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Adsorption of Proteins on Colloidal Lignin Particles for Advanced Biomaterials

机译:蛋白质对先进生物材料胶体木质素粒子的吸附

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摘要

Coating of colloidal lignin particles (CLPs), or lignin nanoparticles (LNPs), with proteins was evaluated in order to establish a safe, self-assembly mediated modification technique to tune their surface chemistry. Gelatin and poly-L-lysine formed the most pronounced protein corona on the CLP surface, as determined by dynamic light scattering (DLS) and zeta potential measurements. Spherical morphology of individual protein coated CLPs was confirmed by transmission electron (TEM) and atomic force (AFM) microscopy. A mechanistic adsorption study with several random coiled and globular model proteins was carried out using quartz crystal microbalance with dissipation monitoring (QCM-D). The three-dimensional (3D) protein fold structure and certain amino acid interactions were decisive for the protein adsorption on the lignin surface. The main driving forces for protein adsorption were electrostatic, hydrophobic, and van der Waals interactions, and hydrogen bonding. The relative contributions of these interactions were highly dependent on the ionic strength of the surrounding medium. Capillary electrophoresis (CE) and Fourier transform infrared spectroscopy (FTIR) provided further evidence of the adsorption-enhancing role of specific amino acid residues such as serine and proline. These results have high impact on the utilization of lignin as colloidal particles in biomedicine and biodegradable materials, as the protein corona enables tailoring of the CLP surface chemistry for intended applications.
机译:评价胶体木质素颗粒(CLP)或木质素纳米粒子(LNININ纳米粒子(LNP),以建立安全,自组装介导的修饰技术来调整其表面化学。明胶和聚L-赖氨酸在CLP表面上形成了最明显的蛋白质电晕,通过动态光散射(DLS)和Zeta电位测量来确定。通过透射电子(TEM)和原子力(AFM)显微镜确认单个蛋白质涂覆的CLP的球形形态。使用石英晶体微稳定进行几种随机盘绕和球状模型蛋白的机械吸附研究,具有耗散监测(QCM-D)。三维(3D)蛋白折叠结构和某些氨基酸相互作用对于木质素表面上的蛋白质吸附是决定性的。蛋白质吸附的主要驱动力是静电,疏水和范德华相互作用和氢键。这些相互作用的相对贡献高度依赖于周围培养基的离子强度。毛细管电泳(Ce)和傅里叶变换红外光谱(FTIR)提供了具有特定氨基酸残基(如丝氨酸和脯氨酸)的吸附增强的吸附作用。这些结果对利用木质素作为生物医学和可生物化学材料中的胶体颗粒的利用率影响很高,因为蛋白质电晕使得能够剪裁CLP表面化学以进行预期的应用。

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  • 来源
    《Biomacromolecules》 |2017年第9期|共10页
  • 作者单位

    Aalto Univ Dept Bioprods &

    Biosyst Bio2 Bioprod Chem POB 16300 FI-00076 Espoo Finland;

    Univ Helsinki Dept Chem AI Virtasen Aukio 1 POB 55 FIN-00014 Helsinki Finland;

    Aalto Univ Dept Bioprods &

    Biosyst Bio2 Bioprod Chem POB 16300 FI-00076 Espoo Finland;

    Aalto Univ Dept Bioprod &

    Biosyst Bio2 Biohybrid Mat POB 16300 FI-00076 Espoo Finland;

    Aalto Univ Dept Bioprod &

    Biosyst Bio2 Biohybrid Mat POB 16300 FI-00076 Espoo Finland;

    Univ Helsinki Dept Chem AI Virtasen Aukio 1 POB 55 FIN-00014 Helsinki Finland;

    Aalto Univ Dept Bioprods &

    Biosyst Bio2 Bioprod Chem POB 16300 FI-00076 Espoo Finland;

    Aalto Univ Dept Bioprods &

    Biosyst Bio2 Bioprod Chem POB 16300 FI-00076 Espoo Finland;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 分子生物学;
  • 关键词

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