Ni(II)-Transformed BPP Hydrogel: An In Situ Generated Adsorbent for High-Affinity Capture of His-Tagged GFP
Jing Zhang1, Shiyao Hou1, Xindi He1
1Liaoning Province Key Laboratory of Paper and Pulp Engineering, Dalian Key Laboratory of High Value Application and Development of Botanical Resources, Key Laboratory of High Value Utilization of Botanical Resources of China National Light Industry Council, College of Light Industry and Chemical Engineering, Dalian Polytechnic University, Dalian 116034, China.
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Green fluorescent protein (GFP) is widely utilized as a fluorescent probe in biomedical research, yet its high-purity separation remains challenging. Traditional purification methods often involve complex procedures, high costs, and environmental concerns. In this study, a dual-functional bacterial cellulose-based hydrogel (BPP) was successfully fabricated via graft copolymerization of acrylic acid (AA) and acrylamide (AM) onto the BC framework. The resulting hydrogel exhibited a highly hydrated three-dimensional network with outstanding mechanical properties and swelling rate (compressive strength: 1.54 MPa; 300 compression cycles at 80% strain: 90% stress retention). The maximum adsorption capacity of BPP for Ni(II) was 315.9 mg/g (T = 55 °C) and effectively suppressed metal ion leaching while generating abundant coordination-active sites for selective GFP capture (228.9 mg/g). Notably, the captured GFP retained high fluorescence activity and could be efficiently eluted using imidazole buffer, with a recovery rate of 61.1%. Spectroscopic analyses (FT-IR and XPS) revealed a sequential adsorption mechanism involving strong chelation of Ni(II) by polymeric carboxyl and amino groups, followed by Ni(II)-mediated specific coordination with His-tagged GFP. This work demonstrates a sustainable polymer-based strategy that integrates heavy metal ion immobilization with high-value protein purification, highlighting the potential of multifunctional cellulose hydrogels for advanced bioseparation and the design of resource-oriented materials.
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