Characteristics and outcomes of acute respiratory distress syndrome related to COVID-19 in Belgian and French intensive care units according to antiviral strategies: the COVADIS multicentre observational study.

Acute kidney injury Hydroxychloroquine Lopinavir Remdesivir Renal replacement therapy Ritonavir

Journal

Annals of intensive care
ISSN: 2110-5820
Titre abrégé: Ann Intensive Care
Pays: Germany
ID NLM: 101562873

Informations de publication

Date de publication:
06 Oct 2020
Historique:
received: 09 06 2020
accepted: 24 09 2020
entrez: 7 10 2020
pubmed: 8 10 2020
medline: 8 10 2020
Statut: epublish

Résumé

Limited data are available regarding antiviral therapy efficacy in most severe patients under mechanical ventilation for Covid-19-related acute respiratory distress syndrome (ARDS). Comparison of antiviral strategies (none, hydroxychloroquine (OHQ), lopinavir/ritonavir (L/R), others (combination or remdesivir) in an observational multicentre cohort of patients with moderate-to-severe Covid-19 ARDS. The primary endpoint was the number of day 28 ventilator-free days (VFD). Patients who died before d28 were considered as having 0 VFD. The variable was dichotomized into "patients still ventilated or dead at day 28" versus "patients weaned and alive at day 28". We analyzed 415 patients (85 treated with standard of care (SOC), 57 with L/R, 220 with OHQ, and 53 others). The median number of d28-VFD was 0 (IQR 0-13) and differed between groups (P = 0.03), SOC patients having the highest d28-VFD. After adjustment for age, sex, Charlson Comorbidity Index, PaO In this multicentre observational study of moderate-to-severe Covid-19 ARDS patients, we did not observe any benefit among patients treated with OHQ or L/R compared with SOC. The use of L/R treatment was associated with an increased need for RRT. Take home message Neither hydroxychloroquine nor lopinavir/ritonavir as COVID-19 antiviral treatment is associated with higher ventilator-free days at day 28 when compared with standard of care (no antiviral treatment) in ICU patients under invasive mechanical ventilation. Lopinavir/ritonavir is associated with an increased risk of renal replacement therapy requirement. Tweet COVID-19: Insights from ARDS cohort: no signal of efficacy of any antiviral drugs. Lopinavir/ritonavir may be associated with need for RRT.

Sections du résumé

BACKGROUND BACKGROUND
Limited data are available regarding antiviral therapy efficacy in most severe patients under mechanical ventilation for Covid-19-related acute respiratory distress syndrome (ARDS).
METHODS METHODS
Comparison of antiviral strategies (none, hydroxychloroquine (OHQ), lopinavir/ritonavir (L/R), others (combination or remdesivir) in an observational multicentre cohort of patients with moderate-to-severe Covid-19 ARDS. The primary endpoint was the number of day 28 ventilator-free days (VFD). Patients who died before d28 were considered as having 0 VFD. The variable was dichotomized into "patients still ventilated or dead at day 28" versus "patients weaned and alive at day 28".
RESULTS RESULTS
We analyzed 415 patients (85 treated with standard of care (SOC), 57 with L/R, 220 with OHQ, and 53 others). The median number of d28-VFD was 0 (IQR 0-13) and differed between groups (P = 0.03), SOC patients having the highest d28-VFD. After adjustment for age, sex, Charlson Comorbidity Index, PaO
CONCLUSION CONCLUSIONS
In this multicentre observational study of moderate-to-severe Covid-19 ARDS patients, we did not observe any benefit among patients treated with OHQ or L/R compared with SOC. The use of L/R treatment was associated with an increased need for RRT. Take home message Neither hydroxychloroquine nor lopinavir/ritonavir as COVID-19 antiviral treatment is associated with higher ventilator-free days at day 28 when compared with standard of care (no antiviral treatment) in ICU patients under invasive mechanical ventilation. Lopinavir/ritonavir is associated with an increased risk of renal replacement therapy requirement. Tweet COVID-19: Insights from ARDS cohort: no signal of efficacy of any antiviral drugs. Lopinavir/ritonavir may be associated with need for RRT.

