CYBERMED LIFE - ORGANIC  & NATURAL LIVING

Coronavirus Infection

  • CORONAVIRUS: BREAKING NEWS - "The All-Italian Virus" ... but maybe you already knew ...

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    Prof. Giulio TarroThe moment of truth about the COVID-19 coronavirus

    ROME 02 March 2020 - Until less than 20 years ago, coronaviruses represented a viral family that during the winter period caused 10 to 30% of colds, therefore it was not worth worrying about it. In 2002 the situation changed with the SARS (Severe Acute Respiratory Sindrom) which in China affected 8 thousand individuals and caused about 10% of mortality with a virus that infected dogs and cats from the bat and then hit humans. After the leopard spots of the MERS (Middle East Respiratory Sindrom) in 2012 in South Arabia and as an epidemic in 2015 in South Korea, camel coronavirus, at the end of 2019 with a particular epicenter at the Huanan city market of the Wuhan metropolis , Hubei's province a new coronavirus appears, then appealed COVID-19 (Coronavirus Disease 2019), which after passing into exotic animals pangolin, porcupine infects humans and adapts with greater virulence so as to subsequently establish interhuman infection and the spread of a mysterious pneumonia before its isolation and genetic study, variability from 2 to 12% compared to the original bat coronavirus.

    While the history of epidemics repeats itself over the centuries, the basic rules have not changed by isolating the patient and carrying out the quarantine, thus from the Athens typhoid fever of 430 b.c. to the plague of Manzonian memory, 1600 AD to the Spanish of 1918, the flu that claimed more victims than the just ended First World War. In China, the SARS lesson has made it possible to mobilize the population of Wuhan with a delay of almost a month compared to the first cases and the prompt communication to the WHO (World Health Organization) which in itself caught the epidemic by declaring it only a month after the first communication as PHEIC that is Public Health Emergency of International Concern. The photo of President Xi with the face mask and the public declaration of danger showed a delay that cost human lives, despite that early diagnosis by the ophthalmologist Wen Lee who died from this epidemic disease.

    The virus appeared controllable and non-aggressive in the infection, providing after 10 days from the communication to the WHO, the viral genome to the American CDC (Center for Disease Control and Prevention) which immediately confirmed the fingerprints of the new coronavirus for the preparation of a diagnostic kit to be used globally for all healthcare institutions and to distinguish this infection from ongoing seasonal flu. Obviously this viral nucleic acid will allow us to know the proteins produced by viral RNA for the synthesis of specific antigens and antiviral drugs. The speech of the vaccine will take time and although stem cell methodologies can be used, 12-18 years will be needed for safe treatment.

    Northern Italy, especially Lombardia and Veneto, has been affected by the COVID-19 coronavirus epidemic for a week. Trying to isolate the carriers of the disease in connection with China is not an effective strategy to contain the disease, since the virus is transmitted like the flu virus and we can expect to have patients who have had no contact with possible carriers. Many cases are not diagnosed because people have not yet developed symptoms and do not know they have been exposed to the virus. Therefore, bearing in mind what is really happening, the blocking of flights with China was useless, however it was bypassed by the indirect connection of flights through other countries. It would have been better to implement the federal quarantine declared by the USA on February 2 with two weeks of isolation which corresponds to the longest time between exposure and the onset of symptoms and affects all subjects who have had contacts both outside and inside China.

    The risk represented by COVID-19 is substantially the same as that of the many flu epidemics that occur every year without causing a sensation.
    Let's take an example. Every year about ten thousand people die in Italy (mostly elderly or suffering from some previous pathology) from influenza virus. This is not news, especially because these deaths are scattered throughout the national territory. Now imagine that all people at risk are hospitalized in a couple of places, perhaps surrounded by journalists looking for some scoop. Rest assured that the resulting "flu epidemic that can cause death" will push countless people (about six million Italians are affected by flu syndrome each year) to demand analysis and an assistance impossible to obtain.

  • Risk Factors Associated With Acute Respiratory Distress Syndrome and Death in Patients With Coronavirus Disease 2019 Pneumonia in Wuhan, China

     
    JAMA Intern Med. Published online March 13, 2020. doi:10.1001/jamainternmed.2020.0994

    https://jamanetwork.com/journals/jamainternalmedicine/fullarticle/2763184?guestAccessKey=05e1a623-34cb-4a33-b407-50c6ce40f2b7&utm_source=silverchair&utm_medium=email&utm_campaign=article_alert-jamainternalmedicine&utm_term=mostread&utm_content=olf-widget_04062020&appId=scweb

     
     
    Key Points

    Question  What clinical characteristics are associated with the development of acute respiratory distress syndrome (ARDS) and progression from ARDS to death among patients with coronavirus disease 2019 (COVID-19) pneumonia?

    Findings  In this cohort study involving 201 patients with confirmed COVID-19 pneumonia, risk factors associated with the development of ARDS and progression from ARDS to death included older age, neutrophilia, and organ and coagulation dysfunction. Treatment with methylprednisolone may be beneficial for patients who develop ARDS.

    Meaning  Risk for developing ARDS included factors consistent with immune activation; older age was associated with both ARDS development and death, likely owing to less robust immune responses.

     
    Abstract

    Importance  Coronavirus disease 2019 (COVID-19) is an emerging infectious disease that was first reported in Wuhan, China, and has subsequently spread worldwide. Risk factors for the clinical outcomes of COVID-19 pneumonia have not yet been well delineated.

    Objective  To describe the clinical characteristics and outcomes in patients with COVID-19 pneumonia who developed acute respiratory distress syndrome (ARDS) or died.

    Design, Setting, and Participants  Retrospective cohort study of 201 patients with confirmed COVID-19 pneumonia admitted to Wuhan Jinyintan Hospital in China between December 25, 2019, and January 26, 2020. The final date of follow-up was February 13, 2020.

    Exposures  Confirmed COVID-19 pneumonia.

    Main Outcomes and Measures  The development of ARDS and death. Epidemiological, demographic, clinical, laboratory, management, treatment, and outcome data were also collected and analyzed.

    Results  Of 201 patients, the median age was 51 years (interquartile range, 43-60 years), and 128 (63.7%) patients were men. Eighty-four patients (41.8%) developed ARDS, and of those 84 patients, 44 (52.4%) died. In those who developed ARDS, compared with those who did not, more patients presented with dyspnea (50 of 84 [59.5%] patients and 30 of 117 [25.6%] patients, respectively [difference, 33.9%; 95% CI, 19.7%-48.1%]) and had comorbidities such as hypertension (23 of 84 [27.4%] patients and 16 of 117 [13.7%] patients, respectively [difference, 13.7%; 95% CI, 1.3%-26.1%]) and diabetes (16 of 84 [19.0%] patients and 6 of 117 [5.1%] patients, respectively [difference, 13.9%; 95% CI, 3.6%-24.2%]). In bivariate Cox regression analysis, risk factors associated with the development of ARDS and progression from ARDS to death included older age (hazard ratio [HR], 3.26; 95% CI 2.08-5.11; and HR, 6.17; 95% CI, 3.26-11.67, respectively), neutrophilia (HR, 1.14; 95% CI, 1.09-1.19; and HR, 1.08; 95% CI, 1.01-1.17, respectively), and organ and coagulation dysfunction (eg, higher lactate dehydrogenase [HR, 1.61; 95% CI, 1.44-1.79; and HR, 1.30; 95% CI, 1.11-1.52, respectively] and D-dimer [HR, 1.03; 95% CI, 1.01-1.04; and HR, 1.02; 95% CI, 1.01-1.04, respectively]). High fever (≥39 °C) was associated with higher likelihood of ARDS development (HR, 1.77; 95% CI, 1.11-2.84) and lower likelihood of death (HR, 0.41; 95% CI, 0.21-0.82). Among patients with ARDS, treatment with methylprednisolone decreased the risk of death (HR, 0.38; 95% CI, 0.20-0.72).

    Conclusions and Relevance  Older age was associated with greater risk of development of ARDS and death likely owing to less rigorous immune response. Although high fever was associated with the development of ARDS, it was also associated with better outcomes among patients with ARDS. Moreover, treatment with methylprednisolone may be beneficial for patients who develop ARDS.

