Covid19 Clinical Trial
— SeCOVIDOfficial title:
Selenium as a Potential Treatment for Moderately-ill, Severely-ill, and Critically-ill COVID-19 Patients
Given its anti-viral, anti-oxidative, immune-enhancing, cytokine-modulating, and anticoagulant properties, the investigators hypothesize that Selenium infusion at supranutritional doses for moderately-ill, severely-ill, and critically-ill COVID-19 patients will prevent further clinical deterioration thus decreasing overall mortality and improving survival. To test this hypothesis, a prospective, single-center, phase II trial is proposed to assess the efficacy of Selenium in hospitalized adult patients with moderate, severe, and critical COVID-19 infections.
Status | Not yet recruiting |
Enrollment | 100 |
Est. completion date | December 15, 2021 |
Est. primary completion date | November 15, 2021 |
Accepts healthy volunteers | No |
Gender | All |
Age group | 18 Years and older |
Eligibility | Inclusion Criteria: 1. Willing and able to provide written informed consent, or with a legal representative who can provide informed consent, or enrolled under International Conference on Harmonization (ICH) E6(R2) 4.8.15 emergency use provisions as deemed necessary by the investigator (age =18) prior to performing study procedure. 2. Aged = 18 years. 3. Severe Acute Respiratory Syndrome Coronavirus (SARS-CoV)-2 infection confirmed by polymerase chain reaction (PCR) test = 4 days before randomization. 4. Currently hospitalized. 5. Peripheral capillary oxygen saturation (SpO2) = 94% or requiring supplemental oxygen on screening. Exclusion Criteria: 1. Participation in any other clinical trial of an experimental treatment for COVID-19. 2. Evidence of multiorgan failure. 3. Mechanically ventilated for > 5 days. 4. Alanine Aminotransferase (ALT) or aspartate aminotransferase (AST) > 5 X upper limit of normal (ULN). 5. Creatinine clearance < 50 mL/min. |
Country | Name | City | State |
---|---|---|---|
United States | CHRISTUS Good Shepherd Medical Center | Longview | Texas |
Lead Sponsor | Collaborator |
---|---|
CHRISTUS Health | Pharco Pharmaceuticals |
United States,
Ahrens I, Ellwanger C, Smith BK, Bassler N, Chen YC, Neudorfer I, Ludwig A, Bode C, Peter K. Selenium supplementation induces metalloproteinase-dependent L-selectin shedding from monocytes. J Leukoc Biol. 2008 Jun;83(6):1388-95. doi: 10.1189/jlb.0707497. Epub 2008 Feb 27. — View Citation
Allingstrup M, Afshari A. Selenium supplementation for critically ill adults. Cochrane Database Syst Rev. 2015 Jul 27;(7):CD003703. doi: 10.1002/14651858.CD003703.pub3. Review. — View Citation
Amini P, Kolivand S, Saffar H, Rezapoor S, Motevaseli E, Najafi M, Nouruzi F, Shabeeb D, Musa AE. Protective Effect of Selenium-L-methionine on Radiation-induced Acute Pneumonitis and Lung Fibrosis in Rat. Curr Clin Pharmacol. 2019;14(2):157-164. doi: 10.2174/1574884714666181214101917. — View Citation
Angstwurm MW, Engelmann L, Zimmermann T, Lehmann C, Spes CH, Abel P, Strauss R, Meier-Hellmann A, Insel R, Radke J, Schüttler J, Gärtner R. Selenium in Intensive Care (SIC): results of a prospective randomized, placebo-controlled, multiple-center study in patients with severe systemic inflammatory response syndrome, sepsis, and septic shock. Crit Care Med. 2007 Jan;35(1):118-26. — View Citation
