Efficacy and safety of COVID-19 vaccines.


Journal

The Cochrane database of systematic reviews
ISSN: 1469-493X
Titre abrégé: Cochrane Database Syst Rev
Pays: England
ID NLM: 100909747

Informations de publication

Date de publication:
07 12 2022
Historique:
entrez: 6 12 2022
pubmed: 7 12 2022
medline: 15 12 2022
Statut: epublish

Résumé

Different forms of vaccines have been developed to prevent the SARS-CoV-2 virus and subsequent COVID-19 disease. Several are in widespread use globally.  OBJECTIVES: To assess the efficacy and safety of COVID-19 vaccines (as a full primary vaccination series or a booster dose) against SARS-CoV-2. We searched the Cochrane COVID-19 Study Register and the COVID-19 L·OVE platform (last search date 5 November 2021). We also searched the WHO International Clinical Trials Registry Platform, regulatory agency websites, and Retraction Watch. We included randomized controlled trials (RCTs) comparing COVID-19 vaccines to placebo, no vaccine, other active vaccines, or other vaccine schedules. We used standard Cochrane methods. We used GRADE to assess the certainty of evidence for all except immunogenicity outcomes.  We synthesized data for each vaccine separately and presented summary effect estimates with 95% confidence intervals (CIs).  MAIN RESULTS: We included and analyzed 41 RCTs assessing 12 different vaccines, including homologous and heterologous vaccine schedules and the effect of booster doses. Thirty-two RCTs were multicentre and five were multinational. The sample sizes of RCTs were 60 to 44,325 participants. Participants were aged: 18 years or older in 36 RCTs; 12 years or older in one RCT; 12 to 17 years in two RCTs; and three to 17 years in two RCTs. Twenty-nine RCTs provided results for individuals aged over 60 years, and three RCTs included immunocompromized patients. No trials included pregnant women. Sixteen RCTs had two-month follow-up or less, 20 RCTs had two to six months, and five RCTs had greater than six to 12 months or less. Eighteen reports were based on preplanned interim analyses. Overall risk of bias was low for all outcomes in eight RCTs, while 33 had concerns for at least one outcome. We identified 343 registered RCTs with results not yet available.  This abstract reports results for the critical outcomes of confirmed symptomatic COVID-19, severe and critical COVID-19, and serious adverse events only for the 10 WHO-approved vaccines. For remaining outcomes and vaccines, see main text. The evidence for mortality was generally sparse and of low or very low certainty for all WHO-approved vaccines, except AD26.COV2.S (Janssen), which probably reduces the risk of all-cause mortality (risk ratio (RR) 0.25, 95% CI 0.09 to 0.67; 1 RCT, 43,783 participants; high-certainty evidence). Confirmed symptomatic COVID-19 High-certainty evidence found that BNT162b2 (BioNtech/Fosun Pharma/Pfizer), mRNA-1273 (ModernaTx), ChAdOx1 (Oxford/AstraZeneca), Ad26.COV2.S, BBIBP-CorV (Sinopharm-Beijing), and BBV152 (Bharat Biotect) reduce the incidence of symptomatic COVID-19 compared to placebo (vaccine efficacy (VE): BNT162b2: 97.84%, 95% CI 44.25% to 99.92%; 2 RCTs, 44,077 participants; mRNA-1273: 93.20%, 95% CI 91.06% to 94.83%; 2 RCTs, 31,632 participants; ChAdOx1: 70.23%, 95% CI 62.10% to 76.62%; 2 RCTs, 43,390 participants; Ad26.COV2.S: 66.90%, 95% CI 59.10% to 73.40%; 1 RCT, 39,058 participants; BBIBP-CorV: 78.10%, 95% CI 64.80% to 86.30%; 1 RCT, 25,463 participants; BBV152: 