{"PubmedArticle":{"MedlineCitation":{"@attributes":{"Status":"PubMed-not-MEDLINE","Owner":"NLM"},"PMID":{"@attributes":{"Version":"1"},"@text":"41919231"},"DateCompleted":{"Year":"2026","Month":"04","Day":"01"},"DateRevised":{"Year":"2026","Month":"04","Day":"01"},"Article":{"@attributes":{"PubModel":"Electronic-eCollection"},"Journal":{"ISSN":{"@attributes":{"IssnType":"Print"},"@text":"1663-9812"},"JournalIssue":{"@attributes":{"CitedMedium":"Print"},"Volume":"17","PubDate":{"Year":"2026"}},"Title":"Frontiers in pharmacology","ISOAbbreviation":"Front Pharmacol"},"ArticleTitle":"The rise and evolution of cancer mechanobiology: a bibliometric trajectory of three decades of research.","Pagination":{"StartPage":"1699709","MedlinePgn":"1699709"},"ELocationID":[{"@attributes":{"EIdType":"pii","ValidYN":"Y"},"@text":"1699709"},{"@attributes":{"EIdType":"doi","ValidYN":"Y"},"@text":"10.3389\/fphar.2026.1699709"}],"Abstract":{"AbstractText":[{"@attributes":{"Label":"BACKGROUND","NlmCategory":"UNASSIGNED"},"@text":"A growing body of research indicates that mechanobiology plays a pivotal role in cancer pathogenesis and holds considerable therapeutic potential. However, a comprehensive bibliometric analysis of this interdisciplinary field is lacking, partly due to challenges in cross-database data integration. In this study, we aim to construct a systematic knowledge map of cancer mechanobiology to delineate its research progress, core structure, and emerging trends."},{"@attributes":{"Label":"METHODS","NlmCategory":"UNASSIGNED"},"@text":"In this study, we integrated 1,947 publications from the Web of Science (WoS) Core Collection and Scopus (1976-2025). To address cross-database heterogeneity, we developed a novel, customized, multi-stage data-standardization workflow combining a bespoke Python parsing engine with fuzzy string matching algorithms and manual verification. The unified dataset was analyzed using CiteSpace, VOSviewer, and Bibliometrix."},{"@attributes":{"Label":"RESULTS","NlmCategory":"UNASSIGNED"},"@text":"The United States and China are the most prolific countries, while the University of California system is the most productive institution. Valerie M. Weaver is the most published author, while Matthew J. Paszek is the most co-cited, indicating foundational influence. Cell is the most influential journal based on co-citation frequency. Keyword analysis reveals a thematic evolution from \"extracellular matrix stiffness\" and \"mechanotransduction\" to frontier areas such as \"cancer immunotherapy\" and \"YAP signaling protein.\""},{"@attributes":{"Label":"CONCLUSION","NlmCategory":"UNASSIGNED"},"@text":"In this study, we construct a comprehensive bibliometric map of cancer mechanobiology. Our findings elucidate the developmental trajectory and research hotspots of the field, providing a data-driven reference for future investigations, international collaborations, and clinical translation of physical oncology."}],"CopyrightInformation":"Copyright \u00a9 2026 Liu, Liu, Wang, Han and Dang."},"AuthorList":{"@attributes":{"CompleteYN":"Y"},"Author":[{"@attributes":{"ValidYN":"Y","EqualContrib":"Y"},"LastName":"Liu","ForeName":"Boyan","Initials":"B","AffiliationInfo":[{"Affiliation":"Ninth Hospital of Xi'an, Xi'an, China."},{"Affiliation":"Hospital of Chengdu University of Traditional Chinese Medicine, Chengdu, China."}]},{"@attributes":{"ValidYN":"Y","EqualContrib":"Y"},"LastName":"Liu","ForeName":"Xufeng","Initials":"X","AffiliationInfo":[{"Affiliation":"Ninth Hospital of Xi'an, Xi'an, China."}]},{"@attributes":{"ValidYN":"Y"},"LastName":"Wang","ForeName":"Yue","Initials":"Y","AffiliationInfo":[{"Affiliation":"Shanxi Academy of Traditional Chinese Medicine, Xi'an, China."}]},{"@attributes":{"ValidYN":"Y"},"LastName":"Han","ForeName":"Xiao","Initials":"X","AffiliationInfo":[{"Affiliation":"Ninth Hospital of Xi'an, Xi'an, China."}]},{"@attributes":{"ValidYN":"Y"},"LastName":"Dang","ForeName":"Xiyu","Initials":"X","AffiliationInfo":[{"Affiliation":"Ninth Hospital of Xi'an, Xi'an, China."}]}]},"Language":["eng"],"PublicationTypeList":{"PublicationType":[{"@attributes":{"UI":"D016428"},"@text":"Journal Article"},{"@attributes":{"UI":"D000078182"},"@text":"Systematic Review"}]},"ArticleDate":[{"@attributes":{"DateType":"Electronic"},"Year":"2026","Month":"03","Day":"16"}]},"MedlineJournalInfo":{"Country":"Switzerland","MedlineTA":"Front Pharmacol","NlmUniqueID":"101548923","ISSNLinking":"1663-9812"},"KeywordList":[{"@attributes":{"Owner":"NOTNLM"},"Keyword":[{"@attributes":{"MajorTopicYN":"N"},"@text":"bibliometric analysis (BA)"},{"@attributes":{"MajorTopicYN":"N"},"@text":"cancer immunotherapy"},{"@attributes":{"MajorTopicYN":"N"},"@text":"cancer mechanobiology"},{"@attributes":{"MajorTopicYN":"N"},"@text":"extracellular matrix"},{"@attributes":{"MajorTopicYN":"N"},"@text":"knowledge map"},{"@attributes":{"MajorTopicYN":"N"},"@text":"tumor microenvironment"}]}],"CoiStatement":"The author(s) declared that this work was conducted in the absence of any commercial or financial relationships that could be construed as a potential conflict of interest."},"PubmedData":{"History":{"PubMedPubDate":[{"@attributes":{"PubStatus":"received"},"Year":"2025","Month":"9","Day":"5"},{"@attributes":{"PubStatus":"revised"},"Year":"2026","Month":"2","Day":"24"},{"@attributes":{"PubStatus":"accepted"},"Year":"2026","Month":"2","Day":"28"},{"@attributes":{"PubStatus":"medline"},"Year":"2026","Month":"4","Day":"1","Hour":"7","Minute":"5"},{"@attributes":{"PubStatus":"pubmed"},"Year":"2026","Month":"4","Day":"1","Hour":"7","Minute":"4"},{"@attributes":{"PubStatus":"entrez"},"Year":"2026","Month":"4","Day":"1","Hour":"4","Minute":"22"},{"@attributes":{"PubStatus":"pmc-release"},"Year":"2026","Month":"3","Day":"16"}]},"PublicationStatus":"epublish","ArticleIdList":{"ArticleId":[{"@attributes":{"IdType":"pubmed"},"@text":"41919231"},{"@attributes":{"IdType":"pmc"},"@text":"PMC13033733"},{"@attributes":{"IdType":"doi"},"@text":"10.3389\/fphar.2026.1699709"},{"@attributes":{"IdType":"pii"},"@text":"1699709"}]},"ReferenceList":[{"Reference":[{"Citation":"Abdulhayoglu M. A., Thijs B. (2018). Use of locality sensitive hashing (LSH) algorithm to match web of science and scopus. Scientometrics 116 (2), 1229\u20131245. 