     
     
    Introduction
     

    Severe acute respiratory syndrome coronavirus 2 (SARS-CoV-2) was first reported in Wuhan, Hubei Province, China and has subsequently spread to other regions of China and 37 countries, including the United States, Japan, Australia, and France.1 SARS-CoV-2, which belongs to a unique clade of the sarbecovirus subgenus of the Orthocoronavirinae subfamily, was identified as the pathogen of coronavirus disease 2019 (COVID-19) in January 2020.2

     

    As reported by Huang et al,3 patients with COVID-19 present primarily with fever, myalgia or fatigue, and dry cough. Although most patients are thought to have a favorable prognosis, older patients and those with chronic underlying conditions may have worse outcomes. Patients with severe illness may develop dyspnea and hypoxemia within 1 week after onset of the disease, which may quickly progress to acute respiratory distress syndrome (ARDS) or end-organ failure.4 Certain epidemiological features and clinical characteristics of COVID-19 have been previously reported.3-5 However, these studies were based on relatively small sample sizes, and risk factors leading to poor clinical outcomes have not been well delineated. In this study, we report the clinical characteristics and factors associated with developing ARDS after hospital admission and progression from ARDS to death in patients with COVID-19 pneumonia from a single hospital in Wuhan, China.

     
    Methods
     
    Study Population
     

    This is a retrospective cohort study of 201 patients aged 21 to 83 years with confirmed COVID-19 pneumonia hospitalized at Jinyintan Hospital in Wuhan, China. All patients were diagnosed with COVID-19 pneumonia according to World Health Organization interim guidance.6 According to hospital data, patients were admitted from December 25, 2019, to January 26, 2020. Of 201 patients, 10 have been described previously by Chen et al4 and Huang et al.3 The ethics committee of Jinyintan Hospital approved this study and granted a waiver of informed consent from study participants.

     
    Procedures
     

    A trained team of physicians and medical students reviewed and collected epidemiological, clinical, and outcomes data from electronic medical records. Patients were followed up to February 13, 2020. The individual components of all definitions of clinical outcomes were recorded separately and checked by 2 authors (C.W. and X.C.). Patient confidentiality was protected by assigning a deidentified patient identification, and the electronic data was stored in a locked, password-protected computer.

     

    To identify SARS-CoV-2 infection, throat swab samples were obtained from all patients at admission and tested using real-time reverse transcriptase–polymerase chain reaction assays according to the same protocol described previously.3 The pathogenic detection was determined in 4 institutions (Chinese Center for Disease Control and Prevention, Chinese Academy of Medical Sciences, Academy of Military Medical Sciences, and Wuhan Institute of Virology of the Chinese Academy of Sciences) as described previously.4 Other respiratory pathogens, including respiratory syncytial virus, adenovirus, parainfluenza virus, influenza A virus, and influenza B virus, were also detected by real-time reverse transcriptase–polymerase chain reaction assays in 173 patients. Possible bacterial or fungal pathogens were detected by sputum culture. Additionally, patients underwent blood routine blood test, coagulation, and biochemical tests and chest x-rays or computed tomography. The most intense level of oxygen support during hospitalization (nasal cannula, noninvasive mechanical ventilation [NMV], invasive mechanical ventilation [IMV], or IMV with extracorporeal membrane oxygenation [ECMO]) was recorded. The majority of the clinical data used in this study was collected from the first day of hospital admission unless indicated otherwise. To minimize interference of treatment during hospitalization, the highest patient temperature was defined using the self-reported highest temperature prior to hospital admission. Older age was classified as 65 years or older. Fever and high fever were classified as 37.3 °C or higher and 39 °C or higher, respectively.

     
    Outcomes
     

    Two outcomes were evaluated: development of ARDS and death among those with ARDS. World Health Organization interim guidance was used to define ARDS.6

     
    Statistical Analysis
     

    Descriptive analyses of the variables were expressed as median (interquartile range [IQR]), or number (%). Differences in distributions of patient characteristics by outcome subgroups are reported using differences with 95% CIs. Categorical data were compared using the χ2 test or the Fisher exact test. Nonnormal distributed continuous data were compared using Mann-Whitney-Wilcoxon test.

     

    Bivariate Cox proportional hazard ratio (HR) models were used to determine HRs and 95% CIs between individual factors on the development of ARDS or progression from ARDS to death. Sample size varied because of missing data (summarized in Tables 1 and 2). Survival curves were developed using the Kaplan-Meier method with log-rank test. Time to events (ARDS or death) were defined as the time from hospital admission to events.

     

    The analyses regarding different factors were based on nonmissing data, and missing data were not imputed. All tests were 2-sided, and a P value less than .05 was considered statistically significant. All analyses were performed with SPSS, version 23.0 (IBM SPSS), or R software, version 3.6.0 (R Foundation for Statistical Computing).

     
    Results
     
    Demographics and Characteristics
     

    A total of 201 patients were included in this study (Table 1). The median age was 51 years (IQR, 43-60 years), and 128 (63.7%) were male. The most commonly self-reported symptoms at onset of illness were fever (n = 188 [93.5%]), cough (n = 163 [81.1%]), productive cough (n = 83 [41.3%]), dyspnea (n = 80 [39.8%]), and fatigue or myalgia (n = 65 [32.3%]). The majority (n = 154 [76.6%]) of patients had fever with cough; 74 (36.8%) had fever with dyspnea; 66 (32.8%) had fever with fatigue, myalgia, or headache; and only 13 (6.5%) presented with fever alone (eTable 1 in the Supplement). A total of 191 (95.0%) patients had findings of bilateral infiltrates on radiographic imaging, while 10 (5.0%) patients had unilateral infiltrates. Sixty-six (32.8%) patients had comorbidities, including hypertension (n = 39 [19.4%]), diabetes (n = 22 [10.9%]), liver disease (n = 7 [3.5%]), nervous system disease (n = 7 [3.5%]), chronic lung disease (n = 5 [2.5%]), chronic kidney disease (n = 2 [1.0%]), endocrine system diseases not including diabetes (n = 2 [1.0%]), and tumors (n = 1 [0.5%]). Most (n = 173 [86.1%]) patients were tested for 9 additional respiratory pathogens. Bacteria and fungi cultures were collected from 148 (73.6%) patients. Only 1 patient was coinfected with influenza A virus.

     
    Treatments in Hospital
     

    Of the 201 patients, 165 (82.1%) required oxygen support in the hospital (Table 1). The most intense level was recorded, including nasal cannula (n = 98 [48.8%]), NMV (n = 61 [30.3%]), IMV (n = 5 [2.5%]), or IMV with ECMO (n = 1 [0.5%]). Among 201 patients, most (n = 196 [97.5%]) received empirical antibiotic treatment and antiviral therapy (n = 170 [84.6%]), including oseltamivir (n = 134 [66.7%]), ganciclovir (n = 81 [40.3%]), lopinavir/ritonavir (n = 30 [14.9%]), and interferon alfa (n = 22 [10.9%]). More than half (n = 106 [52.7%]) of patients received antioxidant therapy, including glutathione and N-acetyl-L-cysteine. Methylprednisolone was given to 62 (30.8%) patients, and immunomodulators, including immunoglobulin, thymosin, and recombinant human granulocyte colony stimulating factor, were given to 70 (34.8%) patients.

     
    Laboratory Indices
     

    Laboratory findings on hospital admission are summarized in Table 2. Of 194 patients, 166 (85.6%) demonstrated increased high-sensitivity C-reactive protein. More than half (126 of 197 [64.0%]) of this cohort had lymphocytopenia. About one-third (68 of 197 [34.5%]) of patients had neutrophilia. Approximately one-quarter (46 of 197 [23.4%]) of patients had leukocytosis. Some patients demonstrated liver injury with elevated aspartate aminotransferase (AST; 59 of 198 [29.8%]) and alanine aminotransferase (ALT; 43 of 198 [21.7%]). Most patients presented with an elevated myocardial indices: 194 of 198 (98.0%) had elevated lactate dehydrogenase (LDH), and 9 of 198 (4.5%) had an elevated creatine kinase muscle-brain isoform. Few patients had kidney injury indicated by elevated plasma urea (9 of 198 [4.5%]) and serum creatinine (9 of 198 [4.5%]). Of 195 patients, 4 (2.1%) presented with prolonged prothrombin times (PTs).

