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Topic 21 · 21.1–21.3

Biotechnology and genetic modification

Core and Extended · Papers 1–6

🎯What you need to be able to do

  • State why bacteria are useful in biotechnology and GM; discuss their few ethical concerns and plasmids EXTENDED.
  • Describe yeast in biofuel production and bread-making, pectinase in fruit juice, and investigate biological washing powders.
  • Explain lactase and lactose-free milk; describe fermenters and the conditions they control EXTENDED.
  • Describe genetic modification and its examples; outline the process for a human protein and discuss GM crops EXTENDED.

📚The biology

Why bacteria?

Bacteria are useful in biotechnology and genetic modification because of their rapid reproduction rate and their ability to make complex molecules. EXTENDED There are also few ethical concerns over manipulating and growing them, and they contain plasmids — small rings of DNA that are easy to remove, change and put back.

Biotechnology

A bowl of dough made from flour, water, sugar and yeast, and then the same dough risen and full of bubbles after being left somewhere warm. A box explains that yeast respires anaerobically, turning glucose into ethanol and carbon dioxide; in bread the carbon dioxide makes the dough rise and baking kills the yeast and evaporates the ethanol, while for biofuel the ethanol is the product.
One reaction, two industries: bread keeps the carbon dioxide, biofuel keeps the ethanol.
  • Biofuel: yeast respires anaerobically, turning sugars (e.g. from sugar cane or maize) into ethanol and carbon dioxide; the ethanol is separated and used as a fuel.
  • Bread-making: yeast in the dough respires anaerobically; the carbon dioxide bubbles make the dough rise; baking kills the yeast and evaporates the ethanol.
  • Pectinase breaks down pectin, which holds plant cell walls together, so more juice is released from fruit, and the juice is clearer.
  • Biological washing powders contain enzymes (proteases, lipases, amylases) that digest stains such as blood, egg, grease and food into small soluble molecules, which wash out. They work at lower temperatures, saving energy, but are denatured if the water is too hot.
  • EXTENDED Lactase breaks down lactose into glucose and galactose. Lactose-free milk is made by passing milk over lactase, for people who are lactose intolerant (who produce too little lactase of their own).

Fermenters EXTENDED

A fermenter is a large vessel in which bacteria or fungi are grown in controlled conditions to make useful products on a large scale: insulin (from GM bacteria), penicillin (from the fungus Penicillium) and mycoprotein (a protein-rich food from the fungus Fusarium).

A fermenter: a vessel surrounded by a water jacket, with cold water in at the bottom and warm water out at the top. A motor drives a stirrer with paddles. Sterile air enters through a pipe at the bottom and bubbles up. A pH probe, a temperature probe and a sterile nutrient inlet enter from the top, and waste gases leave at the top. The product is drained from the bottom.
EXTENDED Each part keeps one condition at its optimum.
temperature: respiration releases heat; the water jacket removes it, keeping the enzymes near their optimum and not denatured
pH: monitored by a probe and corrected with acid or alkali, for the enzymes’ optimum pH
oxygen: sterile air is bubbled in for aerobic respiration
nutrient supply: glucose (energy) and a nitrogen source (to make proteins) are added; the stirrer mixes them
waste products: carbon dioxide leaves through the gas outlet, so it does not build up and lower the pH or become toxic

Everything is sterilised (by steam) first, so that no other microorganisms compete with the useful one or contaminate the product.

Genetic modification

Genetic modification is changing the genetic material of an organism by removing, changing or inserting individual genes. Examples:

  • inserting human genes into bacteria to produce human proteins, such as insulin;
  • inserting genes into crop plants to give resistance to herbicides (the field can be sprayed to kill weeds without killing the crop);
  • inserting genes into crop plants to give resistance to insect pests (the plant makes a toxin that kills insects feeding on it);
  • inserting genes into crop plants to improve nutritional qualities (Golden Rice makes a substance the body converts into vitamin A).
Six steps. 1, a restriction enzyme cuts the human gene, for example the insulin gene, out of human DNA, leaving sticky ends of unpaired bases. 2, a plasmid is cut with the same enzyme, leaving a gap with complementary sticky ends. 3, DNA ligase joins the gene into the plasmid, making a recombinant plasmid. 4, the plasmid is put into a bacterium. 5, the bacteria multiply in a fermenter, each copying the plasmid. 6, the bacteria express the gene and make human insulin, which is extracted and purified.
EXTENDED Same restriction enzyme ⇒ complementary sticky ends ⇒ the pieces can join.
  1. EXTENDED The DNA of the human gene is isolated, cut out with a restriction enzyme, forming sticky ends.
  2. Bacterial plasmid DNA is cut with the same restriction enzyme, forming complementary sticky ends.
  3. The human DNA is inserted into the plasmid using DNA ligase, forming a recombinant plasmid.
  4. The recombinant plasmids are inserted into bacteria.
  5. The bacteria containing recombinant plasmids multiply.
  6. The bacteria express the human gene and make the human protein.

