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  1. 4-1-communicable-diseases-disease-prevention-and-the-immune-system
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  2. 4-2-biodiversity
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  3. 4-3-classification-and-evolution
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  4. 5-1-communication-and-homeostasis
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  5. 5-2-excretion
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  6. 5-3-neuronal-communication
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  7. 5-4-hormonal-communication
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  8. 5-5-plant-and-animal-responses
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  9. 5-6-photosynthesis
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  10. 5-7-respiration
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  11. 6-1-cellular-control
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  12. 6-2-patterns-of-inheritance
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  13. 6-3-manipulating-genomes
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  14. 6-4-cloning-and-biotechnology
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  15. 6-5-ecosystems
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  16. 6-6-populations-and-sustainability
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  17. 1-1-practical-skills-written-assessment
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  18. 1-2-practical-skills-endorsement-assessment
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  19. 2-1-cell-structure
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  20. 2-2-biological-molecules
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  21. 2-3-nucleotides-and-nucleic-acids
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  22. 2-4-enzymes
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  23. 2-5-biological-membranes
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  24. 2-6-cell-division-cell-diversity-and-cellular-organisation
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  25. 3-1-exchange-surfaces
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  26. 3-2-transport-in-animals
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  27. 3-3-transport-in-plants
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Synthetic Biology

Sequencing DNA to determine protein sequences

  • The genetic code can be used to predict the amino acid sequence within a protein

  • Once scientists know the amino acid sequence they can predict how the new protein will fold into its tertiary structure

  • This information can be used for a range of applications, such as in synthetic biology

Synthetic biology

  • Synthetic biology is a recent area of research that aims to create new biological parts, devices, and systems, or to redesign systems that already exist in nature

  • It goes beyond genetic engineering, as it involves large alterations to an organism’s genome. This new genome can cause a cell to operate in a novel way, not yet seen before

  • The assembly of the new genome can be done using existing DNA sequences or using entirely new sequences

    • These new sequences can be designed and written (using special computer programmes) so that they produce specific proteins

Synthetic biology in action: producing artemisinin

  • The most well-known use of synthetic biology is the commercial production of antimalarial drug, artemisinin

  • Artemisinin was first isolated in China from the native plant Artemisia annua

  • A. annua is difficult to cultivate, leading to an unstable supply of artemisinin at an ever-changing price often too expensive for those needing the drug most

  • Scientists have constructed a DNA sequence for a whole new metabolic pathway containing genes from bacteria, yeast, and A. annua. This pathway results in the production of artemisinic acid, a precursor to artemisinin

  • This pathway can be inserted into yeast cells which then produce artemisinic acid. The conversion of this precursor into artemisinin can then be carried out using an inexpensive process