![]() |
|
Connected As: <Anonymous> Contact: srcosmos@aegean.gr |
Kodonas K, Fardi A:
"Tooth eruption theories",
STOMATOLOGIA 66 (4) : 147-154 (Dec 2009)
References included in article: 46 records found.
| Order of appearence | Full citation | SRCosmos Link |
| 1 | Massler M, Schour I, 1941, Studies in tooth development: theories of eruption. Am J Orthodont Oral Surg 27: 552-576 | |
| 2 | Gorski JP, Jr-Marks SC, 1992, Current concepts of the biology of tooth eruption. Crit Rev Oral Biol Med 3: 185-206 | |
| 3 | Ten-Cate A, 1997, Physiologic tooth movement eruption and shedding. In: Οral Histology. Development, Structure and Function. 5th ed. Mosby Co, St Louis, 289-300 | |
| 4 | Weinman J, 1944, Oral Histology and Embryology. BJ Orban, ed. CV Mosby Co, St. Louis, 301-319 | |
| 5 | Jr-Marks SC, Schroeder HE, 1996, Tooth eruption: theories and facts. Anat Rec 245: 374-393 | |
| 6 | Τζιάφας Δ, 1999, Οδοντογένεση: διάπλαση των ριζών και ανατολή των δοντιών: «Βιολογία των οδοντικών ιστών ανάπτυξη, δοµή και λειτουργία». University Studio Press, Θεσσαλονίκη, 57-74 | |
| 7 | Carlson H, 1944, Studies on the rate and amount of eruption of certain human teeth. Am J Orthodont Oral Surg 30: 575-588 | |
| 8 | Βerkovitz B, Holland G, Moxham B, 2003, Development of Dentitions. In: BERKOVITZ BKB, HOLLAND GR, MOXHAM BJ. A Colour Atlas and Textbook of Oral Anatomy, Histology and Embryology. Wolfe Medical Publications Ltd, London, 349-359 | |
| 9 | Moxham BJ, Berkovitz BK, 1989, A comparison of the biomechanical properties of the periodontal ligaments of erupting and erupted teeth of nona continuous growth (ferret mandibular canines). Arch Oral Biol 34: 763-766 | |
| 10 | Shimada A, Shibata T, Komatsu K, 2004, Relationship between the tooth eruption and regional blood flow in angiotensin IIainduced hypertensive rats. Arch Oral Biol 49: 427-433 | |
| 11 | Chiba M, Yamaguchi S, 1998, A method of measuring eruptive movement of the rat incisor using a nonacontacting displacement detector. Nippon Yakurigaku Zasshi 111: 65-71 | |
| 12 | Merzel JJ, Duarte-Novaes PP, Furlan SS, 2000, A histological study of rootaresected and roota transected rat incisors when eruption ceases, shortly before they are exfoliated from the socket. Arch Oral Biol 45: 315-322 | |
| 13 | Berkovitz BK, Thomas NR, 1969, Unimpeded eruption in the rootaresected lower incisor of the rat with a preliminary note on root transection. Arch Oral Biol 14: 771-780 | |
| 14 | Berkovitz BK, 1971, The effect of root transection and partial root resection on the unimpeded eruption rate of the rat incisor. Arch Oral Biol 16: 1033-1043 | |
| 15 | Cahill DR, Jr-Marks SC, 1982, Chronology and histology of exfoliation and eruption of mandibular premolars in dogs. J Morphol 171: 213-218 | |
| 16 | Magnusson B, 1968, Tissue changes during molar tooth eruption. Trans R Sch Dent Stockh Umea 13: 1-122 | |
| 17 | Magnusson B, 1973, Autoradiographic study of erupting teeth in rats after intracardial injection of 131 Ia fibrinogen. Scand J Dent Res 81: 130-134 | |
| 18 | Carl W, Wood R, 1980, Effects of radiation on the developing dentition and supporting bone. J Am Dent Assoc 1 01: 646-648 | |
| 19 | Cahill DR, Jr-Marks SC, 1980, Tooth eruption: evidence for the central role of the dental follicle. J Oral Pathol 9: 189-200 | |
| 20 | Marks SJ, Schroeder H, Andreasen J, 1997, Theories and Mechanisms of Tooth Eruption. In: ANDREASEN JO PETERSEN JK, LASKIN DM. Textbook and Color Atlas of Tooth Impaction. Diagnosis, Treatment and Prevention. 1st ed. Munskgaard, Copenhagen, 20-43 | |
| 21 | Shore RC, Berkovitz BK, Moxham BJ, 1985, The effects of preventing movement of the rat incisor on the structure of its periodontal ligament. Arch Oral Biol 30: 221-228 | |
| 22 | Bellows CG, Melcher AH, Aubin JE, 1983, An inavitro model for tooth eruption utilizing periodontal ligament fibroblasts and collagen lattices. Arch Oral Biol 28: 715-722 | |
| 23 | Langevin HM, Bouffard NA, Badger GJ, Iatridis JC, Howe AK, 2005, Dynamic fibroblast cytoskeletal response to subcutaneous tissue stretch ex vivo and in vivo. Am J Physiol Cell Physiol 288: 747-756 | |
