Activation of the endoplasmic reticulum stress sensor IRE1α by the vaccine adjuvant AS03 contributes to its immunostimulatory properties.
Charlotte GivordIain WelsbySophie DetienneSéverine ThomasAssiya AssabbanViviana Lima SilvaCéline MolleRomain GinesteMarjorie VermeerschDavid Perez-MorgaOberdan LeoCatherine CollignonArnaud M DidierlaurentStanislas GorielyPublished in: NPJ vaccines (2018)
The oil-in-water emulsion Adjuvant System 03 (AS03) is one of the few adjuvants used in licensed vaccines. Previous work indicates that AS03 induces a local and transient inflammatory response that contributes to its adjuvant effect. However, the molecular mechanisms involved in its immunostimulatory properties are ill-defined. Upon intramuscular injection in mice, AS03 elicited a rapid and transient downregulation of lipid metabolism-related genes in the draining lymph node. In vitro, these modifications were associated with profound changes in lipid composition, alteration of endoplasmic reticulum (ER) morphology and activation of the unfolded protein response pathway. In vivo, treatment with a chemical chaperone or deletion of the ER stress sensor kinase IRE1α in myeloid cells decreased AS03-induced cytokine production and its capacity to elicit high affinity antigen-specific antibodies. In summary, our results indicate that IRE1α is a sensor for the metabolic changes induced by AS03 in monocytic cells and may constitute a canonical pathway that could be exploited for the design of novel vaccine adjuvants.
Keyphrases
- endoplasmic reticulum stress
- induced apoptosis
- endoplasmic reticulum
- early stage
- inflammatory response
- lymph node
- signaling pathway
- fatty acid
- cell cycle arrest
- bone marrow
- type diabetes
- cerebral ischemia
- intellectual disability
- acute myeloid leukemia
- neoadjuvant chemotherapy
- cell death
- dendritic cells
- heat shock protein
- squamous cell carcinoma
- blood brain barrier
- metabolic syndrome
- small molecule
- skeletal muscle
- drug induced
- pi k akt
- heat shock
- subarachnoid hemorrhage