From ATOM to GradiATOM: Cortical gradients support time and space processing as revealed by a meta-analysis of neuroimaging studies
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[1] F. Frassinetti,et al. Prismatic adaptation effects on spatial representation of time in neglect patients , 2013, Cortex.
[2] Thomas L. Griffiths,et al. Supplementary Information for Natural Speech Reveals the Semantic Maps That Tile Human Cerebral Cortex , 2022 .
[3] Simon B Eickhoff,et al. Minimizing within‐experiment and within‐group effects in activation likelihood estimation meta‐analyses , 2012, Human brain mapping.
[4] Martin I. Sereno,et al. Spatial maps in frontal and prefrontal cortex , 2006, NeuroImage.
[5] Masamichi J. Hayashi,et al. Time Adaptation Shows Duration Selectivity in the Human Parietal Cortex , 2015, PLoS biology.
[6] Dieter Kleinböhl,et al. A "view from nowhen" on time perception experiments. , 2012, Journal of experimental psychology. Human perception and performance.
[7] Giacomo Koch,et al. Spatial–temporal interactions in the human brain , 2009, Experimental Brain Research.
[8] M. D’Esposito,et al. Topographical disorientation: a synthesis and taxonomy. , 1999, Brain : a journal of neurology.
[9] Thomas Karlsson,et al. Magnitude Processing in the Brain: An fMRI Study of Time, Space, and Numerosity as a Shared Cortical System , 2016, Front. Hum. Neurosci..
[10] Vincent Walsh. A theory of magnitude: common cortical metrics of time, space and quantity , 2003, Trends in Cognitive Sciences.
[11] Julia M. Huntenburg,et al. Large-Scale Gradients in Human Cortical Organization , 2018, Trends in Cognitive Sciences.
[12] F. Frassinetti,et al. Time and spatial attention: Effects of prism adaptation on temporal deficits in brain damaged patients , 2011, Neuropsychologia.
[13] Ryota Kanai,et al. Chronotopic maps in human supplementary motor area , 2019, PLoS biology.
[14] M. D’Esposito,et al. Is the rostro-caudal axis of the frontal lobe hierarchical? , 2009, Nature Reviews Neuroscience.
[15] R. Seurinck,et al. Does egocentric mental rotation elicit sex differences? , 2004, NeuroImage.
[16] Ryota Kanai,et al. Interaction of Numerosity and Time in Prefrontal and Parietal Cortex , 2013, The Journal of Neuroscience.
[17] Ilaria Mazzonetto,et al. Bayesian modeling of temporal expectations in the human brain , 2019, NeuroImage.
[18] Julio Santiago,et al. Flexible Conceptual Projection of Time Onto Spatial Frames of Reference , 2006, Cogn. Sci..
[19] Angela R. Laird,et al. Comparison of the disparity between Talairach and MNI coordinates in functional neuroimaging data: Validation of the Lancaster transform , 2010, NeuroImage.
[20] Angela M. Uecker,et al. ALE meta‐analysis: Controlling the false discovery rate and performing statistical contrasts , 2005, Human brain mapping.
[21] Olaf Blanke,et al. Brain system for mental orientation in space, time, and person , 2015, Proceedings of the National Academy of Sciences.
[22] Valérie Dormal,et al. A common right fronto‐parietal network for numerosity and duration processing: An fMRI study , 2012, Human brain mapping.
[23] Guinevere F. Eden,et al. Meta-Analysis of the Functional Neuroanatomy of Single-Word Reading: Method and Validation , 2002, NeuroImage.
[24] Aldo Genovesio,et al. Encoding Goals but Not Abstract Magnitude in the Primate Prefrontal Cortex , 2012, Neuron.
[25] Sonja A. Kotz,et al. Functional dissociation of pre-SMA and SMA-proper in temporal processing , 2012, NeuroImage.
[26] Giorgia Cona,et al. Where is the “where” in the brain? A meta‐analysis of neuroimaging studies on spatial cognition , 2019, Human brain mapping.
[27] Jeffrey W. Cooney,et al. Hierarchical cognitive control deficits following damage to the human frontal lobe , 2009, Nature Neuroscience.
[28] T. Wüstenberg,et al. Women and men exhibit different cortical activation patterns during mental rotation tasks , 2002, Neuropsychologia.
[29] Elizabeth Jefferies,et al. Situating the default-mode network along a principal gradient of macroscale cortical organization , 2016, Proceedings of the National Academy of Sciences.
[30] L. Boroditsky,et al. Time in the mind: Using space to think about time , 2008, Cognition.
[31] M. Corbetta,et al. The Reorienting System of the Human Brain: From Environment to Theory of Mind , 2008, Neuron.
[32] M. Catani,et al. A lateralized brain network for visuospatial attention , 2011, Nature Neuroscience.
