医用磷酸三钙级别 可注射骨水泥 3D打印支架 现货
即用型磷酸钙骨水泥治疗骨缺损,世界上第一种可注射的磷酸钙基骨水泥制品,即用型磷酸钙骨水泥2015年即可在欧盟用于临床应用,已应用病例5000个以上。
3D支架用于引导骨再生的大孔磷酸钙支架,是一种合成的,多孔的,生物相容的且具有生物可吸收性的骨替代材料,用于填充或重建不承重的骨缺损或用于填充骨缺损。
INNOTERE 3D支架是一种合成的,多孔的,生物相容的且具有生物可吸收性的骨替代材料,用于填充或重建不承重的骨缺损或用于填充骨缺损,这些骨缺损已通过适当的方式充分稳定。与传统的预制骨替代品相比,INNOTERE 3D支架的特点是:
互连孔隙
使用全合成原材料的骨状矿物相
可通过骨骼重塑过程吸收
INNOTERE 3D支架的创新功能来自使用INNOTERE的创新磷酸钙骨水泥浆的新3D打印技术。该方法允许精确地调节所得支架的互连孔系统的孔隙率。用过的磷酸钙糊剂在打印过程之后通过特定的固化程序进行固化,而无需任何烧结步骤。这避免了晶体的生长,并导致支架主要由天然骨骼的矿相微晶羟基磷灰石组成。
INNOTERE 3D支架的特定应用领域是:
详细信息
商品编号:121TS1 — 骨块 10x10x5mm
商品编号:121TS2 — 骨块 10x5x5mm
产品编号:221TS1 — 骨块 20x10x10mm
(提供不同包装)
物品编号:321TS1 — 骨柱 ?20x15mm
文章编号:521TS2 - 骨柱 ?10 x 10毫米
商品编号:521TS3 — 骨柱 ?12x10mm
商品编号:521TS4 — 骨柱 ?14x10mm
产品编号:521TS5 — 骨柱 ?16x10mm
文章编号:521TS6 - 骨柱 ?18x10mm
文章编号:521TS7 - 骨柱 ?20x10mm
文章编号:521TS8 - 骨柱 ?22x10mm
(提供不同包装)
货号:721TS1 — 骨楔 7x3x30x12mm
商品编号:721TS2 — 骨楔 10x3x30x12mm
商品编号:721TS3 — 骨楔 12x3x35x15mm
产品编号:721TS4 — 骨楔15x3x35x15mm
(提供不同包装)
应用文献
3D Plotted Biphasic Bone Scaffolds for Growth Factor Delivery: Biological Characterization In Vitro and In Vivo. Ahlfeld T, Schuster FP, Foerster Y, Quade M, Akkineni AR, Rentsch C, Rammelt s, Lode A, Gelinsky M Advance Healthcare Materials 2019
Bioprinting of mineralized constructs utilizing multichannel plotting of a self-setting calcium phosphate cement and a cell-laden bioink. Ahlfeld T, Doberenz F, Kilian D, Vater C, Korn P, Lauer G, Lode A, Gelinsky M Biofabrication 2018
A Methylcellulose Hydrogel as Support for 3D Plotting of Complex Shaped Calcium Phosphate Scaffolds. Ahlfeld T, Koehler T, Czichy C, Lode A, Gelinsky M Gels 2018
Strontium(II) and Mechanical Loading Additively Augment Bone Formation in Calcium Phosphate Scaffolds. Reitmaier S, Kovtun A, Schuelke J, Kanter B, Lemm M, Hoess A, Heinemann S, Nies B, Ignatius A Journal of Orthopaedic Research 2017
In situ functionalization of scaffolds during extrusion-based 3D plotting using a piezoelectric nanoliter pipette. Giron S, Lode A, Gelinsky M Journal of 3D Printing in Medicine 2016
3D plotting of growth factor loaded calcium phosphate cement scaffolds. Akkineni AR, Luo Y, Schumacher M, Nies B, Lode A, Gelinsky M Acta Biomaterialia 2015
Medium-Term Funkction of a 3D Printed TCP/HA Structure as a New Osteoinductive Scaffold for Vertical Bone Augmentation: A Simulation by BMP-2 Activation. Moussa M, Carrel JP, Scherrer S, Cattani-Lorente M, Wiskott A, Durual S Materials 2015
A 3D printed TCP/HA structure as a new osteoconductive scaffold for vertical bone augmentation. Carrel JP, Wiskott A, Moussa M, Rieder P, Scherrer S, Durual S Clinical Oral Implants Research 2014
Fabrication of porous scaffolds by three-dimensional plotting of a pasty calcium phosphate bone cement under mild conditions. Lode A, Meissner K, Luo Y, Sonntag F, Glorius S, Nies B, Vater C, Despang F, Hanke T, Gelinsky M Journal of Tissue Engineering and Regenerative Medicine 2014
Well-ordered biphasic calcium phosphate–alginate scaffolds fabricated by multi-channel 3D plotting under mild conditions. Lou Y, Lode A, Sonntag F, Nies B, Gelinsky M Journal of Materials Chemistry B 2013