Sars-CoV2 Clinical Trial
— CHILL-pilotOfficial title:
Pilot Randomized Clinical Trial of Therapeutic Hypothermia Plus Neuromuscular Blockade vs. Standard of Care in COVID-19 Patients With Moderate to Severe ARDS - the Cooling to Help Injured Lungs (CHILL) Pilot Study
Verified date | April 2021 |
Source | University of Maryland, Baltimore |
Contact | n/a |
Is FDA regulated | No |
Health authority | |
Study type | Interventional |
Acute Respiratory Distress Syndrome (ARDS) is a serious condition that occurs as a complication of medical and surgical diseases, has a mortality of ~40%, and has no known treatment other than optimization of support. Data from basic research, animal models, and retrospective studies, case series, and small prospective studies suggest that therapeutic hypothermia (TH) similar to that used for cardiac arrest may be lung protective in patients with ARDS; however, shivering is a major complication of TH, often requiring paralysis with neuromuscular blocking agents (NMBA) to control. Since the recently completed NHLBI PETAL ROSE trial showed that NMBA had no effect (good or bad) in patients with moderate to severe ARDS, the investigators sought to evaluate whether TH combined with NMBA is beneficial in patients with ARDS. The investigators are scheduled to begin enrolling in a Department of Defense-funded Phase IIb multicenter RCT of TH (core temperature 34-35°C) + NMBA for 48h vs. usual temperature management in patients with ARDS with time on ventilator as the primary outcome. Since COVID-19 is now the most common cause of ARDS, we are conducting a pilot study to examine the safety and feasibility of including patients with COVID-19-associated ARDS in our upcoming trial. In this pilot, we will randomize 20 patients with COVID-19 and ARDS to either TH+NMBA for 48h or usual temperature management. The primary outcome is achieving and maintaining the target temperature. Secondary outcomes include safety, physiologic measures, mortality, hospital and ICU length of stay, and serum biomarkers collected on days 0, 1, 2, 3, 4, and 7.
Status | Withdrawn |
Enrollment | 0 |
Est. completion date | April 27, 2021 |
Est. primary completion date | April 27, 2021 |
Accepts healthy volunteers | No |
Gender | All |
Age group | 18 Years to 65 Years |
Eligibility | Inclusion Criteria for Enrollment 1. COVID-19 diagnosed by PCR within 3 weeks 2. men and women 3. any race/ethnicity 4. 18-65 years of age 5. endotracheal tube or tracheostomy in place and mechanically ventilated for < 7 days; 6. radiologic evidence of bilateral pulmonary infiltrates not fully explained by hydrostatic pulmonary edema 7. access to an LAR to provide consent (remote consent is permissible). Additional inclusion criteria required for randomization: 1. meet all inclusion/exclusion criteria for enrollment 2. have a P/F ratio <200 with PEEP =8 cm H2O either from ABG or imputed from SpO2 as described by Brown et al (Chest 2016; 150:307). Exclusion Criteria: 1. Missed ARDS window (>48hrs) 2. Missed mechanical ventilation window (>7 days) 3. Refractory hypotension (> 0.2 mcg/kg/min of norepinephrine or equivalent dose for minimum of 6 h) 4. Core temperature <35.5°C while not receiving CRRT 5. Patient is unable to give consent and no legally authorized representative is available; 6. Significant, active bleeding (>3u blood products and/or surgical/IR intervention) 7. Platelets <10K/mm3 (uncorrected) 8. Active hematologic malignancy 9. Skin process precludes cooling device 10. Moribund, not likely to survive 72h 11. Pre-morbid condition makes it unlikely that patient will survive 28 days 12. Do Not Resuscitate status 13. Not likely to remain intubated for =48h 14. Physician unwilling to participate 15. Severe underlying lung disease 1. On home O2 2. On BIPAP (except for OSA) 3. Prior lung transplantation 16. BMI >45 kg/m2 17. Known NYHA class IV heart disease 18. Acute Coronary Syndrome past 30 days (MI, unstable angina) 19. Cardiac arrest within 30 days of enrollment 20. burns over >20% of the body surface 21. severe chronic liver disease (Child-Pugh of 12-15) 22. Previously randomized in CHILL study |
