Núcleo de Pesquisa em Biodiversidade e Biotecnologia, BIOTEC, Campus Ministro Reis Velloso, CMRV, Universidade Federal do Piauí, UFPI, Parnaíba, PI, 64202020, Brazil.
J Biomater Sci Polym Ed. 2010;21(11):1533-43. doi: 10.1163/092050609X12519805626077. Epub 2010 Jun 9.
The search for natural, biocompatible and degradable materials amenable to be used in biomedical/analytical applications has attracted attention, either from the environmental or medical point of view. Examples are the polysaccharides extracted from natural gums, which have found applications in the food and pharmaceutical industries as stabilizers or thickening agent. In a previous paper, however, it was shown that a Brazilian natural gum, chicha (Sterculia striata), is suitable for application as building block for nanostructured film fabrication in conjunction with phthalocyanines. The films displayed electroactivity and could be used in sensing. In the present paper, we introduce the use of two different natural gums, viz., angico (Anadenanthera colubrina) and caraia (Sterculia urens), as active biomaterials to be used to modification layers, in the form of nanostructured thin films, including the study of dopamine detection. The multilayer films were assembled in conjunction with nickel tetrasulfonated phthalocyanines (NiTsPC) and displayed good chemical and electrochemical stability, allowing their use as transducer elements in sensors for detection of specific neurotransmitters. It is suggested here that nanoscale manipulation of new biodegradable natural polymers opens up a variety of new opportunities for the use of these materials in advanced biomedical and analytical devices.
从环境或医学角度来看,人们一直在寻找适用于生物医学/分析应用的天然、生物相容和可降解材料。例如,从天然树胶中提取的多糖,已在食品和制药行业中用作稳定剂或增稠剂。然而,在之前的一篇论文中,已经表明巴西天然树胶 chicha(Sterculia striata)适用于与酞菁配合作为构建块来制造纳米结构薄膜。这些薄膜具有电活性,可用于传感。在本文中,我们介绍了两种不同的天然树胶,即 angico(Anadenanthera colubrina)和 caraia(Sterculia urens),作为活性生物材料,以纳米结构薄膜的形式用于修饰层,包括多巴胺检测的研究。多层膜与镍四磺化酞菁(NiTsPC)组装在一起,显示出良好的化学和电化学稳定性,可将其用作传感器中检测特定神经递质的换能器元件。这里提出的是,对新型可生物降解天然聚合物的纳米级操控为这些材料在先进的生物医学和分析设备中的应用开辟了各种新的机会。