77.80%, 95% CI 65.20% to 86.40%; 1 RCT, 16,973 participants). Moderate-certainty evidence found that NVX-CoV2373 (Novavax) probably reduces the incidence of symptomatic COVID-19 compared to placebo (VE 82.91%, 95% CI 50.49% to 94.10%; 3 RCTs, 42,175 participants). There is low-certainty evidence for CoronaVac (Sinovac) for this outcome (VE 69.81%, 95% CI 12.27% to 89.61%; 2 RCTs, 19,852 participants). Severe or critical COVID-19 High-certainty evidence found that BNT162b2, mRNA-1273, Ad26.COV2.S, and BBV152 result in a large reduction in incidence of severe or critical disease due to COVID-19 compared to placebo (VE: BNT162b2: 95.70%, 95% CI 73.90% to 99.90%; 1 RCT, 46,077 participants; mRNA-1273: 98.20%, 95% CI 92.80% to 99.60%; 1 RCT, 28,451 participants; AD26.COV2.S: 76.30%, 95% CI 57.90% to 87.50%; 1 RCT, 39,058 participants; BBV152: 93.40%, 95% CI 57.10% to 99.80%; 1 RCT, 16,976 participants). Moderate-certainty evidence found that NVX-CoV2373 probably reduces the incidence of severe or critical COVID-19 (VE 100.00%, 95% CI 86.99% to 100.00%; 1 RCT, 25,452 participants). Two trials reported high efficacy of CoronaVac for severe or critical disease with wide CIs, but these results could not be pooled. Serious adverse events (SAEs) mRNA-1273, ChAdOx1 (Oxford-AstraZeneca)/SII-ChAdOx1 (Serum Institute of India), Ad26.COV2.S, and BBV152 probably result in little or no difference in SAEs compared to placebo (RR: mRNA-1273: 0.92, 95% CI 0.78 to 1.08; 2 RCTs, 34,072 participants; ChAdOx1/SII-ChAdOx1: 0.88, 95% CI 0.72 to 1.07; 7 RCTs, 58,182 participants; Ad26.COV2.S: 0.92, 95% CI 0.69 to 1.22; 1 RCT, 43,783 participants); BBV152: 0.65, 95% CI 0.43 to 0.97; 1 RCT, 25,928 participants). In each of these, the likely absolute difference in effects was fewer than 5/1000 participants. Evidence for SAEs is uncertain for BNT162b2, CoronaVac, BBIBP-CorV, and NVX-CoV2373 compared to placebo (RR: BNT162b2: 1.30, 95% CI 0.55 to 3.07; 2 RCTs, 46,107 participants; CoronaVac: 0.97, 95% CI 0.62 to 1.51; 4 RCTs, 23,139 participants; BBIBP-CorV: 0.76, 95% CI 0.54 to 1.06; 1 RCT, 26,924 participants; NVX-CoV2373: 0.92, 95% CI 0.74 to 1.14; 4 RCTs, 38,802 participants). For the evaluation of heterologous schedules, booster doses, and efficacy against variants of concern, see main text of review. Compared to placebo, most vaccines reduce, or likely reduce, the proportion of participants with confirmed symptomatic COVID-19, and for some, there is high-certainty evidence that they reduce severe or critical disease. There is probably little or no difference between most vaccines and placebo for serious adverse events. Over 300 registered RCTs are evaluating the efficacy of COVID-19 vaccines, and this review is updated regularly on the COVID-NMA platform (covid-nma.com). Implications for practice Due to the trial exclusions, these results cannot be generalized to pregnant women, individuals with a history of SARS-CoV-2 infection, or immunocompromized people. Most trials had a short follow-up and were conducted before the emergence of variants of concern. Implications for research Future research should evaluate the long-term effect of vaccines, compare different vaccines and vaccine schedules, assess vaccine efficacy and safety in specific populations, and include outcomes such as preventing long COVID-19. Ongoing evaluation of vaccine efficacy and effectiveness against emerging variants of concern is also vital.

