Connective tissue dysplasias and the TGF-β paradox: a new concept of the H. pylori-independent Correa cascade (review, perspectives) and therapeutic targeting - Part III
https://doi.org/10.31146/1682-8658-ecg-240-8-138-148
Abstract
Keywords
About the Author
A. S. RudoyRussian Federation
References
1. Rudoy A. S. [Diseases of the upper gastrointestinal tract in young adults associated with hereditary connective tissue disorders (features of clinical presentation, etiology, pathomorphogenesis and prognosis of clinical course)]. Diss. … Med Science. Saint Petersburg: S. M. Kirov Military Medical Academy; 2009. 49 p.(In Russ.)@@ Рудой А. С. Заболевания верхних отделов желудочно-кишечного тракта у лиц молодого возраста, ассоциированные с наследственными нарушениями соединительной ткани: автореферат диссертации. Санкт-Петербург: ВМА им. С. М. Кирова; 2009. 49 с.
2. Uryvaev A. M. [Clinical and morphological features of chronic gastritis in young patients with Marfan syndrome and Marfan-like phenotype]. Diss. … Med Science. Minsk; 2017. 22 p. (In Russ.)@@ Урываев А. М. Клинико-морфологические особенности хронического гастрита у лиц молодого возраста с синдромом Марфана и марфаноподобным фенотипом: автореферат диссертации. Минск; 2017. 22 с.
3. Rudoy A. S., Letkovskaya T. A., Uryvaev A. M., Reutsky I. P. Role of TGF-β induction and gastrointestinal myofibroblasts in the pathomorphogenesis of chronic gastritis in patients with Marfan syndrome and Marfan-like states. Eksp Klin Gastroenterol. 2016;(6):14-18. (In Russ.)@@ Рудой А. С., Летковская Т. А., Урываев А. М., Реуцкий И. П. Роль TGF-β-индукции и гастроинтестинальных миофибробластов в патоморфогенезе хронического гастрита у пациентов с синдромом Марфана и марфаноподобными состояниями. Экспериментальная и клиническая гастроэнтерология. 2016;(6):14-18.
4. Rudoy A. S., Uryvaev A. M. Patogenetic mechanisms of development of precancerous changes in the stomach in patients with Marfan syndrome. Terapiya. 2020;(6):71-81. (in Russ.) doi: 10.18565/therapy.2020.6.71-81.@@ Рудой А. С., Урываев А. М. Патогенетические механизмы развития предраковых изменений желудка у пациентов с синдромом Марфана. Терапия. 2020;(6):71-81. doi: 10.18565/therapy.2020.6.71-81.
5. Sun Y, Liu YQ, Feng GS, Li JY. [Role of transforming growth factor beta1 in the development of atrophic gastritis]. Beijing Da Xue Xue Bao Yi Xue Ban. 2009;41(6):635-639. Chinese. PMID:20019772.
6. Hsu C-W, Wang J-C, Liao W-I, Chien W-C, Chung C-H, Tsao C-H, et al. Association between malignancies and Marfan syndrome: a population-based, nested case-control study in Taiwan. BMJ Open. 2017;7(10): e017243. doi: 10.1136/bmjopen-2017-017243.
7. Kalluri R. The biology and function of fibroblasts in cancer. Nat Rev Cancer. 2016;16(9):582-598. doi: 10.1038/nrc.2016.73.
8. [Clinical guidelines. Undifferentiated connective tissue dysplasias]. Terapiya. 2024;10(5S, suppl):1-43. (In Russ.)@@ Клинические рекомендации. Недифференцированные дисплазии соединительной ткани. Терапия. 2024;10(5S, приложение):1-43.
9. Otranto M, Sarrazy V, Bonté F, Hinz B, Gabbiani G, Desmoulière A. The role of the myofibroblast in tumor stroma remodeling. Cell Adhes Migr. 2012;6(3):203-219. doi: 10.4161/cam.20377.