10.1007\/s11192-017-2569-6","ArticleIdList":{"ArticleId":[{"@attributes":{"IdType":"doi"},"@text":"10.1007\/s11192-017-2569-6"}]}},{"Citation":"Aksnes D., Sivertsen G. (2019). A criteria-based assessment of the coverage of scopus and web of science. J. Data Inf. Sci. 4, 1\u201321. 10.2478\/jdis-2019-0001","ArticleIdList":{"ArticleId":[{"@attributes":{"IdType":"doi"},"@text":"10.2478\/jdis-2019-0001"}]}},{"Citation":"Angeli S., Neophytou C., Kalli M., Stylianopoulos T., Mpekris F. (2025). The mechanopathology of the tumor microenvironment: detection techniques, molecular mechanisms and therapeutic opportunities. Front. Cell Dev. Biol. 13, 1564626. 10.3389\/fcell.2025.1564626","ArticleIdList":{"ArticleId":[{"@attributes":{"IdType":"doi"},"@text":"10.3389\/fcell.2025.1564626"},{"@attributes":{"IdType":"pmc"},"@text":"PMC11958720"},{"@attributes":{"IdType":"pubmed"},"@text":"40171226"}]}},{"Citation":"Bernards R., Jaffee E., Joyce J. A., Lowe S. W., Mardis E. R., Morrison S. J., et al. (2020). A roadmap for the next decade in cancer research. Nat. Cancer 1 (1), 12\u201317. 10.1038\/s43018-019-0015-9","ArticleIdList":{"ArticleId":[{"@attributes":{"IdType":"doi"},"@text":"10.1038\/s43018-019-0015-9"},{"@attributes":{"IdType":"pubmed"},"@text":"35121845"}]}},{"Citation":"Binnig G., Quate C. F., Gerber C. (1986). Atomic force microscope. Phys. Rev. Lett. 56 (9), 930\u2013933. 10.1103\/PhysRevLett.56.930","ArticleIdList":{"ArticleId":[{"@attributes":{"IdType":"doi"},"@text":"10.1103\/PhysRevLett.56.930"},{"@attributes":{"IdType":"pubmed"},"@text":"10033323"}]}},{"Citation":"Bissell M. J., Hall H. G., Parry G. (1982). How does the extracellular matrix direct gene expression? J. Theor. Biol. 99 (1), 31\u201368. 10.1016\/0022-5193(82)90388-5","ArticleIdList":{"ArticleId":[{"@attributes":{"IdType":"doi"},"@text":"10.1016\/0022-5193(82)90388-5"},{"@attributes":{"IdType":"pubmed"},"@text":"6892044"}]}},{"Citation":"Bornmann L., Wagner C., Leydesdorff L. (2014). BRICS countries and scientific excellence: a bibliometric analysis of most frequently-cited papers. J. Am. Soc. Inf. Sci. Technol. 66, 1507\u20131513. 10.1002\/asi.23333","ArticleIdList":{"ArticleId":[{"@attributes":{"IdType":"doi"},"@text":"10.1002\/asi.23333"}]}},{"Citation":"Cambi A., Ventre M. (2022). Collagen-based biomimetic systems to study the biophysical tumour microenvironment. Cancers (Basel) 14 (23), 5939. 10.3390\/cancers14235939","ArticleIdList":{"ArticleId":[{"@attributes":{"IdType":"doi"},"@text":"10.3390\/cancers14235939"},{"@attributes":{"IdType":"pmc"},"@text":"PMC9739814"},{"@attributes":{"IdType":"pubmed"},"@text":"36497421"}]}},{"Citation":"Chaudhuri P. K., Low B. C., Lim C. T. (2018). Mechanobiology of tumor growth. Chem. Rev. 118 (14), 6499\u20136515. 10.1021\/acs.chemrev.8b00042","ArticleIdList":{"ArticleId":[{"@attributes":{"IdType":"doi"},"@text":"10.1021\/acs.chemrev.8b00042"},{"@attributes":{"IdType":"pubmed"},"@text":"29927236"}]}},{"Citation":"Chaudhuri O., Cooper-White J., Janmey P. A., Mooney D. J., Shenoy V. B. (2020). Effects of extracellular matrix viscoelasticity on cellular behaviour. Nature 584 (7822), 535\u2013546. 10.1038\/s41586-020-2612-2","ArticleIdList":{"ArticleId":[{"@attributes":{"IdType":"doi"},"@text":"10.1038\/s41586-020-2612-2"},{"@attributes":{"IdType":"pmc"},"@text":"PMC7676152"},{"@attributes":{"IdType":"pubmed"},"@text":"32848221"}]}},{"Citation":"Chen C. (2006). CiteSpace II: detecting and visualizing emerging trends and transient patterns in scientific literature. J. Am. Soc. Inf. Sci. Technol. 57 (3), 359\u2013377. 10.1002\/asi.20317","ArticleIdList":{"ArticleId":[{"@attributes":{"IdType":"doi"},"@text":"10.1002\/asi.20317"}]}},{"Citation":"Chen M., Zhang Y., Zhou P., Liu X., Zhao H., Zhou X., et al. (2020). Substrate stiffness modulates bone marrow-derived macrophage polarization through NF-\u03baB signaling pathway. Bioact. Mater 5 (4), 880\u2013890. 10.1016\/j.bioactmat.2020.05.004","ArticleIdList":{"ArticleId":[{"@attributes":{"IdType":"doi"},"@text":"10.1016\/j.bioactmat.2020.05.004"},{"@attributes":{"IdType":"pmc"},"@text":"PMC7332470"},{"@attributes":{"IdType":"pubmed"},"@text":"32637751"}]}},{"Citation":"Dai M., Yuan X., Sun C., Han R., Bj\u00f6rkholm M., Kong F., et al. (2025). The ETS transcription factor GABPA inhibits bladder cancer aggressiveness by repressing extracellular matrix deposition and mechanotransduction signaling. Cell Death Dis. 16 (1), 618. 10.1038\/s41419-025-07935-z","ArticleIdList":{"ArticleId":[{"@attributes":{"IdType":"doi"},"@text":"10.1038\/s41419-025-07935-z"},{"@attributes":{"IdType":"pmc"},"@text":"PMC12354829"},{"@attributes":{"IdType":"pubmed"},"@text":"40813762"}]}},{"Citation":"Dallavalasa S., Beeraka N. M., Basavaraju C. G., Tulimilli S. V., Sadhu S. P., Rajesh K., et al. (2021). The role of tumor associated macrophages (TAMs) in cancer progression, chemoresistance, angiogenesis and metastasis - current status. Curr. Med. Chem. 28 (39), 8203\u20138236. 10.2174\/0929867328666210720143721","ArticleIdList":{"ArticleId":[{"@attributes":{"IdType":"doi"},"@text":"10.2174\/0929867328666210720143721"},{"@attributes":{"IdType":"pubmed"},"@text":"34303328"}]}},{"Citation":"de Visser K. E., Joyce J. A. (2023). The evolving tumor microenvironment: from cancer initiation to metastatic outgrowth. Cancer Cell 41 (3), 374\u2013403. 