Sections du résumé

BACKGROUND
Different forms of vaccines have been developed to prevent the SARS-CoV-2 virus and subsequent COVID-19 disease. Several are in widespread use globally.  OBJECTIVES: To assess the efficacy and safety of COVID-19 vaccines (as a full primary vaccination series or a booster dose) against SARS-CoV-2.
SEARCH METHODS
We searched the Cochrane COVID-19 Study Register and the COVID-19 L·OVE platform (last search date 5 November 2021). We also searched the WHO International Clinical Trials Registry Platform, regulatory agency websites, and Retraction Watch.
SELECTION CRITERIA
We included randomized controlled trials (RCTs) comparing COVID-19 vaccines to placebo, no vaccine, other active vaccines, or other vaccine schedules.
DATA COLLECTION AND ANALYSIS
We used standard Cochrane methods. We used GRADE to assess the certainty of evidence for all except immunogenicity outcomes.  We synthesized data for each vaccine separately and presented summary effect estimates with 95% confidence intervals (CIs).  MAIN RESULTS: We included and analyzed 41 RCTs assessing 12 different vaccines, including homologous and heterologous vaccine schedules and the effect of booster doses. Thirty-two RCTs were multicentre and five were multinational. The sample sizes of RCTs were 60 to 44,325 participants. Participants were aged: 18 years or older in 36 RCTs; 12 years or older in one RCT; 12 to 17 years in two RCTs; and three to 17 years in two RCTs. Twenty-nine RCTs provided results for individuals aged over 60 years, and three RCTs included immunocompromized patients. No trials included pregnant women. Sixteen RCTs had two-month follow-up or less, 20 RCTs had two to six months, and five RCTs had greater than six to 12 months or less. Eighteen reports were based on preplanned interim analyses. Overall risk of bias was low for all outcomes in eight RCTs, while 33 had concerns for at least one outcome. We identified 343 registered RCTs with results not yet available.  This abstract reports results for the critical outcomes of confirmed symptomatic COVID-19, severe and critical COVID-19, and serious adverse events only for the 10 WHO-approved vaccines. For remaining outcomes and vaccines, see main text. The evidence for mortality was generally sparse and of low or very low certainty for all WHO-approved vaccines, except AD26.COV2.S (Janssen), which probably reduces the risk of all-cause mortality (risk ratio (RR) 0.25, 95% CI 0.09 to 0.67; 1 RCT, 43,783 participants; high-certainty evidence). Confirmed symptomatic COVID-19 High-certainty evidence found that BNT162b2 (BioNtech/Fosun Pharma/Pfizer), mRNA-1273 (ModernaTx), ChAdOx1 (Oxford/AstraZeneca), Ad26.COV2.S, BBIBP-CorV (Sinopharm-Beijing), and BBV152 (Bharat Biotect) reduce the incidence of symptomatic COVID-19 compared to placebo (vaccine efficacy (VE): BNT162b2: 97.84%, 95% CI 44.25% to 99.92%; 2 RCTs, 44,077 participants; mRNA-1273: 93.20%, 95% CI 91.06% to 94.83%; 2 RCTs, 31,632 participants; ChAdOx1: 70.23%, 95% CI 62.10% to 76.62%; 2 RCTs, 43,390 participants; Ad26.COV2.S: 66.90%, 95% CI 59.10% to 73.40%; 1 RCT, 39,058 participants; BBIBP-CorV: 78.10%, 95% CI 64.80% to 86.30%; 1 RCT, 25,463 participants; BBV152: 77.80%, 95% CI 65.20% to 86.40%; 1 RCT, 16,973 participants). Moderate-certainty evidence found that NVX-CoV2373 (Novavax) probably