Seasonal use case for the RTS,S/AS01 malaria vaccine: a mathematical modelling study.


Journal

The Lancet. Global health
ISSN: 2214-109X
Titre abrégé: Lancet Glob Health
Pays: England
ID NLM: 101613665

Informations de publication

Date de publication:
12 2022
Historique:
received: 11 03 2022
revised: 03 08 2022
accepted: 15 09 2022
pubmed: 19 11 2022
medline: 23 11 2022
entrez: 18 11 2022
Statut: ppublish

Résumé

A 2021 clinical trial of seasonal RTS,S/AS01 We used a mathematical, individual-based model of malaria transmission that was fitted to data on the relationship between entomological inoculation rate and parasite prevalence, clinical disease, severe disease, and deaths from multiple sites across Africa. The model was validated with results from a phase 3b trial assessing the effect of SV-RTS,S in Mali and Burkina Faso. We developed three intervention efficacy models with varying degrees and durations of protection for our population-level modelling analysis to assess the potential effect of an RTS,S vaccination schedule based on age (doses were delivered to children aged 6 months, 7·5 months, and 9 months for the first three doses, and at 27 months of age for the fourth dose) or season (children aged 5-17 months at the time of first vaccination received the first three doses in the 3 months preceding the transmission season, with any subsequent doses up to five doses delivered annually) in seasonal transmission settings both in the absence and presence of SMC with sulfadoxine-pyrimethamine plus amodiaquine. This is modelled as a full therapeutic course delivered every month for four or five months of the peak in transmission season. Estimates of cases and deaths averted in a population of 100 000 children aged 0-5 years were calculated over a 15-year time period for a range of levels of malaria transmission intensity (Plasmodium falciparum parasite prevalence in children aged 2-10 years between 10% and 65%) and over two west Africa seasonality archetypes. Seasonally targeting RTS,S resulted in greater absolute reductions in malaria cases and deaths compared with an age-based strategy, averting an additional 14 000-47 000 cases per 100 000 children aged 5 years and younger over 15 years, dependent on seasonality and transmission intensity. We predicted that adding seasonally targeted RTS,S to SMC would reduce clinical incidence by up to an additional 42 000-67 000 cases per 100 000 children aged 5 years and younger over 15 years compared with SMC alone. Transmission season duration was a key determinant of intervention effect, with the advantage of adding RTS,S to SMC predicted to be smaller with shorter transmission seasons. RTS,S vaccination in seasonal settings could be a valuable additional tool to existing interventions, with seasonal delivery maximising the effect relative to an age-based approach. Decisions surrounding deployment strategies of RTS,S in such settings will need to consider the local and regional variations in seasonality, current rates of other interventions, and potential achievable RTS,S coverage. UK Medical Research Council, UK Foreign Commonwealth & Development Office, The Wellcome Trust, and The Royal society.

Sections du résumé

BACKGROUND
A 2021 clinical trial of seasonal RTS,S/AS01
METHODS
We used a mathematical, individual-based model of malaria transmission that was fitted to data on the relationship between entomological inoculation rate and parasite prevalence, clinical disease, severe disease, and deaths from multiple sites across Africa. The model was validated with results from a phase 3b trial assessing the effect of SV-RTS,S in Mali and Burkina Faso. We developed three intervention efficacy models with varying degrees and durations of protection for our population-level modelling analysis to assess the potential effect of an RTS,S vaccination schedule based on age (doses were delivered to children aged 6 months, 7·5 months, and 9 months for the first three doses, and at 27 months of age for the fourth dose) or season (children aged 5-17 months at the time of first vaccination received the first three doses in the 3 months preceding the transmission season, with any subsequent doses up to five doses delivered annually) in seasonal transmission settings both in the absence and presence of SMC with sulfadoxine-pyrimethamine plus amodiaquine. This is modelled as a full therapeutic course delivered every month for four or five months of the peak in transmission season. Estimates of cases and deaths averted in a population of 100 000 children aged 0-5 years were calculated over a 15-year time period for a range of levels of malaria transmission intensity (Plasmodium falciparum parasite prevalence in children aged 2-10 years between 10% and 65%) and over two west Africa seasonality archetypes.
FINDINGS
Seasonally targeting RTS,S resulted in greater absolute reductions in malaria cases and deaths compared with an age-based strategy, averting an additional 14 000-47 000 cases per 100 000 children aged 5 years and younger over 15 years, dependent on seasonality and transmission intensity. We predicted that adding seasonally targeted RTS,S to SMC would reduce clinical incidence by up to an additional 42 000-67 000 cases per 100 000 children aged 5 years and younger over 15 years compared with SMC alone. Transmission season duration was a key determinant of intervention effect, with the advantage of adding RTS,S to SMC predicted to be smaller with shorter transmission seasons.
INTERPRETATION
RTS,S vaccination in seasonal settings could be a valuable additional tool to existing interventions, with seasonal delivery maximising the effect relative to an age-based approach. Decisions surrounding deployment strategies of RTS,S in such settings will need to consider the local and regional variations in seasonality, current rates of other interventions, and potential achievable RTS,S coverage.
FUNDING
UK Medical Research Council, UK Foreign Commonwealth & Development Office, The Wellcome Trust, and The Royal society.

