Formulation, in vitro physico-chemical and biological assessment of calcium pyrophosphate dihydrate cement for bone tissue engineering.

IF 9.6
L Touati, C Leroy, C Damia, M Renard, O Marsan, M Durand, H K Ea, J Amédée, C Combes
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引用次数: 0

Abstract

Calcium pyrophosphate dihydrate (CPPD: Ca2P2O7·2H2O) crystals are known for their inflammatory potential as pathological calcifications in osteoarthritis while several studies showed the promising potential of calcium pyrophosphate-based materials as bioactive bone substitutes. This study presents for the first time the feasibility to formulate a m-CPPDc cement consisting of pure agglomerated monoclinic CPPD (m-CPPD) crystals with a lower inflammatory potential than a biomimetic carbonated apatite cement (Apc): m-CPPDc-induced interleukin-1β production was 2 times lower than Apc and 2.5 times lower than isolated m-CPPD crystals. In addition, the possibility to reach a biphasic cement composition (m-CPPD associated with the monoclinic calcium pyrophosphate tetrahydrate (m-CPPT-β) metastable phase) was exemplified by varying a formulation parameter which could be of interest to modulate and controlled the material resorbability and inflammatory response. Through an original methodology combining ortho- and pyrophosphate ions titration, in vitro biological and acellular cement physico-chemical evolution tests, we can correlate the enhanced hydrolysis of pyrophosphate ions released from this cement to the action of ALP enzyme (about 3 times more orthophosphate ions at day 2 and 6 whereas no pyrophosphate was detected) and/or hMSC cells (about 37 % less pyroP at day 4). Interestingly m-CPPDc cement combines a high stability during its evolution in different aqueous media (SBF, TRIS buffer, TRIS buffer including ALP enzymes) at 37 °C while releasing higher calcium (3 times more) and orthophosphate ions concentration than a biomimetic apatite cement. Overall, these results illustrate that the cement formulation strategy implemented in this study opens perspectives to develop a new family of phosphocalcic cements fully composed of hydrated calcium pyrophosphate(s) and intrinsically biologically responsive in vitro. STATEMENT OF SIGNIFICANCE: We developed a formulation strategy demonstrating for the first time the feasibility to obtain a pure calcium pyrophosphate dihydrate (CPPD) cement but also the possibility to reach biphasic cement compositions by playing with hydrated calcium pyrophosphate phases. This material consisting of agglomerated CPPD crystals combines low inflammatory potential, cytocompatibility and a high stability in different aqueous media at 37 °C while releasing higher calcium and orthophosphate ions than a biomimetic apatite cement. Both in vitro cell test including an original pyrophosphate follow-up method and physico-chemical testing revealed a correlation between the hydrolysis of pyrophosphate released from cement to the action of enzymes and/or hMSC cells paving the way to a new family of biologically responsive phosphocalcic bone cements.

骨组织工程用二水焦磷酸钙骨水泥的制备、体外理化及生物学评价。
焦磷酸钙二水合物(CPPD: ca2p2o7.2 . h2o)晶体以其作为骨关节炎病理性钙化的炎症潜力而闻名,而一些研究表明焦磷酸钙基材料作为生物活性骨替代品的潜力很大。本研究首次提出了制备具有比仿生碳酸磷灰石水泥(Apc)更低炎症潜能的纯凝聚单斜型CPPD (m-CPPD)晶体的m-CPPDc水泥的可行性:m-CPPDc诱导的白细胞介素-1β的产生比Apc低2倍,比分离的m-CPPD晶体低2.5倍。此外,通过改变配方参数,可以调节和控制材料的可吸收性和炎症反应,从而达到双相水泥成分(m-CPPD与单斜焦磷酸钙四水合物(m-CPPT-β)亚稳相相关)的可能性。通过将正磷酸盐和焦磷酸盐离子滴定相结合的原始方法,体外生物和脱细胞水泥物理化学进化测试,我们可以将这种水泥释放的焦磷酸盐离子的增强水解与ALP酶的作用联系起来(在第2天和第6天,正磷酸盐离子增加了约3倍,而没有焦磷酸盐被检测到)和/或hMSC细胞(在第4天,焦磷酸盐减少了约37%)。有趣的是,m-CPPDc水泥在37°C的不同水介质(SBF、TRIS缓冲液、包括ALP酶的TRIS缓冲液)中具有高稳定性,同时释放出比仿生磷灰石水泥更高的钙(3倍以上)和正磷酸盐离子浓度。总的来说,这些结果表明,本研究中实施的水泥配方策略为开发一种新的磷酸钙水泥开辟了前景,这种水泥完全由水合焦磷酸钙组成,在体外具有内在的生物反应性。意义声明:我们开发了一种配方策略,首次证明了获得纯焦磷酸钙二水合物(CPPD)水泥的可行性,以及通过水合焦磷酸钙相获得双相水泥组合物的可能性。这种材料由凝聚的CPPD晶体组成,具有低炎症潜能、细胞相容性和在37°C不同水介质中的高稳定性,同时释放出比仿生磷灰石水泥更高的钙和正磷酸盐离子。体外细胞测试(包括原始的焦磷酸盐跟踪方法)和物理化学测试都揭示了从水泥中释放的焦磷酸盐水解与酶和/或hMSC细胞的作用之间的相关性,为新的生物反应性磷钙骨水泥家族铺平了道路。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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