Identifiants

pubmed: 33025225
doi: 10.1186/s13613-020-00751-y
pii: 10.1186/s13613-020-00751-y
pmc: PMC7537971
doi:

Types de publication

Journal Article

Langues

eng

Pagination

131

Investigateurs

Patrick Biston (P)
Gwenhael Colin (G)
Oriane de Maere (O)
Nathan Ebstein (N)
Stephan Ehrmann (S)
Frederic Foret (F)
Lionel Haentjens (L)
Thibault Helbert (T)
Jean-Baptiste Mesland (JB)
Celine Monard (C)
Nicolas Mongardon (N)
Gregoire Ottavy (G)
Thomas Pasau (T)
Gael Piton (G)
Ester Ponzetto (E)
Caroline Sejourne (C)
Morgane Snacken (M)
Xavier Souloy (X)
Aude Sylvestre (A)
Nicolas Tartrat (N)
Cedric Vanbrussel (C)

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Auteurs

David Grimaldi (D)

Soins IntensifsHôpital Erasme, ULB, Route de Lennik 808, 1070, Bruxelles, Belgium. david.grimaldi@erasme.ulb.ac.be.

Nadia Aissaoui (N)

Medecine Intensive Reanimation, Hôpital Européen Georges Pompidou, Paris centre U 970 PARCC, Paris, France.

Gauthier Blonz (G)

District Hospital Center, Boulevard Stephane Moreau, Medecine Intensive Reanimation, 85000, La Roche Sur Yon, France.

Giuseppe Carbutti (G)

Unité de Soins Intensifs, CHR Mons-Hainaut, Mons, Belgium.

Romain Courcelle (R)

Unité de Soins Intensifs, Centres Hospitaliers de Jolimont, La Louvière, Belgium.

Stephane Gaudry (S)

Réanimation médico-Chirurgicale CHU Avicennes, Université Sorbonne Paris Nord, Bobigny, France.

Aurelie Gaultier (A)

Plateforme de Méthodologie Et Biostatistique, CHU Nantes, 1 Places Alexis Ricordeau, 44093, Nantes Cedex 9, France.

Alain D'hondt (A)

Unité de Soins Intensifs, CHU Ambroise Paré, Mons, Belgium.

Julien Higny (J)

Unité de Soins Intensifs, CHU Dinant Godinne, site Dinant, Dinant, Belgium.

Geoffrey Horlait (G)

Unité de Soins Intensifs, CHU Dinant Godinne, site Godinne, Godinne, Belgium.

Sami Hraiech (S)

Médecine Intensive Réanimation, Assistance Publique - Hôpitaux de Marseille, Hôpital Nord, 13015, Marseille, France.
Centre D'Etudes Et de Recherches Sur Les Services de Santé Et qualité de Vie EA 3279, Aix- Faculté de médecine, Marseille Université, 13005, Marseille, France.

Laurent Lefebvre (L)

Réanimation Polyvalente Centre Hospitalier du Pays D'Aix, Aix en Provence, France.

Francois Lejeune (F)

Unité de Soins Intensifs, Clinique Notre Dame de Grâce, Gosselies, Belgium.

Andre Ly (A)

Service d'anesthésie-réanimation chirurgicale Unité de réanimation chirurgicale polyvalente, Hôpitaux Universitaires Henri Mondor, Créteil, France.

Michael Piagnerelli (M)

Intensive Care. CHU-Charleroi, Marie Curie, Université Libre de Bruxelles, 140, chaussée de Bruxelles, 6042, Charleroi, Belgium.

Bertrand Sauneuf (B)

Réanimation - Médecine Intensive, Centre Hospitalier Public du Cotentin, BP208, 50102, Cherbourg-en-Cotentin, France.

Nicolas Serck (N)

Unité de soins intensifs, Clinique Saint Pierre, Ottignies, Belgium.

Thibaud Soumagne (T)

Médecine Intensive Réanimation, CHU Besançon, 3 Boulevard FLEMING, 25030, Besançon, France.

Piotr Szychowiak (P)

Médecine Intensive Réanimation, CHRU Tours, Tours, France.
INSERM CIC 1415, CHRU Tours, Tours, France.
CRICS-TriggerSEP research network, Tours, France.

Julien Textoris (J)

Service de réanimation, Hospices Civils de Lyon, 5 Place D'Arsonval, Lyon, France.
Laboratoire Commun de Recherche bioMérieux-Hospices Civils de Lyon-Université de Lyon 1, EA7426 PI3, Lyon, France.

Benoit Vandenbunder (B)

Groupe des anesthésistes réanimateurs, Hôpital Privé d'Antony, Antony, France.

Christophe Vinsonneau (C)

Service de Médecine Intensive Réanimation Unité de Sevrage Ventilatoire et Réhabilitation Centre Hospitalier de BETHUNE, 27 Rue Delbecque, 62660, Beuvry, France.

Jean- Baptiste Lascarrou (JB)

CRICS-TriggerSEP research network, Tours, France.
Medecine Intensive Reanimation, CHU Nantes, 30 Boulevard Jean Monnet, 44093, Nantes Cedex 9, France.

Classifications MeSH