Angstwurm MW, Gaertner R. Practicalities of selenium supplementation in critically ill patients. Curr Opin Clin Nutr Metab Care. 2006 May;9(3):233-8. Review. — View Citation
Avery JC, Hoffmann PR. Selenium, Selenoproteins, and Immunity. Nutrients. 2018 Sep 1;10(9). pii: E1203. doi: 10.3390/nu10091203. Review. — View Citation
Bargagli E, Olivieri C, Bennett D, Prasse A, Muller-Quernheim J, Rottoli P. Oxidative stress in the pathogenesis of diffuse lung diseases: a review. Respir Med. 2009 Sep;103(9):1245-56. doi: 10.1016/j.rmed.2009.04.014. Epub 2009 May 22. Review. — View Citation
Beck MA, Levander OA, Handy J. Selenium deficiency and viral infection. J Nutr. 2003 May;133(5 Suppl 1):1463S-7S. doi: 10.1093/jn/133.5.1463S. Review. — View Citation
Beck MA. Antioxidants and viral infections: host immune response and viral pathogenicity. J Am Coll Nutr. 2001 Oct;20(5 Suppl):384S-388S; discussion 396S-397S. Review. — View Citation
Beck MA. Selenium and host defence towards viruses. Proc Nutr Soc. 1999 Aug;58(3):707-11. Review. — View Citation
Chu VC, McElroy LJ, Chu V, Bauman BE, Whittaker GR. The avian coronavirus infectious bronchitis virus undergoes direct low-pH-dependent fusion activation during entry into host cells. J Virol. 2006 Apr;80(7):3180-8. — View Citation
Conti P, Ronconi G, Caraffa A, Gallenga CE, Ross R, Frydas I, Kritas SK. Induction of pro-inflammatory cytokines (IL-1 and IL-6) and lung inflammation by Coronavirus-19 (COVI-19 or SARS-CoV-2): anti-inflammatory strategies. J Biol Regul Homeost Agents. 2020 March-April,;34(2):327-331. doi: 10.23812/CONTI-E. — View Citation
Fontaine M, Valli VE, Young LG. Studies on vitamin E and selenium deficiency in young pigs. IV. Effect on coagulation system. Can J Comp Med. 1977 Jan;41(1):64-76. — View Citation
Gazi MH, Gong A, Donkena KV, Young CY. Sodium selenite inhibits interleukin-6-mediated androgen receptor activation in prostate cancer cells via upregulation of c-Jun. Clin Chim Acta. 2007 May 1;380(1-2):145-50. Epub 2007 Feb 11. — View Citation
Ghosh P, Bhattacharjee A, Basu A, Singha Roy S, Bhattacharya S. Attenuation of cyclophosphamide-induced pulmonary toxicity in Swiss albino mice by naphthalimide-based organoselenium compound 2-(5-selenocyanatopentyl)-benzo[de]isoquinoline 1,3-dione. Pharm Biol. 2015 Apr;53(4):524-32. doi: 10.3109/13880209.2014.931440. Epub 2014 Dec 4. — View Citation
Hardy G, Hardy I, Manzanares W. Selenium supplementation in the critically ill. Nutr Clin Pract. 2012 Feb;27(1):21-33. doi: 10.1177/0884533611434116. Review. — View Citation
Hassanzadeh M, Faridhosseini R, Mahini M, Faridhosseini F, Ranjbar A. Serum Levels of TNF-, IL-6, and Selenium in Patients with Acute and Chronic Coronary Artery Disease. Iran J Immunol. 2006 Sep;3(3):142-5. doi: IJIv3i3A7. — View Citation
Heyland DK, Dhaliwal R, Suchner U, Berger MM. Antioxidant nutrients: a systematic review of trace elements and vitamins in the critically ill patient. Intensive Care Med. 2005 Mar;31(3):327-37. Epub 2004 Dec 17. Review. — View Citation
Hoffmann PR, Berry MJ. The influence of selenium on immune responses. Mol Nutr Food Res. 2008 Nov;52(11):1273-80. doi: 10.1002/mnfr.200700330. Review. — View Citation
Hori K, Hatfield D, Maldarelli F, Lee BJ, Clouse KA. Selenium supplementation suppresses tumor necrosis factor alpha-induced human immunodeficiency virus type 1 replication in vitro. AIDS Res Hum Retroviruses. 1997 Oct 10;13(15):1325-32. — View Citation
