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Protein Synthesis II

Discussed in protein synthesis I

  • A gene is a sequence of DNA nucleotides.
  • Each nucleotide has one of four bases (A, T, C, G). So, a gene will contain a particular sequence of bases.
    • This sequence instructs the cell to make a particular protein.
  • Proteins are made up of amino acids linked together by peptide bonds.
  • What determines the type of protein formed is the type and sequence of the amino acids that are joined together.
    • As mentioned before, the sequence of bases in a gene determines the sequence of amino acids used to make a specific protein.
  • Each base triplet codes for one particular amino acid.

Protein structure

  • The basic structure of a protein is the sequence of amino acids in the chain.
    • It determines the eventual shape of the protein and hence its function.
  • There are 20 different amino acids and all their different combinations can build the 100,000 known proteins.
  • The result is a complex 3D structure held together by a number of different chemical bonds. This structure gives the protein its function.
  • The only genes that are expressed are those that code for the proteins that each cell needs to function correctly.
    • Most body cells in an organism contain the same genes, but many genes in a particular cell are not expressed because the cell only makes the specific protein it needs.

Important proteins

  • DNA controls cell function by controlling the production of proteins, including enzymes, membrane carriers, and receptors for neurotransmitters.

Enzymes

  • Enzymes control the chemical reactions that take place in a cell. All enzymes are proteins. So:
    • the genetic code of DNA, by determining which proteins (particularly enzymes) are made in the cell, will determine the cell’s structure and function.
  • The 3D shape of an enzyme is critical to its function.
  • Remember that the active site on the surface of the enzyme has a complementary shape to the enzyme’s substrate. This is important because it gives the enzyme its specificity.

Antibodies

  • Antibodies are proteins that are made by white blood cells called lymphocytes.
  • Each antibody has a binding site that can attach to pathogens like bacteria.
    • This either directly destroys the pathogen or labels it in a way that can be detected by other white blood cells called phagocytes.
  • Each pathogen has antigens on its surface that have a particular shape, so only specific antibodies, with a complementary shape can attach to a particular antigen.

Membrane carriers

  • Membrane carriers are proteins that control the movement of water-soluble ions and certain molecules across the cell membrane.
  • They are able to maintain different concentrations of ions on either side of the cell membrane.

Receptors for neurotransmitters

  • Receptors for neurotransmitters are proteins found in the membrane at the synapses between neurones.
  • They have a complementary structure to the transmitter molecules, which attach to them and enable an impulse to pass across the synapse.