Preview

Медицинский вестник Башкортостана

Расширенный поиск

ПЕРСПЕКТИВЫ ПРИМЕНЕНИЯ СТВОЛОВЫХ КЛЕТОК В ЛЕЧЕНИИ РОГОВИЧНОЙ ДИСТРОФИИ ГЛАЗА

Аннотация

Низкая эффективность терапевтического лечения, частые случаи отторжения трансплантата и недостаток донорского материала обусловливают необходимость поиска более совершенных методов лечения роговичных дистрофий глаза. В статье описаны возможности современных стволовых клеточных технологий в лечении дистрофических изменений роговицы, рассмотрены типы стволовых клеток, их особенности, обсуждаются успехи клинического применения стволовых клеток в комплексном лечении заболеваний роговицы.

Об авторе

Т. И. Биккузин
аспирант кафедры урологии с курсом ИДПО ФГБОУ ВО БГМУ Минздрава России
Россия


Список литературы

1. Абдрахманов, И.К. Стволовые клетки животных (история и перспективы)/ И.К. Абдрахманов // Ветеринарная патология. - 2005. - №1. - С.55-58

2. Борзенок, С.А Методологические и технические проблемы конструирования искусственной роговицы на базе 3D-клеточного культивирования / С.А. Борзенок [и др.] // Офтальмохирургия. - 2012. - № 4. - С. 9-12

3. Меркулов, В.А. Проблемы и перспективы применения клеточной терапии в клинической практике / В.А. Меркулов, Н.Д. Бунятян, С.М. Радаев // Ведомости НЦЭСМП. - 2011. - №2. - С.35-38

4. Adewumi O. Characterization of human embryonic stem cell lines by the International Stem Cell Initiative / O. Adewumi [et. al.] // J. Nat. Biotechnol. - 2007. - Vol. 25. - P.803-816

5. Adler R. Molecular mechanisms of optic vesicle development: complexities, ambiguities and controversies / R. Adler, M.V. Canto-Soler // Dev. Biol. - 2007. - Vol. 305. - P. 1-13

6. Alio del Barrioa J. Acellular human corneal matrix sheets seeded with human adipose-derived mesenchymal stem cells integrate functionally in an experimental animal model / J. Alio del Barrioa, M. Chiesa, N. Garagorri // Experimental Eye Research. - 2015. - Vol. 132. - P. 91-100

7. Antonio U. Mesenchymal stem cells in health and disease / U. Antonio, M. Lorenzo, P. Vito // Macmillan Publishers Limited. - 2008. - Vol. 8. - P. 726-736

8. Baylis O. 3 years of cultured limbal epithelial cell therapy: A review of the outcomes / O. Baylis, F. Figueiredo, C. Henein // J. Cell Biochem - 2011. - Vol. 112. - P. 993-1002

9. Becker A.J. Cytological demonstration of the clonal nature of spleen colonies derived from transplanted mouse marrow cells / A.J. Becker, E.A. McCulloch, J.E. Till // J. Nature. - 1963. - Vol. 197. - P.452-454

10. Boulton M. A comparative study of the therapeutic potential of mesenchymal stem cells and limbal epithelial stem cells for ocular surface reconstruction / M. Boulton, J. Albon // Biochemistry & Cell Biology. - 2004. - Vol. 36. - P.643-657

11. Casaroli-Marano R. Potential Role of Induced Pluripotent Stem Cells (IPSCs) for Cell-Based Therapy of the Ocular Surface / R. Casaroli-Marano, N. Nieto-Nicolau, E. Martínez- Conesa. // Clinical Medicine. - 2015. - Vol. 4. - P. 318-342

12. Chen P. Treatment with retinoic acid and lens epithelial cell-conditioned medium in vitro directed the differentiation of pluripotent stem cells towards corneal endothelial cell-like cells / P. Chen [et. al.] // Exp.Ther. Med. - 2015. - Vol. 9. - 351-360

13. Cieślar-Pobuda A. Human induced pluripotent stem cell differentiation and direct transdifferentiation into corneal epithelial-like cells / A.Cieślar-Pobuda [et. al.] // Oncotarget. - 2016. - Vol. 7

14. DelMonte D.W. Anatomy and physiology of the cornea / D.W. DelMonte, T. Kim // J. Cataract Refract Surg. - 2011. - Vol. 37. - P.588-598

15. Evans M.J. Establishment in culture of pluripotential stem cells from mouse embryos / M.J. Evans, M. Kaufman // J. Nature. - 1981. - Vol. 292. - P.151-156

16. Foster С. S. Limbal Stem Cell Transplantation // Ontario Health Technology Assessment Series. - 2008. - Vol. 8. - P. 1-28

17. Foster J.W. Cornea organoids from human induced pluripotent stem cells / J.W. Foster [et. al.] // Sci. Rep. - 2017. - Vol. 7

