Submitted:
23 September 2025
Posted:
24 September 2025
You are already at the latest version
Abstract

Keywords:
1. Introduction
2. Molecular Diagnostics and the Hallmarks of Cancer
3. Cell Intrinsic Molecular Mechanisms of NSCLC and Targeted Therapy
4. Cell Extrinsic Molecular Mechanisms of NSCLC and Immunotherapy
4.1. Immunotherapy in Cancer
4.2. Immune Subtypes in Cancer
4.3. Biomarkers for Immune Checkpoint Inhibition (ICI)
5. Solving the Challenge of the Complexity of Immune Response:
6. Computational Biology and Artificial Intelligence
7. Conclusion
Funding
Data Availability Statement
Acknowledgement
Conflict of Interest
References
- Hanahan. Hallmarks of cancer: the next generation.
- Hanahan, D. Hallmarks of cancer: new dimensions. Cancer Discov. 2022;12(1):31–46. [CrossRef]
- Network CGAR. Comprehensive genomic characterization of squamous cell lung cancers. Nature. 2012;489(7417):519.
- Weir BA, Woo MS, Getz G, Perner S, Ding L, Beroukhim R, et al. Characterizing the cancer genome in lung adenocarcinoma. Nature. 2007;450(7171):893–8. [CrossRef]
- Suster DI, Mino-Kenudson M. Molecular pathology of primary non-small cell lung cancer. Arch Med Res. 2020;51(8):784–98. [CrossRef]
- Herrera-Juárez M, Serrano-Gómez C, Bote-de-Cabo H, Paz-Ares L. Targeted therapy for lung cancer: Beyond EGFR and ALK. Cancer. 2023;129(12):1803–20. [CrossRef]
- Brambilla E, Gazdar A. Pathogenesis of lung cancer signaling pathways: roadmap for therapies. Eur Respir J Off J Eur Soc Clin Respir Physiol. 2009;33(6):1485. [CrossRef]
- Yuan M, Huang LL, Chen JH, Wu J, Xu Q. The emerging treatment landscape of targeted therapy in non-small-cell lung cancer. Signal Transduct Target Ther. 2019;4(1):61. [CrossRef]
- Hanahan D, Weinberg RA. Hallmarks of cancer: the next generation. cell. 2011;144(5):646–74.
- Malta TM, Noushmehr H, Network CGAR. The immune landscape of cancer. Immunity. 2018;48(4):812-830. e14.
- Papaioannou NE, Beniata OV, Vitsos P, Tsitsilonis O, Samara P. Harnessing the immune system to improve cancer therapy. Ann Transl Med. 2016;4(14):261. [CrossRef]
- Hanahan D, Weinberg RA. The hallmarks of cancer. cell. 2000;100(1):57–70.
- J Saller J, Boyle TA. Molecular Pathology of Lung Cancer. Cold Spring Harb Perspect Med. 2022 Mar 1;12(3):a037812.
- Mogi A, Kuwano H. TP53 mutations in nonsmall cell lung cancer. J Biomed Biotechnol. 2011;2011:583929.
- Du W, Searle JS. The rb pathway and cancer therapeutics. Curr Drug Targets. 2009 Jul;10(7):581–9. [CrossRef]
- Grigoraş ML, Arghirescu TS, Folescu R, Talpoş IC, Gîndac CM, Zamfir CL, et al. Expression of E-cadherin in lung carcinoma, other than those with small cells (NSCLC). Romanian J Morphol Embryol Rev Roum Morphol Embryol. 2017;58(4):1317–25.
- Partanen JI, Tervonen TA, Myllynen M, Lind E, Imai M, Katajisto P, et al. Tumor suppressor function of Liver kinase B1 (Lkb1) is linked to regulation of epithelial integrity. Proc Natl Acad Sci U S A. 2012 Feb 14;109(7):E388-397. [CrossRef]
- Larsen JE, Minna JD. Molecular biology of lung cancer: clinical implications. Clin Chest Med. 2011 Dec;32(4):703–40. [CrossRef]
- Ventura A, Kirsch DG, McLaughlin ME, Tuveson DA, Grimm J, Lintault L, et al. Restoration of p53 function leads to tumour regression in vivo. Nature. 2007;445(7128):661–5. [CrossRef]
- Puzio-Kuter AM, Xu L, McBrayer MK, Dominique R, Li HH, Fahr BJ, et al. Restoration of the Tumor Suppressor Function of Y220C-Mutant p53 by Rezatapopt, a Small-Molecule Reactivator. Cancer Discov. 2025 Jun 3;15(6):1159–79.