10.1016\/j.ccell.2023.02.016","ArticleIdList":{"ArticleId":[{"@attributes":{"IdType":"doi"},"@text":"10.1016\/j.ccell.2023.02.016"},{"@attributes":{"IdType":"pubmed"},"@text":"36917948"}]}},{"Citation":"Dombroski J. A., Hope J. M., Sarna N. S., King M. R. (2021). Channeling the force: piezo1 mechanotransduction in cancer metastasis. Cells 10 (11), 2815. 10.3390\/cells10112815","ArticleIdList":{"ArticleId":[{"@attributes":{"IdType":"doi"},"@text":"10.3390\/cells10112815"},{"@attributes":{"IdType":"pmc"},"@text":"PMC8616475"},{"@attributes":{"IdType":"pubmed"},"@text":"34831037"}]}},{"Citation":"Dong D.-L., Zhou Y.-Y., Jin G. Z. (2024a). Trends and hotspots in mechanobiology: a bibliometric analysis from 2010 to 2024. Preprints. 10.20944\/preprints202411.0860.v1","ArticleIdList":{"ArticleId":[{"@attributes":{"IdType":"doi"},"@text":"10.20944\/preprints202411.0860.v1"}]}},{"Citation":"Dong Y., Lu M., Yin Y., Wang C., Dai N. (2024b). Tumor biomechanics-inspired future medicine. Cancers (Basel) 16 (23), 4107. 10.3390\/cancers16234107","ArticleIdList":{"ArticleId":[{"@attributes":{"IdType":"doi"},"@text":"10.3390\/cancers16234107"},{"@attributes":{"IdType":"pmc"},"@text":"PMC11640100"},{"@attributes":{"IdType":"pubmed"},"@text":"39682291"}]}},{"Citation":"Dupont S., Wickstr\u00f6m S. A. (2022). Mechanical regulation of chromatin and transcription. Nat. Rev. Genet. 23 (10), 624\u2013643. 10.1038\/s41576-022-00493-6","ArticleIdList":{"ArticleId":[{"@attributes":{"IdType":"doi"},"@text":"10.1038\/s41576-022-00493-6"},{"@attributes":{"IdType":"pubmed"},"@text":"35606569"}]}},{"Citation":"Dupont S., Morsut L., Aragona M., Enzo E., Giulitti S., Cordenonsi M., et al. (2011). Role of YAP\/TAZ in mechanotransduction. Nature 474 (7350), 179\u2013183. 10.1038\/nature10137","ArticleIdList":{"ArticleId":[{"@attributes":{"IdType":"doi"},"@text":"10.1038\/nature10137"},{"@attributes":{"IdType":"pubmed"},"@text":"21654799"}]}},{"Citation":"Engler A. J., Sen S., Sweeney H. L., Discher D. E. (2006). Matrix elasticity directs stem cell lineage specification. Cell 126 (4), 677\u2013689. 10.1016\/j.cell.2006.06.044","ArticleIdList":{"ArticleId":[{"@attributes":{"IdType":"doi"},"@text":"10.1016\/j.cell.2006.06.044"},{"@attributes":{"IdType":"pubmed"},"@text":"16923388"}]}},{"Citation":"Ezeobidi E. I., Truszkowska A. (2025). Modeling the dynamics of circulating tumor cell clusters inside a microfluidic channel. Biomicrofluidics 19 (1), 014103. 10.1063\/5.0249165","ArticleIdList":{"ArticleId":[{"@attributes":{"IdType":"doi"},"@text":"10.1063\/5.0249165"},{"@attributes":{"IdType":"pmc"},"@text":"PMC11821273"},{"@attributes":{"IdType":"pubmed"},"@text":"39949346"}]}},{"Citation":"Finger A. M., Hendley A. M., Figueroa D., Gonzalez H., Weaver V. M. (2025). Tissue mechanics in tumor heterogeneity and aggression. Trends Cancer 11 (8), 806\u2013824. 10.1016\/j.trecan.2025.04.004","ArticleIdList":{"ArticleId":[{"@attributes":{"IdType":"doi"},"@text":"10.1016\/j.trecan.2025.04.004"},{"@attributes":{"IdType":"pmc"},"@text":"PMC12350075"},{"@attributes":{"IdType":"pubmed"},"@text":"40307158"}]}},{"Citation":"Franceschini F., Maisano D., Mastrogiacomo L. (2016). Empirical analysis and classification of database errors in scopus and web of science. J. Inf. 10 (4), 933\u2013953. 10.1016\/j.joi.2016.07.003","ArticleIdList":{"ArticleId":[{"@attributes":{"IdType":"doi"},"@text":"10.1016\/j.joi.2016.07.003"}]}},{"Citation":"Fung Y. C. (2013). Biomechanics: motion, flow, stress, and growth. New York: Springer."},{"Citation":"Gajda A. M., Rodr\u00edguez-L\u00f3pez R., Er E. E. (2025). Targeting cancer cell stiffness and metastasis with clinical therapeutics. Clin. Exp. Metastasis 42 (4), 34. 10.1007\/s10585-025-10353-2","ArticleIdList":{"ArticleId":[{"@attributes":{"IdType":"doi"},"@text":"10.1007\/s10585-025-10353-2"},{"@attributes":{"IdType":"pmc"},"@text":"PMC12159105"},{"@attributes":{"IdType":"pubmed"},"@text":"40498131"}]}},{"Citation":"Graciotti M., Kandalaft L. E. (2025). Vaccines for cancer prevention: exploring opportunities and navigating challenges. Nat. Rev. Drug Discov. 24 (2), 134\u2013150. 10.1038\/s41573-024-01081-5","ArticleIdList":{"ArticleId":[{"@attributes":{"IdType":"doi"},"@text":"10.1038\/s41573-024-01081-5"},{"@attributes":{"IdType":"pubmed"},"@text":"39622986"}]}},{"Citation":"Guo S. B., Liu D. Y., Fang X. J., Meng Y., Zhou Z. Z., Li J., et al. (2025a). Current concerns and future directions of large language model chatGPT in medicine: a machine-learning-driven global-scale bibliometric analysis. Int. J. Surg. 112, 2805\u20132822. 10.1097\/js9.0000000000003668","ArticleIdList":{"ArticleId":[{"@attributes":{"IdType":"doi"},"@text":"10.1097\/js9.0000000000003668"},{"@attributes":{"IdType":"pubmed"},"@text":"41133425"}]}},{"Citation":"Guo S. B., Liu D. Y., Hu R., Zhou Z. Z., Meng Y., Li H. L., et al. (2025b). Immune-related adverse events of neoadjuvant immunotherapy in patients with perioperative cancer: a machine-learning-driven, decade-long informatics investigation. J. Immunother. Cancer 13 (8), e011040. 10.1136\/jitc-2024-011040","ArticleIdList":{"ArticleId":[{"@attributes":{"IdType":"doi"},"@text":"10.1136\/jitc-2024-011040"},{"@attributes":{"IdType":"pmc"},"@text":"PMC12374627"},{"@attributes":{"IdType":"pubmed"},"@text":"40841132"}]}},{"Citation":"Harzing A.-W., Alakangas S. (2016). Google scholar, scopus and the web of science: a longitudinal and cross-disciplinary comparison. Scientometrics 106 (2), 787\u2013804. 10.1007\/s11192-015-1798-9","ArticleIdList":{"ArticleId":[{"@attributes":{"IdType":"doi"},"@text":"10.1007\/s11192-015-1798-9"}]}},{"Citation":"Helmlinger G., Netti P. A., Lichtenbeld H. C., Melder R. J., Jain R. K. (1997). Solid stress inhibits the growth of multicellular tumor spheroids. Nat. Biotechnol. 15 (8), 778\u2013783. 10.1038\/nbt0897-778","ArticleIdList":{"ArticleId":[{"@attributes":{"IdType":"doi"},"@text":"10.1038\/nbt0897-778"},{"@attributes":{"IdType":"pubmed"},"@text":"9255794"}]}},{"Citation":"Holmgren A., Edler D., Rosvall M. (2023). Mapping change in higher-order networks with multilevel and overlapping communities. Appl. Netw. Sci. 8 (1), 42. 