     
    Clinical Outcomes
     

    As of February 13, 2020, 144 of the total 201 patients (71.6%) were discharged from the hospital. The median hospital stay was 13 days (IQR, 10-16 days), and 13 (6.5%) patients were still hospitalized. Of the entire cohort, 84 (41.8%) patients developed ARDS, 53 (26.4%) were admitted to the intensive care unit, 67 (33.3%) received mechanical ventilation, and 44 (21.9%) died. Among the 67 patients who received mechanical ventilation, 44 (65.7%) died, 14 (20.9%) were discharged from the hospital, and 9 (13.4%) remained hospitalized. The median time from admission to developing ARDS was 2 days (IQR, 1-4 days). All of the patients who died had developed ARDS and received mechanical ventilation.

     

    Table 3 demonstrates that when compared with patients without ARDS, patients with ARDS were older (difference, 12.0 years; 95% CI, 8.0-16.0 years; P < .001) and had higher temperature prior to admission (difference, 0.30 °C; 95% CI, 0.00-0.50 °C; P = .004). More patients with ARDS presented with initial symptoms of dyspnea compared with those without ARDS (difference, 33.9%; 95% CI, 19.7%-48.1%; P < .001). Compared with patients without ARDS, patients with ARDS had a higher proportion of comorbidities, including hypertension (difference, 13.7%; 95% CI, 1.3%-26.1%; P = .02) and diabetes (difference, 13.9%; 95% CI, 3.6%-24.2%; P = .002). In addition, when compared with patients who did not have ARDS, patients who developed ARDS were less likely to be treated with antiviral therapy (difference, −14.4%; 95% CI, −26.0% to −2.9%; P = .005) and more likely to be treated with methylprednisolone (difference, 49.3%; 95% CI, 36.4%-62.1%; P < .001). Of 84 patients with ARDS, 61 (72.6%) received NMV, 17 (20.2%) received nasal cannula, 5 (6.0%) received IMV, and 1 (1.2%) received IMV with ECMO.

     

    Compared with patients without ARDS, for patients with ARDS, the value of liver damage indices (total bilirubin [difference, 1.90 mg/dL; 95% CI, 0.60-3.30 mg/dL; P = .004]), renal dysfunction indices (urea [difference, 1.69 mM; 95% CI, 1.10-2.29 mM; P < .001]), inflammation-related indices (interleukin-6 [IL-6] [difference, 0.93 pg/L; 95% CI, 0.07-1.98 pg/L; P = .03]), and coagulation function indices (D-dimer [difference, 0.52 μg/mL; 95% CI, 0.21-0.94 μg/mL; P < .001]) were significantly elevated. However, lymphocyte counts (difference, −0.34 ×109/mL; 95% CI, −0.47 to −0.22 ×109/mL; P < .001) and CD8 T cells (difference, −66.00 cells/μL; 95% CI, −129.00 to −7.00 cells/μL; P = .03) were significantly decreased.

     

    As summarized in Table 4, older age (≥65 years old), high fever (≥39 °C), comorbidities (eg, hypertension, diabetes), neutrophilia, lymphocytopenia (as well as lower CD3 and CD4 T-cell counts), elevated end-organ related indices (eg, AST, urea, LDH), elevated inflammation-related indices (high-sensitivity C-reactive protein and serum ferritin), and elevated coagulation function–related indicators (PT and D-dimer) were significantly associated with higher risks of the development of ARDS. Patients who received treatment with methylprednisolone appear to have been sicker than patients who did not receive it. Specifically, a higher proportion of patients who received methylprednisolone were classified into a higher grade on the Pneumonia Severity Index7 compared with patients who did not receive methylprednisolone (P = .01; eTable 2 in the Supplement).

     

    In the subgroup of patients who developed ARDS, patients who ultimately died were older (difference, 18.0 years; 95% CI, 13.0-23.0 years; P < .001) and had lower proportion of high fever (difference, −31.8%; 95% CI, −56.5% to −7.1%; P = .007) than those who survived. They also had higher proportions of hypertension (difference, 18.9%; 95% CI, −2.0% to 39.7%; P = .05). The patients who died were less likely to be treated with antiviral therapy (difference, −40.7%; 95% CI, −58.5% to −22.9%; P < .001). Regarding the most intense level of oxygen support among the 44 ARDS patients who died, 38 (86.4%) received NMV, 5 (11.4%) received IMV, and 1 (2.3%) received IMV with ECMO.

     

    For patients with ARDS who died, the value of liver damage indices (total bilirubin [difference, 2.60 mg/dL; 95% CI, 0.30-5.20 mg/dL; P = .03]), renal dysfunction indices (urea [difference, 1.50 mM; 95% CI, 0.50-2.70 mM; P = .004]), inflammation-related indices (IL-6 [difference, 3.88 pg/L; 95% CI, 2.20-6.13 pg/L; P < .001]), and coagulation function indices (D-dimer [difference, 2.10 μg/mL; 95% CI, 0.89-5.27 μg/mL; P = .001]) were significantly elevated compared with patients with ARDS who survived. However, lymphocyte counts (difference, −0.23 ×109/mL; 95% CI, −0.41 to −0.07 ×109/mL; P = .004) and CD8 T cells (difference, −134 cells/μL; 95% CI, −221 to −10 cells/μL; P = .05) were significantly decreased (Table 3).

     

    Bivariate Cox models showed that several factors related to the development of ARDS were not associated with death, which included comorbidities, lymphocyte counts, CD3 and CD4 T-cell counts, AST, prealbumin, creatinine, glucose, low-density lipoprotein, serum ferritin, and PT. However, IL-6 was statistically significantly associated with death (Table 4). Although high fever was associated with higher likelihood of developing ARDS (HR, 1.77; 95% CI, 1.11-2.84), it was negatively associated with death (HR, 0.41; 95% CI, 0.21-0.82).

     

    Finally, among the patients with ARDS, of those who received methylprednisolone treatment, 23 of 50 (46.0%) patients died, while of those who did not receive methylprednisolone treatment, 21 of 34 (61.8%) died. The administration of methylprednisolone appears to have reduced the risk of death in patients with ARDS (HR, 0.38; 95% CI, 0.20-0.72; P = .003) (Figure).

     
    Discussion
     

    In this cohort study, we reported the clinical characteristics and risk factors associated with clinical outcomes in patients with COVID-19 pneumonia who developed ARDS after admission, as well as those who progressed from ARDS to death. Patients who received methylprednisolone treatment were much more likely to develop ARDS likely owing to confounding by indication; specifically, sicker patients were more likely to be given methylprednisolone. However, administration of methylprednisolone appeared to reduce the risk of death in patients with ARDS. These findings suggest that for patients with COVID-19 pneumonia, methylprednisolone treatment may be beneficial for those who have developed ARDS on disease progression. However, these results should be interpreted with caution owing to potential bias and residual confounding in this observational study with a small sample size. Double-blinded randomized clinical trials should be conducted to validate these results.

     

    The risk factors related to the development of ARDS and progression from ARDS to death included older age, neutrophilia, and organ and coagulation dysfunction (eg, higher LDH and D-dimer). In addition, we observed that several factors associated with the development of ARDS were not associated with death (eg, comorbidities, lymphocyte counts, CD3 and CD4 T-cell counts, AST, prealbumin, creatinine, glucose, low-density lipoprotein, serum ferritin, PT). Moreover, the difference in median D-dimer between the death and survival groups was larger than that between the ARDS and non-ARDS groups, which suggests that disseminated intravascular coagulation was on the pathway to death in some patients. Interestingly, although high fever was positively associated with development of ARDS, it was negatively related to death, which is consistent with results noted in a study by Schell-Chaple et al.8 However, the differences in patient temperature between the groups were very small and self-reported before hospital admission, thus the data regarding high fever should be cautiously interpreted.

     

    The pathogenesis of highly pathogenic human coronavirus is still not completely understood. Cytokine storm and viral evasion of cellular immune responses are thought to play important roles in disease severity.9 Neutrophilia was found in both the peripheral blood10 and lung11 of patients with SARS-CoV. The severity of lung damage correlated with extensive pulmonary infiltration of neutrophils and macrophages and higher numbers of these cells in the peripheral blood in patients with Middle East respiratory syndrome.12-14 Neutrophils are the main source of chemokines and cytokines. The generation of cytokine storm can lead to ARDS, which is a leading cause of death in patients with severe acute respiratory syndrome 15 and Middle East respiratory syndrome.14 In this study, patients with COVID-19 pneumonia who had developed ARDS had significantly higher neutrophil counts than did those without ARDS, perhaps leading to the activation of neutrophils to execute an immune response against the virus, but also contributing to cytokine storm. This may partly explain the positive association of high fever and ARDS found at the early stages of COVID-19. In addition, considering that older age is associated with declined immune competence,16 the results of the present study showed that older age was associated with both ARDS and death. Therefore, older age related to death may be due to less robust immune responses.

