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The memory function of sleep, Nat Rev Neurosci, 11, 114, 10.1038\u002Fnrn2762\nThayer, 2009, Heart rate variability, prefrontal neural function, and cognitive performance: the neurovisceral integration perspective on self-regulation, adaptation, and health, Ann Behav Med, 37, 141, 10.1007\u002Fs12160-009-9101-z\nMcGaugh, 2003, Emotion and memory: central and peripheral contributions, Handb Affect Sci, 93\nNaji, 2019, Coupling of autonomic and central events during sleep benefits declarative memory consolidation, Neurobiol Learn Mem, 157, 139, 10.1016\u002Fj.nlm.2018.12.008\nWhitehurst, 2016, Autonomic activity during sleep predicts memory consolidation in humans, Proc Natl Acad Sci U S A, 113, 7272, 10.1073\u002Fpnas.1518202113\nNaji, 2019, Timing between cortical slow oscillations and heart rate bursts during sleep predicts temporal processing speed, but not offline consolidation, J Cogn Neurosci, 1\nPackard, 1995, The anatomy of a memory modulatory system: from periphery to brain, Neurobehav Plast: Learn Dev Response Brain Insults, 149\nGold, 1976, Effects of posttrial hormone injections on memory processes, Horm Behav, 7, 509, 10.1016\u002F0018-506X(76)90021-0\nIntroini-Collison, 1986, Epinephrine modulates long-term retention of an aversively motivated discrimination, Behav Neural Biol, 45, 358, 10.1016\u002FS0163-1047(86)80024-3\nIntroini-Collison, 1992, Memory-enhancing effects of post-training dipivefrin and epinephrine: involvement of peripheral and central adrenergic receptors, Brain Res, 572, 81, 10.1016\u002F0006-8993(92)90454-H\nWilliams, 1993, Reversible lesions of the nucleus of the solitary tract attenuate the memory-modulating effects of posttraining epinephrine, Behav Neurosci, 107, 955, 10.1037\u002F0735-7044.107.6.955\nSvensson, 1979, Brain noradrenergic neurons in the locus coeruleus: inhibition by blood volume load through vagal afferents, Brain Res, 172, 174, 10.1016\u002F0006-8993(79)90908-9\nWilliams, 1990, The effects of vagotomy on the firing patterns in locus coeruleus neurons, vol 16\nKalia, 1982, Brainstem projections of sensory and motor components of the vagus nerve in the rat, J Comp Neurol, 211, 248, 10.1002\u002Fcne.902110304\nSumal, 1983, Synaptic interaction of vagal afferents and catecholaminergic neurons in the rat nucleus tractus solitarius, Brain Res, 277, 31, 10.1016\u002F0006-8993(83)90904-6\nShaffer, 2014, A healthy heart is not a metronome: an integrative review of the heart’s anatomy and heart rate variability, Front Psychol, 5, 10.3389\u002Ffpsyg.2014.01040\nLaborde, 2017, Heart rate variability and cardiac vagal tone in psychophysiological research – recommendations for experiment planning, data analysis, and data reporting, Front Psychol, 8, 213, 10.3389\u002Ffpsyg.2017.00213\nLaborde, 2018, A unifying conceptual framework of factors associated to cardiac vagal control, Heliyon, 4, 10.1016\u002Fj.heliyon.2018.e01002\nHansen, 2003, Vagal influence on working memory and attention, Int J Psychophysiol, 48, 263, 10.1016\u002FS0167-8760(03)00073-4\nMosley, 2018, Coping related variables, cardiac vagal activity and working memory performance under pressure, Acta Psychol, 191, 179, 10.1016\u002Fj.actpsy.2018.09.007\nHansen, 2004, Heart rate variability and its relation to prefrontal cognitive function: the effects of training and detraining, Eur J Appl Physiol, 93, 263, 10.1007\u002Fs00421-004-1208-0\nClancy, 2014, Non-invasive vagus nerve stimulation in healthy humans reduces sympathetic nerve activity, Brain Stimul, 7, 871, 10.1016\u002Fj.brs.2014.07.031\nClark, 1999, Enhanced recognition memory following vagus nerve stimulation in human subjects, Nat Neurosci, 2, 94, 10.1038\u002F4600\nJacobs, 2015, Transcutaneous vagus nerve stimulation boosts associative memory in older individuals, Neurobiol Aging, 36, 1860, 10.1016\u002Fj.neurobiolaging.2015.02.023\nBurger, 2016, The effects of transcutaneous vagus nerve stimulation on conditioned fear extinction in humans, Neurobiol Learn Mem, 132, 49, 10.1016\u002Fj.nlm.2016.05.007\nRechtschaffen, 1968\nTrinder, 2001, Autonomic