Most of the molecules in living organisms fall into three categories:?carbohydrates, proteins and lipids
These?all contain carbon?and so are described as organic molecules
Large Molecules are Made from Smaller Molecules
Carbohydrates
Carbohydrates contain the elements carbon, hydrogen and oxygen
A monosaccharide is a?simple?sugar e.g.?glucose?(C6H12O6) or?fructose
Glucose molecules contain lots of?energy?which can be released in respiration by?breaking the bonds?between the carbon atoms
A?disaccharide?is made when?two?monosaccharides join together
Maltose?is formed from?two glucose?molecules
Sucrose?is formed from?one glucose?and?one?fructose?molecule
A?polysaccharide?is formed when?lots?of monosaccharides join together
Starch, glycogen or cellulose?are all formed when?lots?of glucose?molecules join together
Polysaccharides are insoluble and therefore useful as storage molecules
Glycogen, cellulose and starch are all made from glucose molecules
Fats
Most fats (lipids) in the body are made up of?triglycerides
Their basic unit is?one glycerol molecule?chemically bonded to?three fatty acid chains
The fatty acids vary in size and structure
Lipids are divided into?fats?(solids at room temperature) and?oils?(liquids at room temperature)
The structure of a triglyceride
Proteins
Proteins are formed from long chains of?amino acids
There are 20 different amino acids
When amino acids are joined together a?protein?is formed
Amino acids can be arranged in any order, resulting in hundreds of thousands of different proteins
Examples of proteins include?enzymes,?haemoglobin, ligaments and keratin
Amino acids join together to form proteins
Protein shape
Different proteins have different amino acid sequences resulting in them being?different shapes
Even a small difference in the?amino acid sequence?will result in a completely?different?protein being formed
The?different sequences of amino acids?cause the polypeptide chains to?fold in different ways?and this gives rise to the different shapes of proteins
In this way, every protein has a?unique 3-D shape?that enables it to carry out its function
The shape of a protein?determines its function
For example:
Enzymes?have a specifically shaped?active site?- this is where a?specific substrate?molecule fits in order for a reaction to take place
If the shape of the active site does not match the shape of the molecule that fits into it, the reaction will not take place
Antibodies?are proteins produced by certain types of?white blood cells?that attach to antigens on the surface of pathogens
The?shape of the antibody?must match the?shape of the antigen?so that it can attach to it and signal it for destruction
Every enzyme has a different shaped active site-specific to one substrate
Exam Tip
You should be able to explain the importance of sugars, amino acids, fatty acids and glycerol in the synthesis and breakdown of carbohydrates, proteins and lipids. There will be many examples of each of these molecules throughout the course.