Transition Task: Biology - Gildredge House
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Transition Task: Biology
Subject Qualification Examination Board
Biology A Level & Practical Endorsement Edexcel A (SNAB)
Additional Information:
Task Overview:
Research and produce four resources to demonstrate your knowledge of (1) circulatory
system and cardiovascular disease (2) Movement of substances across a membrane (3)
structures and functions of the cell membrane (4) Species and evolution
Success Criteria:
The first resource (atomic structure) should cover:
o A diagram of a basic components of the cardiovascular system
o Explain any functions the parts of the cardio vascular system have and how they
are adapted for their roles in the system.
o Explain what factors can affect the function of the cardiovascular system.
o What is cardiovascular disease?
The second resource should cover:
o Describe the processes of osmosis, diffusion and active transport.
o Compare and contrast each process.
o Explain when each process could be used in a human or plant.
The third resource should cover:
o Diagrams of Eukaryotic, prokaryotic cells. Explain the functions of the cell
organelles (structures).
o Describe the process of protein synthesis and how we make protein in the body.
o Explain how mutation can cause problems with making these proteins.
The fourth resource should cover:
o Explain what biodiversity is and why it is important to our ecosystem.
o Describe how different species are grouped together and identified.
o Explain why the change in the environment is driving natural selection.
Complete the Transition guide for Biology A Level. This has worksheet, facts sheet and a
baseline test with answers.
Resources:
https://www.bbc.com/bitesize/examspecs/zcq2j6f
https://www.bbc.co.uk/bitesize/subjects/zm6tyrd -more like A LEVEL standard.
Any existing revision guides or textbooks you own.
Your own (super intelligent) minds.
How the work produced will fit into subsequent work and the specification as a whole?
These topics lead into the first topics studied at A level and provide a foundation for the
rest of Biology
How the work should be presented?
You may choose to present the work as you wish. Suggestions include a poster,
information sheets, leaflets or sample textbook pages.
Who to contact if you should require Mr C Applegate | Gildredge House, Head of
further assistance with the work before Biology
the end of term? c.applegate@gildredgehouse.org.uk
Length of time expected to complete 12 Hours
tasks:
Submission Requirements: Bring in paper copy at the start of term.
What equipment will be needed for the subject?
Standard stationery, a calculator,
the course textbook:
Salters-Nuffield AS/A level (SNAB) Biology; A Level (book 1-AS) Pearson
ISBN: 978-1-4479-9100-7
Optional Extension Task/Further Reading
Extension work:
a) What is the difference between Systole and Diastole? Link this to the cardiac
cycle.
b) What is a risk factor for heart disease?
c) What are the features of a good study?
d) Explain the what causes the symptoms of Cystic fibrosis.
e) What are the different types of stem cell and suggest ethical issues with using of
medical research
SNAB Biology A-Level Transition task
Gildredge House Free School
Mr C Applegate
2020
Baseline assessment
Name: Form:
Question Marks
1 /5
2 /6
Biology group:
3 /4
GCSE Biology/Science grade:
4 /4
Date: 5 /4
6 /8
7 /9
Targets for improvement
8 /9
DNA structure and genetics
9 /7
Protein synthesis and enzymes
Total /55
Cell structures
%
Biodiversity
Grade
Heart and bloodflow
Target grade
OT
BT
AT
1 Read through the following passage on the structure of DNA, then fill in the most
appropriate word or words to complete the passage.
A DNA molecule consists of two strands of mononucleotides. Each of these strands is
twisted around the other, forming a .
Each mononucleotide consists of a pentose sugar called deoxyribose, a base and a
phosphate. The two strands are held together by complementary base pairing.
Adenine bonds with and cytosine bonds with
. The name of the bond that forms between
these bases is a bond. A DNA molecule that is
composed of 34% adenine will be composed of % cytosine.
(6 marks)
2 Cystic fibrosis and albinism are examples of recessive genetic disorders. Krabbe
disease is another example of a recessive genetic disorder.