Huang C, Wang Y, Li X, Ren L, Zhao J, Hu Y, Zhang L, Fan G, Xu J, Gu X, Cheng Z, Yu T, Xia J, Wei Y, Wu W, Xie X, Yin W, Li H, Liu M, Xiao Y, Gao H, Guo L, Xie J, Wang G, Jiang R, Gao Z, Jin Q, Wang J, Cao B. Clinical features of patients infected with 2019 novel coronavirus in Wuhan, China. Lancet. 2020 Feb 15;395(10223):497-506. doi: 10.1016/S0140-6736(20)30183-5. Epub 2020 Jan 24. Erratum in: Lancet. 2020 Jan 30;:. — View Citation
Jaspers I, Zhang W, Brighton LE, Carson JL, Styblo M, Beck MA. Selenium deficiency alters epithelial cell morphology and responses to influenza. Free Radic Biol Med. 2007 Jun 15;42(12):1826-37. Epub 2007 Mar 24. — View Citation
Kellner M, Noonepalle S, Lu Q, Srivastava A, Zemskov E, Black SM. ROS Signaling in the Pathogenesis of Acute Lung Injury (ALI) and Acute Respiratory Distress Syndrome (ARDS). Adv Exp Med Biol. 2017;967:105-137. doi: 10.1007/978-3-319-63245-2_8. — View Citation
Kempf T, Wollert KC. Risk stratification in critically ill patients: GDF-15 scores in adult respiratory distress syndrome. Crit Care. 2013 Jul 31;17(4):173. doi: 10.1186/cc12765. — View Citation
Kim KS, Suh GJ, Kwon WY, Kwak YH, Lee K, Lee HJ, Jeong KY, Lee MW. Antioxidant effects of selenium on lung injury in paraquat intoxicated rats. Clin Toxicol (Phila). 2012 Sep;50(8):749-53. doi: 10.3109/15563650.2012.708418. — View Citation
Liu J, Yang Y, Zeng X, Bo L, Jiang S, Du X, Xie Y, Jiang R, Zhao J, Song W. Investigation of selenium pretreatment in the attenuation of lung injury in rats induced by fine particulate matters. Environ Sci Pollut Res Int. 2017 Feb;24(4):4008-4017. doi: 10.1007/s11356-016-8173-0. Epub 2016 Dec 5. — View Citation
Ma X, Bi S, Wang Y, Chi X, Hu S. Combined adjuvant effect of ginseng stem-leaf saponins and selenium on immune responses to a live bivalent vaccine of Newcastle disease virus and infectious bronchitis virus in chickens. Poult Sci. 2019 Sep 1;98(9):3548-3556. doi: 10.3382/ps/pez207. — View Citation
Madjid M, Safavi-Naeini P, Solomon SD, Vardeny O. Potential Effects of Coronaviruses on the Cardiovascular System: A Review. JAMA Cardiol. 2020 Jul 1;5(7):831-840. doi: 10.1001/jamacardio.2020.1286. Review. — View Citation
Manzanares W, Biestro A, Galusso F, Torre MH, Mañáy N, Facchin G, Hardy G. High-dose selenium for critically ill patients with systemic inflammation: pharmacokinetics and pharmacodynamics of selenious acid: a pilot study. Nutrition. 2010 Jun;26(6):634-40. doi: 10.1016/j.nut.2009.06.022. Epub 2010 Jan 15. — View Citation
Manzanares W, Langlois PL, Heyland DK. Pharmaconutrition with selenium in critically ill patients: what do we know? Nutr Clin Pract. 2015 Feb;30(1):34-43. doi: 10.1177/0884533614561794. Epub 2014 Dec 18. Review. — View Citation
Marty AM, Jones MK. The novel Coronavirus (SARS-CoV-2) is a one health issue. One Health. 2020 Feb 14;9:100123. doi: 10.1016/j.onehlt.2020.100123. eCollection 2020 Jun. — View Citation
Mehta P, McAuley DF, Brown M, Sanchez E, Tattersall RS, Manson JJ; HLH Across Speciality Collaboration, UK. COVID-19: consider cytokine storm syndromes and immunosuppression. Lancet. 2020 Mar 28;395(10229):1033-1034. doi: 10.1016/S0140-6736(20)30628-0. Epub 2020 Mar 16. — View Citation