[33] R. Weiner,et al. Neuropsychological Aspects Of Disorientation , 1987, Cortex.
[34] Franck Vidal,et al. The supplementary motor area in motor and sensory timing: evidence from slow brain potential changes , 1999, Experimental Brain Research.
[35] F. K. Schumacher,et al. Functionally dissociating ventro-dorsal components within the rostro-caudal hierarchical organization of the human prefrontal cortex , 2019, NeuroImage.
[36] K. Zilles,et al. Coordinate‐based activation likelihood estimation meta‐analysis of neuroimaging data: A random‐effects approach based on empirical estimates of spatial uncertainty , 2009, Human brain mapping.
[37] R. Zatorre,et al. Listening to musical rhythms recruits motor regions of the brain. , 2008, Cerebral cortex.
[38] Sylvie Droit-Volet,et al. SMA Selectively Codes the Active Accumulation of Temporal, Not Spatial, Magnitude , 2015, Journal of Cognitive Neuroscience.
[39] M. Tabak,et al. On the localization of water-soluble porphyrins in micellar systems evaluated by static and time-resolved frequency-domain fluorescence techniques. , 2008, Colloids and surfaces. B, Biointerfaces.
[40] Simon B Eickhoff,et al. Imaging-based parcellations of the human brain , 2018, Nature Reviews Neuroscience.
[41] V. Walsh,et al. The parietal cortex and the representation of time, space, number and other magnitudes , 2009, Philosophical Transactions of the Royal Society B: Biological Sciences.
[42] Michael C. Corballis,et al. Functional Neuroanatomy of Mental Rotation , 2009, Journal of Cognitive Neuroscience.
[43] S. Petersen,et al. A dual-networks architecture of top-down control , 2008, Trends in Cognitive Sciences.
[44] Louise Connell,et al. Space–time interdependence: Evidence against asymmetric mapping between time and space , 2015, Cognition.
[45] Masami Ishihara,et al. Horizontal spatial representations of time: Evidence for the STEARC effect , 2008, Cortex.
[46] Laurence Casini,et al. The SMAs: Neural Substrate of the Temporal Accumulator? , 2011, Front. Integr. Neurosci..
[47] D. Stuss,et al. How time modulates spatial responses , 2011, Cortex.
[48] Wayne E. Mackey,et al. Visual field map clusters in human frontoparietal cortex , 2016, bioRxiv.
[49] A. Nobre,et al. Dissociating explicit timing from temporal expectation with fMRI , 2008, Current Opinion in Neurobiology.
[50] D. Moher,et al. Preferred reporting items for systematic reviews and meta-analyses: the PRISMA statement. , 2010, International journal of surgery.
[51] M. Zorzi,et al. When time is space: Evidence for a mental time line , 2012, Neuroscience & Biobehavioral Reviews.
[52] J. Lurito,et al. Neural circuitry underlying perception of duration depends on language experience , 2002, Brain and Language.
[53] Daniel S. Margulies,et al. BrainSpace: a toolbox for the analysis of macroscale gradients in neuroimaging and connectomics datasets , 2019, Communications Biology.
[54] R. Goebel,et al. Tracking the Mind's Image in the Brain I Time-Resolved fMRI during Visuospatial Mental Imagery , 2002, Neuron.
[55] J. Fuster. Upper processing stages of the perception–action cycle , 2004, Trends in Cognitive Sciences.
[56] Thomas Wolbers,et al. Space, time, and numbers in the right posterior parietal cortex: Differences between response code associations and congruency effects , 2016, NeuroImage.
[57] Angela R. Laird,et al. Behavior, sensitivity, and power of activation likelihood estimation characterized by massive empirical simulation , 2016, NeuroImage.
[58] J. Ioannidis,et al. The PRISMA statement for reporting systematic reviews and meta-analyses of studies that evaluate healthcare interventions: explanation and elaboration , 2009, BMJ : British Medical Journal.
[59] Daniel Casasanto,et al. Do monkeys think in metaphors? Representations of space and time in monkeys and humans , 2010, Cognition.
[60] M Concetta Morrone,et al. Saccadic eye movements cause compression of time as well as space , 2005, Nature Neuroscience.
[61] Daniel Casasanto,et al. Space and Time in the Child's Mind: Evidence for a Cross-Dimensional Asymmetry , 2010, Cogn. Sci..
[62] S. Wise,et al. Context-Dependent Duration Signals in the Primate Prefrontal Cortex. , 2016, Cerebral cortex.
[63] A. Sack,et al. The cross-functional role of frontoparietal regions in cognition: internal attention as the overarching mechanism , 2014, Progress in Neurobiology.
[64] Angela D. Friederici,et al. Neural circuits of hierarchical visuo-spatial sequence processing , 2009, Brain Research.
