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1.
J Neurol ; 270(4): 1835-1842, 2023 Apr.
Article in English | MEDLINE | ID: covidwho-2272755

ABSTRACT

BACKGROUND: Disease and treatment-associated immune system abnormalities may confer higher risk of Coronavirus disease 2019 (COVID-19) to people with multiple sclerosis (PwMS). We assessed modifiable risk factors associated with COVID-19 in PwMS. METHODS: Among patients referring to our MS Center, we retrospectively collected epidemiological, clinical and laboratory data of PwMS with confirmed COVID-19 between March 2020 and March 2021 (MS-COVID, n = 149). We pursued a 1:2 matching of a control group by collecting data of PwMS without history of previous COVID-19 (MS-NCOVID, n = 292). MS-COVID and MS-NCOVID were matched for age, expanded disability status scale (EDSS) and line of treatment. We compared neurological examination, premorbid vitamin D levels, anthropometric variables, life-style habits, working activity, and living environment between the two groups. Logistic regression and Bayesian network analyses were used to evaluate the association with COVID-19. RESULTS: MS-COVID and MS-NCOVID were similar in terms of age, sex, disease duration, EDSS, clinical phenotype and treatment. At multiple logistic regression, higher levels of vitamin D (OR 0.93, p < 0.0001) and active smoking status (OR 0.27, p < 0.0001) emerged as protective factors against COVID-19. In contrast, higher number of cohabitants (OR 1.26, p = 0.02) and works requiring direct external contact (OR 2.61, p = 0.0002) or in the healthcare sector (OR 3.73, p = 0.0019) resulted risk factors for COVID-19. Bayesian network analysis showed that patients working in the healthcare sector, and therefore exposed to increased risk of COVID-19, were usually non-smokers, possibly explaining the protective association between active smoking and COVID-19. CONCLUSIONS: Higher Vitamin D levels and teleworking may prevent unnecessary risk of infection in PwMS.


Subject(s)
COVID-19 , Multiple Sclerosis , Humans , Multiple Sclerosis/complications , Multiple Sclerosis/epidemiology , Multiple Sclerosis/drug therapy , Case-Control Studies , Retrospective Studies , Bayes Theorem , Vitamin D/therapeutic use , Risk Factors
2.
Mol Med ; 27(1): 129, 2021 10 18.
Article in English | MEDLINE | ID: covidwho-1477255

ABSTRACT

BACKGROUND: Host inflammation contributes to determine whether SARS-CoV-2 infection causes mild or life-threatening disease. Tools are needed for early risk assessment. METHODS: We studied in 111 COVID-19 patients prospectively followed at a single reference Hospital fifty-three potential biomarkers including alarmins, cytokines, adipocytokines and growth factors, humoral innate immune and neuroendocrine molecules and regulators of iron metabolism. Biomarkers at hospital admission together with age, degree of hypoxia, neutrophil to lymphocyte ratio (NLR), lactate dehydrogenase (LDH), C-reactive protein (CRP) and creatinine were analysed within a data-driven approach to classify patients with respect to survival and ICU outcomes. Classification and regression tree (CART) models were used to identify prognostic biomarkers. RESULTS: Among the fifty-three potential biomarkers, the classification tree analysis selected CXCL10 at hospital admission, in combination with NLR and time from onset, as the best predictor of ICU transfer (AUC [95% CI] = 0.8374 [0.6233-0.8435]), while it was selected alone to predict death (AUC [95% CI] = 0.7334 [0.7547-0.9201]). CXCL10 concentration abated in COVID-19 survivors after healing and discharge from the hospital. CONCLUSIONS: CXCL10 results from a data-driven analysis, that accounts for presence of confounding factors, as the most robust predictive biomarker of patient outcome in COVID-19.


Subject(s)
COVID-19/diagnosis , Chemokine CXCL10/blood , Coronary Artery Disease/diagnosis , Diabetes Mellitus/diagnosis , Hypertension/diagnosis , Biomarkers/blood , C-Reactive Protein/metabolism , COVID-19/blood , COVID-19/immunology , COVID-19/mortality , Comorbidity , Coronary Artery Disease/blood , Coronary Artery Disease/immunology , Coronary Artery Disease/mortality , Creatine/blood , Diabetes Mellitus/blood , Diabetes Mellitus/immunology , Diabetes Mellitus/mortality , Female , Hospitalization , Humans , Hypertension/blood , Hypertension/immunology , Hypertension/mortality , Immunity, Humoral , Immunity, Innate , Inflammation , Intensive Care Units , L-Lactate Dehydrogenase/blood , Leukocyte Count , Lymphocytes/immunology , Lymphocytes/pathology , Male , Middle Aged , Neutrophils/immunology , Neutrophils/pathology , Prognosis , Prospective Studies , Retrospective Studies , SARS-CoV-2 , Severity of Illness Index , Survival Analysis
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