10. Veen LM, Skrabanja TLP, Derks S, de Gruijl TD, Bijlsma MF, van Laarhoven HWM. The role of transforming growth factor β in upper gastrointestinal cancers: a systematic review. Cancer Treat Rev. 2021;99:102285. doi: 10.1016/j.ctrv.2021.102285.
11. Rudoy A. S., Gorokhov S. S., Lapitskiy D. V., Reutskiy I. P. Analysis of the relationship between esophagogastroduodenal diseases and hereditary connective tissue disorders. Voennaya Meditsina. 2010;(4):59-62. (In Russ.)@@ Рудой А. С. и соавт. Анализ связи ЭГДС-патологии с наследственными нарушениями соединительной ткани. Военная медицина. 2010;(4):59-62.
12. Naef M, Ishiwata T, Friess H, Büchler MW, Gold LI, Korc M. Differential localization of TGF-β isoforms in human gastric mucosa and overexpression in gastric carcinoma.Int J Cancer. 1997;71(1):131-137. doi: 10.1002/(SICI)1097-0215(19970328)71:1<131:: AID-IJC21>3.0.CO;2-W.
13. Jogendra Singh P, et al. Cancer-associated fibroblasts: immunosuppressive crosstalk with tumor-infiltrating immune cells and implications for therapeutic resistance. Cancers. 2025;17(15):2484. doi: 10.3390/cancers17152484.
14. Hasegawa T, Yashiro M, Nishii T, Matsuoka J, Fuyuhiro Y, Morisaki T, et al. Cancer-associated fibroblasts sustain stemness of scirrhous gastric cancer via TGF-β signaling.Int J Cancer. 2014;134(8):1785-1795. doi: 10.1002/ijc.28515.
15. Kiotsekoglou A, Saha S, Moggridge JC, et al. Impaired biventricular deformation in Marfan syndrome. Echocardiography. 2011;28(4):416-430. doi: 10.1111/j.1540-8175.2010.01374.x.
16. McDonnell NB, Gorman BL, Mandel KW, et al. Echocardiographic findings in Ehlers-Danlos syndromes. Am J Med Genet A. 2006;140(2):129-136. doi: 10.1002/ajmg.a.31037.
17. Eckman PM, Hsich E, Rodriguez ER, et al. Impaired systolic function in Loeys-Dietz syndrome. Circ Heart Fail. 2009;2(6):707-708. doi: 10.1161/CIRCHEARTFAILURE.109.860692.
18. Zemtsovsky EV. Systemic connective tissue involvement and heart involvement: revised Ghent nosology.Russ J Cardiol. 2013;1(99):7-13. (In Russ.) doi: 10.15829/1560-4071-2013-1-7-13.@@ Земцовский Э. В. Системное вовлечение соединительной ткани и «вовлечение сердца». Российский кардиологический журнал. 2013;1(99):7-13. doi: 10.15829/1560-4071-2013-1-7-13.
19. Zemtsovsky E. V., Malev E. G., Reeva S. V. et al. Diagnosis of hereditary connective tissue disorders. Transl Med. 2015;2(5):73-82. (In Russ.) doi: 10.18705/2311-4495-2015-2-73-82.@@ Земцовский Э. В. и соавт. Диагностика наследственных нарушений соединительной ткани. Трансляционная медицина. 2015;2(5):73-82. doi: 10.18705/2311-4495-2015-2-73-82.
20. Kong DB, Chen F, Sima N. FAK regulates TGF-β-induced EMT and invasion. Oncol Lett. 2017;14(6):7611-7618. doi: 10.3892/ol.2017.7144.
21. Li Q, Gong C, Zhang S, et al. Lysyl oxidase promotes liver metastasis of gastric cancer. Cancer Lett. 2019;449:71-83. doi: 10.1016/j.canlet.2019.02.044.
22. Mardasi FG, Eskandarieh S, Taslimi R, et al. LINC01270/miR-29c-3p/LOX axis in gastric cancer. Biochem Biophys Rep. 2025;43:102107. doi: 10.1016/j.bbrep.2025.102107.
