Exploring the Evolution-Coupling Hypothesis: Do Enzymes' Performance Gains Correlate with Increased Dissipation? [PDF]
Juretić D.
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Production of recombinant D-allulose 3-epimerase utilizing an auto-induction approach in fermentor cultures suitable for industrial application. [PDF]
Lischer K +10 more
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Assessment of the potential risks in SD rats gavaged with genetically modified yeast containing the cp4-epsps gene. [PDF]
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The Formation of D-Allulose 3-Epimerase Hybrid Nanoflowers and Co-Immobilization on Resins for Improved Enzyme Activity, Stability, and Processability. [PDF]
Ding W +7 more
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Advancements in enzyme immobilization on magnetic nanomaterials: toward sustainable industrial applications. [PDF]
Gama Cavalcante AL +5 more
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Genetically modified crops and sustainable development: navigating challenges and opportunities. [PDF]
Sandhu R, Chaudhary N, Shams R, Dash KK.
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Applications of Bacillus subtilis Protein Display for Medicine, Catalysis, Environmental Remediation, and Protein Engineering. [PDF]
Mahmoodi A, Farinas ET.
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Growth-Coupled Evolutionary Pressure Improving Epimerases for D-Allulose Biosynthesis Using a Biosensor-Assisted In Vivo Selection Platform. [PDF]
Li C, Gao X, Li H, Wang T, Lu F, Qin HM.
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Characterization of a d-psicose-producing enzyme, d-psicose 3-epimerase, from Clostridium sp.
Biotechnology Letters, 2013The gene coding for D-psicose 3-epimerase (DPEase) from Clostridium sp. BNL1100 was cloned and expressed in Escherichia coli. The recombinant enzyme was purified by Ni-affinity chromatography. It was a metal-dependent enzyme and required Co(2+) as optimum cofactor.
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