Abstract
Nature has evolved highly efficient and complex systems to perform cascade reactions by the elegant combination of desired enzymes, offering a strategy for achieving efficient bioprocess intensification. Chemoenzymatic cascade reactions (CECRs) merge the complementary strengths of chemo-catalysis and bio-catalysis, such as the wide reactivity of chemo-catalysts and the exquisite selective properties of biocatalysts, representing an important step toward emulating nature to construct artificial systems for achieving bioprocess intensification. However, the incompatibilities between the two catalytic disciplines make CECRs highly challenging. In recent years, great advances have been made to develop strategies for constructing CECRs. In this regard, this chapter introduces the general concepts and representative strategies, including temporal compartmentalization, spatial compartmentalization and chemo-bio nanoreactors. Particularly, we focus on what platform methods and technologies can be used, and how to implement these strategies. The future challenges and strategies in this burgeoning research area are also discussed.
Funding source: National Natural Science Foundation of China
Award Identifier / Grant number: 21901058
Award Identifier / Grant number: 22078081
Award Identifier / Grant number: 22178083
Funding source: National Key Research and Development Program of China
Award Identifier / Grant number: 2021YFC2104100
Funding source: Natural Science Foundation of Tianjin City
Award Identifier / Grant number: 20JCYBJC00530
Funding source: Hebei Key Research and Development Project
Award Identifier / Grant number: 20372802D
Award Identifier / Grant number: 21372804D
Award Identifier / Grant number: 21372805D
Funding source: Natural Science Foundation of Hebei Province
Award Identifier / Grant number: B2019202216
Funding source: Science and Technology Research Project of Hebei Higher Education
Award Identifier / Grant number: ZD2019045
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Author contributions: All the authors have accepted responsibility for the entire content of this submitted manuscript and approved submission.
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Research funding: None declared.
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Conflict of interest statement: The authors declare no conflicts of interest regarding this article.
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- Potato thermoplastic starch nanocomposite films reinforced with nanocellulose
- Review on sago thermoplastic starch composite films reinforced with nanocellulose
- Wheat thermoplastic starch composite films reinforced with nanocellulose
- Synergistic effect in bimetallic gold catalysts: recent trends and prospects
- Simultaneous removal of methylene blue, copper Cu(II), and cadmium Cd(II) from synthetic wastewater using fennel-based adsorbents
- The investigation of the physical properties of an electrical porcelain insulator manufactured from locally sourced materials
- Concentration evaluation and risk assessment of pesticide residues in selected vegetables sold in major markets of Port Harcourt South-South Nigeria
- Detection of iodine in aqueous extract of plants through modified Mohr’s method
- Exploration of bioactive compounds from Mangifera indica (Mango) as probable inhibitors of thymidylate synthase and nuclear factor kappa-B (NF-Κb) in colorectal cancer management
- A new sphingoid derivative from Acacia hockii De Wild (Fabaceae) with antimicrobial and insecticidal properties
- Protection of wood against bio-attack and research of new effective and environmental friendly fungicides
- Computational investigation of Arbutus serratifolia Salisb molecules as new potential SARS-CoV-2 inhibitors
- Exploring the solvation of water molecules around radioactive elements in nuclear waste water treatment