钙螯合功能在聚乳酸单丝纤维表面的接枝。

IF 2.1 4区 医学 Q2 Physics and Astronomy Biointerphases Pub Date : 2020-02-21 DOI:10.1116/1.5129989
Elias Mulky, Giuseppino Fortunato, Dirk Hegemann, Jorge Sague, Roman Heuberger, Martin Frenz
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引用次数: 2

摘要

高分子表面接枝技术被广泛应用于骨再生领域,以增加磷酸钙(CaP)的黏附,旨在改善CaP-聚合物复合水泥的力学性能。强化可以使用多个组合的官能团和/或复杂的表面几何形状来实现,然而,这同时会影响多种效果,如润湿、粗糙度和界面强化。本研究的重点是螯合基团,即天冬氨酸,对二价离子如Ba2+或Ca2+在聚乳酸(PLA)薄膜上吸附的影响。利用接触角测量和x射线光电子能谱对薄膜进行了分析。利用功能化聚乳酸单丝研究了聚乳酸对CaP的吸附及其界面力学性能,并用白光干涉法分析了聚乳酸单丝的表面粗糙度。通过拔出试验进行力学分析。利用扫描电子显微镜和能量色散x射线能谱对表面进行了分析。使用天冬氨酸作为螯合基团导致钡的吸附量增加了50%,与对照组相比,纤维的钙覆盖率几乎增加了三倍,界面硬度增加了两倍。界面强度没有明显增加,很可能是由于CaP基质的薄弱,在骨折后成像中可以部分看到单丝上的残留物。这项研究表明,天门冬氨酸功能化的表面作为一种简单的替代多肽官能团,在骨再生应用中可以吸附二价离子,如钙。
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Grafting of calcium chelating functionalities onto PLA monofilament fiber surfaces.

Polymer surface grafting is widely used in the field of bone regeneration to increase calcium phosphate (CaP) adhesion, with the intent of improving mechanical properties of CaP-polymer composite cements. Reinforcement can be achieved using multiple combined functional groups and/or complex surface geometries that, however, concurrently influence multiple effects such as wetting, roughness, and interfacial strengthening. This study focused on the influence of a chelating group, namely aspartic acid, on the adsorption of divalent ions such as Ba2+ or Ca2+ onto poly-l-lactic acid (PLA) films. The films were analyzed using contact angle measurements and X-ray photoelectron spectroscopy. The adsorption of CaP and its interfacial mechanical properties were investigated using functionalized PLA monofilaments whose surface roughness was analyzed using white light interferometry. Mechanical analysis was conducted by performing pull-out tests. The surfaces were analyzed using scanning electron microscopy and energy dispersive X-ray spectroscopy. Using aspartic acid as a chelating group resulted in a 50 % increased adsorption of barium, an almost threefold increase in calcium coverage of the fiber compared to the control group and a twofold increase in interfacial stiffness. No significant increase in interfacial strength was determined, most likely due to the weakness of the CaP matrix, which was partially visible as residues on the monofilaments in the postfracture imaging. This study shows the potential of surfaces functionalized with aspartic acid as a simple alternative to complex polypeptide based functional groups for the adsorption of divalent ions such as calcium on poly-lactic acid in bone regenerating applications.

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来源期刊
Biointerphases
Biointerphases BIOPHYSICS-MATERIALS SCIENCE, BIOMATERIALS
CiteScore
4.10
自引率
0.00%
发文量
35
审稿时长
>12 weeks
期刊介绍: Biointerphases emphasizes quantitative characterization of biomaterials and biological interfaces. As an interdisciplinary journal, a strong foundation of chemistry, physics, biology, engineering, theory, and/or modelling is incorporated into originated articles, reviews, and opinionated essays. In addition to regular submissions, the journal regularly features In Focus sections, targeted on specific topics and edited by experts in the field. Biointerphases is an international journal with excellence in scientific peer-review. Biointerphases is indexed in PubMed and the Science Citation Index (Clarivate Analytics). Accepted papers appear online immediately after proof processing and are uploaded to key citation sources daily. The journal is based on a mixed subscription and open-access model: Typically, authors can publish without any page charges but if the authors wish to publish open access, they can do so for a modest fee. Topics include: bio-surface modification nano-bio interface protein-surface interactions cell-surface interactions in vivo and in vitro systems biofilms / biofouling biosensors / biodiagnostics bio on a chip coatings interface spectroscopy biotribology / biorheology molecular recognition ambient diagnostic methods interface modelling adhesion phenomena.
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