Krabbe disease is caused by mutations in the GALC gene, resulting in a deficiency of
an enzyme called galactocerebrosidase.
a Explain the meaning of each of the following terms.
i Mutation
(2 marks)
ii Recessive
(1 mark)
b Explain how a mutation in the GALC gene could result in a change in the enzyme
galactocerebrosidase.
(3 marks)
3 Transcription and translation are two main stages in protein synthesis.
a Complete the table below by writing the word transcription or translation next
to the appropriate statement about protein synthesis.
Statement Stage of protein synthesis
Ribosomes are involved.
DNA acts a s a template.
tRNA is involved.
Peptide bonds are made.
mRNA is made.
(5 marks)
b The table below shows some amino acids and their corresponding DNA triplet
codons. The DNA triplet codons for a stop signal are also shown.
Amino acid/stop signal DNA triplet codons
Proline GGT GGG GGA
Alanine CGG CGA CGT CGC
Cysteine ACA ACG
Serine AGG AGA AGT AGC
Leucine GAA GAG GAT GAC
Arginine GCA GCG GCT GCC
Glutamine CTT CTC
Gkycine CCT CCG CCA CCC
Threonine TGC TGA TGT TGG
Stop signal ATT ATC ACT
The diagram below shows part of a DNA molecule.
i Place a cross () in the box next to the amino acid coded for by codon 85.
A Leucine
B Glutamine
C Glycine
D Serine
(1 mark)
ii Place a cross () in the box next to the sequence of amino acids found in the
polypeptide chain that is coded for by this part of the DNA strand.
A cysteine glutamine cysteine arginine proline proline
B threonine leucine threonine alanine glycine glycine
C cysteine glutamine cysteine arginine glycine glycine
D cysteine proline cysteine arginine proline proline
(1 mark)
iii Place a cross () in the box next to the sequence of bases on a molecule of
messenger RNA (mRNA) synthesised from this part of the DNA molecule.
AACACTTACAGCCGGTGGG
BTGTGAATGTCGGCCACCC
CUGUGAAUGUCGGCCACCC
DAGACUUAGACGGCCUGGG
(1 mark)
4 Animal and plant cells are eukaryotic. Bacterial cells are prokaryotic.
Name three structures that are present in prokaryotic cells but absent in animal
cells.
1
2
3
(3 marks)
5 Lichen consists of two organisms, an alga and a fungus, growing together.
The alga photosynthesises producing carbohydrate for the two organisms and the
fungus absorbs and retains water so that the lichen does not dry out.
The photograph below shows a patch of lichen growing on a wall.
Algae and fungi are eukaryotic organisms.
a Place a cross () in the box next to one difference in cell structure between these
two eukaryotic organisms.
A algae have chloroplasts, fungi do not
B algae have circular DNA, fungi have linear DNA
C fungi have chloroplasts, algae do not
D fungi have circular DNA, algae have linear DNA
(1 mark)
b Lichens can reproduce sexually and asexually. Sexual reproduction involves
meiosis and asexual reproduction involves mitosis.
Describe the advantages to lichens of being able to reproduce both sexually and
asexually.
(2 marks)
c The diagram below shows the conditions at four positions, A, B, C and D, on a
building.
Place a cross () in the box next to one difference in cell structure between these
two eukaryotic organisms.
A
B
C
D
(1 mark)
6 Fertilisation involves the fusion of haploid nuclei.
a The diagram below shows a human sperm cell.
Name the structures labelled A and B.
A
B
(2 marks)b Explain why it is important that the sperm has a nucleus that is haploid.
(2 marks)
7 Rhododendrons are shrubby plants that are widely distributed throughout the
northern hemisphere.
The flowering periods and habitats of two species of rhododendron, found on
Yakushima Island in Japan, are shown in the table below.
Species Flowering Main flowering Habitat
period period
Rhododendron Rocky areas in
April to July May
eriocarpum lowland regions
Rhododendron High mountainous
May to July June
indicum regions
Where these populations overlap, hybrid plants are found that have arisen as a result
of cross-fertilisation between these two species. These hybrid plants are capable of
flowering and producing viable seeds.
a Describe the reasons why some scientists might prefer to classify Rhododendron
eriocarpum and Rhododendron indicum as varieties within the same species
rather than as two separate species.
