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Transmembrane TNF-dependent uptake of anti-TNF antibodies

TNF-α (TNF), a pro-inflammatory cytokine is synthesized as a 26 kDa protein, anchors in the plasma membrane as transmembrane TNF (TmTNF), and is subjected to proteolysis by the TNF-α converting enzyme (TACE) to release the 15 kDa form of soluble TNF (sTNF). TmTNF and sTNF interact with 2 distinct re...

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Autores principales: Deora, Arun, Hegde, Subramanya, Lee, Jacqueline, Choi, Chee-Ho, Chang, Qing, Lee, Cheryl, Eaton, Lucia, Tang, Hua, Wang, Dongdong, Lee, David, Michalak, Mark, Tomlinson, Medha, Tao, Qingfeng, Gaur, Nidhi, Harvey, Bohdan, McLoughlin, Shaun, Labkovsky, Boris, Ghayur, Tariq
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Taylor & Francis 2017
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5419086/
https://www.ncbi.nlm.nih.gov/pubmed/28323513
http://dx.doi.org/10.1080/19420862.2017.1304869
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author Deora, Arun
Hegde, Subramanya
Lee, Jacqueline
Choi, Chee-Ho
Chang, Qing
Lee, Cheryl
Eaton, Lucia
Tang, Hua
Wang, Dongdong
Lee, David
Michalak, Mark
Tomlinson, Medha
Tao, Qingfeng
Gaur, Nidhi
Harvey, Bohdan
McLoughlin, Shaun
Labkovsky, Boris
Ghayur, Tariq
author_facet Deora, Arun
Hegde, Subramanya
Lee, Jacqueline
Choi, Chee-Ho
Chang, Qing
Lee, Cheryl
Eaton, Lucia
Tang, Hua
Wang, Dongdong
Lee, David
Michalak, Mark
Tomlinson, Medha
Tao, Qingfeng
Gaur, Nidhi
Harvey, Bohdan
McLoughlin, Shaun
Labkovsky, Boris
Ghayur, Tariq
author_sort Deora, Arun
collection PubMed
description TNF-α (TNF), a pro-inflammatory cytokine is synthesized as a 26 kDa protein, anchors in the plasma membrane as transmembrane TNF (TmTNF), and is subjected to proteolysis by the TNF-α converting enzyme (TACE) to release the 15 kDa form of soluble TNF (sTNF). TmTNF and sTNF interact with 2 distinct receptors, TNF-R1 (p55) and TNF-R2 (p75), to mediate the multiple biologic effects of TNF described to date. Several anti-TNF biologics that bind to both forms of TNF and block their interactions with the TNF receptors are now approved for the treatment of a variety of immune-mediated diseases. Several reports suggest that binding of anti-TNFs to TmTNF delivers an outside-to-inside ‘reverse’ signal that may also contribute to the efficacy of anti-TNFs. Some patients, however, develop anti-TNF drug antibody responses (ADA or immunogenicity). Here, we demonstrate biochemically that TmTNF is transiently expressed on the surface of lipopolysaccharide-stimulated primary human monocytes, macrophages, and monocyte-derived dendritic cells (DCs) and expression of TmTNF on the cell surface is enhanced following treatment of cells with TAPI-2, a TACE inhibitor. Importantly, binding of anti-TNFs to TmTNF on DCs results in rapid internalization of the anti-TNF/TmTNF complex first into early endosomes and then lysosomes. The internalized anti-TNF is processed and anti-TNF peptides can be eluted from the surface of DCs. Finally, tetanus toxin peptides fused to anti-TNFs are presented by DCs to initiate T cell recall proliferation response. Collectively, these observations may provide new insights into understanding the biology of TmTNF, mode of action of anti-TNFs, biology of ADA response to anti-TNFs, and may help with the design of the next generation of anti-TNFs.
