{"id":11801,"date":"2021-08-11T11:34:42","date_gmt":"2021-08-11T14:34:42","guid":{"rendered":"https:\/\/shop.regedent.com\/it\/shop\/product-15\/"},"modified":"2024-01-08T06:01:05","modified_gmt":"2024-01-08T09:01:05","slug":"smartgraft-05-cc-025-1-mm","status":"publish","type":"product","link":"https:\/\/shop.regedent.com\/it\/shop\/smartgraft-05-cc-025-1-mm\/","title":{"rendered":"Smartgraft 0,5cc \/ 0,25-1mm"},"content":{"rendered":"<h4>PERCH\u00c9 UTILIZZARE L&#8217;INNESTO OSSEO SUINO SMARTGRAFT?<\/h4>\n<p>SmartGRAFT \u00e8 un sostituto osseo che bilancia l&#8217;alta porosit\u00e0 con un rimodellamento stabile del volume [1,2]. L&#8217;alta porosit\u00e0 e i macro pori migliorano la vascolarizzazione, la crescita dell&#8217;osso e l&#8217;osteointegrazione dell&#8217;impianto dopo l&#8217;intervento [3,4].<\/p>\n<p><img loading=\"lazy\" decoding=\"async\" class=\"alignleft\" src=\"https:\/\/i0.wp.com\/paradent.eu\/upload\/medialibrary\/753\/Cell-adhesion.jpg?resize=297%2C290&#038;ssl=1\" alt=\"Smartgraft porcine graft material supporting cell adhesion \" width=\"297\" height=\"290\" data-recalc-dims=\"1\" \/><\/p>\n<h5>Adesione cellulare<\/h5>\n<p>La superficie ruvida dei granuli di origine suina, simili a quella dell&#8217;osso umano, facilita l&#8217;adesione di nuove cellule [1,2].<\/p>\n<p>&nbsp;<\/p>\n<h5>Migrazione \/ proliferazione<\/h5>\n<p>L&#8217;alta porosit\u00e0 di SmartGRAFT e i grandi pori migliorano la vascolarizzazione, la crescita dell&#8217;osso e l&#8217;osteointegrazione dell&#8217;impianto dopo l&#8217;intervento. La matrice minerale ossea anorganica ha interconnessioni che riducono la densit\u00e0 di massa dell&#8217;innesto, assicurando pi\u00f9 spazio per la formazione di nuovo tessuto osseo [10]. I macropori di SmartGRAFT vanno da 0,1 mm a 1,0 mm.<\/p>\n<p>L&#8217;apatite nativa, conservata dal processo di purificazione brevettato, possiede la sua struttura porosa naturale per la proliferazione cellulare e osteoconduzione.<\/p>\n<p>&nbsp;<\/p>\n<h5><strong><img loading=\"lazy\" decoding=\"async\" class=\"alignleft\" src=\"https:\/\/i0.wp.com\/paradent.eu\/upload\/medialibrary\/bf5\/IR-Spectra-for-human-and-porcine-bones.jpg?resize=295%2C181&#038;ssl=1\" alt=\"Smartgraft IR Spectra for human and porcine bones\" width=\"295\" height=\"181\" data-recalc-dims=\"1\" \/><\/strong>RIGENERAZIONE<strong><br \/>\n<\/strong><\/h5>\n<p>Il sostituto osseo di origine suina presenta una struttura simile all&#8217;osso umano favorendo un rimodellamento equilibrato [5].<\/p>\n<p>&nbsp;<\/p>\n<p>&nbsp;<\/p>\n<p>&nbsp;<\/p>\n<h4>SEI RAGIONI PER AGGIUNGERE HYADENT BG A SMARTGRAFT<\/h4>\n<ol class=\"pink li-catalog\">\n<li>Il putty pu\u00f2 essere preparato in 3 minuti con xHyA Hyadent BG \u2013 gel pronto all\u2018uso &#8211; e Smartgraft.<\/li>\n<li>Come agente idrofilo, l\u2018Acido Ialuronico (HA) stabilizza il coagulo di sangue e attrae fattori di crescita per sostenere e accelerare la formazione ossea.<sup>20-23<\/sup><\/li>\n<li>L\u2019acido ialuronico favorisce l\u2019angiogenesi.<sup>24<\/sup><\/li>\n<li>L\u2018alto peso molecolare dell\u2018Acido Ialuronico riduce il gonfiore e il fastidio, supportando la guarigione senza esiti cicatriziali.<sup>25<\/sup><\/li>\n<li>L\u2019Acido Ialuronico ha propriet\u00e0 batteriostatiche naturali.<sup>26<\/sup><\/li>\n<li>La speciale formulazione dell\u2019Acido Ialuronico rimane presente durante le varie fasi del processo di guarigione grazie al suo lento riassorbimento (diverse settimane).