Lesson 3.1.8.1
3.1.8.1 Inorganic ions and their roles Quiz: AQA Biology, Unit 1
20 questions
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Lesson 3.1.8.1, Inorganic ions and their roles: 20 multiple choice questions for the AQA Biology (7402), Unit 1: Biological molecules, written with Revision Ninja.
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The 20 questions
-
Which ion is a component of haemoglobin, allowing it to bind oxygen?
- Sodium ion (Na+)
- Magnesium ion (Mg2+)
- Calcium ion (Ca2+)
- Iron ion (Fe2+)
-
Which ion is co-transported with glucose and amino acids across the mammalian ileum?
- Potassium ion
- Calcium ion
- Chloride ion
- Sodium ion
-
Which ion forms part of the backbone of DNA and of ATP?
- Hydrogen ion
- Phosphate ion
- Sodium ion
- Iron ion
-
How is pH defined?
- The positive logarithm to base 10 of the hydroxide ion concentration
- The hydrogen ion concentration in mol/dm3 directly, without any conversion with no exceptions
- The number of hydrogen ions per cubic centimetre of solution
- The negative logarithm to base 10 of the hydrogen ion concentration in mol/dm3
-
What role do hydrogen ions have in biological systems?
- They form the phosphodiester bonds that join the nucleotides together in a DNA strand
- They determine pH, which affects the ionisation of R groups and the activity of enzymes
- They are co-transported with glucose into the cells lining the ileum by a specific carrier protein
- They are the main component of haemoglobin, where they bind oxygen directly within the red blood cell
-
What does an iron ion in haemoglobin bind?
- Oxygen
- Glucose
- Carbon dioxide only
- Sodium ions
-
Which ion is found at very low concentration in some cells but has an essential specific role?
- Iron ion, which is essential for oxygen transport in haemoglobin
- Hydrogen ion, which is found only in the nucleus as a component of DNA
- Phosphate ion, which is found only in the cell membrane as a lipid
- Sodium ion, which is found at high concentrations and forms DNA
-
A solution has a hydrogen ion concentration of 1 x 10^-3 mol/dm3. What is its pH?
- 3
- 10
- 1
- 11
-
How many times greater is the hydrogen ion concentration at pH 5 than at pH 7?
- 100 times
- 2 times
- 1000 times
- 10 times
-
What is the hydrogen ion concentration of a solution at pH 9?
- 1 x 10^-5 mol/dm3
- 1 x 10^-9 mol/dm3
- 1 x 10^9 mol/dm3
- 9 mol/dm3
-
How does sodium co-transport help the cells lining the ileum absorb glucose?
- Sodium moves into the cell and blocks glucose from leaving it, so that the glucose stays trapped inside
- Glucose moves down its own gradient and carries sodium into the cell with it through the carrier
- Sodium and glucose both move out of the cell together through the same channel in the membrane
- Sodium moves down its concentration gradient into the cell, carrying glucose against its own gradient
-
A drug stops the sodium-potassium pump, which keeps the sodium gradient across the ileum cell membrane. What is the likely effect on glucose absorption?
- Glucose absorption falls, because the sodium gradient that drives co-transport is reduced
- Glucose absorption is unchanged, because glucose enters the cell by simple diffusion alone
- Glucose absorption stops entirely, because glucose is converted into haemoglobin
- Glucose absorption rises, because the drug increases the diffusion of glucose
-
A patient has a shortage of iron ions. Which effect on the blood is most likely?
- The blood glucose rises because iron stops sodium co-transport
- More haemoglobin is made, so more oxygen is transported in the blood with no exceptions
- Less haemoglobin is made, so less oxygen can be transported in the blood
- The blood pH falls because iron ions produce hydrogen ions
-
Which inorganic ion is hydrolysed from ATP to provide a phosphate group for phosphorylation?
- Sodium ion, released when ATP is hydrolysed
- Inorganic phosphate (Pi), released when ATP is hydrolysed
- Hydrogen ion, released when ATP is resynthesised
- Iron ion, released from haemoglobin during ATP hydrolysis
-
Explain why a small change in hydrogen ion concentration causes a large change in pH.
- pH is a linear scale, so a small change in hydrogen ions gives only a small pH change
- pH depends only on the number of water molecules, which changes sharply with hydrogen ions with no exceptions
- Hydrogen ions are present in very large amounts, so small changes are rapidly buffered
- pH is a logarithmic scale, so each unit represents a tenfold change in hydrogen ion concentration
-
Explain why sodium-glucose co-transport depends indirectly on ATP.
- ATP hydrolysis drives active transport that pumps sodium out of the cell, maintaining the gradient used for co-transport
- ATP is converted into sodium ions, which then carry glucose into the cell through the cell membrane
- ATP is directly used to move glucose into the cell through a channel protein in the membrane of the cell
- ATP forms the peptide bond that holds the sodium ion to the glucose molecule during co-transport across the membrane in every case
-
Explain why the iron ion in haemoglobin must remain in the Fe2+ form to carry oxygen.
- Fe2+ is always covalently bonded to the haem group, so it cannot release oxygen
- Fe2+ binds oxygen reversibly, whereas the oxidised Fe3+ form does not bind oxygen in the same way
- Fe2+ is positively charged, which repels oxygen molecules from haemoglobin
- Fe2+ is a non-metal that forms peptide bonds with oxygen
-
A student claims that all inorganic ions are present in cells at the same concentration. Which evaluation is correct?
- Correct, because the cell maintains each ion at a fixed equal concentration
- Incorrect, because ions are never found in the cytoplasm of cells
- Correct, because ions only differ in concentration in the blood and not in cells
- Incorrect, because ions occur at very different concentrations, with some high and others very low
-
Why is the phosphate ion a suitable group for phosphorylation of other compounds?
- Phosphate forms a glycosidic bond that stabilises the compound
- Phosphate removes an electron from the compound, making it unreactive
- Phosphate is non-polar, so it prevents the compound from reacting with water with no exceptions
- Transferring a phosphate group often makes the recipient compound more reactive
-
Explain why hydrogen ions can affect enzymes even though they are present at very low concentrations.
- Hydrogen ions directly break the peptide bonds in the backbone of the enzyme molecule when present
- Hydrogen ions are present in such a low concentration that they can only bind to the substrate molecules
- Changes in hydrogen ion concentration alter the ionisation of R groups in the active site, changing its shape and charge
- Hydrogen ions are converted into sodium ions, which then block the active site of the enzyme completely
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