In December 2019, the Municipal Health Committee of Wuhan, China, identified an outbreak of viral pneumonia of unknown cause. This new coronavirus was called SARS-CoV-2 and the disease caused by that virus, COVID-19. Recent numbers show that 222,643 infections have been diagnosed with 9115 deaths, worldwide. Currently, there are no approved therapeutic agents available for coronaviruses. In this scenario, the situation of a global public health emergency and evidence about the potential positive effect of chloroquine (CQ) in most coronaviruses, including SARS-CoV-1, and recent data on small trials on SARS-CoV-2, the investigators intend to investigate the efficacy and the safety of CQ diphosphate in the treatment of hospitalized patients with severe acute respiratory syndrome in the scenario of SARS-CoV2. Preliminary in vitro studies and uncontrolled trials with low number of patients of CQ repositioning in the treatment of COVID-19 have been encouraging. The main hypothesis is that CQ diphosphate will reduce mortality in 50% in those with severe acute respiratory syndrome infected by the SARS-COV2. Therefore, the main objective is to assess whether the use of chloroquine diphosphate reduces mortality by 50% in the study population. The primary outcome is mortality in day 28 of follow-up. According to local contingency plan, developed by local government for COVID-19 in the State of Amazonas, the Hospital Pronto-Socorro Delphina Aziz, located in Manaus, is the reference unit for the admission of serious cases of the new virus. The unit currently has 50 ICU beds, with the possibility of expanding to 335 beds, if needed. The hospital also has trained multiprofessional human resources and adequate infrastructure. In total, 440 participants (220 per arm) will receive either high dose chloroquine 600 mg bid regime (4x150 mg tablets, every 12 hours, D1-D10) or low dose chloroquine 450mg bid regime (3x150mg tablets + 1 placebo tablet every 12 hours on D1, 3x150mg tablets + 1 placebo followed by 4 placebo tablets 12h later from D2 to D5, and 4 placebo tablets every 12 hours, D6-D10). Placebo tablets were used to standardize treatment duration and blind research team and patients. All drugs administered orally (or via nasogastric tube in case of orotracheal intubation). Both intervention and placebo drugs will be produced by Farmanguinhos. Clinical and laboratory data during hospitalization will be used to assess efficacy and safety outcomes.
Study Type
INTERVENTIONAL
Allocation
RANDOMIZED
Purpose
TREATMENT
Masking
QUADRUPLE
Enrollment
278
150mg chloroquine diphosphate tablets. Note: Tablets used in the study were Chloroquine Diphosphate (produced by Farmanguinhos/Fiocruz), and the dosing stated in the clinicaltrials.gov refers to chloroquine base (in mg).
Hospital e Pronto Socorro Delphina Rinaldi Abdel Aziz
Manaus, Amazonas, Brazil
Mortality rate reduction of 50% by day 28
proportion of deaths at day 28 between groups compared
Time frame: 28 days after randomization
Absolute mortality on days 7 and 14
number of deaths at days 7 and 14 between groups compared
Time frame: 7 and 14 days after first dose
Improvement in overall subject's clinical status assessed in standardized clinical questionnaires on days 14 and 28
clinical status
Time frame: 14 and 28 days after first dose
Improvement in daily clinical status assessed in standardized clinical questionnaires during hospitalization
clinical status
Time frame: during and after intervention, up to 28 days
Duration of supplemental oxygen (if applicable)
supplemental oxygen
Time frame: during and after intervention, up to 28 days
Duration of mechanical ventilation (if applicable)
mechanical ventilation
Time frame: during and after intervention, up to 28 days
Absolute duration of hospital stay in days
hospitalization
Time frame: during and after intervention, up to 28 days
Prevalence of grade 3 and 4 adverse events
adverse events grade 3 and 4
Time frame: during and after intervention, up to 28 days
Prevalence of serious adverse events
adverse events
Time frame: during and after intervention, up to 28 days
Change in serum creatinine level
increase or decrease in serum creatinine compared to baseline
Time frame: during and after intervention, up to 28 days
Change in serum troponin I level
increase or decrease in serum troponin I compared to baseline
Time frame: during and after intervention, up to 28 days
Change in serum aspartate aminotransferase level
increase or decrease in serum aspartate aminotransferase compared to baseline
Time frame: during and after intervention, up to 28 days
Change in serum CK-MB level
increase or decrease in serum aspartate aminotransferase compared to baseline
Time frame: during and after intervention, up to 28 days
Change in detectable viral load in respiratory tract swabs
virus clearance from respiratory tract secretion
Time frame: during and after intervention, up to 28 days
Viral concentration in blood samples
viremia in blood detected through RT-PCR
Time frame: during and after intervention, up to 28 days
Absolute number of causes leading to participant death (if applicable)
death
Time frame: during and after intervention, up to 28 days
This platform is for informational purposes only and does not constitute medical advice. Always consult a qualified healthcare professional.