Evidence map›Paper›PMID 39510795›Full record

ArticleJournal for immunotherapy of cancer2024

TMED inhibition suppresses cell surface PD-1 expression and overcomes T cell dysfunction.

David W Vredevoogd, Georgi Apriamashvili, Pierre L Levy, Sanju Sinha, Zowi R Huinen, Nils L Visser, Beaunelle de Bruijn, Julia Boshuizen, Susan E van Hal-van Veen, Maarten A Ligtenberg and 13 more

Abstract read
In one paragraph

Article in Journal for immunotherapy of cancer, 2024. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 5 papers.

0numbers the graph read from it
0cells of the map it votes in
5citing papers in PubMed
–field-weighted citation impact
1 · What the graph read from it

What it found

Each row is one number read from the abstract, on the scale the paper reported it, with its interval. Left of the dashed line favours the treatment, right favours the comparator. Under each row is the sentence it came from. New to these charts? A ten-minute tutorial.

The abstract states no effect estimate the extractor could read, or names no intervention and outcome on the map, so this paper lights no cell and moves no belief. It is still indexed, cited and linked below.

2 · The registry

The trial behind it

Trials whose registry record cites this paper, or whose number appears in the abstract. A trial that started after this paper was published is citing it as background, not reporting it.

Neither the registry nor the abstract names a trial number. If this is a trial report, that itself is worth knowing.

3 · Its place in the literature

Who cites it

5 citing papers in PubMed.

  1. Targeting TMED4 enhances CD8Science advances · 2026
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4 · The record

Corrections and comments

PubMed lists nothing against this paper. Absence here is not a guarantee, only a check that was made.

5 · Who and what money

Authors and funding

23 authors.

David W VredevoogdDepartment of Molecular oncology and immunology, Netherlands Cancer Institute, Oncode Institute, Amsterdam, The Netherlands.
Georgi Apriamashvili *Department of Molecular oncology and immunology, Netherlands Cancer Institute, Oncode Institute, Amsterdam, The Netherlands.
Pierre L Levy *Department of Molecular oncology and immunology, Netherlands Cancer Institute, Oncode Institute, Amsterdam, The Netherlands.
Sanju Sinha *Cancer Data Science Laboratory, National Cancer Institute Center for Cancer Research, Bethesda, Maryland, USA.
Zowi R Huinen *Department of Molecular oncology and immunology, Netherlands Cancer Institute, Oncode Institute, Amsterdam, The Netherlands.
Nils L Visser *Department of Molecular oncology and immunology, Netherlands Cancer Institute, Oncode Institute, Amsterdam, The Netherlands.
Beaunelle de BruijnDepartment of Molecular oncology and immunology, Netherlands Cancer Institute, Oncode Institute, Amsterdam, The Netherlands.
Julia BoshuizenDepartment of Molecular oncology and immunology, Netherlands Cancer Institute, Oncode Institute, Amsterdam, The Netherlands.
Susan E van Hal-van VeenDepartment of Molecular oncology and immunology, Netherlands Cancer Institute, Oncode Institute, Amsterdam, The Netherlands.
Maarten A LigtenbergDepartment of Molecular oncology and immunology, Netherlands Cancer Institute, Oncode Institute, Amsterdam, The Netherlands.
Onno B BleijerveldDepartment of Molecular oncology and immunology, Netherlands Cancer Institute, Oncode Institute, Amsterdam, The Netherlands.
Chun-Pu LinDepartment of Molecular oncology and immunology, Netherlands Cancer Institute, Oncode Institute, Amsterdam, The Netherlands.ORCID 0000-0001-5874-8001
Judit Díaz-GómezDepartment of Molecular oncology and immunology, Netherlands Cancer Institute, Oncode Institute, Amsterdam, The Netherlands.
Santiago Duro SánchezDepartment of Molecular oncology and immunology, Netherlands Cancer Institute, Oncode Institute, Amsterdam, The Netherlands.
Ettai MarkovitsElla Lemelbaum Institute for Immuno-oncology, Sheba Medical Center, Tel Hashomer, Israel.
Juan Simon NietoDepartment of Molecular oncology and immunology, Netherlands Cancer Institute, Oncode Institute, Amsterdam, The Netherlands.
Alex van VlietDepartment of Molecular oncology and immunology, Netherlands Cancer Institute, Oncode Institute, Amsterdam, The Netherlands.
Oscar KrijgsmanDepartment of Molecular oncology and immunology, Netherlands Cancer Institute, Oncode Institute, Amsterdam, The Netherlands.
Gal MarkelDepartment of Clinical Microbiology and Immunology, Faculty of Medical & Health Sciences, Tel Aviv University, Tel Aviv, Israel.
Michal J BesserDepartment of Clinical Microbiology and Immunology, Faculty of Medical & Health Sciences, Tel Aviv University, Tel Aviv, Israel.ORCID 0000-0002-9233-0458
Maarten AltelaarDepartment of Molecular oncology and immunology, Netherlands Cancer Institute, Oncode Institute, Amsterdam, The Netherlands.
Eytan RuppinCancer Data Science Laboratory, National Cancer Institute Center for Cancer Research, Bethesda, Maryland, USA.ORCID 0000-0003-4299-7657
Daniel S PeeperDepartment of Molecular oncology and immunology, Netherlands Cancer Institute, Oncode Institute, Amsterdam, The Netherlands d.peeper@nki.nl.ORCID 0000-0003-1293-3177