10.1007\/s41109-023-00572-5","ArticleIdList":{"ArticleId":[{"@attributes":{"IdType":"doi"},"@text":"10.1007\/s41109-023-00572-5"}]}},{"Citation":"Holmvall K., Camper L., Johansson S., Kimura J. H., Lundgren-Akerlund E. (1995). Chondrocyte and chondrosarcoma cell integrins with affinity for collagen type II and their response to mechanical stress. Exp. Cell Res. 221 (2), 496\u2013503. 10.1006\/excr.1995.1401","ArticleIdList":{"ArticleId":[{"@attributes":{"IdType":"doi"},"@text":"10.1006\/excr.1995.1401"},{"@attributes":{"IdType":"pubmed"},"@text":"7493650"}]}},{"Citation":"Hong H. J., Lee N. H., Kim H. S., Leong K. W., Kim H. W. (2025). Biomechanics in miniature: microfluidic-based <i>in vitro<\/i> modeling to decipher mechanobiological phenomena. Trends Biotechnol. 44 (3), 678\u2013695. 10.1016\/j.tibtech.2025.07.024","ArticleIdList":{"ArticleId":[{"@attributes":{"IdType":"doi"},"@text":"10.1016\/j.tibtech.2025.07.024"},{"@attributes":{"IdType":"pubmed"},"@text":"40885668"}]}},{"Citation":"Huang W. B., Lai H. Z., Long J., Dai Z. L., Ma Q., Xiao C., et al. (2025). Biomechanics of the tumor extracellular matrix and regulatory T cells: regulatory mechanisms and potential therapeutic targets. Cell Commun. Signal 23 (1), 375. 10.1186\/s12964-025-02380-z","ArticleIdList":{"ArticleId":[{"@attributes":{"IdType":"doi"},"@text":"10.1186\/s12964-025-02380-z"},{"@attributes":{"IdType":"pmc"},"@text":"PMC12369269"},{"@attributes":{"IdType":"pubmed"},"@text":"40842015"}]}},{"Citation":"Jain R. K. (1987). Transport of molecules in the tumor interstitium: a review. Cancer Res. 47 (12), 3039\u20133051.","ArticleIdList":{"ArticleId":[{"@attributes":{"IdType":"pubmed"},"@text":"3555767"}]}},{"Citation":"Jia H., Chen X., Zhang L., Chen M. (2025). Cancer associated fibroblasts in cancer development and therapy. J. Hematol. Oncol. 18 (1), 36. 10.1186\/s13045-025-01688-0","ArticleIdList":{"ArticleId":[{"@attributes":{"IdType":"doi"},"@text":"10.1186\/s13045-025-01688-0"},{"@attributes":{"IdType":"pmc"},"@text":"PMC11954198"},{"@attributes":{"IdType":"pubmed"},"@text":"40156055"}]}},{"Citation":"Jiang Z. L. (2023). Mechanobiology research in China. Mechanobiol. Med. 1 (1), 100002. 10.1016\/j.mbm.2023.100002","ArticleIdList":{"ArticleId":[{"@attributes":{"IdType":"doi"},"@text":"10.1016\/j.mbm.2023.100002"},{"@attributes":{"IdType":"pmc"},"@text":"PMC12082136"},{"@attributes":{"IdType":"pubmed"},"@text":"40395869"}]}},{"Citation":"Jones A. F., Byrne H. M., Gibson J. S., Dold J. W. (2000). A mathematical model of the stress induced during avascular tumour growth. J. Math. Biol. 40 (6), 473\u2013499. 10.1007\/s002850000033","ArticleIdList":{"ArticleId":[{"@attributes":{"IdType":"doi"},"@text":"10.1007\/s002850000033"},{"@attributes":{"IdType":"pubmed"},"@text":"10945645"}]}},{"Citation":"Kalli M., Poskus M. D., Stylianopoulos T., Zervantonakis I. K. (2023). Beyond matrix stiffness: targeting force-induced cancer drug resistance. Trends Cancer 9 (11), 937\u2013954. 10.1016\/j.trecan.2023.07.006","ArticleIdList":{"ArticleId":[{"@attributes":{"IdType":"doi"},"@text":"10.1016\/j.trecan.2023.07.006"},{"@attributes":{"IdType":"pmc"},"@text":"PMC10592424"},{"@attributes":{"IdType":"pubmed"},"@text":"37558577"}]}},{"Citation":"Karalis T. T., Heldin P., Vynios D. H., Neill T., Buraschi S., Iozzo R. V., et al. (2019). Tumor-suppressive functions of 4-MU on breast cancer cells of different ER status: regulation of hyaluronan\/HAS2\/CD44 and specific matrix effectors. Matrix Biol. 78 (79), 118\u2013138. 10.1016\/j.matbio.2018.04.007","ArticleIdList":{"ArticleId":[{"@attributes":{"IdType":"doi"},"@text":"10.1016\/j.matbio.2018.04.007"},{"@attributes":{"IdType":"pubmed"},"@text":"29673760"}]}},{"Citation":"Khanmohammadi M., Danish H., Sekar N. C., Suarez S. A., Chheang C., Peter K., et al. (2024). Cyclic stretch enhances neutrophil extracellular trap formation. BMC Biol. 22 (1), 209. 10.1186\/s12915-024-02009-6","ArticleIdList":{"ArticleId":[{"@attributes":{"IdType":"doi"},"@text":"10.1186\/s12915-024-02009-6"},{"@attributes":{"IdType":"pmc"},"@text":"PMC11409804"},{"@attributes":{"IdType":"pubmed"},"@text":"39289752"}]}},{"Citation":"Ladoux B., M\u00e8ge R. M. (2017). Mechanobiology of collective cell behaviours. Nat. Rev. Mol. Cell Biol. 18 (12), 743\u2013757. 10.1038\/nrm.2017.98","ArticleIdList":{"ArticleId":[{"@attributes":{"IdType":"doi"},"@text":"10.1038\/nrm.2017.98"},{"@attributes":{"IdType":"pubmed"},"@text":"29115298"}]}},{"Citation":"Lei K., Kurum A., Kaynak M., Bonati L., Han Y., Cencen V., et al.  (2021). Cancer-cell stiffening <i>via<\/i> cholesterol depletion enhances adoptive T-cell immunotherapy. Nat. Biomed. Eng.\n5 (12), 1411\u20131425. 10.1038\/s41551-021-00826-6","ArticleIdList":{"ArticleId":[{"@attributes":{"IdType":"doi"},"@text":"10.1038\/s41551-021-00826-6"},{"@attributes":{"IdType":"pmc"},"@text":"PMC7612108"},{"@attributes":{"IdType":"pubmed"},"@text":"34873307"}]}},{"Citation":"Lekka M., Laidler P., Gil D., Lekki J., Stachura Z., Hrynkiewicz A. Z. (1999). Elasticity of normal and cancerous human bladder cells studied by scanning force microscopy. Eur. Biophys. J. 28 (4), 312\u2013316. 10.1007\/s002490050213","ArticleIdList":{"ArticleId":[{"@attributes":{"IdType":"doi"},"@text":"10.1007\/s002490050213"},{"@attributes":{"IdType":"pubmed"},"@text":"10394623"}]}},{"Citation":"Levental K. R., Yu H., Kass L., Lakins J. N., Egeblad M., Erler J. T., et al. (2009). Matrix crosslinking forces tumor progression by enhancing integrin signaling. Cell 139 (5), 891\u2013906. 