Nuttall KL. Evaluating selenium poisoning. Ann Clin Lab Sci. 2006 Autumn;36(4):409-20. Review. — View Citation
Perona G, Schiavon R, Guidi GC, Veneri D, Minuz P. Selenium dependent glutathione peroxidase: a physiological regulatory system for platelet function. Thromb Haemost. 1990 Oct 22;64(2):312-8. — View Citation
Ricetti MM, Guidi GC, Bellisola G, Marrocchella R, Rigo A, Perona G. Selenium enhances glutathione peroxidase activity and prostacyclin release in cultured human endothelial cells. Concurrent effects on mRNA levels. Biol Trace Elem Res. 1994 Oct-Nov;46(1-2):113-23. — View Citation
Rojo de la Vega M, Dodson M, Gross C, Mansour HM, Lantz RC, Chapman E, Wang T, Black SM, Garcia JG, Zhang DD. Role of Nrf2 and Autophagy in Acute Lung Injury. Curr Pharmacol Rep. 2016 Apr;2(2):91-101. Epub 2016 Feb 6. — View Citation
Ronco C, Reis T. Kidney involvement in COVID-19 and rationale for extracorporeal therapies. Nat Rev Nephrol. 2020 Jun;16(6):308-310. doi: 10.1038/s41581-020-0284-7. — View Citation
Ruan Q, Yang K, Wang W, Jiang L, Song J. Clinical predictors of mortality due to COVID-19 based on an analysis of data of 150 patients from Wuhan, China. Intensive Care Med. 2020 May;46(5):846-848. doi: 10.1007/s00134-020-05991-x. Epub 2020 Mar 3. Erratum in: Intensive Care Med. 2020 Apr 6;:. — View Citation
Sakr Y, Reinhart K, Bloos F, Marx G, Russwurm S, Bauer M, Brunkhorst F. Time course and relationship between plasma selenium concentrations, systemic inflammatory response, sepsis, and multiorgan failure. Br J Anaesth. 2007 Jun;98(6):775-84. Epub 2007 May 3. — View Citation
Schmidt T, Pargger H, Seeberger E, Eckhart F, von Felten S, Haberthür C. Effect of high-dose sodium selenite in cardiac surgery patients: A randomized controlled bi-center trial. Clin Nutr. 2018 Aug;37(4):1172-1180. doi: 10.1016/j.clnu.2017.04.019. Epub 2017 May 2. — View Citation
Schrauzer GN, Sacher J. Selenium in the maintenance and therapy of HIV-infected patients. Chem Biol Interact. 1994 Jun;91(2-3):199-205. Review. Erratum in: Chem Biol Interact 1995 Feb;94(2):167. — View Citation
Steinbrenner H, Al-Quraishy S, Dkhil MA, Wunderlich F, Sies H. Dietary selenium in adjuvant therapy of viral and bacterial infections. Adv Nutr. 2015 Jan 15;6(1):73-82. doi: 10.3945/an.114.007575. Print 2015 Jan. Review. — View Citation
Steinbrenner H, Sies H. Protection against reactive oxygen species by selenoproteins. Biochim Biophys Acta. 2009 Nov;1790(11):1478-85. doi: 10.1016/j.bbagen.2009.02.014. Epub 2009 Mar 5. Review. — View Citation
Steinbrenner H, Speckmann B, Klotz LO. Selenoproteins: Antioxidant selenoenzymes and beyond. Arch Biochem Biophys. 2016 Apr 1;595:113-9. doi: 10.1016/j.abb.2015.06.024. Review. — View Citation
Tindell R, Wall SB, Li Q, Li R, Dunigan K, Wood R, Tipple TE. Selenium supplementation of lung epithelial cells enhances nuclear factor E2-related factor 2 (Nrf2) activation following thioredoxin reductase inhibition. Redox Biol. 2018 Oct;19:331-338. doi: 10.1016/j.redox.2018.07.020. Epub 2018 Sep 5. Erratum in: Redox Biol. 2020 Jan;28:100992. — View Citation
Vaninov N. In the eye of the COVID-19 cytokine storm. Nat Rev Immunol. 2020 May;20(5):277. doi: 10.1038/s41577-020-0305-6. — View Citation
Wang JZ, Zhang RY, Bai J. An anti-oxidative therapy for ameliorating cardiac injuries of critically ill COVID-19-infected patients. Int J Cardiol. 2020 Aug 1;312:137-138. doi: 10.1016/j.ijcard.2020.04.009. Epub 2020 Apr 6. — View Citation
