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Chapter Fourteen Questions 12 are a review of Chapter Fourteen, Section 1. 1T he Stranger 1. Jesus explained to the two men that Christ had to. A. suffer B. resurrect 1 C. die D. All the above 2.
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How to fill out engineering enantioselectivity in enzyme:

01
Understand the concept: Engineering enantioselectivity in enzymes involves modifying the enzyme's structure or active site to selectively produce one enantiomer over another in a chemical reaction. To fill out this process, it is important to have a strong understanding of enzyme structure, catalysis, and reaction mechanisms.
02
Identify the target reaction: Determine the specific chemical reaction for which you want to achieve enantioselectivity. This could be a reaction where the enzyme currently exhibits poor selectivity or a reaction that the enzyme does not catalyze naturally.
03
Perform literature review: Research scientific literature to gather information about similar enzymes that exhibit the desired enantioselectivity or have been engineered to achieve it. This will provide valuable insights into the strategies, techniques, and approaches used by other researchers in the field.
04
Select the appropriate enzyme: Choose an enzyme that has the potential to be engineered for enantioselectivity in the desired reaction. Consider factors such as substrate specificity, catalytic efficiency, and stability. It may be necessary to evaluate multiple enzymes to find the most suitable candidate.
05
Analyze the enzyme structure: Utilize various bioinformatics and computational tools to analyze the structure of the selected enzyme. Identify key amino acid residues within the active site or regions responsible for substrate binding and catalysis. Look for potential sites that can be modified to enhance enantioselectivity.
06
Design and create mutations: Based on the analysis, design specific amino acid mutations within the enzyme's active site or other critical regions. These mutations can introduce steric hindrance, alter hydrogen bonding, or introduce new functional groups to selectively interact with the desired enantiomer.
07
Experimental validation: Perform site-directed mutagenesis to introduce the designed mutations into the enzyme's gene. Express and purify the mutant enzyme, and conduct enzyme kinetic experiments to assess its catalytic activity and enantioselectivity.
08
Iterative optimization: If the initial results are not satisfactory, repeat the process by refining the design of mutations and conducting additional experiments. Continuing the iterative optimization process can lead to improved enantioselectivity.

Who needs engineering enantioselectivity in enzyme?

01
Pharmaceutical industry: Enantioselective synthesis plays a critical role in pharmaceutical manufacturing to produce specific enantiomers of drugs, as different enantiomers may exhibit different biological activities or pharmacokinetic properties. Engineering the enantioselectivity of enzymes can contribute to more efficient and cost-effective drug production.
02
Fine chemical industry: Enantioselective reactions are crucial in the production of chiral intermediates used in the synthesis of various fine chemicals, such as flavors, fragrances, and agrochemicals. Enzyme engineering can provide a sustainable and environmentally friendly approach to access specific enantiomers.
03
Biocatalysis research: Scientists and researchers working in the field of biocatalysis are interested in engineering enzymes for various applications. Enantioselectivity engineering opens up new possibilities for developing efficient and selective biocatalysts for a wide range of chemical reactions.
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Engineering enantioselectivity in enzymes involves modifying the active site of an enzyme to favor the production of a specific enantiomer.
Researchers and scientists working on enzyme engineering projects are required to file engineering enantioselectivity information.
To fill out engineering enantioselectivity information, researchers need to provide details on the methods used, results obtained, and any implications of the modifications made.
The purpose of engineering enantioselectivity in enzymes is to selectively produce a desired enantiomer for various applications in pharmaceuticals, agriculture, and chemical synthesis.
The information reported should include details on the starting enzyme, modifications made, enantiomeric excess achieved, and any challenges faced during the engineering process.
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