Rhythmicity of intestinal IgA responses confers oscillatory commensal microbiota mutualism.
Hugo A PennyRita G DominguesMaria Z KraussFelipe Melo-GonzálezMelissa A E LawsonSuzanna DicksonJames E ParkinsonMadeleine HurryCatherine PurseEmna JeghamCristina Godinho-SilvaMiguel RendasHenrique Veiga-FernandesDavid A BechtoldRichard K GrencisKai-Michael ToellnerEsther Von StebutJonathan R SwannJulie Elizabeth GibbsMatthew R HepworthPublished in: Science immunology (2022)
Interactions between the mammalian host and commensal microbiota are enforced through a range of immune responses that confer metabolic benefits and promote tissue health and homeostasis. Immunoglobulin A (IgA) responses directly determine the composition of commensal species that colonize the intestinal tract but require substantial metabolic resources to fuel antibody production by tissue-resident plasma cells. Here, we demonstrate that IgA responses are subject to diurnal regulation over the course of a circadian day. Specifically, the magnitude of IgA secretion, as well as the transcriptome of intestinal IgA + plasma cells, was found to exhibit rhythmicity. Oscillatory IgA responses were found to be entrained by time of feeding and were also found to be in part coordinated by the plasma cell-intrinsic circadian clock via deletion of the master clock gene Arntl . Moreover, reciprocal interactions between the host and microbiota dictated oscillatory dynamics among the commensal microbial community and its associated transcriptional and metabolic activity in an IgA-dependent manner. Together, our findings suggest that circadian networks comprising intestinal IgA, diet, and the microbiota converge to align circadian biology in the intestinal tract and to ensure host-microbial mutualism.
Keyphrases
- microbial community
- induced apoptosis
- immune response
- healthcare
- gene expression
- cell cycle arrest
- public health
- genome wide
- single cell
- physical activity
- transcription factor
- stem cells
- weight loss
- cell death
- quality improvement
- rna seq
- oxidative stress
- health information
- signaling pathway
- endoplasmic reticulum stress
- dendritic cells
- cell therapy
- dna methylation
- antibiotic resistance genes
- inflammatory response
- bone marrow
- anaerobic digestion
- social media