Department of Science Education , Ewha Womans University , Seoul 03760 , Korea.
Center for Cell-Encapsulation Research, Department of Chemistry , KAIST , Daejeon 34141 , Korea.
Langmuir. 2019 Sep 24;35(38):12562-12568. doi: 10.1021/acs.langmuir.9b02055. Epub 2019 Sep 9.
The eggshell membrane is one of the easily obtainable natural biomaterials, but has been neglected in the biomaterial community, compared with marine biomaterials and discarded as a food waste. In this work, we utilized the ESM hydrolysate (ESMH), which was obtained by the enzymochemical method, as a bioactive functional material for interfacial bioengineering, exemplified by thickness-tunable, layer-by-layer (LbL) nanocoating with the Fe(III)-tannic acid (TA) complex. [Fe(III)-TA/ESMH] LbL films, ending with the ESMH layer, showed great cytocompatiblility with HeLa cells and even primary hippocampal neuron cells. More importantly, the films were found to be neurochemically active, inducing the acceleration of neurite outgrowth for the long-term neuron culture. We believe that the ability for building cytocompatible ESMH films in a thickness-tunable manner would be applicable to a broad range of different nanomaterials in shape and size and would be utilized with multimodal functionalities for biomedical applications, such as bioencapsulation, theranostics, and regenerative medicine.
蛋壳膜是一种容易获得的天然生物材料,但与海洋生物材料相比,它在生物材料界中被忽视了,被当作食品废物丢弃。在这项工作中,我们利用酶化学方法获得的蛋壳膜水解产物(ESMH)作为一种具有生物活性的功能材料用于界面生物工程,例如通过 Fe(III)-鞣酸(TA)配合物的厚度可调、层层(LbL)纳米涂层。以 ESMH 层结尾的[Fe(III)-TA/ESMH] LbL 薄膜与 HeLa 细胞甚至原代海马神经元细胞具有很好的细胞相容性。更重要的是,这些薄膜具有神经化学活性,可加速长期神经元培养中的神经突生长。我们相信,以可调厚度构建细胞相容的 ESMH 薄膜的能力将适用于各种不同形状和大小的纳米材料,并将与多种功能结合用于生物医学应用,如生物封装、治疗和再生医学。