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Differential Diagnosis of Skeletal Class III

, Muelas L, Viñas MJ. Comparative study of nasopharyngeal soft-tissue characteristics in patients with Class III malocclusion. Am J Orthod Dentofacial Orthop, 2011;139:242-251. 13. Jacobson A, Evans WG, Preston CB, Sadowsky PW. Mandibular prognathism. Am J Orthod Dentofacial Orthop, 1974;66:140-171. 14. Saborn RT. Differences between the facial skeletal patterns of Class III malocclusion and normal occlusion. Angle Orthod, 1955;25:208-222. 15. Singh GD. Morphologic determinants in the etiology of class III malocclusions: a review. Clin Anat, 1999

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Radiographic Comparison of Vertical Skeletal and Dental Parameters in Skeletal Open Bite

Orthod. 2012;82(3):432-440. 12. Alkofide EA. The shape and size of the sella turcica in skeletal Class I, Class II, and Class III Saudi subjects. Eur J Orthod. 2007;29(5):457-463. 13. Andredaki M, Koumantanou A, Dorotheou D, Halazonetis DJ. A cephalometric morphometric study of the sella turcica. Eur J Orthod. 2007;29(5):449-456. 14. Pisaneschi M, Kapoor G. Imaging of the sella and parasellar region. Neuroimaging Clinics of North America. 2005;15:203-219. 15. Jones RM, Faqir A, Millett DT, Moos KF, McHugh S. Bridging and dimensions of sella

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Effects of skeletal muscle denervation on potency of rocuronium

Chem. 1988; 263:12878-85. 4. Ma J, Shen J, Garrett JP, Lee CA, Li Z, Elsaidi GA, Ritting A, et al. Gene expression of myogenic regulatory factors, nicotinic acetylcholine receptor subunits, and GAP-43 in skeletal muscle following denervation in a rat model. J Orthop Res. 2007; 25: 1498-505. 5. Nosek MT, Martyn JA. Na+ channel and acetylcholine receptor changes in muscle at sites distant from burns do not simulate denervation. J Appl Physiol. 1997; 82: 1333-9. 6. Ibebunjo C, Martyn JA. Thermal injury induces greater

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Functions of circular RNAs involved in animal skeletal muscle development – a review

. Mol. Cell., 56: 55–66. Bassel-Duby, R., and Olson, E. N. (2006). Signaling pathways in skeletal muscle remodeling. Annu. Rev. Biochem.,75: 19–37. Chen, L. L., and Yang, L. (2015). Regulation of circRNA biogenesis. RNA Biol.12, 381–388 Du, W. W., Yang, W., Liu, E., Yang, Z., Dhaliwal, P., and Yang, B. B. (2016). Foxo3 circular RNA retards cell cycle progression via forming ternary complexes with p21 and CDK2. Nucleic Acids Res., 44: 2846–2858. Ivanov, A., Memczak, S., Wyler, E., Torti, F., Porath, H. T., Orejuela, M. R., Piechotta, M., Levanon

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Evaluation of the Skeletal Maturation Using Lower First Premolar Mineralisation

References 1. Lee JH, Kang YG, Lee KS, Nam JH. Maturation of cervical vertebrae in relation to menarche. Korean J Orthod. 2009;39:28-35. 2. Cho S, Hwang C. Skeletal maturation evaluation using mandibular third molar development in adolescents. Korean J Orthod. 2009;39(2):120-129. 3. Bishara SE. Textbook of orthodontics, Ed. Saunders, 2001, pp. 75-80. 4. Lamparski DG. Skeletal age assessment utilizing cervical vertebrae. Pittsburgh (PA): University of Pittsburgh, 1972, pp. 6-11. 5

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A Retrospective Radiographic Study Regarding Diffuse Idiopathic Skeletal Hyperostosis (Dish) in Dogs

References Bossens K., Bhatti S., Van Soens I., Gielen I., Van Ham L., 2016. Diffuse idiopathic skeletal hyperostosis of the spine in a nine-year-old cat. Journal of Small Animal Practice, 57 (1), 33-35. Ciepluch F.M., Da Costa C.R., Russel D., 2015. Imagind diagnosis - an atypical presentation of diffuse idiopathic skeletal hyperostosis (DISH) in a dog. Veterinary Radiology and Ultrasound, 56 (1), E5-E8. De Decker S., Volk H.A., 2014. Dorsal vertebral column abnormalities in dogs with disseminated idiopathic

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The cooperation between orthodontists and surgeons in treating facial skeletal deformities

orthognathic surgery. Angle Orthod. 2010;80:361-6. 8. Takada K, Petdachai S, Sakaduda M. Changes in dentofacial morphology in skeletal Class III children treated by a modified maxillary protraction headgear and a chin cup: a longitudinal cephalometric appraisal. Eur J Orthod. 1993;15:211-21. 9. Freeman CS, Mc Namara JA Jr, Bacetti T, et al. Treatment effects of the bionator and high-pull facebow combination followed by fixed appliances in patients with increased vertical demensions Am J Orthod Dentofacial Orthop. 2007

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Mechanism and Functions of Identified miRNAs in Poultry Skeletal Muscle Development – A Review

References Accili D., Arden K.C. (2004). FoxOs at the crossroads of cellular review metabolism, differentiation, and transformation. Cell, 117: 421–426. Andreote A.P.D., Rosario M.F., Ledur M.C., Jorge E.C., Sonstegard T.S., Matukumalli L., Coutinho L.L. (2014). Identification and characterization of microRNAs expressed in chicken skeletal muscle. Genet. Mol. Res., 13: 1465–1479; https://doi.org/10.4238/2014.March.6.5 . Baquero-Perez B., Kuchipudi S.V., Nelli R.K., Chang K.C. (2012). A simplified but robust method for the isolation of avian and

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The effect of radiation dose on mouse skeletal muscle remodeling

References 1. Wolfe RR. The underappreciated role of muscle in health and disease. Am J Clin Nutr 2006; 84: 475-82. 2. Gulati AK. The effect of X-irradiation on skeletal muscle regeneration in the adult rat. J Neurol Sci 1987; 78: 111-120. 3. Rosenblatt JD, Parry DJ. Gamma irradiation prevents compensatory hypertrophy of overloaded mouse extensor digitorum longus muscle. J Appl Physiol 1992; 73: 2538-43. 4. Rosenblatt JD, Parry DJ. Adaptation of rat extensor digitorum longus muscle to gamma

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Evolutive particularities in Diffuse Idiopathic Skeletal Hyperostosis associated with Spinal Stenosis – case report

References 1. Helfgott, S.M., Tugwell, P. & Romain, P.L. (2015). Diffuse idiopathic skeletal hyperostosis (DISH) , UpToDate, Retrieved Aprilie 6, 2015, from UpToDate database on the World Wide Web : http://www.uptodate.com 2. Nascimento, F.A., Gatto, L.A.M., Lages, R.O., Neto, H.M., Demartini, Z. & Koppe, G.L. (2014). Diffuse idiopathic skeletal hyperostosis : A review, Surg Neurol Int, 5 (Suppl 3), S122-S125, DOI: 10.4103/2152-7806.130675 3. Holton, K.F., Denard, P.J., Yoo, J.U., Kado, D.M., Barrett-Connor, E. & Marshall, L.M., Osteoporotic

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