     

    The results of this study show that higher CD3 and CD4 T-cell counts might protect patients from developing ARDS, but similar results were not observed when examined for death, possibly because of limited sample size. CD8 counts were significantly higher in those who were alive. These results indicate the important roles of CD4 and CD8 T cells in COVID-19 pneumonia. Earlier studies have revealed that SARS-CoV, which was reported to share the same cell entry receptors with SARS-CoV-2,17,18 could infect immune cells, including T lymphocytes, monocytes, and macrophages.19 The CD3, CD4, and CD8 T-cell counts decreased at the onset of illness; this decrease persisted until the recovery period of SARS-CoV pneumonia.19 In addition, CD4 and CD8 T-cell counts decreased in the peripheral blood specimen of patients with fatal SARS-CoV pneumonia10,20,21, which was consistent with these results that patients with COVID-19 pneumonia and ARDS presented with lymphocytopenia (CD3, CD4, and CD8 T cells). Studies demonstrated that T-cell responses can inhibit the overactivation of innate immunity.22 T cells were reported to help clear SARS-CoV, and a suboptimal T-cell response was found to cause pathological changes observed in mice with SARS-CoV.23 We hypothesized that persistent and gradual increases in lymphocyte responses might be required for effective immunity against SARS-CoV-2 infection. Further studies are needed to characterize the role of the neutrophil and lymphocyte response or that of CD4 and CD8 T-cell immune response in SARS-CoV-2 infection.

     
    Limitations
     

    This study has several limitations. First, owing to limited medical resources, only patients with relatively severe COVID-19 pneumonia were hospitalized during this period. Second, this study was conducted at a single-center hospital with limited sample size. As such, this study may have included disproportionately more patients with poor outcomes. There may also be a selection bias when identifying factors that influence the clinical outcomes. A larger cohort study of patients with COVID-19 pneumonia from Wuhan, China, other cities in China, and other countries would help to further define the clinical characteristics and risk factors of the disease.

     
    Conclusions
     

    Older age was associated with greater risk of developing ARDS and death, likely because of less rigorous immune response. Although fever was associated with the development of ARDS, it was also associated with better outcomes. Several factors related to the development of ARDS were not associated with death, which indicates that different pathophysiological changes from hospital admission to development of ARDS and from development of ARDS to death may exist. Moreover, treatment with methylprednisolone may be beneficial for patients who develop ARDS. Double-blinded randomized clinical trials to determine the most effective treatments for COVID-19 are still needed.

     
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    Article Information

    Accepted for Publication: March 3, 2020.

    Corresponding Authors: Yuanlin Song, MD, Department of Pulmonary and Critical Care Medicine, Zhongshan Hospital, Fudan University, 180 Fenglin Rd, Shanghai 200032, China (This email address is being protected from spambots. You need JavaScript enabled to view it.); Junhua Zheng, MD, Department of Urology, Shanghai General Hospital, Shanghai Jiao Tong University School of Medicine, 85 Wujin Rd, Shanghai 200080, China (This email address is being protected from spambots. You need JavaScript enabled to view it.).

    Published Online: March 13, 2020. doi:10.1001/jamainternmed.2020.0994

    Author Contributions: Drs Song and Zheng had full access to all of the data in the study and take responsibility for the integrity of the data and the accuracy of the data analysis. Drs Wu, X. Chen, Cai, and Xia contributed equally and share first authorship. Drs Song and Zheng contributed equally to the study.

    Study concept and design: Wu, X. Chen, Cai, Xia, Zheng, Y. Song.

    Acquisition, analysis, or interpretation of data: X. Chen, Xing Zhou, S. Xu, Huang, L. Zhang, Xia Zhou, Du, Y. Zhang, J. Song, Wang, Chao, Yang, J. Xu, Xin Zhou, D. Chen, Xiong, L. Xu, F. Zhou, Jiang, Bai.

    Drafting of the manuscript: X. Chen, Xia, Xing Zhou, S. Xu, Huang, L. Zhang, Xia Zhou, Du, Y. Zhang, J. Song, Wang, Chao, Yang, J. Xu, Xin Zhou, D. Chen, Xiong, L. Xu, F. Zhou, Jiang, Bai.

    Critical revision of the manuscript for important intellectual content: Wu, X. Chen, Cai, Xia, Du, Zheng, Y. Song.

    Statistical analysis: X. Chen, Y. Song.

    Obtained funding: Wu, Zheng, Y. Song.

    Administrative, technical, or material support: Cai, Xia, Xing Zhou, S. Xu, Huang, L. Zhang, Xia Zhou, Yang, J. Xu, Xin Zhou, D. Chen, Xiong, L. Xu, F. Zhou, Jiang, Bai, Zheng, Y. Song.

    Study supervision: Zheng, Y. Song.

    Conflict of Interest Disclosures: None reported.

    Funding/Support: This study was supported by a grant from Prevention and Treatment of Infection in Novel Coronavirus Pneumonia Patients from the Shanghai Science and Technology Committee (to Dr Yuanlin Song), the Special Fund of Shanghai Jiaotong University for Coronavirus Disease 2019 Control and Prevention (2020RK47 to Dr Junhua Zheng), and Academic Leader of Shanghai Qingpu District Healthcare Commission (WD2019-36 to Dr Chaomin Wu).

    Role of the Funder/Sponsor The funders had no role in the design and conduct of the study; collection, management, analysis, and interpretation of the data; preparation, review, or approval of the manuscript; and decision to submit the manuscript for publication.

    Additional Contributions: We thank Weibing Wang, PhD, from the Department of Epidemiology, School of Public Health, Fudan University; Yan Liu, MD, and Hongcai Shang, PhD, from Key Laboratory of Chinese Internal Medicine of Ministry of Education, Dongzhimen Hospital, Beijing University of Chinese Medicine; Xiaojia Huang, PhD, from the Institute of Biomedical Engineering and Health Sciences, Changzhou University; and Yaohui Li, MD, from Zhongshan Hospital, Fudan University for their statistical analysis discussion. We also thank Dongni Hou, MD, Sucheng Mu, MD, Donghui Zhang, MD, and Ke Lang, BD, from Zhongshan Hospital, Fudan University for their data collection. They were not compensated for their contributions.

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    Zhu  N, Zhang  D, Wang  W,  et al; China Novel Coronavirus Investigating and Research Team.  A novel coronavirus from patients with pneumonia in China, 2019.  N Engl J Med. 2020;382(8):727-733. doi:10.1056/NEJMoa2001017PubMedGoogle ScholarCrossref
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    Chen  N, Zhou  M, Dong  X,  et al.  Epidemiological and clinical characteristics of 99 cases of 2019 novel coronavirus pneumonia in Wuhan, China: a descriptive study.  Lancet. 2020;395(10223):507-513. doi:10.1016/S0140-6736(20)30211-7PubMedGoogle ScholarCrossref
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    Fine  MJ, Auble  TE, Yealy  DM,  et al.  A prediction rule to identify low-risk patients with community-acquired pneumonia.  N Engl J Med. 1997;336(4):243-250. doi:10.1056/NEJM199701233360402PubMedGoogle ScholarCrossref
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    Schell-Chaple  HM, Puntillo  KA, Matthay  MA, Liu  KD; National Heart, Lung, and Blood Institute Acute Respiratory Distress Syndrome Network.  Body temperature and mortality in patients with acute respiratory distress syndrome.  Am J Crit Care. 2015;24(1):15-23. doi:10.4037/ajcc2015320PubMedGoogle ScholarCrossref
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    Channappanavar  R, Perlman  S.  Pathogenic human coronavirus infections: causes and consequences of cytokine storm and immunopathology.  Semin Immunopathol. 2017;39(5):529-539. doi:10.1007/s00281-017-0629-xPubMedGoogle ScholarCrossref
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    Wang  YH, Lin  AS, Chao  TY,  et al.  A cluster of patients with severe acute respiratory syndrome in a chest ward in southern Taiwan.  Intensive Care Med. 2004;30(6):1228-1231. doi:10.1007/s00134-004-2311-8PubMedGoogle ScholarCrossref
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    Zhao  J, Zhao  J, Perlman  S.  T cell responses are required for protection from clinical disease and for virus clearance in severe acute respiratory syndrome coronavirus-infected mice.  J Virol. 2010;84(18):9318-9325. doi:10.1128/JVI.01049-10PubMedGoogle ScholarCrossref
  • "Exercise with facemask; Are we handling a devil's sword?"- A physiological hypothesis. 📎

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    Abstract Title:

    "Exercise with facemask; Are we handling a devil's sword?"- A physiological hypothesis.