- Wang W, Albadari N, Du Y, Fowler JF, Sang HT, Xian W, et al. MDM2 Inhibitors for Cancer Therapy: The Past, Present, and Future. Pharmacol Rev. 2024 ;76(3):414–53. [CrossRef]
- Liu S, Yu J, Zhang H, Liu J. TP53 co-mutations in advanced EGFR-mutated non–small cell lung cancer: Prognosis and therapeutic strategy for cancer therapy. Front Oncol. 2022;12:860563. [CrossRef]
- Liu G, Pei F, Yang F, Li L, Amin AD, Liu S, et al. Role of Autophagy and Apoptosis in Non-Small-Cell Lung Cancer. Int J Mol Sci. 2017 Feb 10;18(2):367. [CrossRef]
- Xie C, Zhou X, Liang C, Li X, Ge M, Chen Y, et al. Apatinib triggers autophagic and apoptotic cell death via VEGFR2/STAT3/PD-L1 and ROS/Nrf2/p62 signaling in lung cancer. J Exp Clin Cancer Res. 2021;40(1):266. [CrossRef]
- Vogler M, Braun Y, Smith VM, Westhoff MA, Pereira RS, Pieper NM, et al. The BCL2 family: from apoptosis mechanisms to new advances in targeted therapy. Signal Transduct Target Ther. 2025 Mar 21;10(1):91. [CrossRef]
- Biswas U, Roy R, Ghosh S, Chakrabarti G. The interplay between autophagy and apoptosis: its implication in lung cancer and therapeutics. Cancer Lett. 2024 Mar 31;585:216662. [CrossRef]
- Li XQ, Cheng XJ, Wu J, Wu KF, Liu T. Targeted inhibition of the PI3K/AKT/mTOR pathway by (+)-anthrabenzoxocinone induces cell cycle arrest, apoptosis, and autophagy in non-small cell lung cancer. Cell Mol Biol Lett. 2024 Apr 23;29(1):58. [CrossRef]
- Ouellette MM, Wright WE, Shay JW. Targeting telomerase-expressing cancer cells. J Cell Mol Med. 2011;15(7):1433–42. [CrossRef]
- Vonderheide RH, Hahn WC, Schultze JL, Nadler LM. The telomerase catalytic subunit is a widely expressed tumor-associated antigen recognized by cytotoxic T lymphocytes. Immunity. 1999;10(6):673–9. [CrossRef]
- Imielinski M, Berger AH, Hammerman PS, Hernandez B, Pugh TJ, Hodis E, et al. Mapping the hallmarks of lung adenocarcinoma with massively parallel sequencing. Cell. 2012 Sep 14;150(6):1107–20. [CrossRef]
- Keung MYT, Wu Y, Vadgama JV. PARP Inhibitors as a Therapeutic Agent for Homologous Recombination Deficiency in Breast Cancers. J Clin Med. 2019 Mar 30;8(4):435. [CrossRef]
- Abkevich V, Timms KM, Hennessy BT, Potter J, Carey MS, Meyer LA, et al. Patterns of genomic loss of heterozygosity predict homologous recombination repair defects in epithelial ovarian cancer. Br J Cancer. 2012 Nov 6;107(10):1776–82. [CrossRef]
- Birkbak NJ, Wang ZC, Kim JY, Eklund AC, Li Q, Tian R, et al. Telomeric allelic imbalance indicates defective DNA repair and sensitivity to DNA-damaging agents. Cancer Discov. 2012 Apr;2(4):366–75.
- Popova T, Manié E, Rieunier G, Caux-Moncoutier V, Tirapo C, Dubois T, et al. Ploidy and large-scale genomic instability consistently identify basal-like breast carcinomas with BRCA1/2 inactivation. Cancer Res. 2012 Nov 1;72(21):5454–62.
