Department of Chemistry "Ugo Schiff", University of Florence, 50019, Sesto Fiorentino, FI, Italy.
Anal Bioanal Chem. 2020 Sep;412(24):5945-5954. doi: 10.1007/s00216-020-02578-9. Epub 2020 Mar 20.
The polymerization of norepinephrine, and the properties of the related polymer polynorepinephrine, started to be investigated barely 9 years ago and only few works were produced so far, mainly in materials science and medicine. An unexpectedly low relevance, especially if compared with the interest toward dopamine and polydopamine, differing from norepinephrine only for a hydroxyl group and whose properties were deeply investigated and applied to an impressive number of subject areas. We show here that in some cases, norepinephrine and dopamine monomers can be exchanged without virtually affecting the experimental results. But even more interesting, the choice of norepinephrine can positively influence the properties of the final polymer. In particular, the smoother and more hydrophilic surface of polynorepinephrine may enhance cell adhesion and proliferation, increase the activity of conjugated biomolecules, and induce higher cellular uptake of nanodrugs. Moreover, polynorepinephrine presents an additional anchoring point that can be exploited for further functionalization. Nevertheless, despite its potential for bioconjugation and molecular recognition, polynorepinephrine has not yet been considered in biosensing. Here we report our feelings in terms of perspective use of polynorepinephrine as new functional monomer for biomimetic receptor development by molecular imprinting, with application in affinity biosensing. Graphical abstracts.
去甲肾上腺素的聚合及其相关聚合物聚去甲肾上腺素的性质,仅仅在 9 年前才开始被研究,到目前为止,只产生了为数不多的研究成果,主要集中在材料科学和医学领域。与多巴胺和聚多巴胺相比,其相关性出乎意料地较低,特别是与聚多巴胺相比,聚去甲肾上腺素仅相差一个羟基,而聚多巴胺的性质已被深入研究,并应用于数量众多的主题领域。我们在这里表明,在某些情况下,去甲肾上腺素和多巴胺单体可以互换,而实际上不会影响实验结果。但更有趣的是,去甲肾上腺素的选择可以积极影响最终聚合物的性质。特别是聚去甲肾上腺素更光滑和更亲水的表面可能会增强细胞黏附和增殖,增加共轭生物分子的活性,并诱导纳米药物更高的细胞摄取。此外,聚去甲肾上腺素具有另外一个锚固点,可以进一步进行功能化。尽管聚去甲肾上腺素具有用于生物共轭和分子识别的潜力,但它尚未在生物传感中得到考虑。在这里,我们报告了我们对聚去甲肾上腺素作为用于通过分子印迹法开发仿生受体的新型功能单体的潜在用途的看法,该方法在亲和生物传感中有应用。