reduces the incidence of symptomatic COVID-19 compared to placebo (VE 82.91%, 95% CI 50.49% to 94.10%; 3 RCTs, 42,175 participants). There is low-certainty evidence for CoronaVac (Sinovac) for this outcome (VE 69.81%, 95% CI 12.27% to 89.61%; 2 RCTs, 19,852 participants). Severe or critical COVID-19 High-certainty evidence found that BNT162b2, mRNA-1273, Ad26.COV2.S, and BBV152 result in a large reduction in incidence of severe or critical disease due to COVID-19 compared to placebo (VE: BNT162b2: 95.70%, 95% CI 73.90% to 99.90%; 1 RCT, 46,077 participants; mRNA-1273: 98.20%, 95% CI 92.80% to 99.60%; 1 RCT, 28,451 participants; AD26.COV2.S: 76.30%, 95% CI 57.90% to 87.50%; 1 RCT, 39,058 participants; BBV152: 93.40%, 95% CI 57.10% to 99.80%; 1 RCT, 16,976 participants). Moderate-certainty evidence found that NVX-CoV2373 probably reduces the incidence of severe or critical COVID-19 (VE 100.00%, 95% CI 86.99% to 100.00%; 1 RCT, 25,452 participants). Two trials reported high efficacy of CoronaVac for severe or critical disease with wide CIs, but these results could not be pooled. Serious adverse events (SAEs) mRNA-1273, ChAdOx1 (Oxford-AstraZeneca)/SII-ChAdOx1 (Serum Institute of India), Ad26.COV2.S, and BBV152 probably result in little or no difference in SAEs compared to placebo (RR: mRNA-1273: 0.92, 95% CI 0.78 to 1.08; 2 RCTs, 34,072 participants; ChAdOx1/SII-ChAdOx1: 0.88, 95% CI 0.72 to 1.07; 7 RCTs, 58,182 participants; Ad26.COV2.S: 0.92, 95% CI 0.69 to 1.22; 1 RCT, 43,783 participants); BBV152: 0.65, 95% CI 0.43 to 0.97; 1 RCT, 25,928 participants). In each of these, the likely absolute difference in effects was fewer than 5/1000 participants. Evidence for SAEs is uncertain for BNT162b2, CoronaVac, BBIBP-CorV, and NVX-CoV2373 compared to placebo (RR: BNT162b2: 1.30, 95% CI 0.55 to 3.07; 2 RCTs, 46,107 participants; CoronaVac: 0.97, 95% CI 0.62 to 1.51; 4 RCTs, 23,139 participants; BBIBP-CorV: 0.76, 95% CI 0.54 to 1.06; 1 RCT, 26,924 participants; NVX-CoV2373: 0.92, 95% CI 0.74 to 1.14; 4 RCTs, 38,802 participants). For the evaluation of heterologous schedules, booster doses, and efficacy against variants of concern, see main text of review.
AUTHORS' CONCLUSIONS
Compared to placebo, most vaccines reduce, or likely reduce, the proportion of participants with confirmed symptomatic COVID-19, and for some, there is high-certainty evidence that they reduce severe or critical disease. There is probably little or no difference between most vaccines and placebo for serious adverse events. Over 300 registered RCTs are evaluating the efficacy of COVID-19 vaccines, and this review is updated regularly on the COVID-NMA platform (covid-nma.com). Implications for practice Due to the trial exclusions, these results cannot be generalized to pregnant women, individuals with a history of SARS-CoV-2 infection, or immunocompromized people. Most trials had a short follow-up and were conducted before the emergence of variants of concern. Implications for research Future research should evaluate the long-term effect of vaccines, compare different vaccines and vaccine schedules, assess vaccine efficacy and safety in specific populations, and include outcomes such as preventing long COVID-19. Ongoing evaluation of vaccine efficacy and effectiveness against emerging variants of concern is also vital.