- Passiglia F, Righi L, Bironzo P, Listì A, Farinea G, Capelletto E, et al. Niraparib plus Dostarlimab in Pleural Mesothelioma or Non-Small Cell Lung Cancer Harboring HRR Mutations: Interim Results of the UNITO-001 Phase II Prospective Trial. Clin Cancer Res Off J Am Assoc Cancer Res. 2024 Mar 1;30(5):959–64. [CrossRef]
- Valastyan S, Weinberg RA. Tumor metastasis: molecular insights and evolving paradigms. Cell. 2011 Oct 14;147(2):275–92. [CrossRef]
- Ye Y, Yu S, Guo T, Zhang S, Shen X, Han G. Epithelial-Mesenchymal Transition in Non-Small Cell Lung Cancer Management: Opportunities and Challenges. Biomolecules. 2024 Nov 28;14(12):1523. [CrossRef]
- Yao D, Dai C, Peng S. Mechanism of the mesenchymal-epithelial transition and its relationship with metastatic tumor formation. Mol Cancer Res MCR. 2011 Dec;9(12):1608–20. [CrossRef]
- Saman H, Raza SS, Uddin S, Rasul K. Inducing Angiogenesis, a Key Step in Cancer Vascularization, and Treatment Approaches. Cancers. 2020 ;12(5):1172. [CrossRef]
- Ngaha TYS, Zhilenkova AV, Essogmo FE, Uchendu IK, Abah MO, Fossa LT, et al. Angiogenesis in Lung Cancer: Understanding the Roles of Growth Factors. Cancers. 2023 Sep 20;15(18):4648. [CrossRef]
- Blasco, MA. Telomeres and human disease: ageing, cancer and beyond. Nat Rev Genet. 2005 Aug;6(8):611–22. [CrossRef]
- Vonderheide, RH. Telomerase as a universal tumor-associated antigen for cancer immunotherapy. Oncogene. 2002;21(4):674–9. [CrossRef]
- Yaswen P, MacKenzie KL, Keith WN, Hentosh P, Rodier F, Zhu J, et al. Therapeutic targeting of replicative immortality. Semin Cancer Biol. 2015 Dec;35 Suppl(Suppl):S104–28. [CrossRef]
- Alcolea MP, Alonso-Curbelo D, Ambrogio C, Bullman S, Correia AL, Ernst A, et al. Cancer hallmarks: piecing the puzzle together. Cancer Discov. 2024;14(4):674–82. [CrossRef]
- Faubert B, Solmonson A, DeBerardinis RJ. Metabolic reprogramming and cancer progression. Science. 2020 Apr 10;368(6487):eaaw5473.
- Teicher BA, Linehan WM, Helman LJ. Targeting cancer metabolism. Clin Cancer Res Off J Am Assoc Cancer Res. 2012 Oct 15;18(20):5537–45.
- Costa PM da S, Sales SLA, Pinheiro DP, Pontes LQ, Maranhão SS, Pessoa C do Ó, et al. Epigenetic reprogramming in cancer: From diagnosis to treatment. Front Cell Dev Biol. 2023;11:1116805.
- Lyko, F. The DNA methyltransferase family: a versatile toolkit for epigenetic regulation. Nat Rev Genet. 2018 Feb;19(2):81–92.
- Rothschild, SI. Epigenetic Therapy in Lung Cancer - Role of microRNAs. Front Oncol. 2013;3:158. [CrossRef]
- Zhang X, Li Y, Qi P, Ma Z. Biology of MiR-17-92 Cluster and Its Progress in Lung Cancer. Int J Med Sci. 2018;15(13):1443–8. [CrossRef]
- Munteanu R, Tomuleasa C, Iuga CA, Gulei D, Ciuleanu TE. Exploring Therapeutic Avenues in Lung Cancer: The Epigenetic Perspective. Cancers. 2023 Nov 13;15(22):5394. [CrossRef]
- Jin Y, Lu R, Liu F, Jiang G, Wang R, Zheng M. DNA methylation analysis in plasma for early diagnosis in lung adenocarcinoma. Medicine (Baltimore). 2024 Jul 12;103(28):e38867. [CrossRef]
- Serrano M, Lin AW, McCurrach ME, Beach D, Lowe SW. Oncogenic ras provokes premature cell senescence associated with accumulation of p53 and p16INK4a. Cell. 1997 Mar 7;88(5):593–602. [CrossRef]
- Wang L, Lankhorst L, Bernards R. Exploiting senescence for the treatment of cancer. Nat Rev Cancer. 2022;22(6):340–55. [CrossRef]
- Samaraweera L, Adomako A, Rodriguez-Gabin A, McDaid HM. A Novel Indication for Panobinostat as a Senolytic Drug in NSCLC and HNSCC. Sci Rep. 2017 ;7(1):1900. [CrossRef]
- Kulkarni P, Salgia R. Comprehending phenotypic plasticity in cancer and evolution. iScience. 2024 Mar 15;27(3):109308. [CrossRef]
- Shen S, Clairambault J. Cell plasticity in cancer cell populations. F1000Research. 2020;9:F1000 Faculty Rev-635.