    Abstract Source:

    Med Hypotheses. 2020 Jun 22 ;144:110002. Epub 2020 Jun 22. PMID: 32590322

    Abstract Author(s):

    Baskaran Chandrasekaran, Shifra Fernandes

    Article Affiliation:

    Baskaran Chandrasekaran

    Abstract:

    Straying away from a sedentary lifestyle is essential, especially in these troubled times of a global pandemic to reverse the ill effects associated with the health risks as mentioned earlier. In the view of anticipated effects on immune system and prevention against influenza and Covid-19, globally moderate to vigorous exercises are advocated wearing protective equipment such as facemasks. Though WHO supports facemasks only for Covid-19 patients, healthy"social exercisers"too exercise strenuously with customized facemasks or N95 which hypothesized to pose more significant health risks and tax various physiological systems especially pulmonary, circulatory and immune systems. Exercising with facemasks may reduce available Oxygen and increase air trapping preventing substantial carbon dioxide exchange. The hypercapnic hypoxia may potentially increase acidic environment, cardiac overload, anaerobic metabolism and renal overload, which may substantially aggravate the underlying pathology of established chronic diseases. Further contrary to the earlier thought, no evidence exists to claim the facemasks during exercise offer additional protection from the droplet transfer of the virus. Hence, we recommend social distancing is better than facemasks during exercise and optimal utilization rather than exploitation of facemasks during exercise.

  • (+)-Catechin inhibition of transmissible gastroenteritis coronavirus in swine testicular cells is involved its antioxidation.

    Abstract Title:

    (+)-Catechin inhibition of transmissible gastroenteritis coronavirus in swine testicular cells is involved its antioxidation.

    Abstract Source:

    Res Vet Sci. 2015 Dec ;103:28-33. Epub 2015 Sep 12. PMID: 26679792

    Abstract Author(s):

    Wulong Liang, Lei He, Pengbo Ning, Jihui Lin, Helin Li, Zhi Lin, Kai Kang, Yanming Zhang

    Article Affiliation:

    Wulong Liang

    Abstract:

    Transmissible gastroenteritis virus (TGEV) causes transmissible gastroenteritis (TGE), especially in newborn piglets, which severely threatens the worldwide pig industry. In this study, (+)-catechin was evaluated for its antiviral effect against TGEV in vitro. Viability assays revealed that (+)-catechin treatment exerted a dose-dependent rescue effect in TGEV-infected ST cells, and this result was only obtained with the post-treatment application of (+)-catechin. The viral yields in (+)-catechin-treated cultures were reduced by almost three log10 units. Quantitative real-time PCR analysis of the TGEV genome revealed that TGEV RNA replication was restricted after (+)-catechin treatment. Intracellular reactive oxygen species (ROS) detection showed that (+)-catechin alleviated ROS conditions induced by TGEV infection. Our results showed that (+)-catechin exerts an inhibitory effect on TGEV proliferation in vitro and is involved its antioxidation.

  • (+)-Catechin inhibition of transmissible gastroenteritis coronavirus in swine testicular cells is involved its antioxidation.

    Abstract Title:

    (+)-Catechin inhibition of transmissible gastroenteritis coronavirus in swine testicular cells is involved its antioxidation.

    Abstract Source:

    Res Vet Sci. 2015 Dec ;103:28-33. Epub 2015 Sep 12. PMID: 26679792

    Abstract Author(s):

    Wulong Liang, Lei He, Pengbo Ning, Jihui Lin, Helin Li, Zhi Lin, Kai Kang, Yanming Zhang

    Article Affiliation:

    Wulong Liang

    Abstract:

    Transmissible gastroenteritis virus (TGEV) causes transmissible gastroenteritis (TGE), especially in newborn piglets, which severely threatens the worldwide pig industry. In this study, (+)-catechin was evaluated for its antiviral effect against TGEV in vitro. Viability assays revealed that (+)-catechin treatment exerted a dose-dependent rescue effect in TGEV-infected ST cells, and this result was only obtained with the post-treatment application of (+)-catechin. The viral yields in (+)-catechin-treated cultures were reduced by almost three log10 units. Quantitative real-time PCR analysis of the TGEV genome revealed that TGEV RNA replication was restricted after (+)-catechin treatment. Intracellular reactive oxygen species (ROS) detection showed that (+)-catechin alleviated ROS conditions induced by TGEV infection. Our results showed that (+)-catechin exerts an inhibitory effect on TGEV proliferation in vitro and is involved its antioxidation.

  • A Novel Combination of Vitamin C, Curcumin and Glycyrrhizic Acid Potentially Regulates Immune and Inflammatory Response Associated with Coronavirus Infections: A Perspective from System Biology Analysis📎

    Abstract Title:

    A Novel Combination of Vitamin C, Curcumin and Glycyrrhizic Acid Potentially Regulates Immune and Inflammatory Response Associated with Coronavirus Infections: A Perspective from System Biology Analysis.

    Abstract Source:

    Nutrients. 2020 Apr 24 ;12(4). Epub 2020 Apr 24. PMID: 32344708

    Abstract Author(s):

    Liang Chen, Chun Hu, Molly Hood, Xue Zhang, Lu Zhang, Juntao Kan, Jun Du

    Article Affiliation:

    Liang Chen

    Abstract:

    Novel coronaviruses (CoV) have emerged periodically around the world in recent years. The recurrent spreading of CoVs imposes an ongoing threat to global health and the economy. Since no specific therapy for these CoVs is available, any beneficial approach (including nutritional and dietary approach) is worth investigation. Based on recent advances in nutrients and phytonutrients research, a novel combination of vitamin C, curcumin and glycyrrhizic acid (VCG Plus) was developed that has potential against CoV infection. System biology tools were applied to explore the potential of VCG Plus in modulating targets and pathways relevant to immune and inflammation responses. Gene target acquisition, gene ontology and Kyoto encyclopedia of genes and genomes (KEGG) pathway enrichment were conducted consecutively along with network analysis. The results show that VCG Plus can act on 88 hub targets which are closely connected and associated with immune and inflammatory responses. Specifically, VCG Plus has the potential to regulate innate immune response by acting on NOD-like and Toll-like signaling pathways to promote interferons production, activate and balance T-cells, and regulate the inflammatory response by inhibiting PI3K/AKT, NF-κB and MAPK signaling pathways. All these biological processes and pathways have been well documented in CoV infections studies. Therefore, our findings suggest that VCG Plus may be helpful in regulating immune response to combat CoV infections and inhibit excessive inflammatory responses to prevent the onset of cytokine storm. However, further in vitro and in vivo experiments are warranted to validate the current findings with system biology tools. Our current approach provides a new strategy in predicting formulation rationale when developing new dietary supplements.

  • A rapid advice guideline for the diagnosis and treatment of 2019 novel coronavirus (2019-nCoV) infected pneumonia (standard version)📎

    Abstract Title:

    A rapid advice guideline for the diagnosis and treatment of 2019 novel coronavirus (2019-nCoV) infected pneumonia (standard version).