activity during human sleep as a function of time and sleep stage, J Sleep Res, 10, 253, 10.1046\u002Fj.1365-2869.2001.00263.x\nBurgess, 2004, Estimating cardiac autonomic activity during sleep: impedance cardiography, spectral analysis, and Poincare plots, Clin Neurophysiol, 115, 19, 10.1016\u002FS1388-2457(03)00312-2\nBušek, 2005, Spectral analysis of heart rate variability in sleep, Physiol Res, 54, 369, 10.33549\u002Fphysiolres.930645\nCellini, 2016, Heart rate variability during daytime naps in healthy adults: autonomic profile and short‐term reliability, Psychophysiology, 53, 473, 10.1111\u002Fpsyp.12595\nTrinder, 2012, Sleep and cardiovascular regulation, Pflügers Archiv-Eur J Physiol, 463, 161, 10.1007\u002Fs00424-011-1041-3\nWhitehurst, 2018, Comparing the cardiac autonomic activity profile of daytime naps and nighttime sleep, Neurobiol Sleep Circadian Rhythms, 5, 52, 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in recent-onset psychosis: 1-year stability and clinical outcome, Schizophr Bull, 36, 400, 10.1093\u002Fschbul\u002Fsbn100\nBartok, 2005, Cognitive functions in prepsychotic patients, Prog Neuropsychopharmacol Biol Psychiatry, 29, 621, 10.1016\u002Fj.pnpbp.2005.01.008\nWood, 2002, Visuospatial memory and learning in first-episode schizophreniform psychosis and established schizophrenia: a functional correlate of hippocampal pathology?, Psychol Med, 32, 429, 10.1017\u002FS0033291702005275\nCollie, 2002, Selectively impaired associative learning in older people with cognitive decline, J Cogn Neurosci, 14, 484, 10.1162\u002F089892902317361994\nOngur, 2006, The neural basis of relational memory deficits in schizophrenia, Arch Gen Psychiatry, 63, 356, 10.1001\u002Farchpsyc.63.4.356\nArmstrong, 2012, Revised associative inference paradigm confirms relational memory impairment in schizophrenia, Neuropsychology, 26, 451, 10.1037\u002Fa0028667\nBartholomeusz, 2011, Relational memory in first episode psychosis: implications for progressive hippocampal dysfunction after illness onset, Aust N Z J Psychiatry, 45, 206, 10.3109\u002F00048674.2010.547456\nWilliams, 2012, Intact relational memory and normal hippocampal structure in the early stage of psychosis, Biol Psychiatry, 71, 105, 10.1016\u002Fj.biopsych.2011.09.016\nFusar-Poli, 2010, Spatial working memory in individuals at high risk for psychosis: longitudinal fMRI study, Schizophr Res, 123, 45, 10.1016\u002Fj.schres.2010.06.008\nSimpson, 2003\nPantelis, 2010, Should we redefine the concept of endophenotype in schizophrenia?, Rev Bras Psiquiatr, 32, 106, 10.1590\u002FS1516-44462010000200003\nWood, 2003, Spatial working memory ability is a marker of risk-for-psychosis, Psychol Med, 33, 1239, 10.1017\u002FS0033291703008067\nPantelis C., et al.: Progressive decline in attentional set-shifting ability in first episode schizophrenia: a 7-year follow-up study (submitted for publication).\nDe Luca, 2003, Normative data from the CANTAB. I: development of executive function over the lifespan, J Clin Exp Neuropsychol, 25, 242, 10.1076\u002Fjcen.25.2.242.13639\nSun, 2009, Brain surface contraction mapped in first-episode schizophrenia: a longitudinal magnetic resonance imaging study, Mol Psychiatry, 14, 976, 10.1038\u002Fmp.2008.34\nSun, 2009, Progressive brain structural changes mapped as psychosis develops in ‘at risk’ individuals, Schizophr Res, 108, 85, 10.1016\u002Fj.schres.2008.11.026\nPantelis, 2003, Neuroanatomical abnormalities before and after onset of psychosis: a cross-sectional and longitudinal MRI comparison, Lancet, 361, 281, 10.1016\u002FS0140-6736(03)12323-9\nJob, 2005, Grey matter changes over time in high risk subjects developing schizophrenia, Neuroimage, 25, 1023, 10.1016\u002Fj.neuroimage.2005.01.006\nTognin, 2013, Using structural neuroimaging to make quantitative predictions of symptom progression in individuals at ultra-high risk for psychosis, Front Psychiatry, 4, 187\nCannon, 2014, Progressive reduction in cortical thickness as psychosis develops: a multisite longitudinal neuroimaging study of youth at elevated clinical risk, Biol Psychiatry\nGogtay, 2007, Cortical