- Quintanal-Villalonga, Á. An identity crisis for lung cancer cells. Sci Transl Med. 2024 Aug 14;16(760):eadp9616. [CrossRef]
- Xiong S, Wang D, Tang Y, Lu S, Huang L, Wu Z, et al. HIF1α and HIF2α regulate non-small-cell lung cancer dedifferentiation via expression of Sox2 and Oct4 under hypoxic conditions. Gene. 2023 ;863:147288. [CrossRef]
- Lin SC, Chou YT, Jiang SS, Chang JL, Chung CH, Kao YR, et al. Epigenetic switch between SOX2 and SOX9 regulates cancer cell plasticity. Cancer Res. 2016;76(23):7036–48.
- Yuan P, Kadara H, Behrens C, Tang X, Woods D, Solis LM, et al. Sex determining region Y-Box 2 (SOX2) is a potential cell-lineage gene highly expressed in the pathogenesis of squamous cell carcinomas of the lung. PloS One. 2010;5(2):e9112. [CrossRef]
- Yuan S, Almagro J, Fuchs E. Beyond genetics: driving cancer with the tumour microenvironment behind the wheel. Nat Rev Cancer. 2024 Apr;24(4):274–86. [CrossRef]
- Coulton A, Murai J, Qian D, Thakkar K, Lewis CE, Litchfield K. Using a pan-cancer atlas to investigate tumour associated macrophages as regulators of immunotherapy response. Nat Commun. 2024;15(1):5665. [CrossRef]
- Ye X, Tam WL, Shibue T, Kaygusuz Y, Reinhardt F, Ng Eaton E, et al. Distinct EMT programs control normal mammary stem cells and tumour-initiating cells. Nature. 2015;525(7568):256–60. [CrossRef]
- Tsay JCJ, Wu BG, Badri MH, Clemente JC, Shen N, Meyn P, et al. Airway Microbiota Is Associated with Upregulation of the PI3K Pathway in Lung Cancer. Am J Respir Crit Care Med. 2018 Nov 1;198(9):1188–98. [CrossRef]
- Pleguezuelos-Manzano C, Puschhof J, Rosendahl Huber A, van Hoeck A, Wood HM, Nomburg J, et al. Mutational signature in colorectal cancer caused by genotoxic pks+ E. coli. Nature. 2020;580(7802):269–73. [CrossRef]
- Salvi PS, Cowles RA. Butyrate and the Intestinal Epithelium: Modulation of Proliferation and Inflammation in Homeostasis and Disease. Cells. 2021 Jul 14;10(7):1775. [CrossRef]
- Grenda A, Iwan E, Kuźnar-Kamińska B, Bomba A, Bielińska K, Krawczyk P, et al. Gut microbial predictors of first-line immunotherapy efficacy in advanced NSCLC patients. Sci Rep. 2025 Feb 20;15(1):6139. [CrossRef]
- Zitvogel L, Tesniere A, Kroemer G. Cancer despite immunosurveillance: immunoselection and immunosubversion. Nat Rev Immunol. 2006;6(10):715–27. [CrossRef]
- Wang J, Li D, Cang H, Guo B. Crosstalk between cancer and immune cells: Role of tumor-associated macrophages in the tumor microenvironment. Cancer Med. 2019 Aug;8(10):4709–21. [CrossRef]
- Owen KL, Brockwell NK, Parker BS. JAK-STAT Signaling: A Double-Edged Sword of Immune Regulation and Cancer Progression. Cancers. 2019 Dec 12;11(12):2002. [CrossRef]
- Mellman I, Chen DS, Powles T, Turley SJ. The cancer-immunity cycle: Indication, genotype, and immunotype. Immunity. 2023 Oct 10;56(10):2188–205. [CrossRef]
- Kythreotou A, Siddique A, Mauri FA, Bower M, Pinato DJ. PD-L1. J Clin Pathol. 2018;71(3):189–94.