    Abstract Source:

    Mil Med Res. 2020 Feb 6 ;7(1):4. Epub 2020 Feb 6. PMID: 32029004

    Abstract Author(s):

    Ying-Hui Jin, Lin Cai, Zhen-Shun Cheng, Hong Cheng, Tong Deng, Yi-Pin Fan, Cheng Fang, Di Huang, Lu-Qi Huang, Qiao Huang, Yong Han, Bo Hu, Fen Hu, Bing-Hui Li, Yi-Rong Li, Ke Liang, Li-Kai Lin, Li-Sha Luo, Jing Ma, Lin-Lu Ma, Zhi-Yong Peng, Yun-Bao Pan, Zhen-Yu Pan, Xue-Qun Ren, Hui-Min Sun, Ying Wang, Yun-Yun Wang, Hong Weng, Chao-Jie Wei, Dong-Fang Wu, Jian Xia, Yong Xiong, Hai-Bo Xu, Xiao-Mei Yao, Yu-Feng Yuan, Tai-Sheng Ye, Xiao-Chun Zhang, Ying-Wen Zhang, Yin-Gao Zhang, Hua-Min Zhang, Yan Zhao, Ming-Juan Zhao, Hao Zi, Xian-Tao Zeng, Yong-Yan Wang, Xing-Huan Wang,

    Article Affiliation:

    Ying-Hui Jin

    Abstract:

    In December 2019, a new type viral pneumonia cases occurred in Wuhan, Hubei Province; and then named"2019 novel coronavirus (2019-nCoV)"by the World Health Organization (WHO) on 12 January 2020. For it is a never been experienced respiratory disease before and with infection ability widely and quickly, it attracted the world's attention but without treatment and control manual. For the request from frontline clinicians and public health professionals of 2019-nCoV infected pneumonia management, an evidence-based guideline urgently needs to be developed. Therefore, we drafted this guideline according to the rapid advice guidelines methodology and general rules of WHO guideline development; we also added the first-hand management data of Zhongnan Hospital of Wuhan University. This guideline includes the guideline methodology, epidemiological characteristics, disease screening and population prevention, diagnosis, treatment and control (including traditional Chinese Medicine), nosocomial infection prevention and control, and disease nursing of the 2019-nCoV. Moreover, we also provide a whole process of a successful treatment case of the severe 2019-nCoV infected pneumonia and experience and lessons of hospital rescue for 2019-nCoV infections. This rapid advice guideline is suitable for the first frontline doctors and nurses, managers of hospitals and healthcare sections, community residents, public health persons, relevant researchers, and all person who are interested in the 2019-nCoV.

  • A rapid advice guideline for the diagnosis and treatment of 2019 novel coronavirus (2019-nCoV) infected pneumonia (standard version)📎

    Abstract Title:

    A rapid advice guideline for the diagnosis and treatment of 2019 novel coronavirus (2019-nCoV) infected pneumonia (standard version).

    Abstract Source:

    Mil Med Res. 2020 Feb 6 ;7(1):4. Epub 2020 Feb 6. PMID: 32029004

    Abstract Author(s):

    Ying-Hui Jin, Lin Cai, Zhen-Shun Cheng, Hong Cheng, Tong Deng, Yi-Pin Fan, Cheng Fang, Di Huang, Lu-Qi Huang, Qiao Huang, Yong Han, Bo Hu, Fen Hu, Bing-Hui Li, Yi-Rong Li, Ke Liang, Li-Kai Lin, Li-Sha Luo, Jing Ma, Lin-Lu Ma, Zhi-Yong Peng, Yun-Bao Pan, Zhen-Yu Pan, Xue-Qun Ren, Hui-Min Sun, Ying Wang, Yun-Yun Wang, Hong Weng, Chao-Jie Wei, Dong-Fang Wu, Jian Xia, Yong Xiong, Hai-Bo Xu, Xiao-Mei Yao, Yu-Feng Yuan, Tai-Sheng Ye, Xiao-Chun Zhang, Ying-Wen Zhang, Yin-Gao Zhang, Hua-Min Zhang, Yan Zhao, Ming-Juan Zhao, Hao Zi, Xian-Tao Zeng, Yong-Yan Wang, Xing-Huan Wang,

    Article Affiliation:

    Ying-Hui Jin

    Abstract:

    In December 2019, a new type viral pneumonia cases occurred in Wuhan, Hubei Province; and then named"2019 novel coronavirus (2019-nCoV)"by the World Health Organization (WHO) on 12 January 2020. For it is a never been experienced respiratory disease before and with infection ability widely and quickly, it attracted the world's attention but without treatment and control manual. For the request from frontline clinicians and public health professionals of 2019-nCoV infected pneumonia management, an evidence-based guideline urgently needs to be developed. Therefore, we drafted this guideline according to the rapid advice guidelines methodology and general rules of WHO guideline development; we also added the first-hand management data of Zhongnan Hospital of Wuhan University. This guideline includes the guideline methodology, epidemiological characteristics, disease screening and population prevention, diagnosis, treatment and control (including traditional Chinese Medicine), nosocomial infection prevention and control, and disease nursing of the 2019-nCoV. Moreover, we also provide a whole process of a successful treatment case of the severe 2019-nCoV infected pneumonia and experience and lessons of hospital rescue for 2019-nCoV infections. This rapid advice guideline is suitable for the first frontline doctors and nurses, managers of hospitals and healthcare sections, community residents, public health persons, relevant researchers, and all person who are interested in the 2019-nCoV.

  • A review on antiviral activity of the Himalayan medicinal plants traditionally used to treat bronchitis and related symptoms📎

    Abstract Title:

    A review on antiviral activity of the Himalayan medicinal plants traditionally used to treat bronchitis and related symptoms.

    Abstract Source:

    J Pharm Pharmacol. 2017 Feb ;69(2):109-122. Epub 2016 Dec 1. PMID: 27905101

    Abstract Author(s):

    Rahila Amber, Muhammad Adnan, Akash Tariq, Sakina Mussarat

    Article Affiliation:

    Rahila Amber

    Abstract:

    OBJECTIVES:Bronchitis is a common respiratory tract infection of humans mainly caused by influenza virus, rhinovirus, adenovirus, coronavirus and respiratory syncytial virus. The aim of this review was to gather fragmented literature on ethnomedicinal plants used against bronchitis in the Himalayan region and their in-vitro validation against bronchitis causing viral pathogens.

    KEY FINDINGS:Present review contains ethnomedicines of total 55 plants from different countries of the Himalayas. Most of the literature reported was from India followed by Pakistan, China and Nepal. Familiarly used plant families for bronchitis treatment in the Himalayan region were Leguminosae (six plants) and Lamiaceae (five plants). Leaves and roots were the most common parts used in ethnomedicines against bronchitis. Of these 55 plants, only six plants have been studied in vitro against viral pathogens causing bronchitis. Different compounds like monoterpenoids, flavonoids, triterpenoids, iridoid glycosides, sesquiterpenes, benzoic and phenolic compounds were reportedly isolated from these plant extracts having strong antiviral potential.

    SUMMARY:The Himalayan regions possess variety of ethnomedicinal plants used against respiratory diseases, but still there are only few studies related with their in-vitro validation. We invite the attention of researchers for detailed ethnopharmacological and phytochemical studies on unexplored plants used to treat bronchitis for the development of novel antiviral drugs.

  • A review on antiviral activity of the Himalayan medicinal plants traditionally used to treat bronchitis and related symptoms📎

    Abstract Title:

    A review on antiviral activity of the Himalayan medicinal plants traditionally used to treat bronchitis and related symptoms.

    Abstract Source:

    J Pharm Pharmacol. 2017 Feb ;69(2):109-122. Epub 2016 Dec 1. PMID: 27905101

    Abstract Author(s):

    Rahila Amber, Muhammad Adnan, Akash Tariq, Sakina Mussarat

    Article Affiliation:

    Rahila Amber

    Abstract:

    OBJECTIVES:Bronchitis is a common respiratory tract infection of humans mainly caused by influenza virus, rhinovirus, adenovirus, coronavirus and respiratory syncytial virus. The aim of this review was to gather fragmented literature on ethnomedicinal plants used against bronchitis in the Himalayan region and their in-vitro validation against bronchitis causing viral pathogens.

    KEY FINDINGS:Present review contains ethnomedicines of total 55 plants from different countries of the Himalayas. Most of the literature reported was from India followed by Pakistan, China and Nepal. Familiarly used plant families for bronchitis treatment in the Himalayan region were Leguminosae (six plants) and Lamiaceae (five plants). Leaves and roots were the most common parts used in ethnomedicines against bronchitis. Of these 55 plants, only six plants have been studied in vitro against viral pathogens causing bronchitis. Different compounds like monoterpenoids, flavonoids, triterpenoids, iridoid glycosides, sesquiterpenes, benzoic and phenolic compounds were reportedly isolated from these plant extracts having strong antiviral potential.

    SUMMARY:The Himalayan regions possess variety of ethnomedicinal plants used against respiratory diseases, but still there are only few studies related with their in-vitro validation. We invite the attention of researchers for detailed ethnopharmacological and phytochemical studies on unexplored plants used to treat bronchitis for the development of novel antiviral drugs.

  • Aerosol and Surface Stability of SARS-CoV-2 as Compared with SARS-CoV-1📎

    Abstract Title:

    Aerosol and Surface Stability of SARS-CoV-2 as Compared with SARS-CoV-1.

