The origin of Human Papillomavirus (HPV) — induced cervical squamous cancer
Tài liệu tham khảo
zur Hausen, 2002, Papillomaviruses and cancer: from basic studies to clinical application, Nat Rev Cancer, 2, 342, 10.1038/nrc798
von Franqué, 1907, Leukoplakia und Carcinoma vaginae et uteri, Z Geburtsh, 237
Meyer, 1910, Squamous metaplasia of the columnar epithelium in the human cervix, Arch Gynakol, 91
Hinselmann, 1927, Der Begriff der Umwandlungszone der Portio, Arch Gynäkol, 131, 422, 10.1007/BF02278688
Hinselmann, 1928, Das klinische Bild der indirekten Metaplasie der ektopischen Zylinderzellenschleimhaut der Portio, Arch Gynakol, 133, 64, 10.1007/BF02283981
Auerbach, 1945, Squamous metaplasia of the cervix uteri, Am J Obstet Gynecol, 49, 207, 10.1016/S0002-9378(45)90311-5
Darragh, 2012, The lower anogenital squamous terminology standardization project for HPV-associated lesions: background and consensus recommendations from the College of American Pathologists and the American Society for Colposcopy and Cervical Pathology, Arch Pathol Lab Med, 136, 1266, 10.5858/arpa.LGT200570
Mills, 2020, Squamous intraepithelial lesions of the uterine cervix, 342
Regauer, 2019, Thin variant of high-grade squamous intraepithelial lesion - relationship with high-risk and possibly carcinogenic human papilloma virus subtypes and somatic cancer gene mutations, Histopathology, 75, 405, 10.1111/his.13869
Regauer, 2007, CK17 and p16 expression patterns distinguish (atypical) immature squamous metaplasia from high-grade cervical intraepithelial neoplasia (CIN III), Histopathology, 50, 629, 10.1111/j.1365-2559.2007.02652.x
Goyal, 2020, p16 positive histologically bland squamous metaplasia of the cervix: what does it signify?, Am J Surg Pathol, 44, 129, 10.1097/PAS.0000000000001364
Marsh, 1956, Original site of cervical carcinoma; topographical relationship of carcinoma of the cervix to the external os and to the squamocolumnar junction, Obstet Gynecol, 7, 444
Burghardt, 1976, Premalignant conditions of the cervix, Clin Obstet Gynaecol, 3, 257, 10.1016/S0306-3356(21)00346-0
Halec, 2014, Pathogenic role of the eight probably/possibly carcinogenic HPV types 26, 53, 66, 67, 68, 70, 73 and 82 in cervical cancer, J Pathol, 234, 441, 10.1002/path.4405
Regauer, 2021, Cervical precancers originate from infected proliferating reserve cells, Am J Surg Pathol
Doorbar, 2015, Human papillomavirus molecular biology and disease association, Rev Med Virol, 25, 2, 10.1002/rmv.1822
Doorbar, 2016, Model systems of human papillomavirus-associated disease, J Pathol, 238, 166, 10.1002/path.4656
Sacco, 2020, Squamous cell carcinoma, HPV-independent, of the uterine cervix, 350
Regauer, 2021, HPV-negative squamous cell carcinomas of the cervix with special focus on intraepithelial precursor lesions, Am J Surg Pathol
Fritsch, 2021, The development of the human vaginal fornices and the portiocervicis, Clin Anat, 34, 1059, 10.1002/ca.23729
Martens, 2009, Distribution pattern and marker profile show two subpopulations of reserve cells in the endocervical canal, Int J Gynecol Pathol, 28, 381, 10.1097/PGP.0b013e31819932f8
Carmichael, 1941, Squamous metaplasia of the columnar epithelium in the human cervix, J Pathol Bacteriol, 52, 173, 10.1002/path.1700520203
Pund, 1946, Preinvasive carcinoma of the cervix uteri, J Am Med Assoc, 131, 960, 10.1001/jama.1946.02870290010004
Bajardi, 1962, Über Wachstumsbeschränkungen des Collumkarzinoms in seinem invasiven und präinvasiven Stadium, Arch Gynakol, 197, 407, 10.1007/BF00668697
Burghardt, 1983, Site and origin of squamous cervical cancer: a histomorphologic study, Obstet Gynecol, 62, 117
Reich, 2017, Defining the cervical transformation zone and squamocolumnar junction: can we reach a common colposcopic and histologic definition?, Int J Gynecol Pathol, 36, 517, 10.1097/PGP.0000000000000381