brain development in nonpsychotic siblings of patients with childhood-onset schizophrenia, Arch Gen Psychiatry, 64, 772, 10.1001\u002Farchpsyc.64.7.772\nMattai, 2011, Normalization of cortical gray matter deficits in nonpsychotic siblings of patients with childhood-onset schizophrenia, J Am Acad Child Adolesc Psychiatry, 50, 697, 10.1016\u002Fj.jaac.2011.03.016\nZalesky, 2015, Delayed development of brain connectivity in children with schizophrenia and their nonpsychotic siblings, JAMA Psychiatry, 10.1001\u002Fjamapsychiatry.2015.0226\nPantelis, 2014, Social neuroscience in psychiatry: pathways to discovering neurobiological risk and resilience, World Psychiatry, 13, 146, 10.1002\u002Fwps.20123\nKatagiri, 2015, A longitudinal study investigating sub-threshold symptoms and brain changes in individuals with an ‘At Risk Mental State’ (ARMS), Schizophr Res, 10.1016\u002Fj.schres.2015.01.002\nVelligan, 2000, Two case studies of cognitive adaptation training for outpatients with schizophrenia, Psychiatr Serv, 51, 25, 10.1176\u002Fps.51.1.25\nKillackey, 2007, Effectiveness of early intervention in psychosis, Curr Opin Psychiatry, 20, 121, 10.1097\u002FYCO.0b013e328017f67d\nSrihari, 2012, Is early intervention for psychosis feasible and effective?, Psychiatr Clin N Am, 35, 613, 10.1016\u002Fj.psc.2012.06.004\nWykes, 2011, A meta-analysis of cognitive remediation for schizophrenia: methodology and effect sizes, Am J Psychiatry, 168, 472, 10.1176\u002Fappi.ajp.2010.10060855\nBowie, 2014, Cognitive remediation in schizophrenia: efficacy and effectiveness in patients with early versus long-term course of illness, Early Interv Psychiatry, 8, 32, 10.1111\u002Feip.12029\nGoldberg, 1987, Further evidence for dementia of the prefrontal type in schizophrenia? 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Deficits and predictors of improvement in schizophrenia, J Nerv Ment Dis, 183, 688, 10.1097\u002F00005053-199511000-00003\nGreen, 2000, Neurocognitive deficits and functional outcome in schizophrenia: are we measuring the “right stuff”?, Schizophr Bull, 26, 119, 10.1093\u002Foxfordjournals.schbul.a033430\nProuteau, 2005, Cognitive predictors of psychosocial functioning outcome in schizophrenia: a follow-up study of subjects participating in a rehabilitation program, Schizophr Res, 77, 343, 10.1016\u002Fj.schres.2005.03.001\nAllott, 2013, The relative contribution of neurocognition and social cognition to 6-month vocational outcomes following Individual Placement and Support in first-episode psychosis, Schizophr Res, 150, 136, 10.1016\u002Fj.schres.2013.07.047\nBartholomeusz, 2013, Social cognition training as an intervention for improving functional outcome in first-episode psychosis: a feasibility study, Early Interv Psychiatry, 7, 421, 10.1111\u002Feip.12036\nCacciotti-Saija, 2014, A double-blind randomized controlled trial of oxytocin nasal spray and social cognition training for young people with early psychosis, Schizophr Bull\nGreen, 2012, Social cognition in schizophrenia. 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2012, Rule and similarity in grammar: their interplay and individual differences in the brain, Neuroimage, 60, 2019, 10.1016\u002Fj.neuroimage.2012.02.016\nKepinska, 2017, On neural correlates of individual differences in novel grammar learning: an fMRI study, Neuropsychologia, 98, 156, 10.1016\u002Fj.neuropsychologia.2016.06.014\nAizenstein, 2004, Regional brain activation during concurrent implicit and explicit sequence learning, Cereb Cortex, 14, 199, 10.1093\u002Fcercor\u002Fbhg119\nBahlmann, 2009, Neural circuits of hierarchical visuo-spatial sequence processing, Brain Res, 1298, 161, 10.1016\u002Fj.brainres.2009.08.017\nThiel, 2003, Neuronal correlates of familiarity-driven decisions in artificial grammar learning, Neuroreport, 14, 131, 10.1097\u002F00001756-200301200-00024\nVan Opstal, 2009, The neural representation of extensively trained ordered sequences, Neuroimage, 47, 367, 10.1016\u002Fj.neuroimage.2009.04.035",{"EN":388},"Structured sequence learning across sensory 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10.1111\u002Fj.1558-5646.2012.01679.x\nFuller, 