    Abstract Source:

    N Engl J Med. 2020 Mar 17. Epub 2020 Mar 17. PMID: 32182409

    Abstract Author(s):

    Neeltje van Doremalen, Trenton Bushmaker, Dylan H Morris, Myndi G Holbrook, Amandine Gamble, Brandi N Williamson, Azaibi Tamin, Jennifer L Harcourt, Natalie J Thornburg, Susan I Gerber, James O Lloyd-Smith, Emmie de Wit, Vincent J Munster

    Article Affiliation:

    Neeltje van Doremalen

    Abstract:

    [n/a]

  • An Analysis of 38 Pregnant Women with COVID-19, Their Newborn Infants, and Maternal-Fetal Transmission of SARS-CoV-2: Maternal Coronavirus Infections and Pregnancy Outcomes📎

    Abstract Title:

    An Analysis of 38 Pregnant Women with COVID-19, Their Newborn Infants, and Maternal-Fetal Transmission of SARS-CoV-2: Maternal Coronavirus Infections and Pregnancy Outcomes.

    Abstract Source:

    Arch Pathol Lab Med. 2020 Mar 17. Epub 2020 Mar 17. PMID: 32180426

    Abstract Author(s):

    David A Schwartz

    Article Affiliation:

    David A Schwartz

    Abstract:

    The emergence of a novel coronavirus, termed SARS-CoV-2, and the potentially life-threating respiratory disease that it can produce, COVID-19, has rapidly spread across the globe creating a massive public health problem. Previous epidemics of many emerging viral infections have typically resulted in poor obstetrical outcomes including maternal morbidity and mortality, maternal-fetal transmission of the virus, and perinatal infections and death. This communication reviews the effects of two previous coronavirus infections - severe acute respiratory syndrome (SARS) caused by SARS-CoV and Middle East respiratory syndrome (MERS) caused by MERS-CoV - on pregnancy outcomes. In addition, it analyzes literature describing 38 pregnant women with COVID-19 and their newborns in China to assess the effects of SARS-CoV-2 on the mothers and infants including clinical, laboratory and virologic data, and the transmissibility of the virus from mother to fetus. This analysis reveals that unlike coronavirus infections of pregnant women caused by SARS and MERS, in these 38 pregnant women COVID-19 did not lead to maternal deaths. Importantly, and similar to pregnancies with SARS and MERS, there were no confirmed cases of intrauterine transmission of SARS-CoV-2 from mothers with COVID-19 to their fetuses. All neonatal specimens tested, including in some cases placentas, were negative by rt-PCR for SARS-CoV-2. At this point in the global pandemic of COVID-19 infection there is no evidence that SARS-CoV-2 undergoes intrauterine or transplacental transmission from infected pregnant women to their fetuses. Analysis of additional cases is necessary to determine if this remains true.

  • An in vitro study of theaflavins extracted from black tea to neutralize bovine rotavirus and bovine coronavirus infections.

    Abstract Title:

    An in vitro study of theaflavins extracted from black tea to neutralize bovine rotavirus and bovine coronavirus infections.

    Abstract Source:

    Vet Microbiol. 1998 Oct ;63(2-4):147-57. PMID: 9850995

    Abstract Author(s):

    K J Clark, P G Grant, A B Sarr, J R Belakere, C L Swaggerty, T D Phillips, G N Woode

    Article Affiliation:

    K J Clark

    Abstract:

    Crude theaflavin was extracted from black tea and then fractionated by HPLC into five components (initial peaks (IP), TF1, TF2A, TF2B, and TF3). The crude extract and the various fractions of theaflavin were collected and tested, individually and in combination, for antirotaviral activity. The mean effective concentration (EC50) was calculated and compared. Activity varied from the most active being the uncharacterized theaflavin-like initial peaks (IP) with an EC50 of 0.125 microgram/ml to the least active being theaflavin-3 monogallate (TF2A) with an EC50 of 251.39 micrograms/ ml. The combination of TF1 + TF2A + TF2B + TF3 was more active than the sum of the activities of these four fractions individually, indicating synergism among the peaks. Only the crude extract was assayed for activity against coronavirus; the EC50 was 34.7 micrograms/ml.

  • An in vitro study of theaflavins extracted from black tea to neutralize bovine rotavirus and bovine coronavirus infections.

    Abstract Title:

    An in vitro study of theaflavins extracted from black tea to neutralize bovine rotavirus and bovine coronavirus infections.

    Abstract Source:

    Vet Microbiol. 1998 Oct ;63(2-4):147-57. PMID: 9850995

    Abstract Author(s):

    K J Clark, P G Grant, A B Sarr, J R Belakere, C L Swaggerty, T D Phillips, G N Woode

    Article Affiliation:

    K J Clark

    Abstract:

    Crude theaflavin was extracted from black tea and then fractionated by HPLC into five components (initial peaks (IP), TF1, TF2A, TF2B, and TF3). The crude extract and the various fractions of theaflavin were collected and tested, individually and in combination, for antirotaviral activity. The mean effective concentration (EC50) was calculated and compared. Activity varied from the most active being the uncharacterized theaflavin-like initial peaks (IP) with an EC50 of 0.125 microgram/ml to the least active being theaflavin-3 monogallate (TF2A) with an EC50 of 251.39 micrograms/ ml. The combination of TF1 + TF2A + TF2B + TF3 was more active than the sum of the activities of these four fractions individually, indicating synergism among the peaks. Only the crude extract was assayed for activity against coronavirus; the EC50 was 34.7 micrograms/ml.

  • Analysis of factors associated with disease outcomes in hospitalized patients with 2019 novel coronavirus disease📎

    Abstract Title:

    Analysis of factors associated with disease outcomes in hospitalized patients with 2019 novel coronavirus disease.

    Abstract Source:

    Chin Med J (Engl). 2020 Feb 28. Epub 2020 Feb 28. PMID: 32118640

    Abstract Author(s):

    Wei Liu, Zhao-Wu Tao, Wang Lei, Yuan Ming-Li, Liu Kui, Zhou Ling, Wei Shuang, Deng Yan, Liu Jing, Hui-Guo Liu, Yang Ming, Hu Yi

    Article Affiliation:

    Wei Liu

    Abstract:

    BACKGROUND:Since early December 2019, the 2019 novel coronavirus disease (COVID-19) has caused pneumonia epidemic in Wuhan, Hubei province of China. This study aims to investigate the factors affecting the progression of pneumonia in COVID-19 patients. Associated results will be used to evaluate the prognosis and to find the optimal treatment regimens for COVID-19 pneumonia.

    METHODS:Patients tested positive for the COVID-19 based on nucleic acid detection were included in this study. Patients were admitted to 3 tertiary hospitals in Wuhan between December 30, 2019, and January 15, 2020. Individual data, laboratory indices, imaging characteristics, and clinical data were collected, and statistical analysis was performed. Based on clinical typing results, the patients were divided into a progression group or an improvement/stabilization group. Continuous variables were analyzed using independent samples t-test or Mann-Whitney U test. Categorical variables were analyzed using Chi-squared test or Fisher exact test. Logistic regression analysis was performed to explore the risk factors for disease progression.

    RESULTS:Seventy-eight patients with COVID-19-induced pneumonia met the inclusion criteria and were included in this study. Efficacy evaluation at 2 weeks after hospitalization indicated that 11 patients (14.1%) had deteriorated, and 67 patients (85.9%) had improved/stabilized. The patients in the progression group were significantly older than those in the disease improvement/stabilization group (66 [51, 70] vs. 37 [32, 41] years, U = 4.932, P = 0.001). The progression group had a significantly higher proportion of patients with a history of smoking than the improvement/stabilization group (27.3% vs. 3.0%, χ = 9.291, P = 0.018). For all the 78 patients, fever was the most common initial symptom, and the maximum body temperature at admission was significantly higher in the progression group than in the improvement/stabilization group (38.2 [37.8, 38.6] vs. 37.5 [37.0, 38.4]°C, U = 2.057, P = 0.027). Moreover, the proportion of patients with respiratory failure (54.5% vs. 20.9%, χ = 5.611, P = 0.028) and respiratory rate (34 [18, 48] vs. 24 [16, 60] breaths/min, U = 4.030, P = 0.004) were significantly higher in the progression group than in the improvement/stabilization group. C-reactive protein was significantly elevated in the progression group compared to the improvement/stabilization group (38.9 [14.3, 64.8] vs. 10.6 [1.9, 33.1] mg/L, U = 1.315, P = 0.024). Albumin was significantly lower in the progression group than in the improvement/stabilization group (36.62 ± 6.60 vs. 41.27 ± 4.55 g/L, U = 2.843, P = 0.006). Patients in the progression group were more likely to receive high-level respiratory support than in the improvement/stabilization group (χ = 16.01, P = 0.001). Multivariate logistic analysis indicated that age (odds ratio [OR], 8.546; 95% confidence interval [CI]: 1.628-44.864; P = 0.011), history of smoking(OR, 14.285; 95% CI: 1.577-25.000; P = 0.018), maximum body temperature at admission (OR, 8.999; 95% CI: 1.036-78.147, P = 0.046), respiratory failure (OR, 8.772, 95% CI: 1.942-40.000; P = 0.016), albumin (OR, 7.353, 95% CI: 1.098-50.000; P = 0.003), and C-reactive protein (OR, 10.530; 95% CI: 1.224-34.701, P = 0.028) were risk factors for disease progression.