Identifiants

pubmed: 36473651
doi: 10.1002/14651858.CD015477
pmc: PMC9726273
doi:

Substances chimiques

sinovac COVID-19 vaccine 0
BIBP COVID-19 vaccine 0
BBV152 COVID-19 vaccine 76JZE5DSN6
2019-nCoV Vaccine mRNA-1273 EPK39PL4R4

Types de publication

Journal Article Review Systematic Review

Langues

eng

Sous-ensembles de citation

IM

Pagination

CD015477

Subventions

Organisme : World Health Organization
ID : 001
Pays : International

Informations de copyright

Copyright © 2022 The Authors. Cochrane Database of Systematic Reviews published by John Wiley & Sons, Ltd. on behalf of The Cochrane Collaboration.

Références

Lancet Infect Dis. 2021 Aug;21(8):1107-1119
pubmed: 33773111
Nat Med. 2021 Jun;27(6):938
pubmed: 33903751
J Infect Dis. 2016 Dec 15;214(suppl 5):S497-S499
pubmed: 27920180
N Engl J Med. 2021 Jul 15;385(3):239-250
pubmed: 34043894
Nat Med. 2021 Feb;27(2):270-278
pubmed: 33335323
EClinicalMedicine. 2022 Mar 08;45:101323
pubmed: 35284808
J Clin Epidemiol. 2017 Jul;87:4-13
pubmed: 28529184
JAMA. 2020 Sep 8;324(10):951-960
pubmed: 32789505
Vaccine. 2021 Mar 5;39(10):1528-1533
pubmed: 33581920
N Engl J Med. 2021 Jun 10;384(23):2187-2201
pubmed: 33882225
Sci Rep. 2021 Nov 23;11(1):22777
pubmed: 34815503
Lancet. 2021 Jan 9;397(10269):99-111
pubmed: 33306989
Scientometrics. 2021;126(6):5285-5304
pubmed: 33897069
Trials. 2020 Oct 15;21(1):853
pubmed: 33059771
Lancet. 2022 Mar 5;399(10328):924-944
pubmed: 35202601
Lancet Infect Dis. 2021 Sep;21(9):1257-1270
pubmed: 33887209
Vaccines (Basel). 2021 Jun 19;9(6):
pubmed: 34205434
Lancet. 2020 Aug 15;396(10249):467-478
pubmed: 32702298
Lancet. 2020 Mar 7;395(10226):760-762
pubmed: 32151334
Evid Based Ment Health. 2019 Nov;22(4):153-160
pubmed: 31563865
Lancet. 2021 Dec 11;398(10317):2173-2184
pubmed: 34774196
Stat Med. 2014 Dec 30;33(30):5399-412
pubmed: 25316006
Int J Epidemiol. 2012 Jun;41(3):818-27
pubmed: 22461129
Vaccine. 2022 Mar 18;40(13):2068-2075
pubmed: 35164986
BMJ. 2021 Mar 29;372:n71
pubmed: 33782057
JAMA. 2021 Jul 6;326(1):35-45
pubmed: 34037666
EClinicalMedicine. 2021 Aug;38:100989
pubmed: 34222848
PLoS One. 2022 Jan 21;17(1):e0260733
pubmed: 35061702
Vaccine. 2021 Oct 22;39(44):6520-6528
pubmed: 34620531
Euro Surveill. 2021 Jul;26(28):
pubmed: 34269175
Vaccine X. 2022 Mar 05;10:100153
pubmed: 35282410
N Engl J Med. 2021 Sep 23;385(13):1244-1246
pubmed: 34379917
JAMA. 2021 Apr 20;325(15):1535-1544
pubmed: 33704352
Lancet Infect Dis. 2021 Jun;21(6):803-812
pubmed: 33548194
Lancet Infect Dis. 2022 Mar;22(3):329-340
pubmed: 34826381
Lancet Infect Dis. 2021 May;21(5):637-646
pubmed: 33485468
Ann Rheum Dis. 2022 May;81(5):687-694
pubmed: 35027397