Country | Name | City | State |
---|---|---|---|
United States | University of Maryland Medical Center | Baltimore | Maryland |
Lead Sponsor | Collaborator |
---|---|
University of Maryland, Baltimore |
United States,
Acute Respiratory Distress Syndrome Network, Brower RG, Matthay MA, Morris A, Schoenfeld D, Thompson BT, Wheeler A. Ventilation with lower tidal volumes as compared with traditional tidal volumes for acute lung injury and the acute respiratory distress syndrome. N Engl J Med. 2000 May 4;342(18):1301-8. — View Citation
Ball MK, Hillman NH, Kallapur SG, Polglase GR, Jobe AH, Pillow JJ. Body temperature effects on lung injury in ventilated preterm lambs. Resuscitation. 2010 Jun;81(6):749-54. doi: 10.1016/j.resuscitation.2009.12.007. Epub 2010 Mar 17. — View Citation
Beitler JR, Sands SA, Loring SH, Owens RL, Malhotra A, Spragg RG, Matthay MA, Thompson BT, Talmor D. Quantifying unintended exposure to high tidal volumes from breath stacking dyssynchrony in ARDS: the BREATHE criteria. Intensive Care Med. 2016 Sep;42(9):1427-36. doi: 10.1007/s00134-016-4423-3. Epub 2016 Jun 24. — View Citation
Beurskens CJ, Aslami H, Kuipers MT, Horn J, Vroom MB, van Kuilenburg AB, Roelofs JJ, Schultz MJ, Juffermans NP. Induced hypothermia is protective in a rat model of pneumococcal pneumonia associated with increased adenosine triphosphate availability and turnover*. Crit Care Med. 2012 Mar;40(3):919-26. doi: 10.1097/CCM.0b013e3182373174. — View Citation
Brown SM, Grissom CK, Moss M, Rice TW, Schoenfeld D, Hou PC, Thompson BT, Brower RG; NIH/NHLBI PETAL Network Collaborators. Nonlinear Imputation of Pao2/Fio2 From Spo2/Fio2 Among Patients With Acute Respiratory Distress Syndrome. Chest. 2016 Aug;150(2):307-13. doi: 10.1016/j.chest.2016.01.003. Epub 2016 Jan 19. — View Citation
Calfee CS, Eisner MD, Parsons PE, Thompson BT, Conner ER Jr, Matthay MA, Ware LB; NHLBI Acute Respiratory Distress Syndrome Clinical Trials Network. Soluble intercellular adhesion molecule-1 and clinical outcomes in patients with acute lung injury. Intensive Care Med. 2009 Feb;35(2):248-57. doi: 10.1007/s00134-008-1235-0. Epub 2008 Aug 1. Review. — View Citation
Calfee CS, Ware LB, Eisner MD, Parsons PE, Thompson BT, Wickersham N, Matthay MA; NHLBI ARDS Network. Plasma receptor for advanced glycation end products and clinical outcomes in acute lung injury. Thorax. 2008 Dec;63(12):1083-9. doi: 10.1136/thx.2008.095588. Epub 2008 Jun 19. — View Citation
Chang H, Huang KL, Li MH, Hsu CW, Tsai SH, Chu SJ. Manipulations of core temperatures in ischemia-reperfusion lung injury in rabbits. Pulm Pharmacol Ther. 2008;21(2):285-91. Epub 2007 Jun 14. — View Citation
Chin JY, Koh Y, Kim MJ, Kim HS, Kim WS, Kim DS, Kim WD, Lim CM. The effects of hypothermia on endotoxin-primed lung. Anesth Analg. 2007 May;104(5):1171-8, tables of contents. — View Citation
Cruces P, Erranz B, Donoso A, Carvajal C, Salomón T, Torres MF, Díaz F. Mild hypothermia increases pulmonary anti-inflammatory response during protective mechanical ventilation in a piglet model of acute lung injury. Paediatr Anaesth. 2013 Nov;23(11):1069-77. doi: 10.1111/pan.12209. Epub 2013 Jun 3. — View Citation
Ferguson ND, Fan E, Camporota L, Antonelli M, Anzueto A, Beale R, Brochard L, Brower R, Esteban A, Gattinoni L, Rhodes A, Slutsky AS, Vincent JL, Rubenfeld GD, Thompson BT, Ranieri VM. The Berlin definition of ARDS: an expanded rationale, justification, and supplementary material. Intensive Care Med. 2012 Oct;38(10):1573-82. Epub 2012 Aug 25. Erratum in: Intensive Care Med. 2012 Oct;38(10):1731-2. — View Citation