2005, Sensory bias as an explanation for the evolution of mate preferences, Am Nat, 166, 437, 10.1086\u002F444443\nLande, 1981, Models of speciation by sexual selection on polygenic traits, Proc Natl Acad Sci U S A, 78, 3721, 10.1073\u002Fpnas.78.6.3721\nVerweij, 2014, The association of genotype-based inbreeding coefficient with a range of physical and psychological human traits, PLOS ONE, 9, e103102, 10.1371\u002Fjournal.pone.0103102\nGangestad, 1997, Behavioral genetic variation, adaptation and maladaptation: an evolutionary perspective, Trends Cogn Sci, 1, 103, 10.1016\u002FS1364-6613(97)89056-0\nKeller, 2009, Modeling extended twin family data. 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III: Family structure and the analysis of experiments, Am J Hum Genet, 31, 366\nEaves, 1976, A model for sibling effects in man, Heredity, 36, 205, 10.1038\u002Fhdy.1976.25\nKeller, 2013, The genetic correlation between height and IQ: shared genes or assortative mating?, PLoS Genet, 9, e1003451, 10.1371\u002Fjournal.pgen.1003451\nGangestad, 1999, Facial attractiveness, Trends Cogn Sci, 3, 452, 10.1016\u002FS1364-6613(99)01403-5\nLittle, 2011, Facial attractiveness: evolutionary based research, Philos Trans R Soc B: Biol Sci, 366, 1638, 10.1098\u002Frstb.2010.0404\nMitchem, 2014, Estimating the sex-specific effects of genes on facial attractiveness and sexual dimorphism, Behav Genet, 44, 270, 10.1007\u002Fs10519-013-9627-5\nLee, 2012, Estimating the proportion of variation in susceptibility to schizophrenia captured by common SNPs, Nat Genet, 44, 247, 10.1038\u002Fng.1108\nKirk, 2001, Natural selection and quantitative genetics of life-history traits in Western women: a twin study, Evolution, 55, 423, 10.1111\u002Fj.0014-3820.2001.tb01304.x\nBelsky, 1991, Childhood experience, interpersonal development, and reproductive strategy: an evolutionary theory of socialization, Child Dev, 62, 647, 10.2307\u002F1131166\nMendle, 2006, Family structure and age at menarche: a children-of-twins approach, Dev Psychol, 42, 533, 10.1037\u002F0012-1649.42.3.533\nMendle, 2009, Associations between father absence and age of first sexual intercourse, Child Dev, 80, 1463, 10.1111\u002Fj.1467-8624.2009.01345.x\nGriskevicius, 2013, When the economy falters, do people spend or save? 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Genet, 93, 103, 10.1016\u002Fj.ajhg.2013.06.004\nGhani, 2013, Evidence of recessive Alzheimer disease loci in a Caribbean Hispanic data set: genome-wide survey of runs of homozygosity, JAMA Neurol, 70, 1261\nPower, 2014, A recessive genetic model and runs of homozygosity in major depressive disorder, Am J Med Genet B: Neuropsychiatr Genet, 165B, 157, 10.1002\u002Fajmg.b.32217\nMcQuillan, 2008, Runs of homozygosity in European populations, Am J Hum Genet, 83, 359, 10.1016\u002Fj.ajhg.2008.08.007\nKeller, 2011, Quantification of inbreeding due to distant ancestors and its detection using dense SNP data, Genetics, 189, 237, 10.1534\u002Fgenetics.111.130922\nKeller, 2012, Runs of homozygosity implicate autozygosity as a schizophrenia risk factor, PLoS Genet, 8, e1002656, 10.1371\u002Fjournal.pgen.1002656\nFisher, 1918, The correlation between relatives on the supposition of Mendelian inheritance, Trans R Soc Edinb, 52, 399, 10.1017\u002FS0080456800012163\nGiusti-Rodriguez, 2013, The genomics of schizophrenia: update and implications, J Clin Invest, 123, 4557, 10.1172\u002FJCI66031\nGratten, 2014, Large-scale genomics unveils the genetic architecture of psychiatric disorders, Nat Neurosci, 17, 782, 10.1038\u002Fnn.3708\n2014, Biological insights from 108 schizophrenia-associated genetic loci, Nature, 511, 421, 10.1038\u002Fnature13595\nHill, 2008, Data and theory point to mainly additive genetic variance for complex traits, PLoS Genet, 4, 1, 10.1371\u002Fjournal.pgen.1000008\nEyre-Walker, 2010, Genetic architecture of a complex trait and its implications for fitness and genome-wide association studies, Proc Natl Acad Sci U S A, 107, 1752, 10.1073\u002Fpnas.0906182107\nBarton, 2002, Understanding quantitative genetic