Front Immunol. 2021 Nov 23;12:779453
pubmed: 34887867
Nat Commun. 2021 Oct 6;12(1):5861
pubmed: 34615860
Vaccines (Basel). 2021 Nov 10;9(11):
pubmed: 34835238
EClinicalMedicine. 2021 Sep;39:101078
pubmed: 34414368
Lancet. 2021 Jul 17;398(10296):213-222
pubmed: 34246358
FEBS Lett. 2004 Oct 8;576(1-2):174-8
pubmed: 15474033
Nat Med. 2021 Feb;27(2):279-288
pubmed: 33335322
Expert Rev Vaccines. 2009 Jul;8(7):887-98
pubmed: 19538115
N Engl J Med. 2021 Jan 14;384(2):e2
pubmed: 33264543
Lancet. 2021 Jul 10;398(10295):121-130
pubmed: 34181880
Nature. 2020 Oct;586(7830):589-593
pubmed: 32785213
Nat Med. 2022 Apr;28(4):823-830
pubmed: 35145311
Vaccines (Basel). 2021 Sep 29;9(10):
pubmed: 34696210
N Engl J Med. 2021 Nov 4;385(19):1761-1773
pubmed: 34525277
Nat Med. 2021 Jun;27(6):1062-1070
pubmed: 33888900
Lancet. 2021 Sep 4;398(10303):856-869
pubmed: 34370971
Lancet. 2020 Aug 15;396(10249):479-488
pubmed: 32702299
Nat Mater. 2020 Aug;19(8):810-812
pubmed: 32704139
N Engl J Med. 2021 Sep 23;385(13):1172-1183
pubmed: 34192426
Lancet. 2021 May 22;397(10288):1881-1883
pubmed: 33991475
Lancet. 2021 Feb 20;397(10275):682-694
pubmed: 33524311
Lancet Infect Dis. 2021 Jan;21(1):39-51
pubmed: 33069281
JAMA Cardiol. 2021 Dec 1;6(12):1451-1460
pubmed: 34374713
Lancet. 2021 Feb 20;397(10275):671-681
pubmed: 33545094
Vaccine. 2021 May 12;39(20):2746-2754
pubmed: 33875266
Nat Med. 2021 Nov;27(11):2025-2031
pubmed: 34526698
J Clin Epidemiol. 2011 Feb;64(2):163-71
pubmed: 20688472
Lancet. 2021 Dec 18;398(10318):2277-2287
pubmed: 34774197
N Engl J Med. 2021 Feb 4;384(5):403-416
pubmed: 33378609
J Clin Epidemiol. 2011 Dec;64(12):1283-93
pubmed: 21839614
Int J Mol Sci. 2018 Nov 15;19(11):
pubmed: 30445702
BMJ. 1997 Sep 13;315(7109):629-34
pubmed: 9310563
N Engl J Med. 2021 Dec 16;385(25):2348-2360
pubmed: 34587382
PLoS Med. 2021 Oct 1;18(10):e1003769
pubmed: 34597298
Lancet Infect Dis. 2021 Nov;21(11):e342-e347
pubmed: 34019801
Chin Med J (Engl). 2021 Jul 22;134(16):1967-1976
pubmed: 34310400
Lancet Infect Dis. 2020 Aug;20(8):e192-e197
pubmed: 32539990
N Biotechnol. 2017 Oct 25;39(Pt B):174-180
pubmed: 28778817
BMJ. 2019 Aug 28;366:l4898
pubmed: 31462531
Clin Infect Dis. 2014 Feb;58(3):e44-100
pubmed: 24311479
N Engl J Med. 2020 Dec 10;383(24):2320-2332
pubmed: 32877576
JAMA. 2020 Sep 22;324(12):1125-1127
pubmed: 32880613
Stat Med. 2008 Feb 28;27(5):711-27
pubmed: 17703496
J Neurol Sci. 2021 Sep 15;428:117607
pubmed: 34365148
N Engl J Med. 2021 Nov 4;385(19):1774-1785
pubmed: 34551225
Emerg Microbes Infect. 2021 Dec;10(1):1589-1597
pubmed: 34197281
Adv Virus Res. 2016;96:245-286
pubmed: 27712626
J Clin Epidemiol. 2019 Nov;115:1-13
pubmed: 31055177
