Modelling pathogen load dynamics to elucidate mechanistic determinants of host-Plasmodium falciparum interactions
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Accepted version
Accepted version
Author(s)
Type
Journal Article
Abstract
During infection, increasing pathogen load stimulates both protective and harmful aspects of the host response. The dynamics of this interaction are hard to quantify in humans, but doing so could improve understanding of mechanisms of disease and protection. We sought to model the contributions of parasite multiplication rate and host response to observed parasite load in individual subjects with Plasmodium falciparum malaria, using only data obtained at the time of clinical presentation, and then to identify their mechanistic correlates. We predicted higher parasite multiplication rates and lower host responsiveness in severe malaria cases, with severe anemia being more insidious than cerebral malaria. We predicted that parasite growth-inhibition was associated with platelet consumption, lower expression of CXCL10 and type-1 interferon-associated genes, but increased cathepsin G and matrix metallopeptidase 9 expression. We found that cathepsin G and matrix metallopeptidase 9 directly inhibit parasite invasion into erythrocytes. Parasite multiplication rate was associated with host iron availability and higher complement factor H levels, lower expression of gametocyte-associated genes but higher expression of translation-associated genes in the parasite. Our findings demonstrate the potential of using explicit modelling of pathogen load dynamics to deepen understanding of host-pathogen interactions and identify mechanistic correlates of protection.
Date Issued
2019-06-17
Date Acceptance
2019-04-30
Citation
Nature Microbiology, 2019, 4, pp.1592-1602
ISSN
2058-5276
Publisher
Nature Research
Start Page
1592
End Page
1602
Journal / Book Title
Nature Microbiology
Volume
4
Sponsor
Medical Research Council (MRC)
Bill & Melinda Gates Foundation
Medical Research Council (MRC)
Identifier
https://www.nature.com/articles/s41564-019-0474-x
Grant Number
MR/L006529/1
OPP1068440
MR/R015600/1
Subjects
Science & Technology
Life Sciences & Biomedicine
Microbiology
PARASITE SEQUESTRATION
ERYTHROCYTE INVASION
CATHEPSIN-G
FACTOR-H
MALARIA
INFECTION
ELASTASE
IMMUNITY
Adolescent
Blood Platelets
Cathepsin G
Child
Child, Preschool
Erythrocytes
Female
Gene Expression Profiling
Host-Parasite Interactions
Humans
Infant
Malaria, Falciparum
Male
Matrix Metalloproteinase 9
Models, Biological
Parasite Load
Phenotype
Plasmodium falciparum
Blood Platelets
Erythrocytes
Humans
Plasmodium falciparum
Malaria, Falciparum
Gene Expression Profiling
Phenotype
Models, Biological
Adolescent
Child
Child, Preschool
Infant
Female
Male
Matrix Metalloproteinase 9
Host-Parasite Interactions
Cathepsin G
Parasite Load
0605 Microbiology
1108 Medical Microbiology
Publication Status
Published
Date Publish Online
2019-06-17