(3 marks)b Explain why there is likely to be a greater genetic diversity in the hybrid plants
than in either of the two separate species.
(2 marks)
c Adaptation can occur within the same species.
Leopards and panthers are members of the same species found in Africa.
Leopards have spotted fur and hunt in open grasslands, whilst panthers have
black fur and hunt in forests.
Suggest how natural selection has led to the evolution of these two different
forms of the same species.
(4 marks)8 In an osmosis investigation, a student prepared five pieces of raw potato of equal
mass and a range of sucrose solutions of different concentrations.
One piece of potato was placed in each sucrose solution. After two hours, the potato
pieces were removed and blotted dry and the change in mass of each potato piece
was calculated.
The results are shown in the table below.
Concentration of sucrose Change in mass of
solution/mol dm−3 potato piece/g
0.2 +1.34
0.4 +0.82
0.6 +0.31
0.8 –0.11
1.0 –0.65
a Explain the meaning of the term osmosis.
(2 marks)
b i Explain why the piece of potato placed in 0.2 mol dm−3 sucrose solution had
the largest change in mass.
(3 marks)ii The student suggested that there would be no change in the mass of a piece of
potato placed in a sucrose solution of 0.75 mol dm −3. Give an explanation for
this suggestion.
c The student repeated this investigation using another potato and the results were
different.
The student concluded that there was a difference in water content of the two
potatoes. Describe two reasons for this difference in water content.
1
2
(2 marks)
9 a Read through the following passage about the heart and its major blood vessels,
then fill in the most appropriate word or words to complete the passage.
The mammalian heart consists of four chambers, two upper chambers called
and two lower chambers called ventricles.
The carries oxygenated blood away from the
ventricle to the cells of the body and the pulmonary
carries deoxygenated blood to the lungs. The
returns deoxygenated blood back to the heart from the
body.
(5 marks)b The diagram below shows the structure of the heart.
Describe the stage of the cardiac cycle which is shown in the diagram and give a
reason for your answer.
(2 marks)
-End of assessment-Summary sheet 1: Cell structure
Prokaryotes are single celled organisms, including bacteria. They are simpler and smaller
than Eukaryotic cells.
Bacterial cells have:
● no nucleus with circular DNA free
in the cytoplasm
● cell wall made from peptidoglycan
● no membrane-bound organelles
● small ribosomes.
Eukaryotic cells include animal and plant
cells. They are larger and more complex
than prokaryotic cells.
Animal cells have:
● linear DNA contained inside a nucleus
● no cell wall
● larger ribosomes and many membrane-
bound organelles including mitochondria
where aerobic respiration occurs and
endoplasmic reticulum and golgi which
are involved in the processing of
proteins.
Plant cells have the same organelles as animal
cells but they also have:
● a cell wall
● a large vacuole containing cell sap
● chloroplasts for photosynthesis.
greater
detailSummary sheet 2: Mitosis Mitosis results in the production of two genetically identical diploid body cells. It occurs during growth, repair and asexual reproduction. Mitosis occurs during the cell cycle. The cell cycle consists of a period of cell growth and DNA replication known as interphase and then a period of cell division called mitosis followed by cytokinesis where the cytoplasm divides and the cell membrane constricts to form the two daughter cells. Mitosis is broken down into stages – prophase, metaphase, anaphase and telophase, followed by cytokinesis.
Summary sheet 3: Microscopy
Magnification is how much bigger the image is than the specimen on the microscope
slide.
The size of the specimen can be calculated using the formula:
length of the image
length of the specimen =
magnification
With a light microscope the magnification is the combination of the magnification of the
objective lens and the eye piece lens.
For example a 40× objective lens and a 10× eye piece lens produce a total magnification
of 400×.
When you are doing magnification calculations you must have all the lengths in the
same units.
1 cm 10 mm
1 mm 1000 µm
1 µm 1000 nm
Calculation
Calculate the actual size of a cell with a diameter of 8 mm using 100× magnification.
