Neurocognitive and psychiatric symptoms following infection with COVID-19: Evidence from laboratory and population studies
暂无分享,去创建一个
Anna R. Hudson | H. Ayaz | P. Hall | G. Fong | C. Boudreau | G. Meng | T. Agar | Mohammad Najmul Sakib | A. Quah | Jessica A. Lee | Anne C. K. Quah | Christian Boudreau
[1] M. Nalls,et al. Virus exposure and neurodegenerative disease risk across national biobanks. , 2022, medRxiv.
[2] F. Slack,et al. Severe COVID-19 is associated with molecular signatures of aging in the human brain. , 2022, Nature aging.
[3] Christopher J. L. Murray,et al. Estimated Global Proportions of Individuals With Persistent Fatigue, Cognitive, and Respiratory Symptom Clusters Following Symptomatic COVID-19 in 2020 and 2021. , 2022, JAMA.
[4] J. Zawilska,et al. Psychiatric and neurological complications of long COVID , 2022, Journal of Psychiatric Research.
[5] Anna R. Hudson,et al. Cognitive predictors of COVID-19 mitigation behaviors in vaccinated and unvaccinated general population members , 2022, Vaccine.
[6] Lauren L. Emberson,et al. Optical imaging and spectroscopy for the study of the human brain: status report , 2022, Neurophotonics.
[7] Anna R. Hudson,et al. Brain and behavior in health communication: The Canadian COVID-19 Experiences Project , 2022, Brain, Behavior, & Immunity - Health.
[8] Anna R. Hudson,et al. Cognitive function following SARS-CoV-2 infection in a population-representative Canadian sample , 2022, Brain, Behavior, & Immunity - Health.
[9] Yu-Hui Liu,et al. One-Year Trajectory of Cognitive Changes in Older Survivors of COVID-19 in Wuhan, China: A Longitudinal Cohort Study. , 2022, JAMA neurology.
[10] Thomas E. Nichols,et al. SARS-CoV-2 is associated with changes in brain structure in UK Biobank , 2022, Nature.
[11] Nelson B Rodrigues,et al. Fatigue and cognitive impairment in Post-COVID-19 Syndrome: A systematic review and meta-analysis , 2021, Brain, Behavior, and Immunity.
[12] A. Akbari,et al. Long COVID syndrome‐associated brain fog , 2021, Journal of medical virology.
[13] A. L. Tan,et al. Physical, cognitive, and mental health impacts of COVID-19 after hospitalisation (PHOSP-COVID): a UK multicentre, prospective cohort study. , 2021, The Lancet. Respiratory medicine.
[14] J. Wisnivesky,et al. Assessment of Cognitive Function in Patients After COVID-19 Infection , 2021, JAMA network open.
[15] S. Ocklenburg,et al. Stress research during the COVID-19 pandemic and beyond , 2021, Neuroscience & Biobehavioral Reviews.
[16] B. Tran,et al. Comparison of Brain Activation Patterns during Olfactory Stimuli between Recovered COVID-19 Patients and Healthy Controls: A Functional Near-Infrared Spectroscopy (fNIRS) Study , 2021, Brain sciences.
[17] S. Yong. Long COVID or post-COVID-19 syndrome: putative pathophysiology, risk factors, and treatments , 2021, Infectious diseases.
[18] M. Boldrini,et al. How COVID-19 Affects the Brain. , 2021, JAMA psychiatry.
[19] I. Torjesen. Covid-19: Middle aged women face greater risk of debilitating long term symptoms , 2021, BMJ.
[20] W. Lim,et al. Long Covid in adults discharged from UK hospitals after Covid-19: A prospective, multicentre cohort study using the ISARIC WHO Clinical Characterisation Protocol , 2021, The Lancet Regional Health - Europe.
[21] Charissa S. L. Cheah,et al. Biobehavioral Aspects of the COVID-19 Pandemic: A Review , 2021, Psychosomatic medicine.
[22] David W. Nauen,et al. Assessing Brain Capillaries in Coronavirus Disease 2019. , 2021, JAMA neurology.
[23] S. Rossell,et al. Sex differences in executive control: A systematic review of functional neuroimaging studies , 2021, The European journal of neuroscience.