Lancet Reg Health Am. 2023 Feb;18:100423
pubmed: 36618081
Nat Rev Immunol. 2021 Feb;21(2):83-100
pubmed: 33353987
Lancet Infect Dis. 2022 May;22(5):636-648
pubmed: 35090638
Int J Infect Dis. 2022 Jan;114:165-174
pubmed: 34688944
EClinicalMedicine. 2021 Aug;38:101010
pubmed: 34250456
BMC Med. 2020 Dec 17;18(1):402
pubmed: 33334338
BMJ. 2011 Feb 10;342:d549
pubmed: 21310794
Lancet Infect Dis. 2021 Feb;21(2):181-192
pubmed: 33217362
Res Pract Thromb Haemost. 2021 Jun 01;5(5):e12529
pubmed: 34136745
Syst Rev. 2016 Dec 5;5(1):210
pubmed: 27919275
Clin Infect Dis. 2021 Dec 6;73(11):e3949-e3955
pubmed: 33165503
Lancet. 2021 Dec 19;396(10267):1979-1993
pubmed: 33220855
J Med Virol. 2022 May;94(5):2269-2274
pubmed: 34978339
Ann Intern Med. 2020 Dec 15;173(12):1015-1017
pubmed: 32931326
N Engl J Med. 2021 May 20;384(20):1899-1909
pubmed: 33951374
Stat Med. 2010 Mar 30;29(7-8):932-44
pubmed: 20213715
PLoS Med. 2020 Apr 3;17(4):e1003082
pubmed: 32243458
N Engl J Med. 2021 Dec 23;385(26):2485-2487
pubmed: 34731553
Lancet Infect Dis. 2021 Jul;21(7):950-961
pubmed: 33705727
Vaccine. 2021 May 12;39(20):2791-2799
pubmed: 33707061
Lancet Infect Dis. 2021 Dec;21(12):1654-1664
pubmed: 34324836
Lancet. 2021 Mar 6;397(10277):881-891
pubmed: 33617777
EClinicalMedicine. 2021 Dec;42:101218
pubmed: 34870133
N Engl J Med. 2021 Dec 9;385(24):2241-2251
pubmed: 34379915
Nat Med. 2021 Jun;27(6):1071-1078
pubmed: 34007070
BMJ. 2018 Sep 28;362:k3802
pubmed: 30266736
Lancet Infect Dis. 2021 Oct;21(10):1383-1394
pubmed: 33887208
BMC Med. 2022 May 23;20(1):200
pubmed: 35606843
Signal Transduct Target Ther. 2020 Oct 13;5(1):237
pubmed: 33051445
Lancet Infect Dis. 2021 Dec;21(12):1645-1653
pubmed: 34197764
BMJ. 2021 Mar 10;372:n436
pubmed: 33692022
Signal Transduct Target Ther. 2021 Jul 15;6(1):271
pubmed: 34267185
Lancet Infect Dis. 2022 Feb;22(2):196-208
pubmed: 34536349
Lancet. 2021 Apr 10;397(10282):1351-1362
pubmed: 33798499
N Engl J Med. 2022 Feb 10;386(6):531-543
pubmed: 34910859
Infect Dis Poverty. 2021 Dec 22;10(1):138
pubmed: 34933684
Clin Infect Dis. 2022 Aug 24;75(1):e783-e791
pubmed: 34551104
N Engl J Med. 2021 May 20;384(20):1885-1898
pubmed: 33725432
N Engl J Med. 2020 Dec 31;383(27):2603-2615
pubmed: 33301246
N Engl J Med. 2021 May 13;384(19):1824-1835
pubmed: 33440088
Lancet HIV. 2021 Sep;8(9):e568-e580
pubmed: 34416193
N Engl J Med. 2020 Dec 17;383(25):2439-2450
pubmed: 33053279
J Clin Epidemiol. 2021 Sep;137:163-175
pubmed: 33857619
Lancet Reg Health West Pac. 2022 May 16;24:100474
pubmed: 35602004
Lancet. 2021 Sep 11;398(10304):981-990
pubmed: 34480858
Ann Intern Med. 2021 May;174(5):JC50
pubmed: 33939483
PLoS One. 2013 Oct 03;8(10):e76654
pubmed: 24098547

