Hybrid fibres: a new path in tissue regeneration

IF 4.5 3区 医学 Q2 ENGINEERING, BIOMEDICAL
Johana Kulhánková, Christopher J. Hobbs, Barbora Nikendey Holubová, Jakub Erben, Miroslava Rysová, Jana Musílková, Lucie Svobodová, Nataliya Romanyuk, Veronika Máková
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引用次数: 0

Abstract

Nowadays, various forms of organosilane materials are well established in the field of regenerative medicine, but interestingly, fibrous organosilanes have yet to be described. So far, technological obstacles prevent the preparation of such fibrous materials without any presence of spinnability-supporting organic polymers, various types of surfactants, or non-polar organic solvents, which are in many cases highly toxic and economically inconvenient. Recently, these obstacles were overcome by a complex, yet simple, technology combining different science perspectives from supramolecular chemistry through material science to tissue engineering. This paper suggests a synthesis of two biomedically promising monomeric organosilane precursors, N,N´-bis(3-(triethoxysilyl)propyl)terephthalamide (BTT) and N,N´-bis(3-(triethoxysilyl)propyl)pyridine-2,6-dicarboxamide (BTP), which are submitted to a sol-gel process combined with subsequent electrospinning technology. Such a unique procedure not only allows the preparation of toxic-free organosilane fibrous mats by suitable adjustment of sol-gel and electrospinning parameters but also simplifies material production via a one-pot synthesis approach further tuneable with appropriate organosilane precursors. The BTT and BTP fibrous materials prepared displayed not only a promising interface among the materials and 3T3 fibroblast cell lines but moreover, the interaction of nanofibrous materials with stem cells has yielded encouraging outcomes. Stem cell adhesion, proliferation, and differentiation were notably enhanced in the presence of these materials, suggesting a supportive microenvironment conducive to regenerative responses. The ability of the material to modulate the cellular behaviour of stem cells holds promising implications for the development of targeted and effective regenerative therapies.

Graphical Abstract

混合纤维:组织再生的新途径
目前,各种形式的有机硅烷材料在再生医学领域已经得到了很好的应用,但有趣的是,纤维型有机硅烷尚未被描述。到目前为止,技术上的障碍阻碍了这种纤维材料的制备,而不需要任何支持可纺性的有机聚合物、各种类型的表面活性剂或非极性有机溶剂的存在,这些溶剂在许多情况下是剧毒的,而且经济上不方便。最近,一项复杂而简单的技术克服了这些障碍,该技术结合了从超分子化学到材料科学再到组织工程的不同科学观点。本文提出了两种具有生物医学前景的单体有机硅烷前体N,N′-双(3-(三乙基氧基硅基)丙基)对苯二甲酸(BTT)和N,N′-双(3-(三乙基氧基硅基)丙基)吡啶-2,6-二甲酰胺(BTP)的合成方法,并将其提交到溶胶-凝胶工艺与后续静电纺丝技术相结合。这种独特的工艺不仅可以通过适当调整溶胶-凝胶和静电纺丝参数来制备无毒的有机硅烷纤维垫,而且可以通过一锅合成方法简化材料的生产,进一步调整适当的有机硅烷前体。制备的BTT和BTP纤维材料不仅显示了材料与3T3成纤维细胞系之间的良好界面,而且纳米纤维材料与干细胞的相互作用也取得了令人鼓舞的成果。在这些材料的存在下,干细胞的粘附、增殖和分化明显增强,这表明一个有利于再生反应的支持性微环境。这种材料能够调节干细胞的细胞行为,这对开发靶向和有效的再生疗法具有重要意义。图形抽象
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来源期刊
Journal of Materials Science: Materials in Medicine
Journal of Materials Science: Materials in Medicine 工程技术-材料科学:生物材料
CiteScore
8.00
自引率
0.00%
发文量
73
审稿时长
3.5 months
期刊介绍: The Journal of Materials Science: Materials in Medicine publishes refereed papers providing significant progress in the application of biomaterials and tissue engineering constructs as medical or dental implants, prostheses and devices. Coverage spans a wide range of topics from basic science to clinical applications, around the theme of materials in medicine and dentistry. The central element is the development of synthetic and natural materials used in orthopaedic, maxillofacial, cardiovascular, neurological, ophthalmic and dental applications. Special biomedical topics include biomaterial synthesis and characterisation, biocompatibility studies, nanomedicine, tissue engineering constructs and cell substrates, regenerative medicine, computer modelling and other advanced experimental methodologies.
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