8
Actual size = = 0.08 mm
100
= 80 µm
Resolution is a measure of how easy it is to distinguish between two points that are close
together i.e. how much detail can be distinguished. Electron microscopes have a better
resolution than light microscopes so they can see more detail.Summary sheet 4: Diffusion, osmosis and active
transport
Diffusion
Liquid and gas particles are constantly moving
which causes particles to move from an area of
high concentration to an area of low
concentration.
Observing the process of diffusion. If the beaker is left
to stand the random motion of both the water and the
purple manganite(VII) ions will ensure they are
eventually evenly mixed.
Small particles can diffuse across cell
membranes and no energy is required. Some
molecules, such as glucose, are too large to
diffuse across the cell membrane so they must
be helped by carrier proteins. Each molecule
has its own carrier protein that allows the
molecule through the cell membrane without
the need for energy. This is known as facilitated
diffusion.
Facilitated diffusion acts as a ferry across the
lipid membrane sea. But this is a boat with no
oars, sails or engine – it can only work when
the tide (the concentration gradient) is in the
right direction.
Osmosis
Osmosis is the diffusion of water molecules from an area
of higher concentration of water molecules to an area of
lower concentration of water molecules across a partially
permeable membrane.
Active transport
Active transport uses energy to transport substances
across membranes from an area of lower concentration to
an area of higher concentrationWorksheet 1: Cell structures 1
Extracting key information from text is an important study skill for
A-level candidates.
Read through the passage below about animal, plant and bacterial cells. Use the
information and your own knowledge to complete the table to list some of the structural
features of animal, plant and bacterial cells.
The plant cell and the animal cell possess a nucleus containing chromosomes
and a nucleolus. In a bacterial cell the DNA is located in the cytoplasm. Only
the bacterial cell and the plant cell have a cell wall but all three cells have a
cell membrane. The plant cell wall is made of cellulose and the bacterial cell
wall is made of peptidoglycan.
Centrioles are present only in the animal cell and chloroplasts are found only
in the plant cell. Mitochondria and rough endoplasmic reticulum are not
present in the bacterial cell. All three cells contain structures called ribosomes
which are involved in the synthesis of protein. Bacterial cells can have pili or a
capsule.
Features present in Features present in Features present in
animal cells plant cells bacterial cells
Extension activity – research a function for each feature listed.Worksheet 2: Cell structures 2
Extracting key information from text is an important study skill for
A-level candidates.
Read through the passage below about animal, plant and bacterial cells. Use the
information and your own knowledge to draw and label an animal, plant and bacterial
cell. You should include the features listed if appropriate.
The plant cell and the animal cell possess a nucleus containing chromosomes
and a nucleolus. In a bacterial cell the DNA is located in the cytoplasm. Only
the bacterial cell and the plant cell have a cell wall but all three cells have a
cell membrane. The plant cell wall is made of cellulose and the bacterial cell
wall is made of peptidoglycan.
Centrioles are present only in the animal cell and chloroplasts are found only
in the plant cell. Mitochondria and rough endoplasmic reticulum are not
present in the bacterial cell. All three cells contain structures called ribosomes
which are involved in the synthesis of protein. Bacterial cells can have pili or a
capsule.
cell wall nucleus cell membrane ribosome capsule
mitochondria cytoplasm chloroplast plasmid chromosome
Animal cell Plant cell
Bacterial cell
Extension activity – research any unfamiliar features and add them to your
cell diagrams.Practice questions
1 The diagram shows a bacterial cell with some of the key features labelled.
D
A
B
C
a Label cell features A, B, C and D.
b Complete the table to identify three features present in animal cells and describe
their function.
Animal cell feature Function
c Some antibiotics prevent protein synthesis by targeting the ribosome.
Ribosomes in eukaryotes have a different structure to prokaryotes.
In no more than 50 words, explain why these types of antibiotics can be used to
treat bacterial infections without effecting human cells.
Concise writing which refers to key scientific ideas is effective.2 The image shows root tip cells at different stages of the cell cycle.
A
B
C
D
a Identify the stages of mitosis for cells A, B, C and D.
b The microscope used to view the cells had a 10× eye piece lens. Which objective
lens was needed to view the cells at this magnification level?
c Calculate the length of cell A.