18. Grottone G.T. Endothelial keratoplasty: evolution and horizons/ G.T. Grottone, N.C. Pereira, J.A.P. Gomez // J. Arq. Bras. Oftalmol. - 2012. - Vol. 75. - P.439-446

19. Hatou S. Functional corneal endothelium derived from corneal stroma stem cells of neural crest origin by retinoic acid and Wnt/betacatenin signaling / S. Hatou [et. al.] // Stem Cells Dev. - 2013. - Vol. 22. - P. 828-839

20. Hayashi R. Generation of corneal epithelial cells from induced pluripotent stem cells derived from human dermal fibroblast and corneal limbal epithelium / R. Hayashi [et. al.] // PLoS One. - 2012. - Vol. 7. - P. 136 -143

21. Hayashi R. Co-ordinated ocular development from human iPS cells and recovery of corneal function / R. Hayashi [et. al.] // Nature - 2016. - Vol. 531. - P. 376 -380

22. Hayashi R. Coordinated generation of multiple ocular-like cell lineages and fabrication of functional corneal epithelial cell sheets from human iPS cells / R. Hayashi [et. al.] // Nat Protoc. - 2017. - Vol. 12. - P. 683-696

23. Hayflick L. The serial cultivation of human diploid cell strains / L. Hayflick, P.S. Moorhead // J. Cell Res. - 1961. - Vol. 253. - P.585-621

24. Holan V. A comparative study of the therapeutic potential of mesenchymal stem cells and limbal epithelial stem cells for ocular surface reconstruction / V. Holan [et. al.] // Stem Cells Transl Med. - 2015. - Vol. 3. - 1052-1063

25. Inagaki E. Skin-Derived Precursors as a Source of Progenitors for Corneal Endothelial Regeneration / E. Inagaki [et. al.] // Stem Cells Transl. Med. - 2017. - Vol. 6. - P. 788-798

26. Jiang T.S. Reconstruction of the corneal epithelium with induced marrow mesenchymal stem cells in rats / T.S. Jiang [et. al.] // Mol. Vis. - 2010. - Vol. 16. - P. 1304 -1316

27. Jiang Z. Paracrine effects of mesenchymal stem cells on the activation of keratocytes / Z. Jiang [et. al.] // Br. J. Ophthalmol. Med. - 2017

28. Ke Y. Polysaccharide hydrogel combined with mesenchymal stem cells promotes the healing of corneal alkali burn in rats / Y. Ke, Y. Wu, X. Cui // PLoS ONE - 2015. - Vol. 19. - P. 1-18

29. Kimbrel E.A. Pluripotent stem cells: The last 10 years / E.A. Kimbrel, R. Lanza // J. Reg. Medicine. - 2016. - Vol. 11. - P.831-847

30. Kuroda Y. Unique multipotent cells in adult human mesenchymal cell populations / Y. Kuroda [et. al.] // Proc Natl Acad Sci U S A. - 2010. - Vol. 107. - P.8639-8643

31. Lee M. J. Mesenchymal stem/stromal cells protect the ocular surface by suppressing inflammation in an experimental dry eye / M. J. Lee [et. al.] // Mol. Ther. - 2015. - Vol. 23. - P. 139-146

32. Leow S. Safety and efficacy of human wharton’s jelly-derived mesenchymal stem cells therapy for retinal degeneration / S. Leow, C. Luu, M. Hairul Nizam // PLoS ONE. - 2015. - Vol. 10. - P. 1-20

33. Maximow A. Der Lymphozyt als gemeinsame Stammzelle der verschiedenen Blutelemente in der embryonalen Entwicklung und im postfetalen Leben der Säugetiere // J. Folia Haematologica. - 1909. - Vol. 8. - P.1-9

34. McCabe K.L. Efficient generation of human embryonic stem cell-derived corneal endothelial cells by directed differentiation / K.L. McCabe [et. al.] // PLoS One - 2015. - Vol. 10

35. Mikhailova A. Small-molecule induction promotes corneal epithelial cell differentiation from human induced pluripotent stem cells / A. Mikhailova [et. al.] // Stem Cell Reports. - 2014. - Vol. 2. - P. 219 -231

36. Nakamura T. The successful culture and autologous transplantation of rabbit oral mucosal epithelial cells on amniotic membrane / T. Nakamura, K. Endo, L. Cooper // Investigative Ophthalmology & Visual Science. - 2003. - Vol. 44. - P. 106-116

37. Omoto M. Mesenchymal stem cells home to inflamed ocular surface and suppress allosensitization in corneal transplantation / M. Omoto, K. Katikireddy, A. Rezazadeh // Invest. Ophthalmol. Vis. Sci. - 2014. - Vol. 55. - P. 6631-6638

