Palacios-Ponce Sócrates, Ramos-González Rodolfo, Ruiz Héctor A, Aguilar Miguel A, Martínez-Hernández José L, Segura-Ceniceros Elda P, Aguilar Cristóbal N, Michelena Georgina, Ilyina Anna
a Nanobioscience, Biorefinery and Bioprocess group, Food Research Department, Chemistry School, Autonomous University of Coahuila, Blvd. V. Carranza e Ing. José Cárdenas Valdés , Saltillo , Coahuila , México.
b Faculty of Engineering in Mechanics and Production Sciences, Polytechnic School of Litoral , Guayaquil-Ecuador.
Prep Biochem Biotechnol. 2017 Jul 3;47(6):554-561. doi: 10.1080/10826068.2016.1275007. Epub 2016 Dec 29.
In the present study, the interactions between chitosan-coated magnetic nanoparticles (C-MNP) and Trichoderma sp. spores as well as Kluyveromyces marxianus cells were studied. By Plackett-Burman design, it was demonstrated that factors which directly influenced on yeast cell immobilization and magnetic separation were inoculum and C-MNP quantity, stirring speed, interaction time, and volume of medium, while in the case of fungal spores, the temperature also was disclosed as an influencing factor. Langmuir and Freundlich models were applied for the mathematical analysis of adsorption isotherms at 30°C. For Trichoderma sp. spore adsorption isotherm, the highest correlation coefficient was observed for lineal function of Langmuir model with a maximum adsorption capacity at 5.00E + 09 spores (C-MNP g). Adsorption isotherm of K. marxianus cells was better adjusted to Freundlich model with a constant (K) estimated as 2.05E + 08 cells (C-MNP g). Both systems may have a novel application in fermentation processes assisted with magnetic separation of biomass.
在本研究中,对壳聚糖包覆磁性纳米颗粒(C-MNP)与木霉属孢子以及马克斯克鲁维酵母细胞之间的相互作用进行了研究。通过Plackett-Burman设计表明,直接影响酵母细胞固定化和磁分离的因素有接种物和C-MNP的量、搅拌速度、相互作用时间以及培养基体积,而对于真菌孢子,温度也是一个影响因素。应用Langmuir和Freundlich模型对30°C下的吸附等温线进行数学分析。对于木霉属孢子吸附等温线,Langmuir模型的线性函数具有最高的相关系数,最大吸附容量为5.00E + 09个孢子/(C-MNP g)。马克斯克鲁维酵母细胞的吸附等温线更符合Freundlich模型,常数(K)估计为2.05E + 08个细胞/(C-MNP g)。这两种体系在生物质磁分离辅助的发酵过程中可能具有新的应用。