<sup>22<\/sup><\/li>\n<\/ol>\n<p><iframe loading=\"lazy\" title=\"Sticky bone con Smartgraft e l&#039;acido ialuronico de Regedent Italia srl\" width=\"980\" height=\"735\" src=\"https:\/\/www.youtube.com\/embed\/Kf6bRQfNCL8?feature=oembed\" frameborder=\"0\" allow=\"accelerometer; autoplay; clipboard-write; encrypted-media; gyroscope; picture-in-picture; web-share\" allowfullscreen><\/iframe><\/p>\n<p>&nbsp;<\/p>\n<p>&nbsp;<\/p>\n<p><a href=\"https:\/\/ifu.regedent.com\/\" target=\"_blank\" rel=\"noopener\">Istruzioni per l&#8217;uso<\/a><\/p>\n<p>&nbsp;<\/p>\n<h4>Letteratura scientifica di Smartgraft<\/h4>\n<div class=\"property-detail-item\">\n<div class=\"catalog-source\">\n<ol class=\"ol-catalog-source\">\n<li class=\"li-catalog-source\">Deligianni DD, Katsala ND, Koutsoukos PG, Missirlis YF, Effect of Surface Roughness of Hydroxyapatite on Human Bone Marrow Cell Adhesion, Proliferation, Differentiation and Detachment Strength. Elsevier Biomaterials 22 (2001) 87\u201396<\/li>\n<li class=\"li-catalog-source\">Shu-Thung L et al. (2014) Isolation and Characterization of a Porous Carbonate Apatite From Porcine Cancellous Bone. Science, Technology, Innovation, Aug: 1-13 (data on file)<\/li>\n<li class=\"li-catalog-source\">Frank M. Klenke, Yuelian Liu, Huipin Yuan, Ernst B. Hunziker, Klaus A. Siebenrock, Willy Hofstetter. Impact of Pore Size on the Vascularization and Osseointegration of Ceramic Bone Substitutes in vivo. Journal of Biomedical Materials Research Part A, 2007, 777-786<\/li>\n<li class=\"li-catalog-source\">Hannink G1, Arts JJ. Bioresorbability, porosity and mechanical strength of bone substitutes: what is optimal for bone regeneration? Injury. 2011 Sep;42 Suppl 2:S22-5<\/li>\n<li class=\"li-catalog-source\">Saghiri MA, Asatourian A, Garcia-Godoy F, Sheibani N. The role of angiogenesis in implant dentistry part II: The effect of bone-grafting and barrier membrane materials on angiogenesis. Med Oral Patol Oral Cir Bucal. 2016 Jul 1;21(4):e526-37. doi: 10.4317\/medoral.21200. PMID: 27031074; PMCID: PMC4920468.<\/li>\n<li class=\"li-catalog-source\">Data on file<\/li>\n<li class=\"li-catalog-source\">Data on file<\/li>\n<li class=\"li-catalog-source\">Shu-Thung L et al. (2014) Isolation and Characterization of a Porous Carbonate Apatite From Porcine Cancellous Bone. Science, Technology, Innovation, Aug: 1-13 (data on file)<\/li>\n<li class=\"li-catalog-source\">Bracey DN, Seyler TM, Jinnah AH, Lively MO, Willey JS, Smith TL, et al. A decellularized porcine xenograft-derived bone scaffold for clinical use as a bone graft substitute: a critical evaluation of processing and structure. J Funct Biomater. 2018;9(3):45.https:\/\/doi.org\/10.3390\/jfb9030045.<\/li>\n<li class=\"li-catalog-source\">Lai VJ, Michalek JE, Liu Q, Mealey BL. Ridge preservation following tooth extraction using bovine xenograft compared with porcine xenograft: A randomized controlled clinical trial. J Periodontol. 2020 Mar;91(3):361-368. doi: 10.1002\/JPER.19-0211. Epub 2019 Aug 23. PMID: 31380563.<\/li>\n<li class=\"li-catalog-source\">Renzo et al.: Tissue Dimensional Changes Following Alveolar Ridge Preservation with Different Xenografts Associated with a Collagen Membrane. Results at the 4-Month Re-Entry Surgery. Int Arch Oral Maxillofac Surg, 2017, 1:003<\/li>\n<li class=\"li-catalog-source\">Guarnieri R, Di Nardo D, Di Giorgio G, Miccoli G, Testarelli L. Effectiveness of Xenograft and Porcine-Derived Resorbable Membrane in Augmentation of Posterior Extraction Sockets with a Severe Wall Defect. A Radiographic\/Tomographic Evaluation. J Oral Maxillofac Res. 2019 Mar 31;10(1):e3. doi: 10.5037\/jomr.2019.10103. PMID: 31086644; PMCID: PMC6498814.<\/li>\n<li class=\"li-catalog-source\">Method of Preparing Porous Carbonate Apatite from Natural Bone. United States Patent US 8,980,328<\/li>\n<li class=\"li-catalog-source\">F Landi E., Celotti G., Logroscino G., Tampieri A. 2003. Carbonated Hydroxyapatite as Bone Substitute. Journal of the European Ceramic Society 23: 2931\u20132937.<\/li>\n<li class=\"li-catalog-source\">Spense G., Patel N., Brooks R., Rushton N. 2009. Carbonate Substituted Hydroxyapatite: Resorption by Osteoclasts Modifi es the Osteoblastic Response. Journal of Biomedical Materials Research Part A 217-224.