variation, Nat Rev Genet, 3, 11, 10.1038\u002Fnrg700\nBamshad, 2003, Signatures of natural selection in the human genome, Nat Rev Genet, 4, 99, 10.1038\u002Fnrg999\nYang, 2010, Common SNPs explain a large proportion of the heritability for human height, Nat Genet, 42, 565, 10.1038\u002Fng.608\nWray, 2005, Allele frequencies and the r2 measure of linkage disequilibrium: impact on design and interpretation of association studies, Twin Res Hum Genet, 8, 87, 10.1375\u002Ftwin.8.2.87\nVinkhuyzen, 2012, Common SNPs explain some of the variation in the personality dimensions of neuroticism and extraversion, Transl Psychiatry, 2, e102, 10.1038\u002Ftp.2012.27\nDavies, 2011, Genome-wide association studies establish that human intelligence is highly heritable and polygenic, Mol Psychiatry, 16, 996, 10.1038\u002Fmp.2011.85\nVrieze, 2013, Three mutually informative ways to understand the genetic relationships among behavioral disinhibition, alcohol use, drug use, nicotine use\u002Fdependence, and their co-occurrence: twin biometry, GCTA, and genome-wide scoring, Behav Genet, 43, 97, 10.1007\u002Fs10519-013-9584-z\nde Candia, 2013, Additive genetic variation in schizophrenia risk is shared by populations of African and European descent, Am J Hum Genet, 10.1016\u002Fj.ajhg.2013.07.007\nPlomin, 2013, Common DNA markers can account for more than half of the genetic influence on cognitive abilities, Psychol Sci, 24, 562, 10.1177\u002F0956797612457952\nDavis, 2013, Partitioning the heritability of Tourette syndrome and obsessive compulsive disorder reveals differences in genetic architecture, PLoS Genet, 9, e1003864, 10.1371\u002Fjournal.pgen.1003864\nKeller, 2005, Quantifying and addressing parameter indeterminacy in the classical twin design, Twin Res Hum Genet, 8, 201, 10.1375\u002Ftwin.8.3.201\nHedrick, 2012, What is the evidence for heterozygote advantage selection?, Trends Ecol Evol, 27, 698, 10.1016\u002Fj.tree.2012.08.012\nAsthana, 2005, A limited role for balancing selection, Trends Genet, 21, 30, 10.1016\u002Fj.tig.2004.11.001\nBubb, 2006, Scan of human genome reveals no new Loci under ancient balancing selection, Genetics, 173, 2165, 10.1534\u002Fgenetics.106.055715\nGustavson, 2014, Genetic relations among 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2009, Experience-dependent epigenetic modifications in the central nervous system, Biol Psychiatry, 65, 191, 10.1016\u002Fj.biopsych.2008.09.002\nSweatt, 2013, The emerging field of neuroepigenetics, Neuron, 80, 624, 10.1016\u002Fj.neuron.2013.10.023\nMoore, 2015, An outstanding overview for the general reader of the role of epigenetic mechanims in behavior.\nDuke, 2017, Experience-dependent epigenomic reorganization in the hippocampus, Learn Mem, 24, 278, 10.1101\u002Flm.045112.117\nBaker-Andresen, 2013, Dynamic DNA methylation: a prime candidate for genomic metaplasticity and behavioral adaptation, Trends Neurosci, 36, 3, 10.1016\u002Fj.tins.2012.09.003\nFrancis, 2012\nMeaney, 2005, Environmental programming of stress responses through DNA methylation: life at the interface between a dynamic environment and a fixed genome, Dialogues Clin Neurosci, 7, 103, 10.31887\u002FDCNS.2005.7.2\u002Fmmeaney\nWood, 2006, Combinatorial chromatin modifications and memory storage: a code for memory?, Learn Mem, 13, 241, 10.1101\u002Flm.278206\nLevenson, 2005, Epigenetic mechanisms in memory formation, Nat Rev Neurosci, 6, 108, 10.1038\u002Fnrn1604\nGraff, 2008, Epigenetic codes in cognition and behaviour, Behav Brain Res, 192, 70, 10.1016\u002Fj.bbr.2008.01.021\nMiller, 2007, Covalent modification of DNA regulates memory formation, Neuron, 53, 857, 10.1016\u002Fj.neuron.2007.02.022\nHeller, 2014, Locus-specific epigenetic remodeling controls addiction- and depression-related behaviors, Nat Neurosci, 17, 1720, 10.1038\u002Fnn.3871\nMeaney, 2005, Maternal care as a model for experience-dependent chromatin plasticity?, Trends Neurosci, 28, 456, 10.1016\u002Fj.tins.2005.07.006\nMeaney, 2005, Environmental programming of stress responses through DNA methylation: life at the interface between a dynamic environment and a fixed