- Munari E, Mariotti FR, Quatrini L, Bertoglio P, Tumino N, Vacca P, et al. PD-1/PD-L1 in cancer: pathophysiological, diagnostic and therapeutic aspects. Int J Mol Sci. 2021;22(10):5123. [CrossRef]
- Zhang H, Dai Z, Wu W, Wang Z, Zhang N, Zhang L, et al. Regulatory mechanisms of immune checkpoints PD-L1 and CTLA-4 in cancer. J Exp Clin Cancer Res CR. 2021 Jun 4;40(1):184. [CrossRef]
- Dagher OK, Schwab RD, Brookens SK, Posey AD. Advances in cancer immunotherapies. Cell. 2023;186(8):1814-1814. e1.
- Nicolo E, Giugliano F, Ascione L, Tarantino P, Corti C, Tolaney SM, et al. Combining antibody-drug conjugates with immunotherapy in solid tumors: current landscape and future perspectives. Cancer Treat Rev. 2022;106:102395. [CrossRef]
- Waldmann, TA. Cytokines in cancer immunotherapy. Cold Spring Harb Perspect Biol. 2018;10(12):a028472.
- Li Z, Feiyue Z, Gaofeng L, Haifeng L. Lung cancer and oncolytic virotherapy——enemy’s enemy. Transl Oncol. 2023;27:101563.
- Andtbacka RH, Kaufman HL, Collichio F, Amatruda T, Senzer N, Chesney J, et al. Talimogene laherparepvec improves durable response rate in patients with advanced melanoma. J Clin Oncol. 2015;33(25):2780–8. [CrossRef]
- Galluzzi L, Humeau J, Buqué A, Zitvogel L, Kroemer G. Immunostimulation with chemotherapy in the era of immune checkpoint inhibitors. Nat Rev Clin Oncol. 2020;17(12):725–41. [CrossRef]
- Rodriguez-Ruiz ME, Vitale I, Harrington KJ, Melero I, Galluzzi L. Immunological impact of cell death signaling driven by radiation on the tumor microenvironment. Nat Immunol. 2020;21(2):120–34. [CrossRef]
- Pozzi C, Cuomo A, Spadoni I, Magni E, Silvola A, Conte A, et al. The EGFR-specific antibody cetuximab combined with chemotherapy triggers immunogenic cell death. Nat Med. 2016;22(6):624–31. [CrossRef]
- Xu Y, Su GH, Ma D, Xiao Y, Shao ZM, Jiang YZ. Technological advances in cancer immunity: from immunogenomics to single-cell analysis and artificial intelligence. Signal Transduct Target Ther. 2021;6(1):312. [CrossRef]
- Thorsson V, Gibbs DL, Brown SD, Wolf D, Bortone DS, Ou Yang TH, et al. The Immune Landscape of Cancer. Immunity. 2018 Apr 17;48(4):812-830.e14.
- Hu Y, Sun H, Shi W, Chen C, Wu X, Jiang Y, et al. Immunogram defines four cancer-immunity cycle phenotypes with distinct clonal selection patterns across solid tumors. J Transl Med. 2024;22(1):69. [CrossRef]
- Seo JS, Kim A, Shin JY, Kim YT. Comprehensive analysis of the tumor immune micro-environment in non-small cell lung cancer for efficacy of checkpoint inhibitor. Sci Rep. 2018;8(1):14576. [CrossRef]
- Wang Q, Li M, Yang M, Yang Y, Song F, Zhang W, et al. Analysis of immune-related signatures of lung adenocarcinoma identified two distinct subtypes: implications for immune checkpoint blockade therapy. Aging. 2020 Feb 24;12(4):3312–39. [CrossRef]
- Wang C, Yu Q, Song T, Wang Z, Song L, Yang Y, et al. The heterogeneous immune landscape between lung adenocarcinoma and squamous carcinoma revealed by single-cell RNA sequencing. Signal Transduct Target Ther. 2022;7(1):289. [CrossRef]
- Haslam A, Prasad V. Estimation of the Percentage of US Patients With Cancer Who Are Eligible for and Respond to Checkpoint Inhibitor Immunotherapy Drugs. JAMA Netw Open. 2019 ;2(5):e192535. [CrossRef]
- Shen P, Han L, Ba X, Qin K, Tu S. Hyperprogressive Disease in Cancers Treated With Immune Checkpoint Inhibitors. Front Pharmacol. 2021;12:678409. [CrossRef]
- Yamaguchi H, Hsu JM, Sun L, Wang SC, Hung MC. Advances and prospects of biomarkers for immune checkpoint inhibitors. Cell Rep Med. 2024 Jul 16;5(7):101621. [CrossRef]
- Huang L, Li Y, Zhang C, Jiang A, Zhu L, Mou W, et al. Microbiome meets immunotherapy: unlocking the hidden predictors of immune checkpoint inhibitors. NPJ Biofilms Microbiomes. 2025 Sep 2;11(1):180.
