Differences in CD80 and CD86 transendocytosis reveal CD86 as a key target for CTLA-4 immune regulation

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作者
Alan Kennedy
Erin Waters
Behzad Rowshanravan
Claudia Hinze
Cayman Williams
Daniel Janman
Thomas A. Fox
Claire Booth
Anne M. Pesenacker
Neil Halliday
Blagoje Soskic
Satdip Kaur
Omar S. Qureshi
Emma C. Morris
Shinji Ikemizu
Christopher Paluch
Jiandong Huo
Simon J. Davis
Emmanuel Boucrot
Lucy S. K. Walker
David M. Sansom
机构
[1] UCL Institute of Immunity and Transplantation,Molecular and Cellular Immunology Section
[2] UCL Great Ormond Street Institute of Child Health,School of Immunity and Infection, Institute of Biomedical Research
[3] University of Birmingham Medical School,Division of Structural Biology, Graduate School of Pharmaceutical Sciences
[4] Celentyx Ltd,Medical Research Council Human Immunology Unit, John Radcliffe Hospital
[5] Kumamoto University,Structural Biology
[6] University of Oxford,Division of Structural Biology
[7] The Rosalind Franklin Institute,Protein Production UK
[8] University of Oxford,Radcliffe Department of Medicine, John Radcliffe Hospital
[9] Wellcome Trust Centre for Human Genetics,Institute of Structural and Molecular Biology
[10] The Rosalind Franklin Institute—Diamond Light Source,undefined
[11] The Research Complex at Harwell,undefined
[12] University of Oxford,undefined
[13] University College London,undefined
来源
Nature Immunology | 2022年 / 23卷
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摘要
CD28 and CTLA-4 (CD152) play essential roles in regulating T cell immunity, balancing the activation and inhibition of T cell responses, respectively. Although both receptors share the same ligands, CD80 and CD86, the specific requirement for two distinct ligands remains obscure. In the present study, we demonstrate that, although CTLA-4 targets both CD80 and CD86 for destruction via transendocytosis, this process results in separate fates for CTLA-4 itself. In the presence of CD80, CTLA-4 remained ligand bound, and was ubiquitylated and trafficked via late endosomes and lysosomes. In contrast, in the presence of CD86, CTLA-4 detached in a pH-dependent manner and recycled back to the cell surface to permit further transendocytosis. Furthermore, we identified clinically relevant mutations that cause autoimmune disease, which selectively disrupted CD86 transendocytosis, by affecting either CTLA-4 recycling or CD86 binding. These observations provide a rationale for two distinct ligands and show that defects in CTLA-4-mediated transendocytosis of CD86 are associated with autoimmunity.
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页码:1365 / 1378
页数:13
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