10.1016\/j.cell.2009.10.027","ArticleIdList":{"ArticleId":[{"@attributes":{"IdType":"doi"},"@text":"10.1016\/j.cell.2009.10.027"},{"@attributes":{"IdType":"pmc"},"@text":"PMC2788004"},{"@attributes":{"IdType":"pubmed"},"@text":"19931152"}]}},{"Citation":"Li M. (2024). Harnessing atomic force microscopy-based single-cell analysis to advance physical oncology. Microsc. Res. Tech. 87 (4), 631\u2013659. 10.1002\/jemt.24467","ArticleIdList":{"ArticleId":[{"@attributes":{"IdType":"doi"},"@text":"10.1002\/jemt.24467"},{"@attributes":{"IdType":"pubmed"},"@text":"38053519"}]}},{"Citation":"Linke J. A., Munn L. L., Jain R. K. (2024). Compressive stresses in cancer: characterization and implications for tumour progression and treatment. Nat. Rev. Cancer 24 (11), 768\u2013791. 10.1038\/s41568-024-00745-z","ArticleIdList":{"ArticleId":[{"@attributes":{"IdType":"doi"},"@text":"10.1038\/s41568-024-00745-z"},{"@attributes":{"IdType":"pmc"},"@text":"PMC12967324"},{"@attributes":{"IdType":"pubmed"},"@text":"39390249"}]}},{"Citation":"Liu Q., Luo Q., Ju Y., Song G. (2020). Role of the mechanical microenvironment in cancer development and progression. Cancer Biol. Med. 17 (2), 282\u2013292. 10.20892\/j.issn.2095-3941.2019.0437","ArticleIdList":{"ArticleId":[{"@attributes":{"IdType":"doi"},"@text":"10.20892\/j.issn.2095-3941.2019.0437"},{"@attributes":{"IdType":"pmc"},"@text":"PMC7309462"},{"@attributes":{"IdType":"pubmed"},"@text":"32587769"}]}},{"Citation":"Luo Z., Yao X., Li M., Fang D., Fei Y., Cheng Z., et al. (2022). Modulating tumor physical microenvironment for fueling CAR-T cell therapy. Adv. Drug Deliv. Rev. 185, 114301. 10.1016\/j.addr.2022.114301","ArticleIdList":{"ArticleId":[{"@attributes":{"IdType":"doi"},"@text":"10.1016\/j.addr.2022.114301"},{"@attributes":{"IdType":"pubmed"},"@text":"35439570"}]}},{"Citation":"Mai Z., Lin Y., Lin P., Zhao X., Cui L. (2024). Modulating extracellular matrix stiffness: a strategic approach to boost cancer immunotherapy. Cell Death Dis. 15 (5), 307. 10.1038\/s41419-024-06697-4","ArticleIdList":{"ArticleId":[{"@attributes":{"IdType":"doi"},"@text":"10.1038\/s41419-024-06697-4"},{"@attributes":{"IdType":"pmc"},"@text":"PMC11063215"},{"@attributes":{"IdType":"pubmed"},"@text":"38693104"}]}},{"Citation":"Marginson S., Xu X. (2023). Hegemony and inequality in global science: problems of the center-periphery model. Comp. Educ. Rev. 67 (1), 31\u201352. 10.1086\/722760","ArticleIdList":{"ArticleId":[{"@attributes":{"IdType":"doi"},"@text":"10.1086\/722760"}]}},{"Citation":"Meyer T., Castelein J., Schattenfroh J., Sophie Morr A., Vieira da Silva R., Tzsch\u00e4tzsch H., et al. (2024). Magnetic resonance elastography in a nutshell: tomographic imaging of soft tissue viscoelasticity for detecting and staging disease with a focus on inflammation. Prog. Nucl. Magn. Reson Spectrosc. 144-145, 1\u201314. 10.1016\/j.pnmrs.2024.05.002","ArticleIdList":{"ArticleId":[{"@attributes":{"IdType":"doi"},"@text":"10.1016\/j.pnmrs.2024.05.002"},{"@attributes":{"IdType":"pubmed"},"@text":"39645347"}]}},{"Citation":"Miranda A., G\u00f3mez-Varela A. I., Stylianou A., Hirvonen L. M., S\u00e1nchez H., De Beule P. A. A. (2021). How did correlative atomic force microscopy and super-resolution microscopy evolve in the quest for unravelling enigmas in biology? Nanoscale 13 (4), 2082\u20132099. 10.1039\/d0nr07203f","ArticleIdList":{"ArticleId":[{"@attributes":{"IdType":"doi"},"@text":"10.1039\/d0nr07203f"},{"@attributes":{"IdType":"pubmed"},"@text":"33346312"}]}},{"Citation":"Mongeon P., Paul-Hus A. (2016). The journal coverage of web of science and scopus: a comparative analysis. Scientometrics 106 (1), 213\u2013228. 10.1007\/s11192-015-1765-5","ArticleIdList":{"ArticleId":[{"@attributes":{"IdType":"doi"},"@text":"10.1007\/s11192-015-1765-5"}]}},{"Citation":"Mukherjee S., Warden E. A., Zhang J. (2025). YAP\/TAZ: an epitome of tumorigenesis. Cancer Lett. 625, 217806. 10.1016\/j.canlet.2025.217806","ArticleIdList":{"ArticleId":[{"@attributes":{"IdType":"doi"},"@text":"10.1016\/j.canlet.2025.217806"},{"@attributes":{"IdType":"pmc"},"@text":"PMC12443492"},{"@attributes":{"IdType":"pubmed"},"@text":"40381686"}]}},{"Citation":"Muppala S., Xiao R., Krukovets I., Verbovetsky D., Yendamuri R., Habib N., et al. (2017). Thrombospondin-4 mediates TGF-\u03b2-induced angiogenesis. Oncogene 36 (36), 5189\u20135198. 10.1038\/onc.2017.140","ArticleIdList":{"ArticleId":[{"@attributes":{"IdType":"doi"},"@text":"10.1038\/onc.2017.140"},{"@attributes":{"IdType":"pmc"},"@text":"PMC5589494"},{"@attributes":{"IdType":"pubmed"},"@text":"28481870"}]}},{"Citation":"Navarro G., G\u00f3mez-Autet M., Morales P., Rebassa J. B., Llinas Del Torrent C., Jagerovic N., et al. (2024). Homodimerization of CB(2) cannabinoid receptor triggered by a bivalent ligand enhances cellular signaling. Pharmacol. Res. 208, 107363. 10.1016\/j.phrs.2024.107363","ArticleIdList":{"ArticleId":[{"@attributes":{"IdType":"doi"},"@text":"10.1016\/j.phrs.2024.107363"},{"@attributes":{"IdType":"pubmed"},"@text":"39179054"}]}},{"Citation":"Nelson C. M., Xiao B., Wickstr\u00f6m S. A., Dufr\u00eane Y. F., Cosgrove D. J., Heisenberg C. P., et al. (2024). Mechanobiology: shaping the future of cellular form and function. Cell 187 (11), 2652\u20132656. 10.1016\/j.cell.2024.04.006","ArticleIdList":{"ArticleId":[{"@attributes":{"IdType":"doi"},"@text":"10.1016\/j.cell.2024.04.006"},{"@attributes":{"IdType":"pubmed"},"@text":"38788688"}]}},{"Citation":"Nia H. T., Munn L. L., Jain R. K. (2020). Physical traits of cancer. Science 370 (6516), eaaz0868. 10.1126\/science.aaz0868","ArticleIdList":{"ArticleId":[{"@attributes":{"IdType":"doi"},"@text":"10.1126\/science.aaz0868"},{"@attributes":{"IdType":"pmc"},"@text":"PMC8274378"},{"@attributes":{"IdType":"pubmed"},"@text":"33122355"}]}},{"Citation":"Nikoli\u0107 D., Ivanovi\u0107 D., Ivanovi\u0107 L. (2024). An open-source tool for merging data from multiple citation databases. Scientometrics 129 (7), 4573\u20134595. 