- Hirsch FR, McElhinny A, Stanforth D, Ranger-Moore J, Jansson M, Kulangara K, et al. PD-L1 immunohistochemistry assays for lung cancer: results from phase 1 of the blueprint PD-L1 IHC assay comparison project. J Thorac Oncol. 2017;12(2):208–22.
- Tsao MS, Kerr KM, Kockx M, Beasley MB, Borczuk AC, Botling J, et al. PD-L1 Immunohistochemistry Comparability Study in Real-Life Clinical Samples: Results of Blueprint Phase 2 Project. J Thorac Oncol Off Publ Int Assoc Study Lung Cancer. 2018 Sep;13(9):1302–11. [CrossRef]
- Hendry S, Byrne DJ, Wright GM, Young RJ, Sturrock S, Cooper WA, et al. Comparison of Four PD-L1 Immunohistochemical Assays in Lung Cancer. J Thorac Oncol Off Publ Int Assoc Study Lung Cancer. 2018 Mar;13(3):367–76. [CrossRef]
- Adam J, Le Stang N, Rouquette I, Cazes A, Badoual C, Pinot-Roussel H, et al. Multicenter harmonization study for PD-L1 IHC testing in non-small-cell lung cancer. Ann Oncol Off J Eur Soc Med Oncol. 2018 Apr 1;29(4):953–8. [CrossRef]
- Fumet JD, Truntzer C, Yarchoan M, Ghiringhelli F. Tumour mutational burden as a biomarker for immunotherapy: Current data and emerging concepts. Eur J Cancer. 2020;131:40–50. [CrossRef]
- Tran E, Ahmadzadeh M, Lu YC, Gros A, Turcotte S, Robbins PF, et al. Immunogenicity of somatic mutations in human gastrointestinal cancers. Science. 2015 Dec 11;350(6266):1387–90. [CrossRef]
- Jardim DL, Goodman A, de Melo Gagliato D, Kurzrock R. The challenges of tumor mutational burden as an immunotherapy biomarker. Cancer Cell. 2021;39(2):154–73.
- Sha D, Jin Z, Budczies J, Kluck K, Stenzinger A, Sinicrope FA. Tumor Mutational Burden as a Predictive Biomarker in Solid Tumors. Cancer Discov. 2020 Dec;10(12):1808–25.
- Baretti M, Le DT. DNA mismatch repair in cancer. Pharmacol Ther. 2018 Sep;189:45–62. [CrossRef]
- Luchini C, Bibeau F, Ligtenberg MJL, Singh N, Nottegar A, Bosse T, et al. ESMO recommendations on microsatellite instability testing for immunotherapy in cancer, and its relationship with PD-1/PD-L1 expression and tumour mutational burden: a systematic review-based approach. Ann Oncol. 2019;30(8):1232–43. [CrossRef]
- Bartley AN, Mills AM, Konnick E, Overman M, Ventura CB, Souter L, et al. Mismatch repair and microsatellite instability testing for immune checkpoint inhibitor therapy: guideline from the College of American Pathologists in collaboration with the Association for Molecular Pathology and Fight Colorectal Cancer. Arch Pathol Lab Med. 2022;146(10):1194–210. [CrossRef]
- Goodman AM, Castro A, Pyke RM, Okamura R, Kato S, Riviere P, et al. MHC-I genotype and tumor mutational burden predict response to immunotherapy. Genome Med. 2020 ;12(1):45. [CrossRef]
- Hosoi A, Takeda K, Nagaoka K, Iino T, Matsushita H, Ueha S, et al. Increased diversity with reduced “diversity evenness” of tumor infiltrating T-cells for the successful cancer immunotherapy. Sci Rep. 2018 Jan 18;8(1):1058. [CrossRef]
- Blank CU, Haanen JB, Ribas A, Schumacher TN. The “cancer immunogram.” Science. 2016;352(6286):658–60.
