Monocyte anisocytosis corresponds with increasing severity of COVID-19 in children
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L. Moldawer | L. Yonker | S. Larson | H. Chavez | B. Boribong | Daniela Irimia | M. Loiselle | Abigail S. Kane | O. Badaki-Makun | Anagha P. Chitnis
[1] P. Sarkar,et al. A SINGLE CENTRE RETROSPECTIVE COHORT STUDY OF AMBULATORY HEART FAILURE PATIENTS WITH THYROID DYSFUNCTION FROM A TERTIARY HOSPITAL IN NORTHEAST INDIA , 2023, INTERNATIONAL JOURNAL OF SCIENTIFIC RESEARCH.
[2] S. Bhatt,et al. Assessment of COVID-19 as the Underlying Cause of Death Among Children and Young People Aged 0 to 19 Years in the US , 2023, JAMA network open.
[3] Yuxin Zhou,et al. Accuracy of the neutrophil-to-lymphocyte ratio for the diagnosis of neonatal sepsis: a systematic review and meta-analysis , 2022, BMJ Open.
[4] Hui-An Lin,et al. A novel scoring system combining Modified Early Warning Score with biomarkers of monocyte distribution width, white blood cell counts, and neutrophil-to-lymphocyte ratio to improve early sepsis prediction in older adults , 2022, Clinical chemistry and laboratory medicine.
[5] L. Moldawer,et al. Monocyte anisocytosis increases during multisystem inflammatory syndrome in children with cardiovascular complications , 2022, BMC Infectious Diseases.
[6] Jishnu Das,et al. Functional reprogramming of monocytes in patients with acute and convalescent severe COVID-19 , 2022, JCI insight.
[7] M. Askenazi,et al. Immunopathological signatures in multisystem inflammatory syndrome in children and pediatric COVID-19 , 2022, Nature Medicine.
[8] E. Crouser,et al. Inflammasome Activation in an In Vitro Sepsis Model Recapitulates Increased Monocyte Distribution Width Seen in Patients With Sepsis , 2022, Critical care explorations.
[9] R. Scala,et al. The role of Monocyte Distribution Width (MDW) in the prognosis and monitoring of COVID-19 patients , 2022, Clinical Biochemistry.
[10] N. Curtis,et al. Why Does the Severity of COVID-19 Differ With Age? , 2021, The Pediatric infectious disease journal.
[11] Chengyin Ye,et al. The value of lymphocyte-to-monocyte ratio and neutrophil-to-lymphocyte ratio in differentiating pneumonia from upper respiratory tract infection (URTI) in children: a cross-sectional study , 2021, BMC Pediatrics.
[12] P. Arora,et al. Clinical Predictors of COVID-19 Severity and Mortality: A Perspective , 2021, Frontiers in Cellular and Infection Microbiology.
[13] A. Fasano,et al. Virologic features of SARS-CoV-2 infection in children. , 2021, The Journal of infectious diseases.
[14] S. Baggio,et al. Robust innate responses to SARS-CoV-2 in children resolve faster than in adults without compromising adaptive immunity , 2021, Cell Reports.
[15] A. Dopazo,et al. Alterations in Circulating Monocytes Predict COVID-19 Severity and Include Chromatin Modifications Still Detectable Six Months after Recovery , 2021, Biomedicines.
[16] Jeffrey I. Campbell,et al. Differentiating multisystem inflammatory syndrome in children: a single-centre retrospective cohort study , 2021, Archives of Disease in Childhood.
[17] C. Conrad,et al. Pre-activated antiviral innate immunity in the upper airways controls early SARS-CoV-2 infection in children , 2021, Nature Biotechnology.
[18] K. Herold,et al. Natural mucosal barriers and COVID-19 in children , 2021, JCI insight.
[19] M. Jayashree,et al. Biomarkers in COVID-19: An Up-To-Date Review , 2021, Frontiers in Pediatrics.
[20] M. Girardis,et al. Monocyte Distribution Width (MDW) as novel inflammatory marker with prognostic significance in COVID-19 patients , 2021, Scientific Reports.
[21] K. Herold,et al. Natural Mucosal Barriers and COVID-19 in Children , 2021, medRxiv.
[22] Alexis Mitelpunkt,et al. Prognostic value of neutrophil-to-lymphocyte ratio in COVID-19 compared with Influenza and respiratory syncytial virus infection , 2020, Scientific Reports.
[23] C. Torp‐Pedersen,et al. Association between biomarkers and COVID-19 severity and mortality: a nationwide Danish cohort study , 2020, BMJ Open.
[24] E. Becer,et al. Relationship between IL-6 and COVID-19: to be considered during treatment , 2020, Future Virology.
[25] S. Tsabouri,et al. Hematological manifestations of SARS‐CoV‐2 in children , 2020, Pediatric blood & cancer.
[26] R. Viner,et al. Susceptibility to SARS-CoV-2 Infection Among Children and Adolescents Compared With Adults: A Systematic Review and Meta-analysis. , 2020, JAMA pediatrics.
[27] S. Gordon,et al. Monocyte activation in systemic Covid-19 infection: Assay and rationale , 2020, EBioMedicine.
[28] H. Kuo,et al. Neutrophil-to-lymphocyte ratio and scoring system for predicting coronary artery lesions of Kawasaki disease , 2020, BMC Pediatrics.
[29] Madeleine K. D. Scott,et al. Systems biological assessment of immunity to mild versus severe COVID-19 infection in humans , 2020, Science.
[30] P. Palma,et al. The Immunology of Multisystem Inflammatory Syndrome in Children with COVID-19 , 2020, Cell.
[31] Wenbin Guo,et al. Clinical Characteristics of Children With COVID-19: A Meta-Analysis , 2020, Frontiers in Pediatrics.
[32] K. Adeli,et al. CALIPER Hematology Reference Standards (I). , 2020, American journal of clinical pathology.
[33] R. Scala,et al. Elevated monocyte distribution width in COVID-19 patients: The contribution of the novel sepsis indicator , 2020, Clinica Chimica Acta.
[34] David T. Huang,et al. Monocyte distribution width enhances early sepsis detection in the emergency department beyond SIRS and qSOFA , 2020, Journal of Intensive Care.
[35] C. Seymour,et al. Monocyte Distribution Width: A Novel Indicator of Sepsis-2 and Sepsis-3 in High-Risk Emergency Department Patients* , 2019, Critical care medicine.
[36] Shuping Zhao,et al. STARD , 2018, Medicine.
[37] Hyun Kyung Kim,et al. Improved Diagnostic and Prognostic Power of Combined Delta Neutrophil Index and Mean Platelet Volume in Pediatric Sepsis. , 2018, Annals of clinical and laboratory science.
[38] C. Seymour,et al. Improved Early Detection of Sepsis in the ED With a Novel Monocyte Distribution Width Biomarker , 2017, Chest.
[39] David Moher,et al. STARD 2015: an updated list of essential items for reporting diagnostic accuracy studies , 2015, BMJ : British Medical Journal.
[40] G. Hasçelik,et al. Efficacy of new leukocyte parameters versus serum C‐reactive protein, procalcitonin, and interleukin‐6 in the diagnosis of neonatal sepsis , 2015, Pediatrics international : official journal of the Japan Pediatric Society.
[41] F. Schmidt. Meta-Analysis , 2008 .
[42] R. McKelvie,et al. Up-to-date review , 1992 .
[43] E. P. Lewis. In perspective. , 1972, Nursing outlook.