Identifiants

pubmed: 36400084
pii: S2214-109X(22)00416-8
doi: 10.1016/S2214-109X(22)00416-8
pii:
doi:

Substances chimiques

Malaria Vaccines 0

Types de publication

Clinical Trial, Phase III Journal Article Research Support, Non-U.S. Gov't

Langues

eng

Sous-ensembles de citation

IM

Pagination

e1782-e1792

Subventions

Organisme : Medical Research Council
ID : G98669
Pays : United Kingdom
Organisme : Wellcome Trust
ID : 220658/Z/20/Z
Pays : United Kingdom
Organisme : Medical Research Council
ID : MR/R015600/1
Pays : United Kingdom

Commentaires et corrections

Type : CommentIn

Informations de copyright

Copyright © 2022 The Author(s). Published by Elsevier Ltd. This is an Open Access article under the CC BY 4.0 license. Published by Elsevier Ltd.. All rights reserved.

Déclaration de conflit d'intérêts

Declaration of interests ABH has received personal consultancy fees from WHO outside the submitted work. ABH was previously engaged by Pfizer to advise on modelling respiratory syncytial virus vaccination strategies for which she received no financial compensation. ACG has a data-transfer agreement with GSK Vaccines to cover ongoing analysis of trial data related to the RTS,S/AS01 vaccine. ACG does not receive any funding from GSK for this work. All other authors declare no competing interests.

Auteurs

Hayley A Thompson (HA)

MRC Centre for Global Infectious Disease Analysis, Imperial College London, London UK.

Alexandra B Hogan (AB)

MRC Centre for Global Infectious Disease Analysis, Imperial College London, London UK; School of Population Health, University of New South Wales, Sydney, NSW, Australia.

Patrick G T Walker (PGT)

MRC Centre for Global Infectious Disease Analysis, Imperial College London, London UK.

Peter Winskill (P)

MRC Centre for Global Infectious Disease Analysis, Imperial College London, London UK.

Issaka Zongo (I)

Institut de Recherche en Sciences de la Santé, Bobo-Dioulasso, Burkina Faso.

Issaka Sagara (I)

Malaria Research and Training Center, University of Sciences, Technologies, and Techniques of Bamako, Bamako, Mali.

Halidou Tinto (H)

Institut de Recherche en Sciences de la Santé, Bobo-Dioulasso, Burkina Faso; Institut National de Santé Publique - Centre Muraz, Bobo-Dioulasso, Burkina Faso.

Jean-Bosco Ouedraogo (JB)

Institut de Recherche en Sciences de la Santé, Bobo-Dioulasso, Burkina Faso; Institut Sciences et Techniques, Bobo-Dioulasso, Burkina Faso.

Alassane Dicko (A)

Malaria Research and Training Center, University of Sciences, Technologies, and Techniques of Bamako, Bamako, Mali.

Daniel Chandramohan (D)

Faculty of Infectious and Tropical Diseases, London School of Hygiene and Tropical Medicine, London, UK.

Brian Greenwood (B)

Faculty of Infectious and Tropical Diseases, London School of Hygiene and Tropical Medicine, London, UK.

Matt Cairns (M)

International Statistics and Epidemiology Group, London School of Hygiene and Tropical Medicine, London, UK.

Azra C Ghani (AC)

MRC Centre for Global Infectious Disease Analysis, Imperial College London, London UK. Electronic address: a.ghani@imperial.ac.uk.

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