38. Pathak M. Clinical transplantation of ex vivo expanded autologous limbal epithelial cells using a culture medium with human serum as single supplement: a retrospective case series / M. Pathak, S. Cholidis, K. Haug. // Acta Ophthalmol. - 2013. - Vol. 91. - P. 769-775

39. Pellegrini G. Location and clonal analysis of stem cells and their differentiated progeny in the human ocular surface / G. Pellegrini [et. al.] // J Cell Biol. - 1999. - Vol. 145. - P.769-782

40. Pellegrini G. Concise review: Hurdles in a successful example of limbal stem cell-based regenerative medicine / G. Pellegrini, P. Rama, di Rocco // Stem Cells. - 2014. - Vol. 32. - P. 26-34

41. Rama P. Limbal Stem-Cell Therapy and Long-Term Corneal Regeneration / P. Rama [et. al.] // N Engl J Med. - 2010. - Vol. 363. - P. 147-155

42. Sangwan V.S. Transforming ocular surface stem cell research into successful clinical practice / V.S. Sangwan [et. al.] // Indian J.Ophthalmol. - 2014. - Vol. 62. - P. 29-40

43. Sareen D. Differentiation of human limbal-derived induced pluripotentstem cells into limbal-like epithelium / D.Sareen [et. al.] // Stem Cells Transl. Med. - 2014. - Vol. 3. - P. 1002 -1012

44. Shortt A.J. Characterization of the limbal epithelial stemcell niche: Novel imaging techniques permit in vivo observation and targeted biopsy of limbal epithelial stem cells / A.J. Shortt [et. al.] // STEM CELLS. - 2007. - Vol. 25. - P.1402-1409

45. Shortt A.J. Three-Year outcomes of cultured limbal epithelial allografts in aniridia and Stevens-Johnson syndrome evaluated using the clinical outcome assessment in surgical trials assessment tool/ A.J. Shortt [et. al.] // Stem Cells Transi. Med. - 2014. - Vol. 2. - P. 267-275

46. Soh Y.Q. Translational issues for human corneal endothelial tissue engineering / Y.Q. Soh [et. al.] // J. Tissue Eng. Regen. Med. - 2016

47. Susaimanickam P.J. Generating minicorneal organoids from human induced pluripotent stem cells / P.J. Susaimanickam [et. al.] // Development. - 2017. - Vol. 114. - P. 2338-2351

48. Takahashi K. Induction of pluripotent stem cells from mouse embryonic and adult fibroblast cultures by defined factors / K. Takahashi, S. Yamanaka // J. Cell. - 2006. - Vol. 126. - P.663-676

49. Takeda K. Ocular surface reconstruction using the combination of autologous cultivated oral mucosal epithelial transplantation and eyelid surgery for severe ocular surface disease / K. Takeda [et. al.] // Am. J. Ophthalmol. - 2011. - Vol. 152. - P. 195-201

50. Thomson J.A. Embryonic stem cell lines derived from human blastocysts / J.A. Thomson [et. al.] // J. Science. - 1998. - Vol. 282. - P.1145-1147

51. Villatoro A. Use of adipose-derived mesenchymal stem cells in keratoconjunctivitis sicca in a canine model / A. Villatoro, V. Fernández, S. Claros // BioMed Research International. - 2015. - Vol. 22. - P. 51-62

52. Wu X. Safety evaluation of intracameral and subconjunctival injection of a novel mucoadhesive polysaccharide isolated from Bletilla striata in rabbit eye / X. Wu, X. Yang, H. Jiang // J. Ocul. Pharmacol. Ther. - 2012. - Vol. 28. - P. 369-380

53. Yu W.Y. Progenitors for the corneal endothelium and trabecular meshwork: A potential source for personalized stem cell therapy in corneal endothelial diseases and glaucoma / W.Y. Yu [et. al.] // J. Biomed. - 2011. - Vol. 305

54. Zavala J. Corneal endothelium: developmental strategies for regeneration // J. Eye - 2013. - Vol. 27. - P.579-588


Рецензия

Для цитирования:


Биккузин Т.И. ПЕРСПЕКТИВЫ ПРИМЕНЕНИЯ СТВОЛОВЫХ КЛЕТОК В ЛЕЧЕНИИ РОГОВИЧНОЙ ДИСТРОФИИ ГЛАЗА. Медицинский вестник Башкортостана. 2017;12(4):104-109.

For citation:


Bikkuzin T.I. STEM CELLS USE PERSPECTIVES IN TREATMENT OF HUMAN CORNEAL DYSTROPHY. Bashkortostan Medical Journal. 2017;12(4):104-109. (In Russ.)

Просмотров: 53


Creative Commons License
Контент доступен под лицензией Creative Commons Attribution 4.0 License.


ISSN 1999-6209 (Print)