Evidence map›Paper›PMID 40866291›Full record

ArticleJournal for immunotherapy of cancer2025

Spatial TCR clonality and clonal expansion in the in situ microenvironment of non-small cell lung cancer.

Hui Yu, Anastasia Magoulopoulou, Rose-Marie Amini, Maria Paraskevi Chatzinikolaou, Masafumi Horie, Amanda Lindberg, Artur Mezheyeuski, Max Backman, Andreas Metousis, Hans Brunnström and 8 more

Abstract read
In one paragraph

Article in Journal for immunotherapy of cancer, 2025. 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. Article
  2. Article
  3. Review
  4. Applications and development of in situ nucleic acid visualization techniques.Frontiers in bioengineering and biotechnology · 2026
    Review
  5. Review
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

18 authors.

Hui YuDepartment of Immunology, Genetics and Pathology, Uppsala University, Uppsala, Uppsala County, Sweden.ORCID http://orcid.org/0009-0000-0563-3243
Anastasia MagoulopoulouScience for Life Laboratory, Department of Biochemistry and Biophysics, Stockholm University, Stockholm, Stockholm County, Sweden.
Rose-Marie AminiDepartment of Immunology, Genetics and Pathology, Uppsala University, Uppsala, Uppsala County, Sweden.
Maria Paraskevi ChatzinikolaouScience for Life Laboratory, Department of Biochemistry and Biophysics, Stockholm University, Stockholm, Stockholm County, Sweden.
Masafumi HorieDivision of Molecular and Genomic Pathology, Department of Pathology, Kobe University Graduate School of Medicine, Kobe, Japan.
Amanda LindbergDepartment of Immunology, Genetics and Pathology, Uppsala University, Uppsala, Uppsala County, Sweden.
Artur MezheyeuskiMolecular Oncology Group, Vall d'Hebron Institute of Oncology, Barcelona, Spain.
Max BackmanDepartment of Immunology, Genetics and Pathology, Uppsala University, Uppsala, Uppsala County, Sweden.
Andreas MetousisScience for Life Laboratory, Department of Biochemistry and Biophysics, Stockholm University, Stockholm, Stockholm County, Sweden.
Hans BrunnströmDivision of Pathology, Lund University, Lund, Sweden.
Millaray MarincevicDepartment of Immunology, Genetics and Pathology, Uppsala University, Uppsala, Uppsala County, Sweden.
Johan BotlingDepartment of Immunology, Genetics and Pathology, Uppsala University, Uppsala, Uppsala County, Sweden.
Johanna Sofia Margareta MattssonDepartment of Immunology, Genetics and Pathology, Uppsala University, Uppsala, Uppsala County, Sweden.
Klas KärreDepartment of Microbiology, Tumor and Cell Biology, Karolinska Institutet, Stockholm, Stockholm County, Sweden.
Karin LeanderssonDepartment of Translational Medicine, Lund University, Lund, Sweden.
Mats NilssonScience for Life Laboratory, Department of Biochemistry and Biophysics, Stockholm University, Stockholm, Stockholm County, Sweden.
Carina StrellDepartment of Immunology, Genetics and Pathology, Uppsala University, Uppsala, Uppsala County, Sweden patrick.micke@igp.uu.se carina.strell@igp.uu.se.
Patrick MickeDepartment of Immunology, Genetics and Pathology, Uppsala University, Uppsala, Uppsala County, Sweden patrick.micke@igp.uu.se carina.strell@igp.uu.se.ORCID http://orcid.org/0000-0003-1210-5961

Funding

No grant is acknowledged in the PubMed record.

6 · The paper itself

Abstract

backgroundT-cell activation and clonal expansion are essential to effective immunotherapy responses in non-small cell lung cancer (NSCLC). The distribution of T-cell clones may offer insights into immunogenic mechanisms and imply potential prognostic and predictive information.

methodsWe analyzed α/β T-cell receptor (TCR) clonality using RNA-sequencing of bulk frozen tumor tissue from 182 patients with NSCLC. The data was integrated with molecular and clinical characteristics, extensive in situ imaging, and spatial sequencing of the tumor immune microenvironment. TCR clonality was also determined in an independent cohort of nine patients with immune checkpoint-treated NSCLC.

resultsTCR clonality (Gini index) patterns ranged from high T-cell clone diversity with high evenness (low Gini index) to clonal dominance with low evenness (high Gini index). Generally, TCR clonality in cancer was lower than in matched normal lung parenchyma distant from the tumor (p=0.021). The TCR clonality distribution between adenocarcinoma and squamous cell carcinoma was similar; however, smokers showed a higher Gini index. While in the operated patient with NSCLC cohort, TCR clonality was not prognostic, in an immune checkpoint inhibitor-treated cohort, high TCR clonality was associated with better therapy response (p=0.016) and prolonged survival (p=0.003, median survival 13.8 vs 2.9 months). On the genomic level, a higher Gini index correlated strongly with a lower frequency of epidermal growth factor receptor (EGFR) and adenomatous polypsis coli (APC) gene mutations, but a higher frequency of P53 mutations, and a higher tumor mutation burden. In-depth characterization of the tumor tissue revealed that high TCR clonality was associated with an activated, inflamed tumor phenotype (PRF1, GZMA, GZMB, INFG) with exhaustion signatures (LAG3, TIGIT, IDO1, PD-1, PD-L1). Correspondingly, PD-1+, CD3+, CD8A+, CD163+, and CD138+immune cells infiltrated cancer tissue with high TCR clonality. In situ sequencing recovered single dominant T-cell clones within the patient tumor tissue, which were predominantly of the CD8 subtype and localized closer to tumor cells.

conclusionOur robust analysis pipeline characterized diverse TCR repertoires linked to distinct genotypes and immunologic tumor phenotypes. The spatial clustering of expanded T-cell clones and their association with immunological activation underscores a functional, clinically relevant immune response, particularly in patients with NSCLC treated with checkpoint inhibitors.

Indexed as

Carcinoma, Non-Small-Cell LungLung NeoplasmsReceptors, Antigen, T-CellTumor MicroenvironmentAgedFemaleHumansMaleMiddle AgedReceptors, Antigen, T-CellClonalityImmune Checkpoint InhibitorLung CancerT cellT cell Receptor - TCR

Identifiers

PMID40866291
PMCPMC12434955

What OpenQuestion holds

Textmetadata
LicenceCC BY-NC
Read underepoch 390

Registered trials

None linked

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.