10.1007\/s11192-024-05076-2","ArticleIdList":{"ArticleId":[{"@attributes":{"IdType":"doi"},"@text":"10.1007\/s11192-024-05076-2"}]}},{"Citation":"Ninkov A., Frank J. R., Maggio L. A. (2022). Bibliometrics: methods for studying academic publishing. Perspect. Med. Educ. 11 (3), 173\u2013176. 10.1007\/s40037-021-00695-4","ArticleIdList":{"ArticleId":[{"@attributes":{"IdType":"doi"},"@text":"10.1007\/s40037-021-00695-4"},{"@attributes":{"IdType":"pmc"},"@text":"PMC9240160"},{"@attributes":{"IdType":"pubmed"},"@text":"34914027"}]}},{"Citation":"Oliver T., Dembo M., Jacobson K. (1995). Traction forces in locomoting cells. Cell Motil. Cytoskelet. 31 (3), 225\u2013240. 10.1002\/cm.970310306","ArticleIdList":{"ArticleId":[{"@attributes":{"IdType":"doi"},"@text":"10.1002\/cm.970310306"},{"@attributes":{"IdType":"pubmed"},"@text":"7585992"}]}},{"Citation":"Park Y., Kang D. H., Chung C. (2025). Integrating tumor macroenvironment, microenvironment and mechanobiology with organoid and organ-on-a-chip models for lung cancer immunotherapy. Lung Cancer 207, 108726. 10.1016\/j.lungcan.2025.108726","ArticleIdList":{"ArticleId":[{"@attributes":{"IdType":"doi"},"@text":"10.1016\/j.lungcan.2025.108726"},{"@attributes":{"IdType":"pubmed"},"@text":"40865371"}]}},{"Citation":"Paszek M. J., Weaver V. M. (2004). The tension mounts: mechanics meets morphogenesis and malignancy. J. Mammary Gland. Biol. Neoplasia 9 (4), 325\u2013342. 10.1007\/s10911-004-1404-x","ArticleIdList":{"ArticleId":[{"@attributes":{"IdType":"doi"},"@text":"10.1007\/s10911-004-1404-x"},{"@attributes":{"IdType":"pubmed"},"@text":"15838603"}]}},{"Citation":"Paszek M. J., Zahir N., Johnson K. R., Lakins J. N., Rozenberg G. I., Gefen A., et al. (2005). Tensional homeostasis and the malignant phenotype. Cancer Cell 8 (3), 241\u2013254. 10.1016\/j.ccr.2005.08.010","ArticleIdList":{"ArticleId":[{"@attributes":{"IdType":"doi"},"@text":"10.1016\/j.ccr.2005.08.010"},{"@attributes":{"IdType":"pubmed"},"@text":"16169468"}]}},{"Citation":"Pedersen S., Pedersen S. F., Nilius B., Lambert I. H., Hoffmann E. K. (1999). Mechanical stress induces release of ATP from ehrlich ascites tumor cells. Biochimica Biophysica Acta (BBA) - Biomembr. 1416 (1), 271\u2013284. 10.1016\/S0005-2736(98)00228-4","ArticleIdList":{"ArticleId":[{"@attributes":{"IdType":"doi"},"@text":"10.1016\/S0005-2736(98)00228-4"},{"@attributes":{"IdType":"pubmed"},"@text":"9889382"}]}},{"Citation":"Peng H., Chao Z., Wang Z., Hao X., Xi Z., Ma S., et al. (2025). Biomechanics in the tumor microenvironment: from biological functions to potential clinical applications. Exp. Hematol. Oncol. 14 (1), 4. 10.1186\/s40164-024-00591-7","ArticleIdList":{"ArticleId":[{"@attributes":{"IdType":"doi"},"@text":"10.1186\/s40164-024-00591-7"},{"@attributes":{"IdType":"pmc"},"@text":"PMC11724500"},{"@attributes":{"IdType":"pubmed"},"@text":"39799341"}]}},{"Citation":"Peranzoni E., Rivas-Caicedo A., Bougherara H., Salmon H., Donnadieu E. (2013). Positive and negative influence of the matrix architecture on antitumor immune surveillance. Cell Mol. Life Sci. 70 (23), 4431\u20134448. 10.1007\/s00018-013-1339-8","ArticleIdList":{"ArticleId":[{"@attributes":{"IdType":"doi"},"@text":"10.1007\/s00018-013-1339-8"},{"@attributes":{"IdType":"pmc"},"@text":"PMC11113382"},{"@attributes":{"IdType":"pubmed"},"@text":"23649148"}]}},{"Citation":"Pontes B., Mendes F. A. (2023). Mechanical properties of glioblastoma: perspectives for YAP\/TAZ signaling pathway and beyond. Diseases 11 (2), 86. 10.3390\/diseases11020086","ArticleIdList":{"ArticleId":[{"@attributes":{"IdType":"doi"},"@text":"10.3390\/diseases11020086"},{"@attributes":{"IdType":"pmc"},"@text":"PMC10296830"},{"@attributes":{"IdType":"pubmed"},"@text":"37366874"}]}},{"Citation":"Pranckute R. (2021). Web of science (WoS) and scopus: the titans of bibliographic information in today\u2019s academic world. Publ. 9, 12. 10.3390\/publications9010012","ArticleIdList":{"ArticleId":[{"@attributes":{"IdType":"doi"},"@text":"10.3390\/publications9010012"}]}},{"Citation":"Qiu Y., Gao T., Smith B. R. (2024). Mechanical deformation and death of circulating tumor cells in the bloodstream. Cancer Metastasis Rev. 43 (4), 1489\u20131510. 10.1007\/s10555-024-10198-3","ArticleIdList":{"ArticleId":[{"@attributes":{"IdType":"doi"},"@text":"10.1007\/s10555-024-10198-3"},{"@attributes":{"IdType":"pmc"},"@text":"PMC11900898"},{"@attributes":{"IdType":"pubmed"},"@text":"38980581"}]}},{"Citation":"Qu P., Zhang H. (2025). The dual role of Piezo1 in tumor cells and immune cells: a new target for cancer therapy. Front. Immunol. 16, 1635388. 10.3389\/fimmu.2025.1635388","ArticleIdList":{"ArticleId":[{"@attributes":{"IdType":"doi"},"@text":"10.3389\/fimmu.2025.1635388"},{"@attributes":{"IdType":"pmc"},"@text":"PMC12350401"},{"@attributes":{"IdType":"pubmed"},"@text":"40821847"}]}},{"Citation":"Rao J., Lim C. T., Hu T., Han D. (2021). Editorial: cancer cell mechanobiology - a new frontier for cancer invasion and metastasis research. Front. Cell Dev. Biol. 9, 775012. 10.3389\/fcell.2021.775012","ArticleIdList":{"ArticleId":[{"@attributes":{"IdType":"doi"},"@text":"10.3389\/fcell.2021.775012"},{"@attributes":{"IdType":"pmc"},"@text":"PMC8529214"},{"@attributes":{"IdType":"pubmed"},"@text":"34692713"}]}},{"Citation":"Rauner G., Gupta P. B., Kuperwasser C. (2025). From 2D to 3D and beyond: the evolution and impact of <i>in vitro<\/i> tumor models in cancer research. Nat. Methods\n22, 1776\u20131787. 10.1038\/s41592-025-02769-1","ArticleIdList":{"ArticleId":[{"@attributes":{"IdType":"doi"},"@text":"10.1038\/s41592-025-02769-1"},{"@attributes":{"IdType":"pubmed"},"@text":"40715728"}]}},{"Citation":"Ren T., Sun L., Zheng Y., Jiang Y., Guo Y., Ma J. (2025). Mechanical forces and immune cells in the tumor microenvironment: from regulation mechanisms to therapeutic strategies. Int. J. Surg. 111 (8), 5420\u20135434. 