Gattinoni L, Tonetti T, Cressoni M, Cadringher P, Herrmann P, Moerer O, Protti A, Gotti M, Chiurazzi C, Carlesso E, Chiumello D, Quintel M. Ventilator-related causes of lung injury: the mechanical power. Intensive Care Med. 2016 Oct;42(10):1567-1575. doi: 10.1007/s00134-016-4505-2. Epub 2016 Sep 12. — View Citation
Greene KE, Wright JR, Steinberg KP, Ruzinski JT, Caldwell E, Wong WB, Hull W, Whitsett JA, Akino T, Kuroki Y, Nagae H, Hudson LD, Martin TR. Serial changes in surfactant-associated proteins in lung and serum before and after onset of ARDS. Am J Respir Crit Care Med. 1999 Dec;160(6):1843-50. — View Citation
Guérin C, Mancebo J. Prone positioning and neuromuscular blocking agents are part of standard care in severe ARDS patients: yes. Intensive Care Med. 2015 Dec;41(12):2195-7. doi: 10.1007/s00134-015-3918-7. Epub 2015 Sep 23. — View Citation
Guérin C, Reignier J, Richard JC, Beuret P, Gacouin A, Boulain T, Mercier E, Badet M, Mercat A, Baudin O, Clavel M, Chatellier D, Jaber S, Rosselli S, Mancebo J, Sirodot M, Hilbert G, Bengler C, Richecoeur J, Gainnier M, Bayle F, Bourdin G, Leray V, Girard R, Baboi L, Ayzac L; PROSEVA Study Group. Prone positioning in severe acute respiratory distress syndrome. N Engl J Med. 2013 Jun 6;368(23):2159-68. doi: 10.1056/NEJMoa1214103. Epub 2013 May 20. — View Citation
Hasday JD, Garrison A, Singh IS, Standiford T, Ellis GS, Rao S, He JR, Rice P, Frank M, Goldblum SE, Viscardi RM. Febrile-range hyperthermia augments pulmonary neutrophil recruitment and amplifies pulmonary oxygen toxicity. Am J Pathol. 2003 Jun;162(6):2005-17. — View Citation
Huang PS, Tang GJ, Chen CH, Kou YR. Whole-body moderate hypothermia confers protection from wood smoke-induced acute lung injury in rats: the therapeutic window. Crit Care Med. 2006 Apr;34(4):1160-7. — View Citation
Jo YH, Kim K, Rhee JE, Suh GJ, Kwon WY, Na SH, Alam HB. Therapeutic hypothermia attenuates acute lung injury in paraquat intoxication in rats. Resuscitation. 2011 Apr;82(4):487-91. doi: 10.1016/j.resuscitation.2010.11.028. Epub 2011 Jan 14. — View Citation
Karnatovskaia LV, Festic E, Freeman WD, Lee AS. Effect of therapeutic hypothermia on gas exchange and respiratory mechanics: a retrospective cohort study. Ther Hypothermia Temp Manag. 2014 Jun;4(2):88-95. doi: 10.1089/ther.2014.0004. Epub 2014 May 19. — View Citation
Kim K, Kim W, Rhee JE, Jo YH, Lee JH, Kim KS, Kwon WY, Suh GJ, Lee CC, Singer AJ. Induced hypothermia attenuates the acute lung injury in hemorrhagic shock. J Trauma. 2010 Feb;68(2):373-81. doi: 10.1097/TA.0b013e3181a73eea. — View Citation
Kimura D, Saravia J, Rovnaghi CR, Meduri GU, Schwingshackl A, Cormier SA, Anand KJ. Plasma Biomarker Analysis in Pediatric ARDS: Generating Future Framework from a Pilot Randomized Control Trial of Methylprednisolone: A Framework for Identifying Plasma Biomarkers Related to Clinical Outcomes in Pediatric ARDS. Front Pediatr. 2016 Mar 31;4:31. doi: 10.3389/fped.2016.00031. eCollection 2016. — View Citation
Kira S, Daa T, Kashima K, Mori M, Noguchi T, Yokoyama S. Mild hypothermia reduces expression of intercellular adhesion molecule-1 (ICAM-1) and the accumulation of neutrophils after acid-induced lung injury in the rat. Acta Anaesthesiol Scand. 2005 Mar;49(3):351-9. — View Citation
Lim CM, Hong SB, Koh Y, Lee SD, Kim WS, Kim DS, Kim WD. Hypothermia attenuates vascular manifestations of ventilator-induced lung injury in rats. Lung. 2003;181(1):23-34. — View Citation
Lim CM, Kim MS, Ahn JJ, Kim MJ, Kwon Y, Lee I, Koh Y, Kim DS, Kim WD. Hypothermia protects against endotoxin-induced acute lung injury in rats. Intensive Care Med. 2003 Mar;29(3):453-9. Epub 2002 Nov 22. — View Citation