genome, Dialogues Clin Neurosci, 7, 103, 10.31887\u002FDCNS.2005.7.2\u002Fmmeaney\nEssex, 2011, Epigenetic vestiges of early developmental 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2012, The gene in its natural habitat: the importance of gene-trait interactions, Dev Psychopathol, 24, 1307, 10.1017\u002FS0954579412000727\nSweatt, 2016, An epigenomics approach to individual differences and its translation to neuropsychiatric conditions, Dialogues Clin Neurosci, 18, 289, 10.31887\u002FDCNS.2016.18.3\u002Fdsweatt\nBrunner, 2014, Epigenetic marking of sperm by post-translational modification of histones and protamines, Epigenetics Chromatin, 7, 2, 10.1186\u002F1756-8935-7-2\nDietz, 2011, Paternal transmission of stress-induced pathologies, Biol Psychiatry, 70, 408, 10.1016\u002Fj.biopsych.2011.05.005\nNestler, 2016, Transgenerational epigenetic contributions to stress responses: fact or fiction?, PLoS Biol, 14, e1002426, 10.1371\u002Fjournal.pbio.1002426\nKlengel, 2016, Models of intergenerational and transgenerational transmission of risk for psychopathology in mice, Neuropsychopharmacology, 41, 219, 10.1038\u002Fnpp.2015.249\nBhattacharjee, 2016, DNA Methylation and Chromatin Remodeling: The Blueprint of Cancer Epigenetics, Scientifica (Cairo), 2016, 6072357\nBeebe, 2016, Sharpening precision medicine by a thorough interrogation of metabolic individuality, Comput Struct Biotechnol J, 14, 97, 10.1016\u002Fj.csbj.2016.01.001\nAberg, 2014, Methylome-wide association study of schizophrenia: identifying blood biomarker signatures of environmental insults, JAMA Psychiatry, 71, 255, 10.1001\u002Fjamapsychiatry.2013.3730\nGuidotti, 2014, Toward the identification of peripheral epigenetic biomarkers of schizophrenia, J Neurogenet, 28, 41, 10.3109\u002F01677063.2014.892485\nAbdolmaleky, 2014, DNA hypermethylation of serotonin transporter gene promoter in drug naive patients with schizophrenia, Schizophr Res, 152, 373, 10.1016\u002Fj.schres.2013.12.007\nAuta, 2013, DNA-methylation gene network dysregulation in peripheral blood lymphocytes of schizophrenia patients, Schizophr Res, 150, 312, 10.1016\u002Fj.schres.2013.07.030\nDavies, 2012, Functional 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2011, A short review on the psychoneuroimmunology of posttraumatic stress disorder: from risk factors to medical comorbidities, Brain Behav Immun, 25, 6, 10.1016\u002Fj.bbi.2010.10.003\nAsnis, 2004, SSRIs versus non-SSRIs in post-traumatic stress disorder: an update with recommendations, Drugs, 64, 383, 10.2165\u002F00003495-200464040-00004\nGuo, 2012, Study on serum cytokine levels in posttraumatic stress disorder patients, Asian Pac J Trop Med, 5, 323, 10.1016\u002FS1995-7645(12)60048-0\nLindqvist, 2014, Proinflammatory milieu in combat-related PTSD is independent of depression and early life stress, Brain Behav Immun, 42, 81, 10.1016\u002Fj.bbi.2014.06.003\nMichopoulos, 2015, Diagnostic biomarkers for posttraumatic stress disorder: promising horizons from translational neuroscience research, Biol Psychiatry, 10.1016\u002Fj.biopsych.2015.01.005\nEraly, 2014, Assessment of plasma C-reactive protein as a biomarker of posttraumatic stress disorder risk, JAMA Psychiatry, 71, 423, 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posttraumatic stress disorder, Physiol Res, 62, 537, 10.33549\u002Fphysiolres.932507\nLee, 2016, Effects of systemic administration of ibuprofen on stress response in a rat model of post-traumatic stress disorder, Korean J Physiol Pharmacol, 20, 357, 10.4196\u002Fkjpp.2016.20.4.357\nBarnum, 2012, Psychological stress in adolescent and adult mice increases neuroinflammation and attenuates the response to LPS challenge, J Neuroinflamm, 9, 9, 10.1186\u002F1742-2094-9-9\nDaskalakis, 2016, New translational perspectives for blood-based biomarkers of PTSD: from glucocorticoid to immune mediators of stress susceptibility, Exp Neurol, 284, 133, 10.1016\u002Fj.expneurol.2016.07.024\nHodes, 2014, Individual differences in the peripheral immune system promote resilience versus susceptibility to social stress, Proc Natl Acad Sci, 111, 16136, 