Funding

No grant is acknowledged in the PubMed record.

6 · The paper itself

Abstract

backgroundBlockade of the programmed cell death protein 1 (PD-1) immune checkpoint (ICB) is revolutionizing cancer therapy, but little is known about the mechanisms governing its expression on CD8 T cells. Because PD-1 is induced during activation of T cells, we set out to uncover regulators whose inhibition suppresses PD-1 abundance without adversely impacting on T cell activation.

methodsTo identify PD-1 regulators in an unbiased fashion, we performed a whole-genome, fluorescence-activated cell sorting (FACS)-based CRISPR-Cas9 screen in primary murine CD8 T cells. A dual-readout design using the activation marker CD137 allowed us to uncouple genes involved in PD-1 regulation from those governing general T cell activation.

resultsWe found that the inactivation of one of several members of the TMED/EMP24/GP25L/p24 family of transport proteins, most prominently TMED10, reduced PD-1 cell surface abundance, thereby augmenting T cell activity. Another client protein was cytotoxic T lymphocyte-associated protein 4 (CTLA-4), which was also suppressed by TMED inactivation. Treatment with TMED inhibitor AGN192403 led to lysosomal degradation of the TMED-PD-1 complex and reduced PD-1 abundance in tumor-infiltrating CD8 T cells (TIL) in mice, thus reversing T cell dysfunction. Clinically corroborating these findings, single-cell RNA analyses revealed a positive correlation between TMED expression in CD8 TIL, and both a T cell dysfunction signature and lack of ICB response. Similarly, patients receiving a TIL product with high TMED expression had a shorter overall survival.

conclusionOur results uncover a novel mechanism of PD-1 regulation, and identify a pharmacologically tractable target whose inhibition suppresses PD-1 abundance and T cell dysfunction.

Indexed as

Programmed Cell Death 1 ReceptorAnimalsCD8-Positive T-LymphocytesHumansImmune Checkpoint InhibitorsMiceTumor MicroenvironmentImmune Checkpoint InhibitorsProgrammed Cell Death 1 ReceptorAdoptive cell therapy - ACTImmune checkpoint inhibitorImmunotherapyT cellTumor infiltrating lymphocyte - TIL

Identifiers

PMID39510795
PMCPMC11552591

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Read under generation 80e0d062 · epoch 390. Bibliography from PubMed, PubMed Central and OpenAlex; grants from NIH RePORTER; trial links from ClinicalTrials.gov; estimates, votes and beliefs from the OpenQuestion graph.