Lipke AB, Matute-Bello G, Herrero R, Kurahashi K, Wong VA, Mongovin SM, Martin TR. Febrile-range hyperthermia augments lipopolysaccharide-induced lung injury by a mechanism of enhanced alveolar epithelial apoptosis. J Immunol. 2010 Apr 1;184(7):3801-13. doi: 10.4049/jimmunol.0903191. Epub 2010 Mar 3. — View Citation
Lipke AB, Matute-Bello G, Herrero R, Wong VA, Mongovin SM, Martin TR. Death receptors mediate the adverse effects of febrile-range hyperthermia on the outcome of lipopolysaccharide-induced lung injury. Am J Physiol Lung Cell Mol Physiol. 2011 Jul;301(1):L60-70. doi: 10.1152/ajplung.00314.2010. Epub 2011 Apr 22. — View Citation
Manthous CA, Hall JB, Olson D, Singh M, Chatila W, Pohlman A, Kushner R, Schmidt GA, Wood LD. Effect of cooling on oxygen consumption in febrile critically ill patients. Am J Respir Crit Care Med. 1995 Jan;151(1):10-4. — View Citation
Nagarsekar A, Tulapurkar ME, Singh IS, Atamas SP, Shah NG, Hasday JD. Hyperthermia promotes and prevents respiratory epithelial apoptosis through distinct mechanisms. Am J Respir Cell Mol Biol. 2012 Dec;47(6):824-33. doi: 10.1165/rcmb.2012-0105OC. Epub 2012 Sep 6. — View Citation
Papazian L, Forel JM, Gacouin A, Penot-Ragon C, Perrin G, Loundou A, Jaber S, Arnal JM, Perez D, Seghboyan JM, Constantin JM, Courant P, Lefrant JY, Guérin C, Prat G, Morange S, Roch A; ACURASYS Study Investigators. Neuromuscular blockers in early acute respiratory distress syndrome. N Engl J Med. 2010 Sep 16;363(12):1107-16. doi: 10.1056/NEJMoa1005372. — View Citation
Peng CK, Huang KL, Wu CP, Li MH, Lin HI, Hsu CW, Tsai SH, Chu SJ. The role of mild hypothermia in air embolism-induced acute lung injury. Anesth Analg. 2010 May 1;110(5):1336-42. doi: 10.1213/ANE.0b013e3181d27e90. — View Citation
Potla R, Singh IS, Atamas SP, Hasday JD. Shifts in temperature within the physiologic range modify strand-specific expression of select human microRNAs. RNA. 2015 Jul;21(7):1261-73. doi: 10.1261/rna.049122.114. Epub 2015 May 27. — View Citation
Rice P, Martin E, He JR, Frank M, DeTolla L, Hester L, O'Neill T, Manka C, Benjamin I, Nagarsekar A, Singh I, Hasday JD. Febrile-range hyperthermia augments neutrophil accumulation and enhances lung injury in experimental gram-negative bacterial pneumonia. J Immunol. 2005 Mar 15;174(6):3676-85. — View Citation
Shah NG, Cowan MJ, Pickering E, Sareh H, Afshar M, Fox D, Marron J, Davis J, Herold K, Shanholtz CB, Hasday JD. Nonpharmacologic approach to minimizing shivering during surface cooling: a proof of principle study. J Crit Care. 2012 Dec;27(6):746.e1-8. doi: 10.1016/j.jcrc.2012.04.016. Epub 2012 Jul 2. — View Citation
Shah NG, Tulapurkar ME, Damarla M, Singh IS, Goldblum SE, Shapiro P, Hasday JD. Febrile-range hyperthermia augments reversible TNF-a-induced hyperpermeability in human microvascular lung endothelial cells. Int J Hyperthermia. 2012;28(7):627-35. doi: 10.3109/02656736.2012.690547. Epub 2012 Jul 26. — View Citation
Slack DF, Corwin DS, Shah NG, Shanholtz CB, Verceles AC, Netzer G, Jones KM, Brown CH, Terrin ML, Hasday JD. Pilot Feasibility Study of Therapeutic Hypothermia for Moderate to Severe Acute Respiratory Distress Syndrome. Crit Care Med. 2017 Jul;45(7):1152-1159. doi: 10.1097/CCM.0000000000002338. — View Citation
Tang ZH, Hu JT, Lu ZC, Ji XF, Chen XF, Jiang LY, Zhang C, Jiang JS, Pang YP, Li CQ. Effect of mild hypothermia on the expression of toll-like receptor 2 in lung tissues with experimental acute lung injury. Heart Lung Circ. 2014 Dec;23(12):1202-7. doi: 10.1016/j.hlc.2014.05.016. Epub 2014 Jun 24. — View Citation
Tulapurkar ME, Almutairy EA, Shah NG, He JR, Puche AC, Shapiro P, Singh IS, Hasday JD. Febrile-range hyperthermia modifies endothelial and neutrophilic functions to promote extravasation. Am J Respir Cell Mol Biol. 2012 Jun;46(6):807-14. doi: 10.1165/rcmb.2011-0378OC. Epub 2012 Jan 26. — View Citation