3 The diagram shows an animal cell with three key features labelled.a Identify three additional features which are found in animal cells and describe
their functions.
1
2
3
b An image of an animal cell nucleus with a diameter of 6 µm was obtained using a
10× eye piece lens and 20× objective lens. Calculate the diameter of the nucleus
on the image.
Substances can be transported into cells through diffusion, osmosis and active
transport.
4 Write a definition for diffusion, osmosis and active transport.
Diffusion:
Osmosis:
Active transport:5 Cells were placed in a solution containing solute X and solute Y.
The diagram below represents the concentration of the two solutes inside and outside
one of the cells, when this cell was placed in the solution and then after 30 minutes.
solute X
cell
solute Y
Initial concentration After 30 minutes
Explain the movement of solute X and solute Y into the cell.
6 A red blood cell was placed in a solution of distilled water.
Explain the effect on the red blood cell of being placed in a solution of distilled water.
7 Explain the key word ‘isotonic’.8 A student took 15 identical sized potato chips. The mass of each chip was recorded
and the chips were placed in 4 salt solutions (0.1M, 0.2M, 0.3M and 0.4M) and pure
water for 30 minutes. The chips were dried and the mass recorded. The mass change
and % change in mass was calculated.
Design a table to record the students raw and processed data.
When recording data in tables units must be included in headers of
the tables. All units should be SI.Section B: Molecule 40 © Pearson Education Ltd 2015. Copying permitted for purchasing institution only. This material is not copyright free.
Summary sheet 1: Protein synthesis
A gene is a sequence of DNA which codes for a protein. Proteins are synthesised in a
two-step process – transcription and translation.
Transcription takes place in the nucleus and translation takes place at the ribosome. A
complementary mRNA strand is made using the DNA as a template. The mRNA leaves
the nucleus and attaches to the ribosome in the cytoplasm. A triplet of bases on the
mRNA (a codon) code for specific amino acids. The amino acids are delivered to the
ribosome by tRNA. Peptide bonds are formed between the amino acids to make the
polypeptide.
The DNA gene sequence is ACA CGG AAA CCT GAC.
The mRNA sequence is UGU GCC UUU GGA CUG.
This codes for the amino acid sequence is:
Cys-Ala-Lys-Gly-Leu
The protein folds into a specific structure.
For enzymes this means that the active site
forms a specific shape that binds specific substrates.Summary sheet 2: Enzymes activity
Enzymes are biological catalysts that speed up chemical reactions. Enzymes work by
reducing the amount of activation energy needed for the reaction to occur.
The active site of the enzyme is where the
substrate binds. It has a specific shape which
means enzymes can only bind to a specific
substrate.
The substrate binds to the active site forming an
enzyme-substrate complex. The reaction is
catalysed and the products released.
Different factors can affect how quickly the enzymes work. These include temperature,
pH, enzyme concentration and substrate concentration.
As temperature increases there is more chance of
a collision between the enzyme and substrates, as
they have more kinetic energy. This continues
until the optimum temperature where the rate of
reaction is highest. As the temperature continues
to rise the enzyme denatures, as the active site
changes shape, when bonds holding the protein
together break.
Enzymes also have an optimum pH, above and
below the optimum pH the enzyme denatures.
As the substrate concentration increases there is more
chance of a collision between the substrate and the
enzyme. The rate of reaction increases until all the actives
sites are occupied.
The rate of reaction increases as enzyme concentration
increases until all the substrate is bound to an enzyme.
Amount of product
In practical situations you can sometimes measure
the amount of product formed over time. The
initial rate of the reaction for an enzyme can be
calculated by measuring the gradient of the graph.
If the line is curved a tangent to the curve can be
used : gradient = y ÷ x. y
x
TimeWorksheet 1: Carbohydrates
The diagram shows the chemical structures of some monosaccharides, disaccharides and
polysaccharides. Giving a reason, separate the molecules into these three groups.
