Endothelial Immunosuppression in Atherosclerosis : Translational Control by Elavl1/HuR
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Abstract
Atherosclerotic plaques are defined by the accumulation of lipids and immune cells beneath the endothelium of the arterial intima. CD8 T cells are among the most abundant immune cell types in plaque, and conditions linked to their activation correlate with increased levels of cardiovascular disease. As lethal effectors of the immune response, CD8 T cell activation is suppressed at multiple levels. These checkpoints are critical in dampening autoimmune responses, and limiting damage in cardiovascular disease. Endothelial cells are well known for their role in recruiting CD8 T and other hematopoietic cells to low and disturbed flow (LDF) arterial regions that develop plaque, but whether they locally influence CD8 effector functions is unclear. Here, we show that endothelial cells can actively suppress CD8 T cell responses in settings of chronic plaque inflammation, but that this behavior is governed by expression of the RNA-binding protein Embryonic Lethal, Abnormal Vision-Like 1 (Elavl1). In response to immune cell recruitment in plaque, the endothelium dynamically shifts splicing of pre-mRNA and their translation to enhance expression of immune-regulatory proteins including C1q and CD27. This program is immuno-suppressive, and limited by Elavl1. We show this by Cdh5(PAC)-CreERT2 -mediated deletion of Elavl1 (ECKO), and analysis of changes in translation by Translating Ribosome Affinity Purification (TRAP). In ECKO mice, the translational shift in chronic inflammation is enhanced, leading to increased ribosomal association of C1q components and other critical regulators of immune response and resulting in a ∼70% reduction in plaque CD8 T cells. CITE-seq analysis of the remaining plaque T cells shows that they exhibit lower levels of markers associated with T cell receptor (TCR) signaling, survival, and activation. To understand whether the immunosuppressive mechanism occurred through failed CD8 recruitment or local modulation of T cell responses, we used a novel in vitro co-culture system to show that ECKO endothelial cells suppress CD8 T cell expansion—even in the presence of wild-type myeloid antigen-presenting cells, antigen-specific CD8 T cells, and antigen. Despite the induction of C1q mRNA by T cell co-culture in both wild-type and ECKO endothelial cells, we find C1q protein abundantly expressed only in co-culture with ECKO cells. Together, our data define a novel immune-suppressive transition in the endothelium, reminiscent of the transition of T cells to T-regs, and demonstrate the regulation of this process by Elavl1.
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References (65)
- doi:10.1038/s41569-023-00883-1 via crossref
- doi:10.1172/jci83083 via crossref
- doi:10.1016/j.carpath.2012.06.006 via crossref
- doi:10.1161/circresaha.115.306301 via crossref
- doi:10.1038/nature10146 via crossref
- doi:10.1073/pnas.0406073101 via crossref
- doi:10.1182/blood-2010-04-278192 via crossref
- doi:10.1073/pnas.0305938101 via crossref
- doi:10.1161/circresaha.109.203711 via crossref
- doi:10.1038/s41569-024-01023-z via crossref
- doi:10.1038/nri2156 via crossref
- doi:10.1083/jcb.200410073 via crossref
- doi:10.1002/emmm.201200237 via crossref
- doi:10.1084/jem.20082129 via crossref
- doi:10.1172/jci61758 via crossref
- doi:10.3389/fimmu.2015.00603 via crossref
- doi:10.1038/s43587-023-00515-w via crossref
- doi:10.1038/s41577-019-0180-1 via crossref
- doi:10.1038/s41569-020-0352-5 via crossref
- doi:10.1152/ajpheart.00148.2019 via crossref
- doi:10.7554/elife.29494 via crossref
- doi:10.1161/atvbaha.114.303879 via crossref
- doi:10.1073/pnas.2122227119 via crossref
- doi:10.1038/s42255-019-0102-3 via crossref
- doi:10.1172/jci82719 via crossref
- doi:10.1038/labinvest.2017.47 via crossref
- doi:10.1016/j.celrep.2020.108491 via crossref
- doi:10.1073/pnas.1304124110 via crossref
- doi:10.4049/jimmunol.1900475 via crossref
- doi:10.2741/3921 via crossref
- doi:10.1002/eji.1830190221 via crossref
- doi:10.1016/j.jaci.2015.02.022 via crossref
- doi:10.1161/circresaha.116.309598 via crossref
- doi:10.1096/fj.201500040 via crossref
- doi:10.4049/jimmunol.1000386 via crossref
- doi:10.1172/jci.insight.133497 via crossref
- doi:10.3389/fimmu.2017.01907 via crossref
- doi:10.7554/elife.82938 via crossref
- doi:10.1161/atvbaha.111.242180 via crossref
- doi:10.1152/ajpheart.00088.2019 via crossref
- doi:10.1152/advan.00066.2013 via crossref
- doi:10.1126/science.aao4555 via crossref
- doi:10.1084/jem.187.10.1549 via crossref
- doi:10.1161/circresaha.121.320090 via crossref
- doi:10.1136/annrheumdis-2014-205287 via crossref
- doi:10.3899/jrheum.220279 via crossref
- doi:10.1016/j.jacc.2021.02.029 via crossref
- doi:10.1038/s41598-018-26380-x via crossref
- doi:10.2353/ajpath.2007.060406 via crossref
- doi:10.1126/science.aao4555 via crossref
- doi:10.1038/s44161-023-00218-w via crossref
- doi:10.7554/elife.10921 via crossref
- doi:10.1038/nm.4172 via crossref
- doi:10.1073/pnas.1000444107 via crossref
- doi:10.1016/j.celrep.2021.109178 via crossref
- doi:10.1038/s41467-020-16504-1 via crossref
- doi:10.1073/pnas.1412172111 via crossref
- doi:10.7554/elife.25217 via crossref
- doi:10.1182/blood-2008-08-174508 via crossref
- doi:10.1172/jci38263 via crossref
- doi:10.1038/nature05541 via crossref
- doi:10.1016/0092-8674(94)90169-4 via crossref
- doi:10.1186/s13059-014-0550-8 via crossref
- doi:10.1038/s41588-017-0004-9 via crossref
- doi:10.1186/s13059-017-1382-0 via crossref
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