Villar J, Blanco J, Kacmarek RM. Current incidence and outcome of the acute respiratory distress syndrome. Curr Opin Crit Care. 2016 Feb;22(1):1-6. doi: 10.1097/MCC.0000000000000266. Review. — View Citation
Villar J, Slutsky AS. Effects of induced hypothermia in patients with septic adult respiratory distress syndrome. Resuscitation. 1993 Oct;26(2):183-92. — View Citation
* Note: There are 39 references in all — Click here to view all references
Type | Measure | Description | Time frame | Safety issue |
---|---|---|---|---|
Primary | Targeted temperature compliance | The total time in hours from beginning of cooling to beginning of rewarming during which the patient's core temperature was within the target range of 34-35°C. | Randomization through day 3 | |
Secondary | Adverse event | Adverse events expected during cooling, including hemorrhage, bradycardia, and hypotension. | Randomization through study day 3 | |
Secondary | 28-day ICU-free days | Total number of days alive and not admitted to the ICU in the first 28 days after | Calculated at study day 28 or death (whichever occurs first) | |
Secondary | Survival | 28-day, 60-day, and 90-day mortality | calculated at 28, 60, and 90 days | |
Secondary | non neurologic Sequential Organ Failure (SOFA) scores | SOFA score excluding neurologic component - based on PaO2/FiO2 (0-4), BP and pressor requirement (0-4), bilirubin level (0-4), platelet count (0-4), and creatinine (0-14) with total composite score 0-20 | At enrollment and study days 1, 2, 3, 4, 7, and 28 | |
Secondary | Oxygen saturation (SpO2) | Pulse ox reading | Measured at enrollment, every 4 hours on enrollment day, then once on day 2, 3, 4, 7 and 28 | |
Secondary | Plateau airway pressure | On machine initiated breath | Measured at enrollment, every 4 hours on enrollment day, then once on day 2, 3, 4, and 7 or until extubation whichever occurs first | |
Secondary | Mean airway pressure | Direct ventilator measurement on machine initiated breath | Measured at enrollment, every 4 hours on enrollment day, then once on day 2, 3, 4, and 7 or until extubation whichever occurs first | |
Secondary | Airway driving pressure | Plateau pressure - PEEP (machine initiated breath) | Measured at enrollment, every 4 hours on enrollment day, then once on day 2, 3, 4, and 7 or until extubation whichever occurs first | |
Secondary | Oxygen saturation index | Mean airway pressure x 100 x FiO2/SpO2 | Measured at enrollment, every 4 hours on enrollment day, then once on day 2, 3, 4, and 7 or until extubation whichever occurs first | |
Secondary | Core temperature | Measured continuously from iv catheter, urinary catheter, or esophageal probe. | Measured continuously and recorded at enrollment, every 2 hours on the day of enrollment, and mornings on study day 2, 3, 4, and 7 | |
Secondary | Urine output | 24 hour urine volume | Daily on study day 1, 2, 3, 4, and 7 | |
Secondary | comprehensive metabolic panel | performed in clinical lab | Daily on study day 1, 2, 3, 4, and 7 | |
Secondary | Complete blood count with differential count and platelet count | preformed in clinical lab | Daily on study day 1, 2, 3, 4, and 7 | |
Secondary | Biomarkers | 10 ml blood draw | Daily on study day 1, 2, 3, 4, and 7 | |
Secondary | Serum electrolytes | performed in clinical lab | Every 8 hours until study hour 60 | |
Secondary | Blood glucose | Beside blood glucose testing | Every 4 hours until study hour 60 | |
Secondary | 28-day ventilator-free days | Total number of days alive and not on a ventilator in the first 28 days after enrollment | Calculated at study day 28 or death (whichever occurs first) |
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