OpenAlex Citation Counts

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OpenAlex is a bibliographic catalogue of scientific papers, authors and institutions accessible in open access mode, named after the Library of Alexandria. It's citation coverage is excellent and I hope you will find utility in this listing of citing articles!

If you click the article title, you'll navigate to the article, as listed in CrossRef. If you click the Open Access links, you'll navigate to the "best Open Access location". Clicking the citation count will open this listing for that article. Lastly at the bottom of the page, you'll find basic pagination options.

Requested Article:

TOX and TOX2 transcription factors cooperate with NR4A transcription factors to impose CD8 + T cell exhaustion
Hyungseok Seo, Joyce Chen, Edahí González‐Avalos, et al.
Proceedings of the National Academy of Sciences (2019) Vol. 116, Iss. 25, pp. 12410-12415
Open Access | Times Cited: 602

Showing 1-25 of 602 citing articles:

Defining ‘T cell exhaustion’
Christian U. Blank, W. Nicholas Haining, Werner Held, et al.
Nature reviews. Immunology (2019) Vol. 19, Iss. 11, pp. 665-674
Open Access | Times Cited: 1187

Developmental Relationships of Four Exhausted CD8+ T Cell Subsets Reveals Underlying Transcriptional and Epigenetic Landscape Control Mechanisms
Jean‐Christophe Beltra, Sasikanth Manne, Mohamed S. Abdel-Hakeem, et al.
Immunity (2020) Vol. 52, Iss. 5, pp. 825-841.e8
Open Access | Times Cited: 730

CD8+ T cell differentiation and dysfunction in cancer
Mary Philip, Andrea Schietinger
Nature reviews. Immunology (2021) Vol. 22, Iss. 4, pp. 209-223
Open Access | Times Cited: 686

c-Jun overexpression in CAR T cells induces exhaustion resistance
Rachel C. Lynn, Evan W. Weber, Elena Sotillo, et al.
Nature (2019) Vol. 576, Iss. 7786, pp. 293-300
Open Access | Times Cited: 666

TCF-1-Centered Transcriptional Network Drives an Effector versus Exhausted CD8 T Cell-Fate Decision
Zeyu Chen, Zhicheng Ji, Shin Foong Ngiow, et al.
Immunity (2019) Vol. 51, Iss. 5, pp. 840-855.e5
Open Access | Times Cited: 548

Clinical implications of T cell exhaustion for cancer immunotherapy
Andrew Chow, Karlo Perica, Christopher A. Klebanoff, et al.
Nature Reviews Clinical Oncology (2022) Vol. 19, Iss. 12, pp. 775-790
Open Access | Times Cited: 512

Proliferating Transitory T Cells with an Effector-like Transcriptional Signature Emerge from PD-1+ Stem-like CD8+ T Cells during Chronic Infection
William Henry Hudson, Julia Gensheimer, Masao Hashimoto, et al.
Immunity (2019) Vol. 51, Iss. 6, pp. 1043-1058.e4
Open Access | Times Cited: 505

Uptake of oxidized lipids by the scavenger receptor CD36 promotes lipid peroxidation and dysfunction in CD8+ T cells in tumors
Shihao Xu, Omkar Chaudhary, Patricia Rodríguez-Morales, et al.
Immunity (2021) Vol. 54, Iss. 7, pp. 1561-1577.e7
Open Access | Times Cited: 469

Transient rest restores functionality in exhausted CAR-T cells through epigenetic remodeling
Evan W. Weber, Kevin R. Parker, Elena Sotillo, et al.
Science (2021) Vol. 372, Iss. 6537
Open Access | Times Cited: 453

Transcriptional programs of neoantigen-specific TIL in anti-PD-1-treated lung cancers
Justina X. Caushi, Jiajia Zhang, Zhicheng Ji, et al.
Nature (2021) Vol. 596, Iss. 7870, pp. 126-132
Open Access | Times Cited: 381

Navigating CAR-T cells through the solid-tumour microenvironment
Andrew J. Hou, Laurence C. Chen, Yvonne Y. Chen
Nature Reviews Drug Discovery (2021) Vol. 20, Iss. 7, pp. 531-550
Open Access | Times Cited: 372

LAG-3: from molecular functions to clinical applications
Takumi Maruhashi, Daisuke Sugiura, Il‐mi Okazaki, et al.
Journal for ImmunoTherapy of Cancer (2020) Vol. 8, Iss. 2, pp. e001014-e001014
Open Access | Times Cited: 364

Interpretation of T cell states from single-cell transcriptomics data using reference atlases
Massimo Andreatta, Jesús Corría-Osorio, Sören Müller, et al.
Nature Communications (2021) Vol. 12, Iss. 1
Open Access | Times Cited: 363

T cells in health and disease
Lina Sun, Yanhong Su, Anjun Jiao, et al.
Signal Transduction and Targeted Therapy (2023) Vol. 8, Iss. 1
Open Access | Times Cited: 359

Engineered T Cell Therapy for Cancer in the Clinic
Lijun Zhao, Yu Cao
Frontiers in Immunology (2019) Vol. 10
Open Access | Times Cited: 357

Precursor exhausted T cells: key to successful immunotherapy?
Axel Kallies, Dietmar Zehn, Daniel T. Utzschneider
Nature reviews. Immunology (2019) Vol. 20, Iss. 2, pp. 128-136
Closed Access | Times Cited: 350

CAR immune cells: design principles, resistance and the next generation
Louai Labanieh, Crystal L. Mackall
Nature (2023) Vol. 614, Iss. 7949, pp. 635-648
Closed Access | Times Cited: 339

The Diverse Function of PD-1/PD-L Pathway Beyond Cancer
Weiting Qin, Li-Peng Hu, Xueli Zhang, et al.
Frontiers in Immunology (2019) Vol. 10
Open Access | Times Cited: 331

Turning cold tumors hot: from molecular mechanisms to clinical applications
Jiahui Zhang, Di Huang, Phei Er Saw, et al.
Trends in Immunology (2022) Vol. 43, Iss. 7, pp. 523-545
Closed Access | Times Cited: 319

CD8+ T Cell Exhaustion in Cancer
Joseph S. Dolina, Natalija Budimir, Graham D. Thomas, et al.
Frontiers in Immunology (2021) Vol. 12
Open Access | Times Cited: 310

T Cell Dysfunction and Exhaustion in Cancer
Zhen Zhang, Shasha Liu, Bin Zhang, et al.
Frontiers in Cell and Developmental Biology (2020) Vol. 8
Open Access | Times Cited: 305

CAR T Cell Therapy for Solid Tumors: Bright Future or Dark Reality?
Jessica Wagner, Elizabeth Wickman, Christopher DeRenzo, et al.
Molecular Therapy (2020) Vol. 28, Iss. 11, pp. 2320-2339
Open Access | Times Cited: 296

T Cell Dysfunction in Cancer Immunity and Immunotherapy
Anliang Xia, Yan Zhang, Xu Jiang, et al.
Frontiers in Immunology (2019) Vol. 10
Open Access | Times Cited: 292

Metabolic and epigenetic regulation of T-cell exhaustion
Fabien Franco, Alison Jaccard, Pedro Romero, et al.
Nature Metabolism (2020) Vol. 2, Iss. 10, pp. 1001-1012
Closed Access | Times Cited: 286

IL-18BP is a secreted immune checkpoint and barrier to IL-18 immunotherapy
Ting Zhou, William Damsky, Orr-El Weizman, et al.
Nature (2020) Vol. 583, Iss. 7817, pp. 609-614
Open Access | Times Cited: 282

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