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dc.contributor.authorChao, C.
dc.contributor.authorZhang, B.
dc.contributor.authorZhai, R.
dc.contributor.authorXiang, X.
dc.contributor.authorLiu, Jian
dc.contributor.authorChen, R.
dc.date.accessioned2018-12-13T09:11:06Z
dc.date.available2018-12-13T09:11:06Z
dc.date.created2018-12-12T02:46:47Z
dc.date.issued2014
dc.identifier.citationChao, C. and Zhang, B. and Zhai, R. and Xiang, X. and Liu, J. and Chen, R. 2014. Natural nanotube-based biomimetic porous microspheres for significantly enhanced biomolecule immobilization. ACS Sustainable Chemistry and Engineering. 2 (3): pp. 396-403.
dc.identifier.urihttp://hdl.handle.net/20.500.11937/71716
dc.identifier.doi10.1021/sc400199v
dc.description.abstract

Inorganic nanostructures and their assemblies play important roles in immobilizing biomolecules. Herein, we developed a facile and green methodology to assemble natural halloysite nanotubes (1D building blocks) into nest-like porous microspheres (3D architecture). We further modified the microspheres with dopamine to form a biomimetic entity. The interconnected and hierarchical pores within the microspheres provide larger pore volume to entrap biomolecules, and the abundant functional groups on the pore surface bond covalently with enzyme to enhance the immobilization ability. The porous microspheres showed excellent loading capacity for laccase immobilization as high as 311.2 mg/g, around 30 times higher than the individual halloysite nanotubes (11.3 mg/g). The specific activity above 80% was retained for the immobilized laccase compared to the free laccase. In addition, the immobilized enzyme exhibited remarkable thermal and recycle use stability. The biomimetic microspheres are expected to be biologically safe and chemically stable microcapsules for immobilizing a variety of biomolecules because of their natural and biofriendly characteristics. © 2013 American Chemical Society.

dc.publisherAmerican Chemical Society
dc.titleNatural nanotube-based biomimetic porous microspheres for significantly enhanced biomolecule immobilization
dc.typeJournal Article
dcterms.source.volume2
dcterms.source.number3
dcterms.source.startPage396
dcterms.source.endPage403
dcterms.source.issn2168-0485
dcterms.source.titleACS Sustainable Chemistry and Engineering
curtin.departmentWASM: Minerals, Energy and Chemical Engineering (WASM-MECE)
curtin.accessStatusFulltext not available


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