10.1073\u002Fpnas.1415191111\nPugh, 1999, Role of interleukin-1 beta in impairment of contextual fear conditioning caused by social isolation, Behav Brain Res, 106, 109, 10.1016\u002FS0166-4328(99)00098-4\nPhillips, 1992, Differential contribution of amygdala and hippocampus to cued and contextual fear conditioning, Behav Neurosci, 106, 274, 10.1037\u002F0735-7044.106.2.274\nBourin, 2007, Animal models of anxiety in mice, Fundam Clin Pharmacol, 21, 567, 10.1111\u002Fj.1472-8206.2007.00526.x\nKoo, 2009, Interleukin-1 receptor null mutant mice show decreased anxiety-like behavior and enhanced fear memory, Neurosci Lett, 456, 39, 10.1016\u002Fj.neulet.2009.03.068\nJones, 2015, The role of brain interleukin-1 in stress-enhanced fear learning, Neuropsychopharmacology, 40, 1289, 10.1038\u002Fnpp.2014.317\nWohleb, 2011, β-Adrenergic receptor antagonism prevents anxiety-like behavior and microglial reactivity induced by repeated social defeat, J Neurosci, 31, 6277, 10.1523\u002FJNEUROSCI.0450-11.2011\nWohleb, 2014, Knockdown of interleukin-1 receptor type-1 on endothelial cells attenuated stress-induced neuroinflammation and prevented anxiety-like behavior, J Neurosci, 34, 2583, 10.1523\u002FJNEUROSCI.3723-13.2014\nAuffray, 2007, Monitoring of blood vessels and tissues by a population of monocytes with patrolling behavior, Science, 317, 666, 10.1126\u002Fscience.1142883\nWohleb, 2013, Stress-induced recruitment of bone marrow-derived monocytes to the brain promotes anxiety-like behavior, J Neurosci, 33, 13820, 10.1523\u002FJNEUROSCI.1671-13.2013\nConnor, 1998, An assessment of the effects of central interleukin-1beta, -2 -6, and tumor necrosis factor-alpha administration on some behavioural, neurochemical, endocrine and immune parameters in the rat, Neuroscience, 84, 923, 10.1016\u002FS0306-4522(97)00533-2\nSimen, 2006, TNFalpha signaling in depression and anxiety: behavioral consequences of individual receptor targeting, Biol Psychiatry, 59, 775, 10.1016\u002Fj.biopsych.2005.10.013\nPatel, 2010, Lack of aggression and anxiolytic-like behavior in TNF receptor (TNF-R1 and TNF-R2) deficient mice, Brain Behav Immun, 24, 1276, 10.1016\u002Fj.bbi.2010.05.005\nGimsa, 2012, Tumour necrosis factor receptor deficiency alters anxiety-like behavioural and neuroendocrine stress responses of mice, Cytokine, 59, 72, 10.1016\u002Fj.cyto.2012.04.001\nCohen, 2006, Maladaptation to mental stress mitigated by the adaptive immune system via depletion of naturally occurring regulatory CD4+CD25+ cells, J Neurobiol, 66, 552, 10.1002\u002Fneu.20249\nYoles, 2001, Protective autoimmunity is a physiological response to CNS trauma, J Neurosci, 21, 3740, 10.1523\u002FJNEUROSCI.21-11-03740.2001\nAggarwal, 2003, Signalling pathways of the TNF superfamily: a double-edged sword, Nat Rev Immunol, 3, 745, 10.1038\u002Fnri1184\nSwiergiel, 2007, Effects of interleukin-1beta and lipopolysaccharide on behavior of mice in the elevated plus-maze and open field tests, Pharmacol Biochem Behav, 86, 651, 10.1016\u002Fj.pbb.2007.02.010\nPugh, 1998, Selective effects of peripheral lipopolysaccharide administration on contextual and auditory-cue fear conditioning, Brain Behav Immun, 12, 212, 10.1006\u002Fbrbi.1998.0524\nQuinones, 2016, Candesartan ameliorates impaired fear extinction induced by innate immune activation, Brain Behav Immun, 52, 169, 10.1016\u002Fj.bbi.2015.10.017\nBenicky, 2010, Angiotensin II AT1 receptor blockade ameliorates brain inflammation, Neuropsychopharmacology, 36, 857, 10.1038\u002Fnpp.2010.225\nSavoia, 2007, Reduction of C-reactive protein and the use of anti-hypertensives, Vasc Health Risk Manag, 3, 975\nKhoury, 2012, The renin-angiotensin pathway in posttraumatic stress disorder: angiotensin-converting enzyme inhibitors and angiotensin receptor blockers are associated with fewer traumatic stress symptoms, J Clin Psychiatry, 73, 849, 10.4088\u002FJCP.11m07316\nGarrido-Mesa, 2013, What is behind the non-antibiotic properties of minocycline?, Pharmacol Res, 67, 18, 10.1016\u002Fj.phrs.2012.10.006\nLevkovitz, 2015, Early post-stressor intervention with minocycline, a second-generation