TY - JOUR
T1 - Facile synthesis of magnetic core-mesoporous shell structured sub-microspheres decorated with NiO nanoparticles for magnetic recyclable separation of proteins
AU - Li, Xiaowei
AU - Zhao, Wenru
AU - Gu, Jinlou
AU - Li, Yongsheng
AU - Li, Liang
AU - Niu, Dechao
AU - Shi, Jianlin
N1 - Publisher Copyright:
© 2015 Elsevier Inc. All rights reserved.
PY - 2015/5/1
Y1 - 2015/5/1
N2 - We propose a facile strategy to prepare novel NiO nanoparticle-decorated magnetic core-mesoporous shell structured sub-microspheres (MMMs-NiO) through a facile surfactant-free "in situ silicate growth and NiO formation" approach. The successful deposition of NiO nanoparticles on magnetic cores was verified by XRD, EDS, TEM, SEM and BET characterizations. The NiO units on the obtained nanocomposites were used to selectively enrich and efficiently separate the His-tagged proteins via the specific coordination of histidine of proteins to Ni2+ ions. The magnetic core endows the sub-microparticle with high magnetism, enabling facile particle magnetic-separation from the solution under an external magnetic field. The obtained nanocomposites exhibit excellent water dispersity with well-defined size distribution (around 160 nm), mesoporous characteristics, and high magnetization (52.3 emu g-1). The nanocomposites exhibit excellent selective affinity to His-tag (93%), efficient dissociability by imidazole (86%), and convenient magnetic separability in the separation of His-tagged proteins, as well as from E. coli lysate, even to 5 separation cycles. Therefore, MMMs-NiO is expected to be a satisfactory candidate for practical application in facile and efficient bioseparation in the future. In addition, we expect the synthetic strategy could be extended for the surfactant-free synthesis of other kinds of mesoporous nano/micro-particles.
AB - We propose a facile strategy to prepare novel NiO nanoparticle-decorated magnetic core-mesoporous shell structured sub-microspheres (MMMs-NiO) through a facile surfactant-free "in situ silicate growth and NiO formation" approach. The successful deposition of NiO nanoparticles on magnetic cores was verified by XRD, EDS, TEM, SEM and BET characterizations. The NiO units on the obtained nanocomposites were used to selectively enrich and efficiently separate the His-tagged proteins via the specific coordination of histidine of proteins to Ni2+ ions. The magnetic core endows the sub-microparticle with high magnetism, enabling facile particle magnetic-separation from the solution under an external magnetic field. The obtained nanocomposites exhibit excellent water dispersity with well-defined size distribution (around 160 nm), mesoporous characteristics, and high magnetization (52.3 emu g-1). The nanocomposites exhibit excellent selective affinity to His-tag (93%), efficient dissociability by imidazole (86%), and convenient magnetic separability in the separation of His-tagged proteins, as well as from E. coli lysate, even to 5 separation cycles. Therefore, MMMs-NiO is expected to be a satisfactory candidate for practical application in facile and efficient bioseparation in the future. In addition, we expect the synthetic strategy could be extended for the surfactant-free synthesis of other kinds of mesoporous nano/micro-particles.
KW - Core/shell materials
KW - Magnetic separation
KW - Mesoporous materials
KW - NiO nanoparticles
KW - Protein separation
UR - https://www.scopus.com/pages/publications/84930944994
U2 - 10.1016/j.micromeso.2015.01.024
DO - 10.1016/j.micromeso.2015.01.024
M3 - 文章
AN - SCOPUS:84930944994
SN - 1387-1811
VL - 207
SP - 142
EP - 148
JO - Microporous and Mesoporous Materials
JF - Microporous and Mesoporous Materials
ER -