- Farzan, R. Artificial intelligence in Immuno-genetics. Bioinformation. 2024;20(1):29–35. [CrossRef]
- Smieja, J. Mathematical Modeling Support for Lung Cancer Therapy-A Short Review. Int J Mol Sci. 2023 Sep 25;24(19):14516. [CrossRef]
- Maleki F, Ovens K, Hogan DJ, Kusalik AJ. Gene Set Analysis: Challenges, Opportunities, and Future Research. Front Genet. 2020;11:654. [CrossRef]
- Wang C, Li J, Chen J, Wang Z, Zhu G, Song L, et al. Multi-omics analyses reveal biological and clinical insights in recurrent stage I non-small cell lung cancer. Nat Commun. 2025 Feb 10;16(1):1477.
- Buosi S, Timilsina M, Torrente M, Provencio M, Fey D, Nováček V. Boosting predictive models and augmenting patient data with relevant genomic and pathway information. Comput Biol Med. 2024 May;174:108398.




| Category | Hallmark / Enabling Characteristic | Examples of Validated/Potential Biomarkers in NSCLC | Examples of Pathways in NSCLC | Validated or potential Detection Assay |
|---|---|---|---|---|
| Core Hallmarks | Sustaining Proliferative Signaling | EGFR, KRAS,BRAF,MET, CCND1, ALK, NTRK, ROS1, RET etc |
RAS-RAF-MAPK pathway PI3K-Akt and mTOR pathway |
Next Generation Sequencing (NGS) |
| | Evading Growth Suppressors | TP53, RB | PI3K-Akt and mTOR pathway BCL2, |
Next Generation Sequencing |
| | Resisting Cell Death | TP53, Noxa,Puma,MYC | Autophagic and apoptotic pathways | Gene Expression Profiling, NGS |
| | Enabling Replicative Immortality | Telomerase, hTERT expression, TERC | TERT regulation, MYC Pathways, Wnt/Beta catenin, mTOR pathway, P53 | Telomerase Activity Assay (TRAP) Telomerase length assays |
| | Inducing/Accessing Vasculature | VEGFR,FGF,EGF, HIF-1alpha | PI3K/AKT, RAS/RAF/MEK/ERK pathways | Gene Expression profiling |
| | Activating Invasion and Metastasis | COX2, LKB1, WNT,NOTCH, TGFBeta | WNT, NOTCH, JAK-STAT pathways | Gene Expression profiling |
| | Deregulating cellular energetics | HIF-1alpha, MYC, p53, SREBP1 | HIF-1alpha, mTOR, AMPK,MYC, mitochondrial reprogramming | Gene Expression profiling, ATP assays, glucose uptake assays, lactate production assays |
| | Avoiding Immune Destruction | MSI, dMMR, TMB, PDL-1, | PD-L1 pathways, JAK/STAT pathways | Immunohistochemistry, Flow cytometry, Single cell sequencing |
| Enabling Characteristics | Genome Instability and Mutation | Copy number alterations, Amplification, karyotypic instability,TP53 | DNA repair pathways e.g.HRD repair pathway P53 pathways, RB |
aCGH, SNP arrays, karyotyping, HRD testing |
| | Tumor-Promoting Inflammation | IL-1, TNF-alpha, macrophage phenotyping | NF-kBeta, STAT3 pathways | Flow cytometry, IHC, scRNA Sequencing |
| Emerging Hallmarks | Unlocking Phenotypic Plasticity | HIF1alpha, HIF2 alpha, SOX2, Oct4 | Cell cycle/DNA damage repair pathways, PRC2 complex, AKT pathways | IHC, methylation profiling, NGS, Gene Expression profiling |
| | Nonmutational Epigenetic Reprogramming | DNA methylation, miRNA, DNMT1/3A/3B, HDACs, EZH2 | DNA methylation,Histone Acetylation, chromatin remodeling complex | Methylation profiling, Methylation sequencing |
| | Polymorphic Microbiomes | Streptococcus, Veillonella, composition of intestinal flora | PI3K/AKT pathway, MAPK pathway | 16s RNA sequencing, NGS |
| | Senescent Cells | Senescence-Associated B-galactosidase, DDR markers, SASP markers e.g. cytokines | DDR, cell cycle inhibitors, MHC classs II genes | Gene expression profiling, ICH,SASP profiling, chromatic analysis |
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