Acceso abierto

Expression of Gene Runx2, Wnt and OPG in Palate Cleft Reconstruction Material


Cite

1. Burg M. L, Chai Y., Yao C. A., et al. Epidemiology, Etiology, and Treatment of Isolated Cleft Palate // Frontiers in Physiology, 2016; 7: 67Search in Google Scholar

2. Chenard K. E., Teven C. M., He T. C., et al. Bone Morphogenetic Proteins in Craniofacial Surgery: Current Techniques, Clinical Experiences, and the Future of Personalized Stem Cell Therapy // Journal of Biomedicine and Biotechnology, 2012; 14: 601549Search in Google Scholar

3. Cohen M. M. Jr., Perspectives on RUNX genes: An update // American Journal of Clinical Genetics, 2009; 149A (12): 2629-4610.1002/ajmg.a.3302119830829Search in Google Scholar

4. Durst K. L., Heibert S. W. Role of RUNX family members in transcriptional repression and gene silencing // Nature, 2004; 23: 4220-4224Search in Google Scholar

5. Gaur T., Lengner C. J., Hovhannisyan H., et al. Canonical WNT signaling promotes osteogenesis by directly stimulating Runx2 gene expression // The Journal of Biological Chemistry, 2005; 39: 33132-40Search in Google Scholar

6. Huang W., Yang S., Shao J., et al. Signaling and transcriptional regulation in osteoblast commitment and differentiation // Frontiers in Bioscience, 2007; 12: 3068-3092Search in Google Scholar

7. Hwang S. G., Yu S. S., Lee S. W., et al. Wnt-3a regulates chondrocyte differentiation via c-Jun/ AP-1 pathway // FEBS Letters, 2005; 579 (21): 4837-42Search in Google Scholar

8. Komori T. Regulation of osteoblast differentiation by Runx2 // Advances in Experimental Medicine and Biology, 2010; 658: 43-9Search in Google Scholar

9. Krishnan V., Bryant H.U., Macdougald O.A. Regulation of bone mass by Wnt signaling // The Journal of Clinical Investigation, 2006;116 (5) :1202-9Search in Google Scholar

10. Kusumi A., Sakaki H., Kusumi T., et al. Regulation of synthesis of osteoprotegerin and soluble receptor activator of nuclear factor-kappaB ligand in normal human osteoblasts via the p38 mitogen-activated protein kinase pathway by the application of cyclic tensile strain // Journal of Bone and Mineral Metabolism, 2005; 23 (5): 373-81Search in Google Scholar

11. Kwan T. S., Pelletier J. P., Lajeunesse D., et al. The differential expression of osteoprotegerin (OPG) and receptor activator of nuclear factor kappaB ligand (RANKL) in human osteoarthritic subchondral bone osteoblasts is an indicator of the metabolic state of these disease cells // Clinical and Experimental Rheumatology Journal, 2008; 26 (2): 295-304Search in Google Scholar

12. L. Smane, M. Pilmane. Osteopontin, osteocalcin, and osteoprotegerin expression in human tissue affected by cleft lip and palate // SHS Web of Conferences, 2016; 30: 00008Search in Google Scholar

13. Li J., Dong S. The Signaling Pathways Involved in Chondrocyte Differentiation and Hypertrophic Differentiation // Stem Cells International, 2016; 12: 2470351Search in Google Scholar

14. Logan C.Y., Nusse R. The Wnt signaling pathway in development and disease // Annual Review of Cell and Developmental Biology, 2004; 20: 781-810Search in Google Scholar

15. Menezes R., Letra A., Kim A. H., et al. Studies with Wnt genes and nonsyndromic cleft lip and palate // Birth Defects Research. Part A, Clinical and Molecular Teratology Journal, 2010; 88 (11): 995-100010.1002/bdra.20720299156020890934Search in Google Scholar

16. Murthy J., Bhaskar L. V. K. S. Current concepts in genetics of nonsyndromic clefts // Indian Journal of Plastic Surgery, 2009; 42 (1): 68-81Search in Google Scholar

17. Panamonta V., Pradubwong S., Panamonta M., et al. Global Birth Prevalence of Orofacial Clefts: A Systematic Review // Journal of the Medical Association of Thailand, 2015; 98 (7): S11-21Search in Google Scholar

18. Stricker S., Fundele R., Vortkamp A, et. al. Role of Runx Genes in Chondrocyte Differentiation // Developmental Biology, 2002; 245, 95-10810.1006/dbio.2002.064011969258Search in Google Scholar

19. Tetsunaga T., Nishida K., Furumatsu T., et., al. Regulation of mechanical stress-induced MMP- 13 and ADAMTS-5 expression by RUNX-2 transcriptional factor in SW1353 chondrocyte-like cells // Osteoarthritis and Cartilage, 2011; 19 (2): 222-32Search in Google Scholar

20. Udagawa N., Takahashi N., Yasuda H., et al. Osteoprotegerin produced by osteoblasts is an important regulator in osteoclast development and function // Journal of Endocrinology, 2000; 141 (9): 3478-84Search in Google Scholar

21. Yu W., Serrano M., Miguel S. S, et al. Cleft lip and palate genetics and application in early embryological development // Indian Journal of Plastic Surgery, 2009; 42: S35-S5010.1055/s-0039-1699375Search in Google Scholar

22. Zhang X., Liu Y., Wang X., et.al. Analysis of novel RUNX2 mutations in Chinese patients with cleidocranial dysplasia // PLOS One, 2017; 12 (7): e0181653.10.1371/journal.pone.0181653552433828738062Search in Google Scholar

eISSN:
1407-981X
Idioma:
Inglés
Calendario de la edición:
Volume Open
Temas de la revista:
Medicine, Clinical Medicine, Surgery, other