conscious experience. Inputs to apical synapses in layer 1 of a large subset of neocortical cells are summed at an integration zone near the top of their apical trunk. These inputs come from diverse sources and provide a context within which the transmission of information abstracted from sensory input to their basal and perisomatic synapses can be amplified when relevant. We argue that apical amplification (...)
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