10.1097\/js9.0000000000002636","ArticleIdList":{"ArticleId":[{"@attributes":{"IdType":"doi"},"@text":"10.1097\/js9.0000000000002636"},{"@attributes":{"IdType":"pubmed"},"@text":"40478969"}]}},{"Citation":"Rodrigues D. B., Reis R. L., Pirraco R. P. (2024). Modelling the complex nature of the tumor microenvironment: 3D tumor spheroids as an evolving tool. J. Biomed. Sci. 31 (1), 13. 10.1186\/s12929-024-00997-9","ArticleIdList":{"ArticleId":[{"@attributes":{"IdType":"doi"},"@text":"10.1186\/s12929-024-00997-9"},{"@attributes":{"IdType":"pmc"},"@text":"PMC10804490"},{"@attributes":{"IdType":"pubmed"},"@text":"38254117"}]}},{"Citation":"Roerden M., Spranger S. (2025). Cancer immune evasion, immunoediting and intratumour heterogeneity. Nat. Rev. Immunol. 25 (5), 353\u2013369. 10.1038\/s41577-024-01111-8","ArticleIdList":{"ArticleId":[{"@attributes":{"IdType":"doi"},"@text":"10.1038\/s41577-024-01111-8"},{"@attributes":{"IdType":"pubmed"},"@text":"39748116"}]}},{"Citation":"Roy Choudhury A., Gupta S., Chaturvedi P. K., Kumar N., Pandey D. (2019). Mechanobiology of cancer stem cells and their niche. Cancer Microenviron. 12 (1), 17\u201327. 10.1007\/s12307-019-00222-4","ArticleIdList":{"ArticleId":[{"@attributes":{"IdType":"doi"},"@text":"10.1007\/s12307-019-00222-4"},{"@attributes":{"IdType":"pmc"},"@text":"PMC6529500"},{"@attributes":{"IdType":"pubmed"},"@text":"31004332"}]}},{"Citation":"Sacks D., Baxter B., Campbell B. C. V., Carpenter J. S., Cognard C., Dippel D., et al. (2018). Multisociety consensus quality improvement revised consensus statement for endovascular therapy of acute ischemic stroke. Int. J. Stroke 13 (6), 612\u2013632. 10.1177\/1747493018778713","ArticleIdList":{"ArticleId":[{"@attributes":{"IdType":"doi"},"@text":"10.1177\/1747493018778713"},{"@attributes":{"IdType":"pubmed"},"@text":"29786478"}]}},{"Citation":"S\u00e1nchez A. D., de la Cruz Del R\u00edo Rama M., Garc\u00eda J. \u00c1. (2017). Bibliometric analysis of publications on wine tourism in the databases scopus and WoS. Eur. Res. Manag. Bus. Econ. 23 (1), 8\u201315. 10.1016\/j.iedeen.2016.02.001","ArticleIdList":{"ArticleId":[{"@attributes":{"IdType":"doi"},"@text":"10.1016\/j.iedeen.2016.02.001"}]}},{"Citation":"Santos A., Lagares D. (2018). Matrix stiffness: the conductor of organ fibrosis. Curr. Rheumatol. Rep. 20 (1), 2. 10.1007\/s11926-018-0710-z","ArticleIdList":{"ArticleId":[{"@attributes":{"IdType":"doi"},"@text":"10.1007\/s11926-018-0710-z"},{"@attributes":{"IdType":"pubmed"},"@text":"29349703"}]}},{"Citation":"Shen T., Wang Y., Cheng L., Bode A. M., Gao Y., Zhang S., et al. (2025). Oxidative complexity: the role of ROS in the tumor environment and therapeutic implications. Bioorg Med. Chem. 127, 118241. 10.1016\/j.bmc.2025.118241","ArticleIdList":{"ArticleId":[{"@attributes":{"IdType":"doi"},"@text":"10.1016\/j.bmc.2025.118241"},{"@attributes":{"IdType":"pubmed"},"@text":"40383035"}]}},{"Citation":"Sleeboom J. J. F., van Tienderen G. S., Schenke-Layland K., van der Laan L. J. W., Khalil A. A., Verstegen M. M. A. (2024). The extracellular matrix as hallmark of cancer and metastasis: from biomechanics to therapeutic targets. Sci. Transl. Med. 16 (728), eadg3840. 10.1126\/scitranslmed.adg3840","ArticleIdList":{"ArticleId":[{"@attributes":{"IdType":"doi"},"@text":"10.1126\/scitranslmed.adg3840"},{"@attributes":{"IdType":"pubmed"},"@text":"38170791"}]}},{"Citation":"Suffredini G., Gao W. D., Dodd O. J. (2024). Ultrasound shear wave elastography evaluation of the liver and implications for perioperative medicine. J. Clin. Med. 13 (13), 3633. 10.3390\/jcm13133633","ArticleIdList":{"ArticleId":[{"@attributes":{"IdType":"doi"},"@text":"10.3390\/jcm13133633"},{"@attributes":{"IdType":"pmc"},"@text":"PMC11242192"},{"@attributes":{"IdType":"pubmed"},"@text":"38999199"}]}},{"Citation":"Tang R., Zhang Z., Liu X., Liao Y., Chen Y., Xiao M., et al.  (2025). Stromal stiffness-regulated IGF2BP2 in pancreatic cancer drives immune evasion <i>via<\/i> sphingomyelin metabolism. Gastroenterology\n169 (4), 615\u2013631.e632. 10.1053\/j.gastro.2025.03.019","ArticleIdList":{"ArticleId":[{"@attributes":{"IdType":"doi"},"@text":"10.1053\/j.gastro.2025.03.019"},{"@attributes":{"IdType":"pubmed"},"@text":"40158738"}]}},{"Citation":"Thompson D. F., Walker C. K. (2015). A descriptive and historical review of bibliometrics with applications to medical sciences. Pharmacotherapy 35 (6), 551\u2013559. 10.1002\/phar.1586","ArticleIdList":{"ArticleId":[{"@attributes":{"IdType":"doi"},"@text":"10.1002\/phar.1586"},{"@attributes":{"IdType":"pubmed"},"@text":"25940769"}]}},{"Citation":"Urcun S., Lorenzo G., Baroli D., Rohan P.-Y., Scium\u00e8 G., Skalli W., et al. (2022). \u201cChapter six - oncology and mechanics: landmark studies and promising clinical applications,\u201d in Advances in applied mechanics. Editor Bordas S. P. A. (Elsevier; ), 513\u2013571."},{"Citation":"Vera-Baceta M. A., Thelwall M., Kousha K. (2019). Web of science and scopus language coverage. Scientometrics 121 (3), 1803\u20131813. 10.1007\/s11192-019-03264-z","ArticleIdList":{"ArticleId":[{"@attributes":{"IdType":"doi"},"@text":"10.1007\/s11192-019-03264-z"}]}},{"Citation":"Wang C., Jesiek B., Zhang W. (2024a). Elevating international collaboration and academic outcomes through strategic research funding: a bibliometric analysis of China scholarship council funded publications. Scientometrics 129 (7), 4329\u20134351. 10.1007\/s11192-024-05054-8","ArticleIdList":{"ArticleId":[{"@attributes":{"IdType":"doi"},"@text":"10.1007\/s11192-024-05054-8"}]}},{"Citation":"Wang R., Huang S., Wang P., Shi X., Li S., Ye Y., et al. (2024b). Bibliometric analysis of the application of deep learning in cancer from 2015 to 2023. Cancer Imaging 24 (1), 85. 