Glucose
Amylopectin
Maltose Sucrose
Fructose
Amylose
Monosaccharides Disaccharides PolysaccharidesWorksheet 2: Data analysis
Processed data should be recorded to the same number of decimal
places as the primary data
This table shows the same data recorded to different numbers of decimal places.
Data set 1 Data set 2
2.4 2.37
3.6 3.55
4.1 4.05
2.8 2.76
3.5 3.51
1 Compare the mean values for data set 1 and data set 2.
2 Express data set 2 to 1 decimal place. What do you notice?
3 Explain why it is incorrect to record 3.28 as the mean for data set 1.
Being able to convert data, using standard form and different units, is
an important skill
4 Convert the data in the table below.
Data Value
45 100 g into standard form
45 100 g into kilograms
34 ms into seconds
780 µm into millimetres
0.25 × 10-9 s into nanosecondsPractice questions
1 Enzyme A catalyses the breakdown of molecule X into Y and Z.
Enzyme A
X Y+ Z
Molecule X and enzyme A were mixed together at 30˚C at pH 6.8.
This graph shows the mass of molecule Z formed over a 10 minute time period.
Amount of molecule Z / mg
time (mins)
a Calculate the initial rate of reaction of enzyme A.
b What is the rate of reaction of enzyme A after 8 minutes?
c Suggest a reason for the rate of reaction calculated in b.2 Enzyme B catalyses the breakdown of molecule X into Y and Z.
Enzyme B
X Y+ Z
Molecule X and enzyme B were mixed together at different temperatures.
This table shows the initial rate of reaction of enzyme B at 15˚C, 25˚C, 30˚C, 35˚C,
40˚C and 50˚C.
Temperature Initial rate of reaction of
enzyme B (mmol.min-1)
15 8
25 14
30 18
35 20
40 18
50 12
a The table has some missing information. Add the missing information to
the table.
b Plot the data from the table on graph to show the initial rate of reaction of
enzyme B at different temperatures.
You should consider:
● the variable which should be on the x-axis
● the labels for the axis
● the title of the graph.
c Compare different rates of reaction of enzyme B at 20˚C, 37˚C and 45˚C.
For questions which involve the use of data from a graph you must
use scientific knowledge to explain the data you have extract from
the graph.3 Mutations in DNA can impact on the activity of enzymes.
This DNA sequence is from the region of the gene which codes for the active site of
an enzyme.
GAA GAG AGT GGA CTC ACA GCT CGG
The table shows the amino acid coded for by some codons.
Amino acid/stop signal DNA triplet codons
Proline GGT GGG GGA
Alanine CGG CGA CGT CGC
Cysteine ACA ACG
Serine AGG AGA AGT AGC
Leucine GAA GAG GAT GAC
Arginine GCA GCG GCT GCC
Glutamine CTT CTC
Gkycine CCT CCG CCA CCC
Threonine TGC TGA TGT TGG
Stop signal ATT ATC ACT
a State the amino acid sequence coded for by the sequence above.
b Using the information above explain the effect on the protein produced for the
following mutations.
GAA GA T AGT GGA CTC ACA GCT CGG
GAA GAG AGT GGA CTC CCA GCT CGG
GAA GAG AGT GGA CTC ACA ACT CGGSection C: Human biology
Summary sheet 1: Heart and lungs
The left side of the
heart pumps
oxygenated blood
from the lungs
around the body.
The blood enters
the left atrium from
the pulmonary vein.
It flows through the
atrioventicular or
bicuspid valve to
the left ventricle.
The blood is then
pumped into the
aorta, through a
semi-lunar valve,
and around the
body.
The right side of the heart pumps deoxygenated blood from the body back to the lungs.
The blood returns from the body to the right atrium via the vena cava. It flows through
the atrioventicular or tricuspid valve to the right ventricle. The blood is then pumped into
the pulmonary artery, through a semi-lunar valve, and to the lungs.
The atrioventricular valves between the atrium
and ventricles open to allow blood to flow from
the atrium into the ventricles and close when
the pressure in the ventricles rises to prevent
back flow.
The semi-lunar valves in the aorta and
pulmonary artery open to allow blood from the
ventricles to flow into the arteries. They close
to prevent backflow into the ventricles as the
heart relaxes.