Burghardt, 1979, The importance of the last cervical gland in the natural history of cervical neoplasia, Obstet Gynecol Surv, 34, 862, 10.1097/00006254-197911000-00038
Sato, 2017, Regeneration of cervical reserve cell-like cells from human induced pluripotent stem cells (iPSCs): a new approach to finding targets for cervical cancer stem cell treatment, Oncotarget, 8, 40935, 10.18632/oncotarget.16783
Maru, 2020, Establishment and molecular phenotyping of organoids from the squamocolumnar junction region of the uterine cervix, Cancers (Basel), 12, 694, 10.3390/cancers12030694
Martens, 2004, Cytokeratin 17 and p63 are markers of the HPV target cell, the cervical stem cell, Anticancer Res, 24, 771
van der Marel, 2014, Oncogenic human papillomavirus-infected immature metaplastic cells and cervical neoplasia, Am J Surg Pathol, 38, 470, 10.1097/PAS.0000000000000174
Reich, 2017, Thin HSIL of the cervix: detecting a variant of high-grade squamous intraepithelial lesions with a p16INK4a antibody, Int J Gynecol Pathol, 36, 71, 10.1097/PGP.0000000000000311
Doorbar, 2012, The biology and life-cycle of human papillomaviruses, Vaccine, 30, F55, 10.1016/j.vaccine.2012.06.083
Herfs, 2012, A discrete population of squamocolumnar junction cells implicated in the pathogenesis of cervical cancer, Proc Natl Acad Sci U S A, 109, 10516, 10.1073/pnas.1202684109
Herfs, 2013, Cervical squamocolumnar junction-specific markers define distinct, clinically relevant subsets of low-grade squamous intraepithelial lesions, Am J Surg Pathol, 37, 1311, 10.1097/PAS.0b013e3182989ee2
Moll, 1983, Complex cytokeratin polypeptide patterns observed in certain human carcinomas, Differentiation, 23, 256, 10.1111/j.1432-0436.1982.tb01291.x
Ramaekers, 1987, Tissue distribution of keratin 7 as monitored by a monoclonal antibody, Exp Cell Res, 170, 235, 10.1016/0014-4827(87)90133-9
Smedts, 1993, The dynamics of keratin expression in malignant transformation of cervical epithelium: a review, Obstet Gynecol, 82
Franceschi, 2015, Embryonic cells in the squamous-columnar junction of the cervix: scope for prophylactic ablation?, Int J Cancer, 136, 989, 10.1002/ijc.29057
Gusberg, 1949, Detection of early carcinoma of the cervix; the coning biopsy, Am J Obstet Gynecol, 57, 752, 10.1016/0002-9378(49)90717-6
McNairn, 2011, Epithelial transition zones: merging microenvironments, niches, and cellular transformation, Eur J Dermatol, 21, 21
Yao, 2015, Cervical cancer stem cells, Cell Prolif, 48, 611, 10.1111/cpr.12216
Strati, 2017, Changing stem cell dynamics during papillomavirus infection: potential roles for cellular plasticity in the viral lifecycle and disease, Viruses, 9, 10.3390/v9080221
Huang, 2017, Cancer stem cells (CSCs), cervical CSCs and targeted therapies, Oncotarget, 8, 35351, 10.18632/oncotarget.10169
Crum, 2018, Cervical squamous neoplasia, 298
Mendoza-Almanza, 2019, Cervical cancer stem cells and other leading factors associated with cervical cancer development, Oncol Lett, 18, 3423
Wright, 2019, Benign diseases of the cervix, 202
Budhwani, 2020, Dysregulation of stemness pathways in HPV mediated cervical malignant transformation identifies potential oncotherapy targets, Front Cell Infect Microbiol, 10, 307, 10.3389/fcimb.2020.00307
Chumduri, 2021, Opposing Wnt signals regulate cervical squamocolumnar homeostasis and emergence of metaplasia, Nat Cell Biol, 23, 184, 10.1038/s41556-020-00619-0
Kalliala, 2020, Incidence and mortality from cervical cancer and other malignancies after treatment of cervical intraepithelial neoplasia: a systematic review and meta-analysis of the literature, Ann Oncol, 31, 213, 10.1016/j.annonc.2019.11.004
Reich, 2001, Cervical intraepithelial neoplasia III: long term outcome after cold-knife conization with clear margins, Obstet Gynecol, 97, 428