Weiss SR, Navas-Martin S. Coronavirus pathogenesis and the emerging pathogen severe acute respiratory syndrome coronavirus. Microbiol Mol Biol Rev. 2005 Dec;69(4):635-64. Review. — View Citation
Wu C, Liu Y, Yang Y, Zhang P, Zhong W, Wang Y, Wang Q, Xu Y, Li M, Li X, Zheng M, Chen L, Li H. Analysis of therapeutic targets for SARS-CoV-2 and discovery of potential drugs by computational methods. Acta Pharm Sin B. 2020 May;10(5):766-788. doi: 10.1016/j.apsb.2020.02.008. Epub 2020 Feb 27. — View Citation
Xu Z, Shi L, Wang Y, Zhang J, Huang L, Zhang C, Liu S, Zhao P, Liu H, Zhu L, Tai Y, Bai C, Gao T, Song J, Xia P, Dong J, Zhao J, Wang FS. Pathological findings of COVID-19 associated with acute respiratory distress syndrome. Lancet Respir Med. 2020 Apr;8(4):420-422. doi: 10.1016/S2213-2600(20)30076-X. Epub 2020 Feb 18. Erratum in: Lancet Respir Med. 2020 Feb 25;:. — View Citation
Zhang C, Lin J, Ge J, Wang LL, Li N, Sun XT, Cao HB, Li JL. Selenium triggers Nrf2-mediated protection against cadmium-induced chicken hepatocyte autophagy and apoptosis. Toxicol In Vitro. 2017 Oct;44:349-356. doi: 10.1016/j.tiv.2017.07.027. Epub 2017 Jul 29. — View Citation
Zhang C, Wu Z, Li JW, Zhao H, Wang GQ. Cytokine release syndrome in severe COVID-19: interleukin-6 receptor antagonist tocilizumab may be the key to reduce mortality. Int J Antimicrob Agents. 2020 May;55(5):105954. doi: 10.1016/j.ijantimicag.2020.105954. Epub 2020 Mar 29. — View Citation
Zhang J, Taylor EW, Bennett K, Saad R, Rayman MP. Association between regional selenium status and reported outcome of COVID-19 cases in China. Am J Clin Nutr. 2020 Jun 1;111(6):1297-1299. doi: 10.1093/ajcn/nqaa095. — View Citation
Zhang Y, Jiang M, Nouraie M, Roth MG, Tabib T, Winters S, Chen X, Sembrat J, Chu Y, Cardenes N, Tuder RM, Herzog EL, Ryu C, Rojas M, Lafyatis R, Gibson KF, McDyer JF, Kass DJ, Alder JK. GDF15 is an epithelial-derived biomarker of idiopathic pulmonary fibrosis. Am J Physiol Lung Cell Mol Physiol. 2019 Oct 1;317(4):L510-L521. doi: 10.1152/ajplung.00062.2019. Epub 2019 Aug 21. — View Citation
Zhang Y, Xiao M, Zhang S, Xia P, Cao W, Jiang W, Chen H, Ding X, Zhao H, Zhang H, Wang C, Zhao J, Sun X, Tian R, Wu W, Wu D, Ma J, Chen Y, Zhang D, Xie J, Yan X, Zhou X, Liu Z, Wang J, Du B, Qin Y, Gao P, Qin X, Xu Y, Zhang W, Li T, Zhang F, Zhao Y, Li Y, Zhang S. Coagulopathy and Antiphospholipid Antibodies in Patients with Covid-19. N Engl J Med. 2020 Apr 23;382(17):e38. doi: 10.1056/NEJMc2007575. Epub 2020 Apr 8. — View Citation
Zhao Y, Yang M, Mao Z, Yuan R, Wang L, Hu X, Zhou F, Kang H. The clinical outcomes of selenium supplementation on critically ill patients: A meta-analysis of randomized controlled trials. Medicine (Baltimore). 2019 May;98(20):e15473. doi: 10.1097/MD.0000000000015473. — View Citation
Zheng YY, Ma YT, Zhang JY, Xie X. COVID-19 and the cardiovascular system. Nat Rev Cardiol. 2020 May;17(5):259-260. doi: 10.1038/s41569-020-0360-5. — View Citation
Zhou X, Wang Z, Chen J, Wang W, Song D, Li S, Yang H, Xue S, Chen C. Increased levels of IL-6, IL-1ß, and TNF-a in Kashin-Beck disease and rats induced by T-2 toxin and selenium deficiency. Rheumatol Int. 2014 Jul;34(7):995-1004. doi: 10.1007/s00296-013-2862-5. Epub 2013 Sep 15. — View Citation