tetracycline, attenuates post-traumatic stress response in an animal model of PTSD, Eur Neuropsychopharmacol, 25, 124, 10.1016\u002Fj.euroneuro.2014.11.012\nAga-Mizrachi, 2014, Methylphenidate and desipramine combined treatment improves PTSD symptomatology in a rat model, Transl Psychiatry, 4, e447, 10.1038\u002Ftp.2014.82\nMcAllister, 2015, Randomized placebo-controlled trial of methylphenidate or galantamine for persistent emotional and cognitive symptoms associated with PTSD and\u002For traumatic brain injury, Neuropsychopharmacology\nYurgil, 2014, Association between traumatic brain injury and risk of posttraumatic stress disorder in active-duty marines, JAMA Psychiatry, 71, 149, 10.1001\u002Fjamapsychiatry.2013.3080\nMcAllister, 2010, Effects of psychological and biomechanical trauma on brain and behavior, Ann N Y Acad Sci, 1208, 46, 10.1111\u002Fj.1749-6632.2010.05720.x\nLevin, 2010, Diffusion tensor imaging of mild to moderate blast-related traumatic brain injury and its sequelae, J Neurotrauma, 27, 683, 10.1089\u002Fneu.2009.1073\nCernak, 2010, The importance of systemic response in the pathobiology of blast-induced neurotrauma, Front Neurol, 1, 151, 10.3389\u002Ffneur.2010.00151\nElder, 2012, Blast exposure induces post-traumatic stress disorder-related traits in a rat model of mild traumatic brain injury, J Neurotrauma, 29, 2564, 10.1089\u002Fneu.2012.2510\nKochanek, 2013, Screening of biochemical and molecular mechanisms of secondary injury and repair in the brain after experimental blast-induced traumatic brain injury in rats, J Neurotrauma, 30, 920, 10.1089\u002Fneu.2013.2862\nAcosta, 2013, Influence of post-traumatic stress disorder on neuroinflammation and cell proliferation in a rat model of traumatic brain injury, PLoS One, 8, e81585, 10.1371\u002Fjournal.pone.0081585\nKwon, 2011, Stress and traumatic brain injury: a behavioral, proteomics, and histological study, Front Neurol, 2, 12, 10.3389\u002Ffneur.2011.00012\nOjo, 2014, Neurobehavioral, 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2008, Game theory and neural basis of social decision making, Nat Neurosci, 11, 404, 10.1038\u002Fnn2065\nBhatt, 2011, The cognitive neuroscience of strategic thinking, 949\nSimon, 1955, A behavioral model of rational choice, Quart J Econ, 69, 99, 10.2307\u002F1884852\nRubinstein, 1998\n2002\nNash, 1950, Equilibrium points in n-person games, Proc Natl Acad Sci, 36, 48, 10.1073\u002Fpnas.36.1.48\nCosta-Gomes, 2001, Cognition behavior in normal-form games: an experimental study, Econometrica, 69, 1193, 10.1111\u002F1468-0262.00239\n2003\nMcKelvey, 1995, Quantal response equilibria for normal form games, Games Econ Behav, 10, 6, 10.1006\u002Fgame.1995.1023\nHaile, 2008, On the empirical content of quantal response equilibrium, Am Econ Rev, 98, 180, 10.1257\u002Faer.98.1.180\nWebb, 2013\nDickhaut, 2009, A neuroeconomic theory of the decision process, Proc Natl Acad Sci, 106, 22145, 10.1073\u002Fpnas.0912500106\nReutskaja, 2011, Search dynamics in consumer choice under time pressure: an 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interactions in humans, Proc Natl Acad Sci, 105, 6741, 10.1073\u002Fpnas.0711099105\nNicolle, 2012, An agent independent axis for executed and modeled choice in medial prefrontal cortex, Neuron, 75, 1114, 10.1016\u002Fj.neuron.2012.07.023\nSuzuki, 2012, Learning to simulate others’ decisions, Neuron, 74, 1125, 10.1016\u002Fj.neuron.2012.04.030\nSeid-Fatemi, 2014, Efficient learning mechanisms hold in the social domain and are implemented in the medial prefrontal cortex, Social Cogn Affective Neurosci, 10, 1093\nZhu, 2012, Dissociable neural representations of reinforcement and belief prediction errors underlie strategic learning, Proc Natl Acad Sci, 109, 1419, 10.1073\u002Fpnas.1116783109\nSeo, 2014, Neural correlates of strategic reasoning during competitive games, Science, 346, 340, 10.1126\u002Fscience.1256254\nNagel, 2014\nMohr, 2010, Neural processing of risk, J Neurosci, 30, 6613, 10.1523\u002FJNEUROSCI.0003-10.2010\nAumann, 1995, Epistemic conditions for Nash equilibrium, 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