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由甘露糖醛酸钠/古洛糖醛酸钠、明胶和生物活性硅酸钙/二水磷酸二钙组成的用于口腔骨缺损再生的绿色水凝胶。

Green Hydrogels Composed of Sodium Mannuronate/Guluronate, Gelatin and Biointeractive Calcium Silicates/Dicalcium Phosphate Dihydrate Designed for Oral Bone Defects Regeneration.

作者信息

Gandolfi Maria Giovanna, Zamparini Fausto, Valente Sabrina, Parchi Greta, Pasquinelli Gianandrea, Taddei Paola, Prati Carlo

机构信息

Laboratory of Green Biomaterials and Oral Pathology, School of Dentistry, DIBINEM, University of Bologna, 40125 Bologna, Italy.

Endodontic Clinical Section, School of Dentistry, DIBINEM, University of Bologna, 40125 Bologna, Italy.

出版信息

Nanomaterials (Basel). 2021 Dec 18;11(12):3439. doi: 10.3390/nano11123439.

DOI:10.3390/nano11123439
PMID:34947788
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC8706657/
Abstract

Innovative green, eco-friendly, and biologically derived hydrogels for non-load bearing bone sites were conceived and produced. Natural polysaccharides (copolymers of sodium D-mannuronate and L-guluronate) with natural polypeptides (gelatin) and bioactive mineral fillers (calcium silicates CaSi and dicalcium phosphate dihydrate DCPD) were used to obtain eco-sustainable biomaterials for oral bone defects. Three PP-x:y formulations were prepared (PP-16:16, PP-33:22, and PP-31:31), where PP represents the polysaccharide/polypeptide matrix and x and y represent the weight % of CaSi and DCPD, respectively. Hydrogels were tested for their chemical-physical properties (calcium release and alkalizing activity in deionized water, porosity, solubility, water sorption, radiopacity), surface microchemistry and micromorphology, apatite nucleation in HBSS by ESEM-EDX, FT-Raman, and micro-Raman spectroscopies. The expression of vascular () and osteogenic (alkaline phosphatase and osteocalcin ) markers by mesenchymal stem cells (MSCs) derived from human vascular walls, cultured in direct contact with hydrogels or with 10% of extracts was analysed. All mineral-filled hydrogels, in particular PP-31:31 and PP-33:22, released Calcium ions and alkalized the soaking water for three days. Calcium ion leakage was high at all the endpoints (3 h-28 d), while pH values were high at 3 h-3 d and then significantly decreased after seven days ( < 0.05). Porosity, solubility, and water sorption were higher for PP-31:31 ( < 0.05). The ESEM of fresh samples showed a compact structure with a few pores containing small mineral granules agglomerated in some areas (size 5-20 microns). PP-CTRL degraded after 1-2 weeks in HBSS. EDX spectroscopy revealed constitutional compounds and elements of the hydrogel (C, O, N, and S) and of the mineral powders (Ca, Si and P). After 28 days in HBSS, the mineral-filled hydrogels revealed a more porous structure, partially covered with a thicker mineral layer on PP-31:31. EDX analyses of the mineral coating showed Ca and P, and Raman revealed the presence of B-type carbonated apatite and calcite. MSCs cultured in contact with mineral-filled hydrogels revealed the expression of genes related to vascular () and osteogenic (mainly ) differentiation. Lower gene expression was found when cells were cultured with extracts added to the culture medium. The incorporation of biointeractive mineral powders in a green bio-derived algae-based matrix allowed to produce bioactive porous hydrogels able to release biologically relevant ions and create a suitable micro-environment for stem cells, resulting in interesting materials for bone regeneration and healing in oral bone defects.

摘要

构思并制备了用于非承重骨部位的创新型绿色、环保且生物衍生的水凝胶。使用天然多糖(D - 甘露糖醛酸钠和L - 古洛糖醛酸钠的共聚物)与天然多肽(明胶)以及生物活性矿物填料(硅酸钙CaSi和二水磷酸二钙DCPD)来获得用于口腔骨缺损的生态可持续生物材料。制备了三种PP - x:y配方(PP - 16:16、PP - 33:22和PP - 31:31),其中PP代表多糖/多肽基质,x和y分别代表CaSi和DCPD的重量百分比。对水凝胶进行了化学物理性质测试(在去离子水中的钙释放和碱化活性、孔隙率、溶解度、吸水性、射线不透性)、表面微化学和微观形态分析、通过环境扫描电子显微镜 - 能谱仪(ESEM - EDX)、傅里叶变换拉曼光谱(FT - Raman)和显微拉曼光谱在汉克斯平衡盐溶液(HBSS)中进行磷灰石成核分析。分析了源自人血管壁的间充质干细胞(MSCs)在与水凝胶直接接触或与10%提取物培养时血管()和成骨(碱性磷酸酶和骨钙素)标志物的表达。所有含矿物的水凝胶,特别是PP - 31:31和PP - 33:22,在三天内释放钙离子并使浸泡水碱化。在所有终点(3小时 - 28天)钙离子泄漏都很高,而pH值在3小时 - 3天较高,然后在七天后显著下降(<0.05)。PP - 31:31的孔隙率、溶解度和吸水性更高(<0.05)。新鲜样品的环境扫描电子显微镜显示结构致密,有一些孔隙,在某些区域含有聚集的小矿物颗粒(尺寸5 - 20微米)。PP - CTRL在HBSS中1 - 2周后降解。能谱仪分析揭示了水凝胶(C、O、N和S)以及矿物粉末(Ca、Si和P)的组成化合物和元素。在HBSS中放置28天后,含矿物的水凝胶显示出更多孔的结构,PP - 31:31上部分覆盖有更厚的矿质层。矿质涂层的能谱仪分析显示有Ca和P,拉曼光谱显示存在B型碳酸化磷灰石和方解石。与含矿物水凝胶接触培养的MSCs显示出与血管()和成骨(主要是)分化相关基因的表达。当细胞与添加到培养基中的提取物一起培养时,发现基因表达较低。将生物活性矿物粉末掺入基于绿色生物衍生藻类的基质中能够制备出具有生物活性的多孔水凝胶,其能够释放生物学相关离子并为干细胞创造合适的微环境,从而得到用于口腔骨缺损骨再生和愈合的有前景的材料。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/9402/8706657/3714c2d8f4c6/nanomaterials-11-03439-g010.jpg
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https://cdn.ncbi.nlm.nih.gov/pmc/blobs/9402/8706657/7a13fb757f1b/nanomaterials-11-03439-g009a.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/9402/8706657/3714c2d8f4c6/nanomaterials-11-03439-g010.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/9402/8706657/c8b8047e32ae/nanomaterials-11-03439-g001.jpg
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https://cdn.ncbi.nlm.nih.gov/pmc/blobs/9402/8706657/eed3832ba1fa/nanomaterials-11-03439-g006.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/9402/8706657/e730d72c5290/nanomaterials-11-03439-g007.jpg
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