* Note: There are 58 references in all — Click here to view all references
Type | Measure | Description | Time frame | Safety issue |
---|---|---|---|---|
Primary | Mean change in the ordinal scale | The ordinal scale is an assessment of the clinical status at the first assessment of a given study day. The scale is as follows: 1) Death; 2) Hospitalized, on invasive mechanical ventilation; 3) Hospitalized, on non-invasive ventilation or high flow oxygen devices; 4) Hospitalized, requiring supplemental oxygen; 5) Hospitalized, not requiring supplemental oxygen - requiring ongoing medical care (COVID-19 related or otherwise); 6) Hospitalized, not requiring supplemental oxygen - no longer requires ongoing medical care; 7) Not hospitalized, limitation on activities and/or requiring home oxygen; 8) Not hospitalized, no limitations on activities. | Day 1 through Day 29 | |
Primary | Rate of hospital discharges or deaths | Rate of patient discharge to home or other long-term care facilities, or death. | Study duration | |
Secondary | Clinical status using ordinal scale | The ordinal scale is an assessment of the clinical status at the first assessment of a given study day. The scale is as follows: 1) Death; 2) Hospitalized, on invasive mechanical ventilation; 3) Hospitalized, on non-invasive ventilation or high flow oxygen devices; 4) Hospitalized, requiring supplemental oxygen; 5) Hospitalized, not requiring supplemental oxygen - requiring ongoing medical care (COVID-19 related or otherwise); 6) Hospitalized, not requiring supplemental oxygen - no longer requires ongoing medical care; 7) Not hospitalized, limitation on activities and/or requiring home oxygen; 8) Not hospitalized, no limitations on activities. | Day 1 through Day 29 | |
Secondary | Mean change in the ordinal scale | The ordinal scale is an assessment of the clinical status at the first assessment of a given study day. The scale is as follows: 1) Death; 2) Hospitalized, on invasive mechanical ventilation; 3) Hospitalized, on non-invasive ventilation or high flow oxygen devices; 4) Hospitalized, requiring supplemental oxygen; 5) Hospitalized, not requiring supplemental oxygen - requiring ongoing medical care (COVID-19 related or otherwise); 6) Hospitalized, not requiring supplemental oxygen - no longer requires ongoing medical care; 7) Not hospitalized, limitation on activities and/or requiring home oxygen; 8) Not hospitalized, no limitations on activities. | Day 1 though Day 29 | |
Secondary | Time to an improvement of one category using an ordinal scale | The ordinal scale is an assessment of the clinical status at the first assessment of a given study day. The scale is as follows: 1) Death; 2) Hospitalized, on invasive mechanical ventilation; 3) Hospitalized, on non-invasive ventilation or high flow oxygen devices; 4) Hospitalized, requiring supplemental oxygen; 5) Hospitalized, not requiring supplemental oxygen - requiring ongoing medical care (COVID-19 related or otherwise); 6) Hospitalized, not requiring supplemental oxygen - no longer requires ongoing medical care; 7) Not hospitalized, limitation on activities and/or requiring home oxygen; 8) Not hospitalized, no limitations on activities. | Day 1 though Day 29 | |