Auteurs

Carolina Graña (C)

Cochrane France, Paris, France.
Centre of Research in Epidemiology and Statistics (CRESS), INSERM, INRAE, Université de Paris, Paris, France.

Lina Ghosn (L)

Cochrane France, Paris, France.
Centre of Research in Epidemiology and Statistics (CRESS), INSERM, INRAE, Université de Paris, Paris, France.

Theodoros Evrenoglou (T)

Centre of Research in Epidemiology and Statistics (CRESS), INSERM, INRAE, Université de Paris, Paris, France.

Alexander Jarde (A)

Cochrane France, Paris, France.
Centre of Research in Epidemiology and Statistics (CRESS), INSERM, INRAE, Université de Paris, Paris, France.

Silvia Minozzi (S)

Cochrane Review Group on Drugs and Alcohol, Rome, Italy.

Hanna Bergman (H)

Cochrane Response, Cochrane, London, UK.

Brian S Buckley (BS)

Cochrane Response, Cochrane, London, UK.

Katrin Probyn (K)

Cochrane Response, Cochrane, London, UK.

Gemma Villanueva (G)

Cochrane Response, Cochrane, London, UK.

Nicholas Henschke (N)

Cochrane Response, Cochrane, London, UK.

Hillary Bonnet (H)

Cochrane France, Paris, France.
Centre of Research in Epidemiology and Statistics (CRESS), INSERM, INRAE, Université de Paris, Paris, France.

Rouba Assi (R)

Cochrane France, Paris, France.
Centre of Research in Epidemiology and Statistics (CRESS), INSERM, INRAE, Université de Paris, Paris, France.

Sonia Menon (S)

Cochrane France, Paris, France.

Melanie Marti (M)

Department of Immunization, Vaccines and Biologicals, World Health Organization, Geneva, Switzerland.

Declan Devane (D)

Evidence Synthesis Ireland, Cochrane Ireland and HRB-Trials Methodology Research Network, National University of Ireland, Galway, Ireland.

Patrick Mallon (P)

UCD Centre for Experimental Pathogen Host Research and UCD School of Medicine, University College Dublin, Dublin, Ireland.

Jean-Daniel Lelievre (JD)

Department of Clinical Immunology and Infectious Diseases, Henri Mondor Hospital, Vaccine Research Institute, Université Paris Est Créteil, Paris, France.

Lisa M Askie (LM)

Quality Assurance Norms and Standards Department, World Health Organization, Geneva, Switzerland.

Tamara Kredo (T)

Cochrane South Africa, South African Medical Research Council, Cape Town, South Africa.

Gabriel Ferrand (G)

Cochrane France, Paris, France.

Mauricia Davidson (M)

Cochrane France, Paris, France.
Centre of Research in Epidemiology and Statistics (CRESS), INSERM, INRAE, Université de Paris, Paris, France.

Carolina Riveros (C)

Cochrane France, Paris, France.
Centre of Research in Epidemiology and Statistics (CRESS), INSERM, INRAE, Université de Paris, Paris, France.

David Tovey (D)

Cochrane France, Paris, France.

Joerg J Meerpohl (JJ)

Institute for Evidence in Medicine, Medical Center & Faculty of Medicine, University of Freiburg, Freiburg, Germany.
Cochrane Germany, Cochrane Germany Foundation, Freiburg, Germany.

Giacomo Grasselli (G)

Department of Anesthesia, Intensive Care and Emergency, Fondazione IRCCS Ca' Granda Ospedale Maggiore Policlinico, Department of Pathophysiology and Transplantation, University of Milan, Milan, Italy.

Gabriel Rada (G)

Epistemonikos Foundation, Santiago, Chile.
UC Evidence Center, Cochrane Chile Associated Center, Pontificia Universidad Católica de Chile, Santiago, Chile.

Asbjørn Hróbjartsson (A)

Centre for Evidence Based Medicine Odense (CEBMO) and Cochrane Denmark, University of Southern Denmark, Odense, Denmark.
Open Patient data Explorative Network (OPEN), Odense University Hospital, Odense, Denmark.

Philippe Ravaud (P)

Cochrane France, Paris, France.
Centre of Research in Epidemiology and Statistics (CRESS), INSERM, INRAE, Université de Paris, Paris, France.

Anna Chaimani (A)

Cochrane France, Paris, France.
Centre of Research in Epidemiology and Statistics (CRESS), INSERM, INRAE, Université de Paris, Paris, France.

Isabelle Boutron (I)

Cochrane France, Paris, France.
Centre of Research in Epidemiology and Statistics (CRESS), INSERM, INRAE, Université de Paris, Paris, France.

Articles similaires

[Redispensing of expensive oral anticancer medicines: a practical application].

Lisanne N van Merendonk, Kübra Akgöl, Bastiaan Nuijen
1.00
Humans Antineoplastic Agents Administration, Oral Drug Costs Counterfeit Drugs

Smoking Cessation and Incident Cardiovascular Disease.

Jun Hwan Cho, Seung Yong Shin, Hoseob Kim et al.
1.00
Humans Male Smoking Cessation Cardiovascular Diseases Female
Humans United States Aged Cross-Sectional Studies Medicare Part C
1.00
Humans Yoga Low Back Pain Female Male

Classifications MeSH