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首页> 外文期刊>Acta biomaterialia >Biodegradable and adjustable sol-gel glass based hybrid scaffolds from multi-armed oligomeric building blocks
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Biodegradable and adjustable sol-gel glass based hybrid scaffolds from multi-armed oligomeric building blocks

机译:可生物降解和可调节的溶胶 - 凝胶基于多臂低聚构件块的杂交支架

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Graphical abstract Display Omitted Abstract Biodegradability is a crucial characteristic to improve the clinical potential of sol-gel-derived glass materials. To this end, a set of degradable organic/inorganic class II hybrids from a tetraethoxysilane(TEOS)-derived silica sol and oligovalent cross-linker oligomers containing oligo( d , l -lactide) domains was developed and characterized. A series of 18 oligomers (Mn: 1100–3200Da) with different degrees of ethoxylation and varying length of oligoester units was established and chemical composition was determined. Applicability of an established indirect rapid prototyping method enabled fabrication of a total of 85 different hybrid scaffold formulations from 3-isocyanatopropyltriethoxysilane-functionalized macromers. In vitro degradation was analyzed over 12months and a continuous linear weight loss (0.2–0.5wt%/d) combined with only moderate material swelling was detected which was controlled by oligo(lactide) content and matrix hydrophilicity. Compressive strength (2–30MPa) and compressive modulus (44–716MPa) were determined and total content, oligo(ethylene oxide) content, oligo(lactide) content and molecular weight of the oligomeric cross-linkers as well as material porosity were identified as the main factors determining hybrid mechanics. Cytocompatibility was assessed by cell culture experiments with human adipose tissue-derived stem cells (hASC). Cell migration into the entire scaffold pore network was indicated and continuous proliferation over 14days was found. ALP activity linearly increased over 2weeks indicating osteogenic differentiation. The presented glass-based hybrid concept with precisely adjustable material properties holds promise for regenerative purposes. Statement of Significance Adaption of degradation kinetics toward physiological relevance is still an unmet challenge of (bio-)glass engineering. We therefore present a glass-derived hybrid material with adjustable degradation. A flexible design concept based on degradable multi-armed oligomers was combined with an established indirect rapid prototyping method to produce a systematic set of porous sol-gel-derived class II hybrid scaffolds. Mechanical properties in the range of cancellous bone were narrowly controlled by hybrid composition. The oligoester introduction resulted in significantly increased compressive moduli. Cytocompatible hybrids degraded in physiologically relevant time frames and a promising linear and controllable weight loss profile was found. To our knowledge, our degradation study represents the most extensive long-term investigation of sol-gel-derived class II hybrids. Due to the broad adjustability of material properties, our concept offers potential for engineering of biodegradable hybrid materials for versatile applications.
机译:图形摘要显示屏省略了摘要生物降解性是改善溶胶 - 凝胶衍生玻璃材料的临床电位的至关重要的特征。为此,开发了一组来自四乙氧基硅烷(TEOS)的二甲醇硅烷(TEOS)的二氧化硅溶胶和含有寡聚(D,L-LACTEDE)结构域的二乙氧基硅溶胶和寡次价交联寡聚体的一组可降解的有机/无机II杂种。建立了一种具有不同乙氧基化和不同长度的寡酯单元的18个低聚体(Mn:1100-3200DA),并测定化学成分。建立间接快速原型化方法的适用性使得总共85种不同的杂交支架制剂的制造来自3-异氰酸丙基三乙氧基硅烷官能化的大分子液。分析了在体外降解超过12个月,并且检测到仅具有中等材料溶胀的连续线性重量损失(0.2-0.5wt%/ d),其由寡核苷酸(丙交酯)含量和基质亲水性控制。测定压缩强度(2-30MPa)和压缩模量(44-716MPa)并确定总含量,寡核苷酸(环氧乙烷)含量,寡聚寡核苷酸(丙交酯)含量和低聚交联剂的分子量以及材料孔隙率为确定混合力学的主要因素。通过具有人脂肪组织衍生的干细胞(HASC)的细胞培养实验评估细胞膜相容性。指示细胞迁移到整个支架孔网中,并发现了14天的连续增殖。 ALP活性在2周上线性增加,表明骨质发生分化。呈现的玻璃基混合概念具有精确可调节的材料特性,可获得可再生目的的承担。降解动力学的重要性调整对生理相关性的陈述仍然是(生物)玻璃工程的未满足挑战。因此,我们提出了一种具有可调节降解的玻璃衍生的混合动力车材料。基于可降解的多臂低聚物的柔性设计概念与建立的间接快速原型化方法相结合,以生产系统的多孔溶胶 - 凝胶衍生II类杂交支架。通过杂化组合物狭窄地控制松质骨范围内的机械性能。寡替酯引入导致压缩模量显着增加。发现在生理相关的时间框架中降解的细胞势差异杂种和有前途的线性和可控的减肥曲线。为了我们的知识,我们的退化研究是对溶胶 - 凝胶衍生II类杂种的最广泛的长期调查。由于材料特性的可调节性广泛,我们的概念提供了用于多功能应用的可生物降解混合材料的工程潜力。

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