Secondary | Change in National Early Warning Score (NEWS) from baseline | The NEW score has demonstrated an ability to discriminate patients at risk of poor outcomes. This score is based on 7 clinical parameters (respiration rate, oxygen saturation, any supplemental oxygen, temperature, systolic blood pressure, heart rate, level of consciousness). The NEW Score is being used as an efficacy measure. | Day 1 through Day 29 | |
Secondary | Cumulative incidence of serious adverse events (SAEs) | An SAE is defined as an AE or suspected adverse reaction is considered serious if, in the view of either the investigator, it results in death, a life-threatening AE, inpatient hospitalization or prolongation of existing hospitalization, a persistent or significant incapacity or substantial disruption of the ability to conduct normal life functions. | Day 1 through Day 29 | |
Secondary | Duration of hospitalization | Measured in days. | Day 1 though Day 29 | |
Secondary | Incidence of new oxygen use | Incidence of new oxygen use. | Day 1 though Day 29 | |
Secondary | Duration of new oxygen use | Measured in days. | Day 1 though Day 29 | |
Secondary | Incidence of new non-invasive ventilation or high flow oxygen use | Incidence of new non-invasive ventilation or high flow oxygen use. | Day 1 though Day 29 | |
Secondary | Duration of new non-invasive ventilation or high flow oxygen use | Measured in days. | Day 1 though Day 29 | |
Secondary | Incidence of new ventilator use | Incidence of new ventilator use. | Day 1 though Day 29 | |
Secondary | Duration of new ventilator use | Measured in days. | Day 1 though Day 29 | |
Secondary | Discontinuation or temporary suspension of investigational therapeutics | For any reason. | Day 1 through Day 14 | |
Secondary | Change from baseline in alanine transaminase (ALT) | Change from baseline in alanine transaminase (ALT). | Day 1 through Day 29 | |
Secondary | Change from baseline in aspartate transaminase (AST) | Change from baseline in aspartate transaminase (AST). | Day 1 through Day 29 | |
Secondary | Change from baseline in creatinine (Cr) | Change from baseline in creatinine (Cr). | Day 1 through Day 29 | |
Secondary | Change from baseline in glucose | Change from baseline in glucose. | Day 1 through Day 29 | |
Secondary | Change from baseline in hemoglobin | Change from baseline in hemoglobin. | Day 1 through Day 29 | |
Secondary | Change from baseline in platelets | Change from baseline in platelets. | Day 1 through Day 29 | |
Secondary | Change from baseline in prothrombin time | Change from baseline in prothrombin time. | Day 1 through Day 29 | |
Secondary | Change from baseline in total bilirubin | Change from baseline in total bilirubin. | Day 1 through Day 29 | |
Secondary | Change from baseline in white blood cell count (WBC) with differential | Change from baseline in white blood cell count (WBC) with differential. | Day 1 through Day 29 | |
Secondary | Change from baseline in interleukin-1 (IL-1) | Change from baseline in interleukin-1 (IL-1). | Day 1 through Day 29 | |
Secondary | Change from baseline in interleukin-6 (IL-6) | Change from baseline in interleukin-6 (IL-6). | Day 1 through Day 29 | |
Secondary | Change from baseline in tumor necrosis factor alpha (TNF-a) | Change from baseline in tumor necrosis factor alpha (TNF-a). | Day 1 through Day 29 |
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