Pilipenco Alina, Forinová Michala, Černochová Zulfiya, Kolská Zdeňka, Fekete Ladislav, Vaisocherová-Lísalová Hana, Houska Milan
FZU─Institute of Physics of the Czech Academy of Sciences, Na Slovance 1999/2, Prague 180 00, Czech Republic.
Institute of Physics, Faculty of Mathematics and Physics, Charles University, Ke Karlovu 3, Prague 121 16, Czech Republic.
Langmuir. 2025 Jun 24;41(24):15307-15318. doi: 10.1021/acs.langmuir.5c00759. Epub 2025 Jun 9.
Polybetaine nanobrushes are widely used as inert platforms for label-free biosensing due to their resistance to nonspecific interactions. Despite being considered cationic or electrically neutral, polybetaines can exhibit a negative zeta potential (ZP) at pHs above their isoelectric point (pI). To clarify whether negative zeta potential effectively contributes to surface interactions, we examined three types of nanobrushes deposited on a planar gold substrate: two polybetaines: poly(carboxybetaine methacrylamide) (pCBMAA) and poly(sulfobetaine methacrylamide) (pSBMAA) and hydrophilic poly[-(2-hydroxypropyl) methacrylamide] (pHPMAA), which carries no ionic group. All three brushes exhibit a well-defined pI and negative surface ZP at pHs above their pI. The pH dependence of the interactions of these brushes with anionic dextran sulfate (DS) and cationic poly[(-trimethylammonium)ethyl methacrylate] (PTMAEMA) was monitored by infrared reflection spectroscopies (infrared reflection absorption spectroscopy (IRRAS), grazing angle attenuated total reflectance (GAATR)). DS adsorbs to pCBMAA strongly and only weakly to pSBMAA at pHs below their pI but can adsorb slightly to both polybetaines even at pHs above their pI. This is due to the displacement of their carboxylate or sulfo groups from the interaction with the quaternary ammonium cation by the DS sulfate groups. However, DS does not adsorb to pHPMAA at any pH, and PTMAEMA does not adsorb to any of the brushes, regardless of pH. These findings highlight that zeta potential determinations alone may not be sufficient to predict electrostatic interactions as the apparent negative charge does not necessarily translate into a functional surface charge influencing macromolecular interactions.
聚甜菜碱纳米刷由于其对非特异性相互作用的抗性,被广泛用作无标记生物传感的惰性平台。尽管聚甜菜碱被认为是阳离子型或电中性的,但在高于其等电点(pI)的pH值下,聚甜菜碱可表现出负的zeta电位(ZP)。为了阐明负zeta电位是否有效地促进表面相互作用,我们研究了沉积在平面金基底上的三种类型的纳米刷:两种聚甜菜碱:聚(甲基丙烯酰氨基丙基羧酸甜菜碱)(pCBMAA)和聚(甲基丙烯酰氨基丙基磺酸甜菜碱)(pSBMAA),以及不带离子基团的亲水性聚[甲基丙烯酸-(2-羟丙基)酯](pHPMAA)。所有三种刷在高于其pI的pH值下都表现出明确的pI和负表面ZP值。通过红外反射光谱(红外反射吸收光谱(IRRAS)、掠角衰减全反射(GAATR))监测了这些刷与阴离子硫酸葡聚糖(DS)和阳离子聚[甲基丙烯酸(三甲基铵)乙酯](PTMAEMA)相互作用的pH依赖性。在低于其pI的pH值下,DS强烈吸附到pCBMAA上,而仅微弱吸附到pSBMAA上,但即使在高于其pI的pH值下,DS也能略微吸附到两种聚甜菜碱上。这是由于DS硫酸根取代了它们的羧酸根或磺酸根与季铵阳离子的相互作用。然而,DS在任何pH值下都不吸附到pHPMAA上,并且PTMAEMA在任何pH值下都不吸附到任何一种刷上。这些发现突出表明,仅通过zeta电位测定可能不足以预测静电相互作用,因为表观负电荷不一定转化为影响大分子相互作用的功能性表面电荷。