EXTENDED GM crops such as soya, maize and rice:

  • Advantages: higher yields; less insecticide sprayed (insect-resistant crops), so fewer harmless insects are killed; easier weed control; better nutrition (vitamin A in rice); crops for drought or salty soils.
  • Disadvantages: GM seed is expensive, and farmers may have to buy new seed each year; herbicide-resistance genes may spread to wild relatives by pollen, making “superweeds”; insect-resistant crops may harm non-pest insects; reduced biodiversity; some people are concerned about safety or the ethics of changing genes.

✏️Worked example

A student tests how well two washing powders remove an egg stain at different temperatures. (a) State the temperature at which the biological powder worked best, and the percentage of stain it removed. [1] (b) Explain the shape of the biological powder curve between 40 °C and 60 °C. [2] (c) Give one reason why a biological powder saves money for the user. [1] (d) Name two variables the student should keep constant. [2]
A line graph of the percentage of egg stain removed in 20 minutes against temperature from 10 to 70 degrees Celsius. The biological powder rises from 22 percent at 10 degrees to a peak of 90 percent at 40 degrees, then falls to 35 at 60 and 30 at 70. The non-biological powder rises slowly and steadily from 18 to 38 percent.
Illustrative data.

(a) 40 °C, removing 90% of the stain.

(b) Above the optimum, the enzyme (protease) is denatured: its active site changes shape, so it no longer fits the protein substrate, and less of the stain is digested.

(c) It works well at a low temperature (40 °C), so less energy is needed to heat the water.

(d) Any two: mass or concentration of powder; volume of water; size and age of the stain; type of cloth; time (20 minutes); amount of stirring.

Check it. The non-biological powder keeps improving with temperature because it has no enzyme to denature — hot water simply dissolves more of the stain.
“The enzymes are killed.” Enzymes are not alive, so they cannot be killed: they are denatured.

📝Practise

In the style of the multiple-choice and theory papers. EXTENDED marks Supplement content.

1. (Multiple choice.) Which product of anaerobic respiration in yeast makes bread dough rise? A: carbon dioxide. B: ethanol. C: lactic acid. D: oxygen.
A.
2. (Theory.) State two features of bacteria that make them useful in biotechnology. [2]
They reproduce rapidly; they can make complex molecules (e.g. proteins).
3. (Theory.) Define genetic modification. [2]
Changing the genetic material of an organism by removing, changing or inserting individual genes.
4. (Theory.) Describe how yeast is used to produce ethanol for fuel. [3]
Yeast is mixed with sugar solution (e.g. from sugar cane) with no oxygen; it respires anaerobically, converting glucose into ethanol and carbon dioxide; the ethanol is separated (distilled) and used as fuel.
5. (Theory.) EXTENDED Explain how lactose-free milk is produced and who it is for. [3]
Milk is treated with the enzyme lactase, which breaks lactose down into glucose and galactose. It is for people who are lactose intolerant, who do not make enough lactase to digest lactose.
6. (Theory.) EXTENDED Explain why a fermenter producing penicillin has a water jacket and a supply of sterile air. [4]
Water jacket: the fungus's respiration releases heat; cooling keeps the temperature at the optimum so enzymes are not denatured. Air: supplies oxygen for aerobic respiration; it is sterile so no other microorganisms contaminate the culture or compete with the fungus.
7. (Theory.) EXTENDED Explain why the same restriction enzyme is used to cut the human DNA and the plasmid. [2]
It cuts at the same base sequence, so both have complementary sticky ends, whose unpaired bases pair up so DNA ligase can join the gene into the plasmid.
8. (Theory.) EXTENDED Discuss one advantage and two disadvantages of growing insect-resistant GM maize. [3]
Advantage: higher yield / less insecticide needed, so fewer harmless insects killed and lower costs. Disadvantages: may harm non-pest insects such as pollinators; seed is expensive; genes may spread to wild plants; pests may evolve resistance to the toxin.

🔗Go deeper — other people’s work

These are external resources, not mine. If one stops working, tell me and everything above it on this page still stands.

  • Your Genome (Wellcome Connecting Science) — what is genetic engineering?
  • BBC Bitesize — biotechnology and genetic modification