[24] T. Solomon. Neurological infection with SARS-CoV-2 — the story so far , 2021, Nature Reviews Neurology.
[25] Guohui Fan,et al. RETRACTED: 6-month consequences of COVID-19 in patients discharged from hospital: a cohort study , 2021, The Lancet.
[26] Paul J. Harrison,et al. Bidirectional associations between COVID-19 and psychiatric disorder: retrospective cohort studies of 62 354 COVID-19 cases in the USA , 2020, The Lancet Psychiatry.
[27] G. Alexopoulos,et al. Frequency and profile of objective cognitive deficits in hospitalized patients recovering from COVID-19 , 2020, Neuropsychopharmacology.
[28] Peter J Hellyer,et al. Cognitive deficits in people who have recovered from COVID-19 , 2020, EClinicalMedicine.
[29] Cassandra J. Lowe,et al. The neurocognitive mechanisms underlying food cravings and snack food consumption. A combined continuous theta burst stimulation (cTBS) and EEG study , 2018, NeuroImage.
[30] R. Melara,et al. Neural and Behavioral Correlates of Attentional Inhibition Training and Perceptual Discrimination Training in a Visual Flanker Task , 2018, Front. Hum. Neurosci..
[31] H. Shinoda,et al. The relationship between the superior frontal cortex and alpha oscillation in a flanker task: Simultaneous recording of electroencephalogram (EEG) and near infrared spectroscopy (NIRS) , 2017, Neuroscience Research.
[32] M. Inagaki,et al. Excessive hemodynamic activity in the superior frontal cortex during the flanker task in children with attention deficit hyperactivity disorder , 2017, Neuroreport.
[33] J. Heo,et al. Neurological Complications during Treatment of Middle East Respiratory Syndrome , 2017, Journal of clinical neurology.
[34] L. Rodrigues,et al. Association between Zika virus infection and microcephaly in Brazil, January to May, 2016: preliminary report of a case-control study. , 2016, The Lancet. Infectious diseases.
[35] A. B. Hill,et al. "The Environment and Disease: Association or Causation?" (1965), by Austin Bradford Hill , 2017 .
[36] Mikhail N Koffarnus,et al. A 5-trial adjusting delay discounting task: accurate discount rates in less than one minute. , 2014, Experimental and clinical psychopharmacology.
[37] T. Solomon,et al. Neurological manifestations of influenza infection in children and adults: results of a National British Surveillance Study. , 2014, Clinical infectious diseases : an official publication of the Infectious Diseases Society of America.
[38] Marco Ferrari,et al. A brief review on the history of human functional near-infrared spectroscopy (fNIRS) development and fields of application , 2012, NeuroImage.
[39] N. Masataka,et al. Distinct aging effects for two types of inhibition in older adults: a near-infrared spectroscopy study on the Simon task and the flanker task , 2012, Neuroreport.
[40] Hasan Ayaz,et al. Optical brain monitoring for operator training and mental workload assessment , 2012, NeuroImage.
[41] Hasan Ayaz,et al. Using MazeSuite and Functional Near Infrared Spectroscopy to Study Learning in Spatial Navigation , 2011, Journal of visualized experiments : JoVE.
[42] R. Barkley. Barkley Deficits in Executive Functioning Scale (BDEFS). , 2011 .
[43] Hasan Ayaz,et al. Sliding-window motion artifact rejection for Functional Near-Infrared Spectroscopy , 2010, 2010 Annual International Conference of the IEEE Engineering in Medicine and Biology.
[44] J. Berger,et al. Neurological complications of herpes simplex virus type 2 infection. , 2008, Archives of neurology.
[45] B. Löwe,et al. A brief measure for assessing generalized anxiety disorder: the GAD-7. , 2006, Archives of internal medicine.
[46] H. Matute,et al. Bidirectional associations , 1999 .
[47] D L Patrick,et al. Screening for depression in well older adults: evaluation of a short form of the CES-D (Center for Epidemiologic Studies Depression Scale). , 1994, American journal of preventive medicine.
[48] C. Eriksen,et al. Effects of noise letters upon the identification of a target letter in a nonsearch task , 1974 .
[49] W. G. Cochran. The Planning of Observational Studies of Human Populations , 1965 .