23. Chen X, et al. LOX upregulates FAK phosphorylation to promote tumor progression. Gendis Transl Med. 2022;1:1-12. PMID: 36548047.
24. Setargew YFI, Wyllie K, Grant JL, et al. Targeting LOX-mediated matrix cross-linking. Front Oncol. 2021;11:698145. doi: 10.3389/fonc.2021.698145.
25. Zhu J, Luo C, Zhao J, et al. Expression of LOX suggests poor prognosis in gastric cancer. Front Med (Lausanne). 2021;8:718986. doi: 10.3389/fmed.2021.718986.
26. Galagudza MM, Uspenskiy YuP, Fominykh YuA, et al. Chronic atrophic gastritis: molecular pathogenesis and therapeutic targets. Exp Clin Gastroenterol. 2025;(2):4-14. (In Russ.) doi: 10.31146/1682-8658-ecg-234-2-4-14.@@ Галагудза М. М. и соавт. Хронический атрофический гастрит: мишени терапии. Экспериментальная и клиническая гастроэнтерология. 2025;(2):4-14. doi: 10.31146/1682-8658-ecg-234-2-4-14.
27. Pimentel-Nunes P, Libânio D, Marcos-Pinto R, et al. MAPS II guideline update 2019. Endoscopy. 2019;51(4):365-388. doi: 10.1055/a-0859-1883.
28. Kim S-H, Lee S-H, Choi Y-L, et al. Alterations of TGF-β pathway and TP53 along gastric dysplasia-carcinoma sequence. Histol Histopathol. 2008;23(11):1439-1452. doi: 10.14670/HH-23.1439.
29. Rudoy AS, Uryvaev AM. Functional dyspepsia through the prism of chronic gastritis in Marfan syndrome. Pediatr (St Petersburg). 2016;7(3):76-83. (In Russ.)@@ Рудой А. С., Урываев А. М. Функциональная диспепсия при СМ. Педиатр. 2016;7(3):76-83.
30. Lendoye W, Moujrid S, Radhi H, et al. Marfan syndrome with papillary thyroid carcinoma. Open J Pathol Toxicol Res. 2021;1(2): Article 000507. doi: 10.33552/OJPTR.2021.01.000507.
31. Kim BG, et al. Novel therapies targeting the TGF-β pathway. J Hematol Oncol. 2021;14(1):55. doi: 10.1186/s13045-021-01053-x.
32. Lu J, Chen XQ, Li P. The role of TGF-β and its receptors in gastrointestinal cancers. Transl Oncol. 2019;12(3):475-484. doi: 10.1016/j.tranon.2018.11.010.
33. Matsuoka T, Yashiro M. TGF-β signalling pathway in gastrointestinal cancers. Biomolecules. 2023;13(10):1551. doi: 10.3390/biom13101551.
34. Tauriello DVF, Sancho E, Batlle E. Overcoming TGF-β-mediated immune evasion in cancer. Nat Rev Cancer. 2022;22(1):25-44. doi: 10.1038/s41568-021-00413-6.
35. Katz LH, Li Y, Chen JS, et al. Targeting TGF-β signaling in cancer. Expert Opin Ther Targets. 2013;17(7):743-760. doi: 10.1517/14728222.2013.791274.
36. Kang YK, et al. Bintrafusp alfa (anti-TGFβ/PD-L1) in Asian patients with gastric cancer. Clin Cancer Res. 2020;26(13):3202-3210. doi: 10.1158/1078-0432.CCR-19-3900.
37. Jakubowska D, Al-Choboq J, Sonzogni L, et al. ATM nucleo-shuttling and response to ionizing radiation in Marfan fibroblasts.Int J Mol Sci. 2024;25(22):12313. doi: 10.3390/ijms252212313.