    CONCLUSIONS:Several factors that led to the progression of COVID-19 pneumonia were identified, including age, history of smoking, maximum body temperature on admission, respiratory failure, albumin, C-reactive protein. These results can be used to further enhance the ability of management of COVID-19 pneumonia.

  • Anti-human coronavirus (anti-HCoV) triterpenoids from the leaves of Euphorbia neriifolia.

    Abstract Title:

    Anti-human coronavirus (anti-HCoV) triterpenoids from the leaves of Euphorbia neriifolia.

    Abstract Source:

    Nat Prod Commun. 2012 Nov ;7(11):1415-7. PMID: 23285797

    Abstract Author(s):

    Fang-Rong Chang, Chiao-Ting Yen, Mohamed Ei-Shazly, Wen-Hsun Lin, Ming-Hong Yen, Kuei-Hsiang Lin, Yang-Chang Wu

    Article Affiliation:

    Fang-Rong Chang

    Abstract:

    Euphorbia neriifolia L. is a spiny herb native to Southeast Asia and currently cultivated in southern Taiwan. From the ethanolic extract of E. neriifolia leaves, 23 compounds were isolated, including 22 triterpenoids and one flavonoid glycoside. The anti-human coronavirus (HCoV) activity of the separated triterpenoids was studied revealing the structure-activity relationship (SAR) of these isolates. 3beta-Friedelanol exhibited more potent anti-viral activity than the positive control, actinomycin D, which implies the importance of the friedelane skeleton as a potential scaffold for developing new anti-HCoV-229E drugs.

  • Anti-human coronavirus (anti-HCoV) triterpenoids from the leaves of Euphorbia neriifolia.

    Abstract Title:

    Anti-human coronavirus (anti-HCoV) triterpenoids from the leaves of Euphorbia neriifolia.

    Abstract Source:

    Nat Prod Commun. 2012 Nov ;7(11):1415-7. PMID: 23285797

    Abstract Author(s):

    Fang-Rong Chang, Chiao-Ting Yen, Mohamed Ei-Shazly, Wen-Hsun Lin, Ming-Hong Yen, Kuei-Hsiang Lin, Yang-Chang Wu

    Article Affiliation:

    Fang-Rong Chang

    Abstract:

    Euphorbia neriifolia L. is a spiny herb native to Southeast Asia and currently cultivated in southern Taiwan. From the ethanolic extract of E. neriifolia leaves, 23 compounds were isolated, including 22 triterpenoids and one flavonoid glycoside. The anti-human coronavirus (HCoV) activity of the separated triterpenoids was studied revealing the structure-activity relationship (SAR) of these isolates. 3beta-Friedelanol exhibited more potent anti-viral activity than the positive control, actinomycin D, which implies the importance of the friedelane skeleton as a potential scaffold for developing new anti-HCoV-229E drugs.

  • Anti-SARS coronavirus 3C-like protease effects of Isatis indigotica root and plant-derived phenolic compounds.

    Abstract Title:

    Anti-SARS coronavirus 3C-like protease effects of Isatis indigotica root and plant-derived phenolic compounds.

    Abstract Source:

    Antiviral Res. 2005 Oct ;68(1):36-42. PMID: 16115693

    Abstract Author(s):

    Cheng-Wen Lin, Fuu-Jen Tsai, Chang-Hai Tsai, Chien-Chen Lai, Lei Wan, Tin-Yun Ho, Chang-Chi Hsieh, Pei-Dawn Lee Chao

    Article Affiliation:

    Cheng-Wen Lin

    Abstract:

    The 3C-like protease (3CLpro) of SARS-coronavirus mediates the proteolytic processing of replicase polypeptides 1a and 1ab into functional proteins, becoming an important target for the drug development. In this study, Isatis indigotica root extract, five major compounds of I. indigotica root, and seven plant-derived phenolic compounds were tested for anti-SARS-CoV 3CLpro effects using cell-free and cell-based cleavage assays. Cleavage assays with the 3CLpro demonstrated that IC50 values were in micromolar ranges for I. indigotica root extract, indigo, sinigrin, aloe emodin and hesperetin. Sinigrin (IC50: 217 microM) was more efficient in blocking the cleavage processing of the 3CLpro than indigo (IC50: 752 microM) and beta-sitosterol (IC50: 1210 microM) in the cell-based assay. Only two phenolic compounds aloe emodin and hesperetin dose-dependently inhibited cleavage activity of the 3CLpro, in which the IC50 was 366 microM for aloe emodin and 8.3 microM for hesperetin in the cell-based assay.

  • Anti-SARS coronavirus 3C-like protease effects of Isatis indigotica root and plant-derived phenolic compounds.

    Abstract Title:

    Anti-SARS coronavirus 3C-like protease effects of Isatis indigotica root and plant-derived phenolic compounds.

    Abstract Source:

    Antiviral Res. 2005 Oct ;68(1):36-42. PMID: 16115693

    Abstract Author(s):

    Cheng-Wen Lin, Fuu-Jen Tsai, Chang-Hai Tsai, Chien-Chen Lai, Lei Wan, Tin-Yun Ho, Chang-Chi Hsieh, Pei-Dawn Lee Chao

    Article Affiliation:

    Cheng-Wen Lin

    Abstract:

    The 3C-like protease (3CLpro) of SARS-coronavirus mediates the proteolytic processing of replicase polypeptides 1a and 1ab into functional proteins, becoming an important target for the drug development. In this study, Isatis indigotica root extract, five major compounds of I. indigotica root, and seven plant-derived phenolic compounds were tested for anti-SARS-CoV 3CLpro effects using cell-free and cell-based cleavage assays. Cleavage assays with the 3CLpro demonstrated that IC50 values were in micromolar ranges for I. indigotica root extract, indigo, sinigrin, aloe emodin and hesperetin. Sinigrin (IC50: 217 microM) was more efficient in blocking the cleavage processing of the 3CLpro than indigo (IC50: 752 microM) and beta-sitosterol (IC50: 1210 microM) in the cell-based assay. Only two phenolic compounds aloe emodin and hesperetin dose-dependently inhibited cleavage activity of the 3CLpro, in which the IC50 was 366 microM for aloe emodin and 8.3 microM for hesperetin in the cell-based assay.

  • Anti-virus research of triterpenoids in licorice

    Abstract Title:

    [Anti-virus research of triterpenoids in licorice].

    Abstract Source:

    Bing Du Xue Bao. 2013 Nov ;29(6):673-9. PMID: 24520776

    Abstract Author(s):

    Jie-Ying Pu, Li He, Si-Yu Wu, Ping Zhang, Xi Huang

    Article Affiliation:

    Jie-Ying Pu

    Abstract:

    Licorice is a leguminous plant of glycyrrhiza. It is a traditional Chinese herbal medicine. Triterpenoid is one of the mainly active components of licorice. In recent years, the broad-spectrum antiviral activity of many triterpenoids in licorice was confirmed, and these findings have become a hot spot of antiviral immunity. The triterpenoids of licorice has the potential to become a novel broad-spectrum antiviral medicine and will be widely used in the clinical treatment. This review provided a summary of the recent anti-virus research progress on several triterpenoids in licorice, such as glycyrrhizic acid, glycyrrhizin, glycyrrhetinic acid and its derivatives. The antiviral roles of triterpenoids in licorice against herpes virus, HIV, hepatitis virus, SARS coronavirus and influenza virus were briefly summarized.

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