| 24 | Yamaoka Y, Sawa Y, Ebata N, Yoshida S, Kawasaki T, 1999, Desmosomal proteins in cultured and intact human periodontal ligament fibroblasts. Tissue Cell 31: 605-609 | |
| 25 | Lekic P, Mc-Culloch CA, 1996, Periodontal ligament cell population: the central role of fibroblasts in creating a unique tissue. Anat Rec 245: 327-341 | |
| 26 | Taverne AA, Lemmens IG, Tonino GJ, 1986, Lathyrogens and the role of collagen in the eruption of rat incisors. Arch Oral Biol 31: 127-131 | |
| 27 | Berkovitz BK, Moxham BJ, 1990, The development of the periodontal ligament with special reference to collagen fibre ontogeny. J Biol Buccale 18: 227-236 | |
| 28 | Jr-Marks SC, Cahill DR, 1984, Experimental study in the dog of the nonaactive role of the tooth in the eruptive process. Arch Oral Biol 29: 311-322 | |
| 29 | Brash I, 1928, The growth of the alveolar bone and its relation to the movements of the teeth, including eruption. Int J Orthodon 11: 283- 293, 487-504 | |
| 30 | Jr-Marks SC, Cahill DR, Wise GE, 1983, The cytology of the dental follicle and adjacent alveolar bone during tooth eruption in the dog. Am J Anat 168: 277-289 | |
| 31 | Jr-Marks SC, Cahill DR, 1987, Regional control by the dental follicle of alterations in alveolar bone metabolism during tooth eruption. J Oral Pathol 16: 164-169 | |
| 32 | Larson EK, Cahill DR, Gorski JP, Jr-Marks SC, 1994, The effect of removing the true dental follicle on premolar eruption in the dog. Arch Oral Biol 39: 271-275 | |
| 33 | Jr-Marks SC, Gorski JP, Wise GE, 1995, The mechanisms and mediators of tooth eruption a models for developmental biologists. Int J Dev Biol 39: 223-230 | |
| 34 | Gorski J, Marks JS, Cahill D, Wise G, 1988, Biochemical Analysis of the Extracellular Matrix of the Dental Follicle at Different Stages of Tooth Eruption. In: DAVIDOVITCH Z ed. The Biological Mechanisms of Tooth Eruption and Root Resorption. EBSCO Media, Birmingham, AL. 251-260 | |
| 35 | Wise GE, Jr-Marks SC, Cahill DR, 1985, Ultrastructural features of the dental follicle associated with formation of the tooth eruption pathway in the dog. J Oral Pathol 14: 15-26 | |
| 36 | Wise G, Marks SJ, Cahill D, Gorski J, 1988. Ultrastructural Features of the Dental Follicle and Enamel Organ prior to and during Tooth Eruption. In: DAVIDOVITCH Z ed. The Biological Mechanisms of Tooth Eruption and Root Resorption. EBSCO Media, Birmingham, AL.243-249 | |
| 37 | Jr-Marks SC, Popoff SN, 1988, Bone cell biology: the regulation of development, structure and function in the skeleton. Am J Anat 183: 1-44 | |
| 38 | Smid JR, Monsour PA, Rousseau EM, Young WG, 1992, Cytochemical localization of dipeptidyl peptidase II activity in rat incisor tooth ameloblasts. Anat Rec 233: 493-503 | |
| 39 | Iizuka T, Cielinski M, Aukerman SL, Jr-Marks SC, 1992, The effects of colonyastimulating factora1 on tooth eruption in the toothless (osteopetrotic) rat in relation to the critical periods for bone resorption during tooth eruption. Arch Oral Biol 37: 629-636 | |
| 40 | Cohen S, 1962, Isolation of a mouse submaxillary gland protein accelerating incisor eruption and eyelid opening in the newaborn animal. J Biol Chem 237: 1555-1562 | |
| 41 | Tam JP, 1985, Physiological effects of transforming growth factor in the newborn mouse. Science 229: 673-675 | |
| 42 | Wise GE, Lin F, Zhao L, 1995, Transcription and translation of CSFa1 in the dental follicle. J Dent Res 74: 1551-1557 | |
| 43 | Wise GE, Fan W, 1991, Immunolocalization of transforming growth factor beta in rat molars. J Oral Pathol Med 20: 74-80 | |
| 44 | Lin F, Wise GE, 1993, Effect of epidermal growth factor on expression of transforming growth factora beta 1 mRNA in stellate reticulum cells of rat mandibular molars. Dev Dyn 198: 22-27 | |
| 45 | Wise GE, Rudick VL, Brunazinkernagel AM, Fan W, 1990, Ultrastructural and immunocytochemical charaa cterization of cultured cells from rat molar stellate reticulum. Arch Oral Biol 35: 603-613 | |
| 46 | Wiseman DM, Polverini PJ, Kamp DW, Leibovich SJ, 1988, Transforming growth factorabeta (TGF beta) is chemotactic for human monocytes and induces their expression of angiogenic activity. Biochem Biophys Res Commun 157: 793-800 |