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岩藻依聚糖-肽混合物的生物矿化及其在骨组织再生中的潜在应用。

Biomineralization of Fucoidan-Peptide Blends and Their Potential Applications in Bone Tissue Regeneration.

作者信息

Pajovich Harrison T, Banerjee Ipsita A

机构信息

Department of Chemistry, Fordham University, 441 E Fordham Rd, Bronx, NY 10458, USA.

出版信息

J Funct Biomater. 2017 Sep 20;8(3):41. doi: 10.3390/jfb8030041.

Abstract

Fucoidan (Fuc), a natural polysaccharide derived from brown seaweed algae, and gelatin (Gel) were conjugated to form a template for preparation of biomimetic scaffolds for potential applications in bone tissue regeneration. To the Fuc-Gel we then incorporated the peptide sequence MTNYDEAAMAIASLN (MTN) derived from the E-F hand domain, known for its calcium binding properties. To mimic the components of the extracellular matrix of bone tissue, the Fuc-Gel-MTN assemblies were incubated in simulated body fluid (SBF) to induce biomineralization, resulting in the formation of β-tricalcium phosphate, and hydroxyapatite (HAp). The formed Fuc-Gel-MTN-beta-TCP/HAP scaffolds were found to display an average Young's Modulus value of 0.32 GPa ( = 5) with an average surface roughness of 91 nm. Rheological studies show that the biomineralized scaffold exhibited higher storage and loss modulus compared to the composites formed before biomineralization. Thermal phase changes were studied through DSC and TGA analysis. XRD and EDS analyses indicated a biphasic mixture of β-tricalcium phosphate and hydroxyapatite and the composition of the scaffold. The scaffold promoted cell proliferation, differentiation and displayed actin stress fibers indicating the formation of cell-scaffold matrices in the presence of MT3C3-E1 mouse preosteoblasts. Osteogenesis and mineralization were found to increase with Fuc-Gel-MTN-beta-TCP/HAP scaffolds. Thus, we have developed a novel scaffold for possible applications in bone tissue engineering.

摘要

岩藻依聚糖(Fuc)是一种从褐藻中提取的天然多糖,与明胶(Gel)共轭形成一种模板,用于制备在骨组织再生中具有潜在应用价值的仿生支架。然后,我们将源自E-F手结构域的具有钙结合特性的肽序列MTNYDEAAMAIASLN(MTN)引入到Fuc-Gel中。为了模拟骨组织细胞外基质的成分,将Fuc-Gel-MTN组装体置于模拟体液(SBF)中孵育以诱导生物矿化,从而形成β-磷酸三钙和羟基磷灰石(HAp)。结果发现,形成的Fuc-Gel-MTN-β-TCP/HAP支架的平均杨氏模量值为0.32 GPa(n = 5),平均表面粗糙度为91 nm。流变学研究表明,与生物矿化前形成的复合材料相比,生物矿化后的支架表现出更高的储能模量和损耗模量。通过差示扫描量热法(DSC)和热重分析法(TGA)研究了热相变。X射线衍射(XRD)和能谱分析(EDS)表明了β-磷酸三钙和羟基磷灰石的双相混合物以及支架的组成。该支架促进了细胞增殖、分化,并显示出肌动蛋白应力纤维,表明在MT3C3-E1小鼠前成骨细胞存在的情况下形成了细胞-支架基质。研究发现,Fuc-Gel-MTN-β-TCP/HAP支架的成骨作用和矿化作用增强。因此,我们开发了一种新型支架,可用于骨组织工程。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/22f2/5618292/89db76e88894/jfb-08-00041-g001.jpg

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