38. Yang T, et al. LY2109761 enhances radiosensitivity by inactivating TGF-β/SMAD4. Aging (Albany NY). 2019;11(20):8892-8909. doi: 10.18632/aging.102329.
39. Lee SY, et al. Ramucirumab + TGF-β receptor kinase inhibitor reduces invasiveness in diffuse-type gastric cancer cells. Cancer Med. 2021;10(20):7253-7262. doi: 10.1002/cam4.4259.
40. Chen F, et al. Baicalein inhibits migration and invasion via TGF-β suppression in gastric cancer. Mol Med Rep. 2014;10(4):1999-2003. doi: 10.3892/mmr.2014.2452.
41. He Y, Rajantie I, Pajusola K, et al. VEGFR-3-mediated activation of lymphatic endothelium enables tumor spread via lymphatics. Cancer Res. 2005;65(11):4739-4746. doi: 10.1158/0008-5472.CAN-04-4576.
42. Melisi D, Garcia-Carbonero R, Macarulla T, et al. Galunisertib + gemcitabine vs gemcitabine + placebo in unresectable pancreatic cancer: phase II. J Clin Oncol. 2016;34(15_suppl):1208-1214. doi: 10.1200/JCO.2016.34.15_suppl.1208.
43. Parente P, Parcesepe P, Covelli C, et al. TME-immune crosstalk in PDAC: targets for therapy. Gastroenterol Res Pract. 2018;2018:7530619. doi: 10.1155/2018/7530619.
44. Holmgaard RB, Schaer DA, Li Y, et al. Galunisertib promotes anti-tumor immunity; durable responses alone and with checkpoint blockade. J Immunother Cancer. 2018;6(1):47. doi: 10.1186/s40425-018-0356-6.
45. Hu J, Dai S, Yuan M, et al. Isoliensinine targets TGFBR1 and TGF-β/Smad in gastric cancer. Front Pharmacol. 2024;15:1438161. doi: 10.3389/fphar.2024.1438161.
46. Habashi JP, Judge DP, Holm TM, et al. Losartan prevents aortic aneurysm in Marfan mice. Science. 2006; 312(5770):117-121. doi: 10.1126/science.1124287.
47. Zaheer J, et al. SERPINE1 modulation of TME increases radioimmunotherapy efficacy in murine gastric cancer. Sci Rep. 2025;15(1):16449. doi: 10.1038/s41598-025-63634-y.
48. Masamune A, Watanabe T, Kikuta K, et al. Olmesartan inhibits pancreatic cancer growth by targeting stellate cells in mice. Scand J Gastroenterol. 2013;48(5):602-609. doi: 10.3109/00365521.2013.777776.
49. Mai Z, Lin Y, Lin P, Zhao X, Cui L. Modulating ECM stiffness to boost cancer immunotherapy. Cell Death Dis. 2024;15:307. doi: 10.1038/s41419-024-06697-4.
50. Saatci O, Kaymak A, Raza U, et al. Targeting LOX overcomes chemoresistance in TNBC. Nat Commun. 2020;11(1):2416. doi: 10.1038/s41467-020-16199-4.
51. Guo Q, Qin W, Jiang B, et al. FAK interference suppresses proliferation, invasion and metastasis of SGC7901 gastric cancer cells. Oncol Rep. 2015;33(2):767-774. doi: 10.3892/or.2014.3641.
52. Trindade PT. Losartan treatment in Marfan syndrome: can we finally COMPARE? Eur Heart J. 2013;34(45):3469-3471.
Review
For citations:
Rudoy A.S. Connective tissue dysplasias and the TGF-β paradox: a new concept of the H. pylori-independent Correa cascade (review, perspectives) and therapeutic targeting - Part III. Experimental and Clinical Gastroenterology. 2025;(8):138-148. (In Russ.) https://doi.org/10.31146/1682-8658-ecg-240-8-138-148
JATS XML





