[65] Franco Cauda,et al. The Neural Correlates of Time: A Meta-analysis of Neuroimaging Studies , 2019, Journal of Cognitive Neuroscience.
[66] Martin Wiener,et al. The image of time: A voxel-wise meta-analysis , 2010, NeuroImage.
[67] Laura E. Suárez,et al. Gradients of structure–function tethering across neocortex , 2019, Proceedings of the National Academy of Sciences.
[68] G. Glover,et al. Dissociable Intrinsic Connectivity Networks for Salience Processing and Executive Control , 2007, The Journal of Neuroscience.
[69] Angela R. Laird,et al. The heterogeneity of the left dorsal premotor cortex evidenced by multimodal connectivity-based parcellation and functional characterization , 2017, NeuroImage.
[70] Michael J. Martinez,et al. Bias between MNI and Talairach coordinates analyzed using the ICBM‐152 brain template , 2007, Human brain mapping.
[71] C. Semenza,et al. Supplementary motor area as key structure for domain-general sequence processing: A unified account , 2017, Neuroscience & Biobehavioral Reviews.
[72] Jacob M. Paul,et al. A Network of Topographic Maps in Human Association Cortex Hierarchically Transforms Visual Timing-Selective Responses , 2020, Current Biology.
[73] S. Kastner,et al. Mechanisms of Spatial Attention Control in Frontal and Parietal Cortex , 2010, The Journal of Neuroscience.
[74] Clayton E. Curtis,et al. Visual field map clusters in human frontoparietal cortex , 2016 .
[75] Patrik Vuilleumier,et al. Hemispatial Neglect Shows That “Before” Is “Left” , 2016, Neural plasticity.
[76] Remco J. Renken,et al. Cerebral representations of space and time , 2009, NeuroImage.
[77] C. Semenza,et al. Cultural modulations of space–time compatibility effects , 2014, Psychonomic bulletin & review.
[78] Angela R. Laird,et al. Ten simple rules for neuroimaging meta-analysis , 2018, Neuroscience & Biobehavioral Reviews.
[79] Martin P. Paulus,et al. Accumulation of neural activity in the posterior insula encodes the passage of time , 2008, Neuropsychologia.
[80] Angela R. Laird,et al. Activation likelihood estimation meta-analysis revisited , 2012, NeuroImage.
[81] Mark D'Esposito,et al. Influence of Motivation on Control Hierarchy in the Human Frontal Cortex , 2015, The Journal of Neuroscience.
[82] Ravi S. Menon,et al. Motor Area Activity During Mental Rotation Studied by Time-Resolved Single-Trial fMRI , 2000, Journal of Cognitive Neuroscience.
[83] Gian Domenico Iannetti,et al. An Action Field Theory of Peripersonal Space , 2018, Trends in Cognitive Sciences.
[84] Franck Vidal,et al. Time processing reflected by EEG surface Laplacians , 2002, Experimental Brain Research.
[85] Jinglong Wu,et al. An fMRI Study of the Neural Systems Involved in Visually Cued Auditory Top-Down Spatial and Temporal Attention , 2012, PloS one.
[86] Clayton E. Curtis,et al. Maps of space in human frontoparietal cortex , 2013, Journal of Physiology-Paris.
[87] Alice Teghil,et al. Neural substrates of internally-based and externally-cued timing: An activation likelihood estimation (ALE) meta-analysis of fMRI studies , 2019, Neuroscience & Biobehavioral Reviews.
[88] Martin Wiener,et al. Multiple Mechanisms for Temporal Processing , 2011, Front. Integr. Neurosci..
[89] Sheng He,et al. Larger stimuli are judged to last longer. , 2007, Journal of vision.
[90] Boris C. Bernhardt,et al. Gradients of structure–function tethering across neocortex , 2019, Proceedings of the National Academy of Sciences.
[91] D. Moher,et al. Preferred reporting items for systematic reviews and meta-analyses: the PRISMA Statement , 2009, BMJ : British Medical Journal.
[92] A. Nobre,et al. Prioritizing Information during Working Memory: Beyond Sustained Internal Attention , 2017, Trends in Cognitive Sciences.
[93] S. Yantis,et al. Spatially selective representations of voluntary and stimulus-driven attentional priority in human occipital, parietal, and frontal cortex. , 2007, Cerebral cortex.
[94] A. Nobre,et al. Where and When to Pay Attention: The Neural Systems for Directing Attention to Spatial Locations and to Time Intervals as Revealed by Both PET and fMRI , 1998, The Journal of Neuroscience.
[95] Jay Pratt,et al. Time flies like an arrow: Space-time compatibility effects suggest the use of a mental timeline , 2008, Psychonomic bulletin & review.
[96] Erich Schröger,et al. Human auditory event-related potentials predict duration judgments , 2005, Neuroscience Letters.