<\/li>\n<li class=\"li-catalog-source\">Doi Y, Shibutani T, Moriwaki Y, Kajimoto T, Iwayama Y. Sintered carbonate apatites as bioresorbable bone substitutes. J Biomed Mater Res 1998;39:603\u2013610<\/li>\n<li class=\"li-catalog-source\">Hasegawa M, Doi Y, Uchida A. Cell-mediated bioresorption of sintered carbonate apatite in rabbits. J Bone Joint Surg [Br] 2003;85:142\u2013147.<\/li>\n<li class=\"li-catalog-source\">Spense G., Patel N., Brooks R., Rushton N. 2009. Carbonate Substituted Hydroxyapatite: Resorption by Osteoclasts Modifi es the Osteoblastic Response. Journal of Biomedical Materials Research Part A 217-224.<\/li>\n<li class=\"li-catalog-source\">Method of Preparing Porous Carbonate Apatite from Natural Bone. United States Patent US 8,980,328.<\/li>\n<li class=\"li-catalog-source\">Muzaffer A et al. \u2018The Effect of Hyaluronic Acid-supplemented Bone Graft in Bone Healing: Experimental Study in Rabbits.\u2019J Biomater Appl 2006 20:209<\/li>\n<li class=\"li-catalog-source\">Sasaki T, Watanabe C. \u2018Stimulation of osteoinduction in bone wound healing by high-molecular hyaluronic acid.\u2019 Bone. Vol. 16. No.1 January 1995:9-15<\/li>\n<li class=\"li-catalog-source\">Stiller M et al. \u2018Performance of \u03b2-tricalcium phosphate granules and putty, bone grafting materials after bilateral sinus floor augmentation in humans.\u2019 Biomaterials 2014;35(10):3154-3163.<\/li>\n<li class=\"li-catalog-source\">Mendes RM et al. \u2018Sodium hyaluronate accelerates the healing process in tooth sockets of rat.\u2019 Arch Oral Biol 2008; 53:1155\u20131162<\/li>\n<li class=\"li-catalog-source\">King, S.R., Hickerson, W.L. and Proctor, K.G. (1991) Benefi cial Actions of Exogenous Hyaluronic Acid on Wound Healing. Surgery, 109, 76-86.<\/li>\n<li class=\"li-catalog-source\">Asparuhova M, Kiryak D, Eliezer M, Mihov D, Sculean A. \u2018Activity of two hyaluronan preparations on primary human oral fi broblasts\u2019. J Periodontal Res 2018 Sep 27. Epub 2018 Sep 27<\/li>\n<li class=\"li-catalog-source\">Pirnazar P et al. \u2019Bacteriostatic effects of hyaluronic acid.\u2019 Journal of Periodontology 1999;70:370-374<\/li>\n<li class=\"li-catalog-source\">Internal testing results, data on file.<\/li>\n<li class=\"li-catalog-source\">Internal testing results, data on file.<\/li>\n<li class=\"li-catalog-source\">Eliezer M, Sculean A, Miron RJ, et al. \u2018Hyaluronic acid slows down collagen membrane degradation in uncontrolled diabetic rats.\u2019 J Periodontal Res. 2019;00:1\u20139. https:\/\/doi.org\/10.1111\/jre.12665<\/li>\n<li class=\"li-catalog-source\">Brett D. A Review of Collagen and Collagen-based Wound Dressings. Wounds 2008;20(12).<\/li>\n<li class=\"li-catalog-source\">Data on file<\/li>\n<\/ol>\n<\/div>\n<\/div>\n","protected":false},"excerpt":{"rendered":"<p>1 Dappen di xenograft suino<\/p>\n","protected":false},"featured_media":12094,"template":"","meta":[],"product_cat":[239],"product_tag":[],"_links":{"self":[{"href":"https:\/\/shop.regedent.com\/it\/wp-json\/wp\/v2\/product\/11801"}],"collection":[{"href":"https:\/\/shop.regedent.com\/it\/wp-json\/wp\/v2\/product"}],"about":[{"href":"https:\/\/shop.regedent.com\/it\/wp-json\/wp\/v2\/types\/product"}],"wp:featuredmedia":[{"embeddable":true,"href":"https:\/\/shop.regedent.com\/it\/wp-json\/wp\/v2\/media\/12094"}],"wp:attachment":[{"href":"https:\/\/shop.regedent.com\/it\/wp-json\/wp\/v2\/media?parent=11801"}],"wp:term":[{"taxonomy":"product_cat","embeddable":true,"href":"https:\/\/shop.regedent.com\/it\/wp-json\/wp\/v2\/product_cat?post=11801"},{"taxonomy":"product_tag","embeddable":true,"href":"https:\/\/shop.regedent.com\/it\/wp-json\/wp\/v2\/product_tag?post=11801"}],"curies":[{"name":"wp","href":"https:\/\/api.w.org\/{rel}","templated":true}]}}