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spelling pubmed-54190862017-05-16 Transmembrane TNF-dependent uptake of anti-TNF antibodies Deora, Arun Hegde, Subramanya Lee, Jacqueline Choi, Chee-Ho Chang, Qing Lee, Cheryl Eaton, Lucia Tang, Hua Wang, Dongdong Lee, David Michalak, Mark Tomlinson, Medha Tao, Qingfeng Gaur, Nidhi Harvey, Bohdan McLoughlin, Shaun Labkovsky, Boris Ghayur, Tariq MAbs Reports TNF-α (TNF), a pro-inflammatory cytokine is synthesized as a 26 kDa protein, anchors in the plasma membrane as transmembrane TNF (TmTNF), and is subjected to proteolysis by the TNF-α converting enzyme (TACE) to release the 15 kDa form of soluble TNF (sTNF). TmTNF and sTNF interact with 2 distinct receptors, TNF-R1 (p55) and TNF-R2 (p75), to mediate the multiple biologic effects of TNF described to date. Several anti-TNF biologics that bind to both forms of TNF and block their interactions with the TNF receptors are now approved for the treatment of a variety of immune-mediated diseases. Several reports suggest that binding of anti-TNFs to TmTNF delivers an outside-to-inside ‘reverse’ signal that may also contribute to the efficacy of anti-TNFs. Some patients, however, develop anti-TNF drug antibody responses (ADA or immunogenicity). Here, we demonstrate biochemically that TmTNF is transiently expressed on the surface of lipopolysaccharide-stimulated primary human monocytes, macrophages, and monocyte-derived dendritic cells (DCs) and expression of TmTNF on the cell surface is enhanced following treatment of cells with TAPI-2, a TACE inhibitor. Importantly, binding of anti-TNFs to TmTNF on DCs results in rapid internalization of the anti-TNF/TmTNF complex first into early endosomes and then lysosomes. The internalized anti-TNF is processed and anti-TNF peptides can be eluted from the surface of DCs. Finally, tetanus toxin peptides fused to anti-TNFs are presented by DCs to initiate T cell recall proliferation response. Collectively, these observations may provide new insights into understanding the biology of TmTNF, mode of action of anti-TNFs, biology of ADA response to anti-TNFs, and may help with the design of the next generation of anti-TNFs. Taylor & Francis 2017-03-21 /pmc/articles/PMC5419086/ /pubmed/28323513 http://dx.doi.org/10.1080/19420862.2017.1304869 Text en Published with license by Taylor & Francis Group, LLC http://creativecommons.org/licenses/by-nc-nd/4.0/ This is an Open Access article distributed under the terms of the Creative Commons Attribution-NonCommercial-NoDerivatives License (http://creativecommons.org/licenses/by-nc-nd/4.0/), which permits non-commercial re-use, distribution, and reproduction in any medium, provided the original work is properly cited, and is not altered, transformed, or built upon in any way.
spellingShingle Reports
Deora, Arun
Hegde, Subramanya
Lee, Jacqueline
Choi, Chee-Ho
Chang, Qing
Lee, Cheryl
Eaton, Lucia
Tang, Hua
Wang, Dongdong
Lee, David
Michalak, Mark
Tomlinson, Medha
Tao, Qingfeng
Gaur, Nidhi
Harvey, Bohdan
McLoughlin, Shaun
Labkovsky, Boris
Ghayur, Tariq
Transmembrane TNF-dependent uptake of anti-TNF antibodies
title Transmembrane TNF-dependent uptake of anti-TNF antibodies
title_full Transmembrane TNF-dependent uptake of anti-TNF antibodies
title_fullStr Transmembrane TNF-dependent uptake of anti-TNF antibodies
title_full_unstemmed Transmembrane TNF-dependent uptake of anti-TNF antibodies
title_short Transmembrane TNF-dependent uptake of anti-TNF antibodies
title_sort transmembrane tnf-dependent uptake of anti-tnf antibodies
topic Reports
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5419086/
https://www.ncbi.nlm.nih.gov/pubmed/28323513
http://dx.doi.org/10.1080/19420862.2017.1304869
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