TY - JOUR
T1 - Novel approaches for biomolecule immobilization in microscale systems
AU - Chen, Chuanpin
AU - Liu, Wenfang
AU - Hong, Tingting
N1 - Publisher Copyright:
© The Royal Society of Chemistry.
PY - 2019/7/7
Y1 - 2019/7/7
N2 - Biomolecule-immobilized microscale systems present promising potential in the analysis field based on their reduced reagent consumption, improved analysis speed, automated processing, and high throughput. To increase the biomolecule binding capacity, improve the biomolecule activity and stability, enhance renewability, and develop easy-to-operate procedures, novel immobilization approaches have attracted tremendous attention recently. In this review, a variety of methods employed in preparing state-of-the-art DNA-, protein-, and polysaccharide-immobilized microscale systems are summarized. We focus on highlighting the merits of applying the click reaction, the nanomaterial-based strategy, encapsulation, layer-by-layer assembly, and the reversible immobilization strategy for improving the biomolecule-immobilized microscale system performance. Moreover, the utilization of innovative biomolecule-immobilized microscale systems for biosensing, affinity chromatography separation, bioreaction, and enantioseparation is also discussed.
AB - Biomolecule-immobilized microscale systems present promising potential in the analysis field based on their reduced reagent consumption, improved analysis speed, automated processing, and high throughput. To increase the biomolecule binding capacity, improve the biomolecule activity and stability, enhance renewability, and develop easy-to-operate procedures, novel immobilization approaches have attracted tremendous attention recently. In this review, a variety of methods employed in preparing state-of-the-art DNA-, protein-, and polysaccharide-immobilized microscale systems are summarized. We focus on highlighting the merits of applying the click reaction, the nanomaterial-based strategy, encapsulation, layer-by-layer assembly, and the reversible immobilization strategy for improving the biomolecule-immobilized microscale system performance. Moreover, the utilization of innovative biomolecule-immobilized microscale systems for biosensing, affinity chromatography separation, bioreaction, and enantioseparation is also discussed.
UR - http://www.scopus.com/inward/record.url?scp=85068005334&partnerID=8YFLogxK
U2 - 10.1039/c9an00212j
DO - 10.1039/c9an00212j
M3 - Review article
C2 - 31114837
AN - SCOPUS:85068005334
SN - 0003-2654
VL - 144
SP - 3912
EP - 3924
JO - The Analyst
JF - The Analyst
IS - 13
ER -