10.1186\/s40644-024-00737-0","ArticleIdList":{"ArticleId":[{"@attributes":{"IdType":"doi"},"@text":"10.1186\/s40644-024-00737-0"},{"@attributes":{"IdType":"pmc"},"@text":"PMC11223420"},{"@attributes":{"IdType":"pubmed"},"@text":"38965599"}]}},{"Citation":"Wang H., Zhou F., Qin W., Yang Y., Li X., Liu R. (2025a). Metabolic regulation of myeloid-derived suppressor cells in tumor immune microenvironment: targets and therapeutic strategies. Theranostics 15 (6), 2159\u20132184. 10.7150\/thno.105276","ArticleIdList":{"ArticleId":[{"@attributes":{"IdType":"doi"},"@text":"10.7150\/thno.105276"},{"@attributes":{"IdType":"pmc"},"@text":"PMC11840731"},{"@attributes":{"IdType":"pubmed"},"@text":"39990210"}]}},{"Citation":"Wang Y., Zhou H., Ju S., Dong X., Zheng C. (2025b). The solid tumor microenvironment and related targeting strategies: a concise review. Front. Immunol. 16, 1563858. 10.3389\/fimmu.2025.1563858","ArticleIdList":{"ArticleId":[{"@attributes":{"IdType":"doi"},"@text":"10.3389\/fimmu.2025.1563858"},{"@attributes":{"IdType":"pmc"},"@text":"PMC11979131"},{"@attributes":{"IdType":"pubmed"},"@text":"40207238"}]}},{"Citation":"Weaver V. M., Petersen O. W., Wang F., Larabell C. A., Briand P., Damsky C., et al.  (1997). Reversion of the malignant phenotype of human breast cells in three-dimensional culture and <i>in vivo<\/i> by integrin blocking antibodies. J. Cell Biol.\n137 (1), 231\u2013245. 10.1083\/jcb.137.1.231","ArticleIdList":{"ArticleId":[{"@attributes":{"IdType":"doi"},"@text":"10.1083\/jcb.137.1.231"},{"@attributes":{"IdType":"pmc"},"@text":"PMC2139858"},{"@attributes":{"IdType":"pubmed"},"@text":"9105051"}]}},{"Citation":"Winkler J., Abisoye-Ogunniyan A., Metcalf K. J., Werb Z. (2020). Concepts of extracellular matrix remodelling in tumour progression and metastasis. Nat. Commun. 11 (1), 5120. 10.1038\/s41467-020-18794-x","ArticleIdList":{"ArticleId":[{"@attributes":{"IdType":"doi"},"@text":"10.1038\/s41467-020-18794-x"},{"@attributes":{"IdType":"pmc"},"@text":"PMC7547708"},{"@attributes":{"IdType":"pubmed"},"@text":"33037194"}]}},{"Citation":"Wu X., Fei W., Shen T., Ye L., Li C., Chu S., et al. (2025). Unveiling the potential of biomechanics in pioneering innovative strategies for cancer therapy. Theranostics 15 (7), 2903\u20132932. 10.7150\/thno.108605","ArticleIdList":{"ArticleId":[{"@attributes":{"IdType":"doi"},"@text":"10.7150\/thno.108605"},{"@attributes":{"IdType":"pmc"},"@text":"PMC11898300"},{"@attributes":{"IdType":"pubmed"},"@text":"40083943"}]}},{"Citation":"Xin Y., Li K., Huang M., Liang C., Siemann D., Wu L., et al. (2023). Biophysics in tumor growth and progression: from single mechano-sensitive molecules to mechanomedicine. Oncogene 42 (47), 3457\u20133490. 10.1038\/s41388-023-02844-x","ArticleIdList":{"ArticleId":[{"@attributes":{"IdType":"doi"},"@text":"10.1038\/s41388-023-02844-x"},{"@attributes":{"IdType":"pmc"},"@text":"PMC10656290"},{"@attributes":{"IdType":"pubmed"},"@text":"37864030"}]}},{"Citation":"Xing H., Liu H., Chang Z., Zhang J. (2024). Research progress on the immunological functions of Piezo1 a receptor molecule that responds to mechanical force. Int. Immunopharmacol. 139, 112684. 10.1016\/j.intimp.2024.112684","ArticleIdList":{"ArticleId":[{"@attributes":{"IdType":"doi"},"@text":"10.1016\/j.intimp.2024.112684"},{"@attributes":{"IdType":"pubmed"},"@text":"39008939"}]}},{"Citation":"Yu W., Sharma S., Rao E., Rowat A. C., Gimzewski J. K., Han D., et al. (2022). Cancer cell mechanobiology: a new frontier for cancer research. J. Natl. Cancer Cent. 2 (1), 10\u201317. 10.1016\/j.jncc.2021.11.007","ArticleIdList":{"ArticleId":[{"@attributes":{"IdType":"doi"},"@text":"10.1016\/j.jncc.2021.11.007"},{"@attributes":{"IdType":"pmc"},"@text":"PMC11256617"},{"@attributes":{"IdType":"pubmed"},"@text":"39035217"}]}},{"Citation":"Yuan Z., Li Y., Zhang S., Wang X., Dou H., Yu X., et al. (2023). Extracellular matrix remodeling in tumor progression and immune escape: from mechanisms to treatments. Mol. Cancer 22 (1), 48. 10.1186\/s12943-023-01744-8","ArticleIdList":{"ArticleId":[{"@attributes":{"IdType":"doi"},"@text":"10.1186\/s12943-023-01744-8"},{"@attributes":{"IdType":"pmc"},"@text":"PMC10007858"},{"@attributes":{"IdType":"pubmed"},"@text":"36906534"}]}},{"Citation":"Zhang M., Zhang B. (2025). Extracellular matrix stiffness: mechanisms in tumor progression and therapeutic potential in cancer. Exp. Hematol. Oncol. 14 (1), 54. 10.1186\/s40164-025-00647-2","ArticleIdList":{"ArticleId":[{"@attributes":{"IdType":"doi"},"@text":"10.1186\/s40164-025-00647-2"},{"@attributes":{"IdType":"pmc"},"@text":"PMC11984264"},{"@attributes":{"IdType":"pubmed"},"@text":"40211368"}]}},{"Citation":"Zhang X., Al-Danakh A., Zhu X., Feng D., Yang L., Wu H., et al. (2025a). Insights into the mechanisms, regulation, and therapeutic implications of extracellular matrix stiffness in cancer. Bioeng. Transl. Med. 10 (1), e10698. 10.1002\/btm2.10698","ArticleIdList":{"ArticleId":[{"@attributes":{"IdType":"doi"},"@text":"10.1002\/btm2.10698"},{"@attributes":{"IdType":"pmc"},"@text":"PMC11711218"},{"@attributes":{"IdType":"pubmed"},"@text":"39801760"}]}},{"Citation":"Zhang Y., Fu Q., Sun W., Yue Q., He P., Niu D., et al. (2025b). Mechanical forces in the tumor microenvironment: roles, pathways, and therapeutic approaches. J. Transl. Med. 23 (1), 313. 10.1186\/s12967-025-06306-8","ArticleIdList":{"ArticleId":[{"@attributes":{"IdType":"doi"},"@text":"10.1186\/s12967-025-06306-8"},{"@attributes":{"IdType":"pmc"},"@text":"PMC11899831"},{"@attributes":{"IdType":"pubmed"},"@text":"40075523"}]}},{"Citation":"Zhu P., Lu H., Wang M., Chen K., Chen Z., Yang L. (2023). Targeted mechanical forces enhance the effects of tumor immunotherapy by regulating immune cells in the tumor microenvironment. Cancer Biol. Med. 20 (1), 44\u201355. 10.20892\/j.issn.2095-3941.2022.0491","ArticleIdList":{"ArticleId":[{"@attributes":{"IdType":"doi"},"@text":"10.20892\/j.issn.2095-3941.2022.0491"},{"@attributes":{"IdType":"pmc"},"@text":"PMC9843446"},{"@attributes":{"IdType":"pubmed"},"@text":"36647779"}]}}]}]}}}