Oxygen enters the blood in the alveoli of the lungs.
Oxygen in the alveolus is at a high concentration and it
diffuses down the concentration gradient into the blood
which has a low concentration of oxygen. This low
concentration is maintained because the blood is
moving and carries the oxygen away.
The walls of the alveolus and capillaries are only one
cell thick. This creates a short diffusion distance
between the alveolus and the blood allowing a high
rate of diffusion.Summary sheet 2: Circulatory system
Blood flows around the body via a network of arteries, veins and capillaries.
The double circulation system of mammals
means that blood flows through the heart twice
in one complete cycle of the body.
The pulmonary system pumps blood around the
lungs and the systemic system pumps blood
around the rest of the body.
Arteries carry blood away from the heart. The
vessel walls are thick and muscular with elastic
fibres to withstand the high pressure generated by
the heart.
Veins carry blood from capillary beds back to the
heart. The blood is at low pressure and the walls of
the vessels are relatively thin with less elastic
fibre. The contraction of muscles help push the
blood though veins and the vessels have valves to
prevent backflow.
Capillaries are thin vessels that form capillary
networks around tissues. They allow the exchange
of substances such as oxygen, glucose and waste
materials between cells and the blood.Worksheet 1: Prefixes Scientific terms use common prefixes. Find out the definition/meaning of the prefixes shown in the table. Word/prefix Definition/meaning endo exo pulmonary cardiac hepatic mono di photo haem bio chemo
Worksheet 2: Keywords
Candidates frequently lose marks in examinations because they do
not use sufficient key words in detailed responses.
Read the responses to the questions below. Using the keywords from the box write
improved answers to the questions.
concentration capillaries vein
diffusion thin semi-lunar
right pulmonary valve
gradient atrioventricular left
aorta vena cava artery
thick osmosis
1 Explain how oxygen enters the blood at the alveoli.
In the alveolus oxygen from the air moves into the blood vessels through the walls of
the alveolus. The blood is moving so there is always a low concentration in the blood.
2 Describe the route blood takes from the lungs to the body.
Blood from the lungs blood travels through a vein to the atrium. The blood is
pumped from the atrium into the ventricle and then into the aorta.Practice questions
1 a Write a definition for each key word in the box. If possible give a structural
feature for each key word.
atria ventricles aorta vena cava pulmonary artery
pulmonary vein atrioventricular valves septum
semi-lunar valves diastolye systole
atria:
ventricles:
aorta:
vena cava:
pulmonary artery:
pulmonary vein:
atrioventricular valves:
septum:
semi-lunar valves:
diastolye:
systole:b Label this diagram of the heart using as many of the key words from 1 a
as possible.
c Use the keywords from 1 a in your answers to the following questions.
i Explain why the left ventricles has thicker chamber walls than the right
ventricle and the atriums.
ii Describe the role of the atrioventricular valves.2 This flow diagram shows the part of the circulation system in a mammal.
Lungs
Blood
vessel B
Blood vessel A Blood vessel C
Heart
a Complete a table to show conditions of blood vessel A, B and C.
Blood Type of Level of Relative Valves Thickness
vessel vessel oxygen pressure present in of blood
saturation of the the vessel vessel
blood walls
A
B
C
b Draw a line on the axis to show the blood pressure changes in the blood as it
flows from the heart to the lungs before returning to the heart.
Blood pressure
Heart Blood Blood Blood Heart
vessel A vessel B vessel C3 Amoeba is a single-celled aquatic organism. Substances in the water can enter the
cell by a variety of mechanisms.
An experiment was carried out to compare the uptake into Amoeba of substance A
and substance B.
Some of these organisms were placed in a solution containing equal concentrations of
both substances and kept at 25ºC.
The concentration of substances A and B, in the cytoplasm of these organisms, was
measured every 30 minutes over a period of 5 hours.
The results of this experiment are shown in the graph below.
a Using the information in the graph, compare the uptake of substance A with the
uptake of substance B during this period of 5 hours.
b Substance B enters the cells by diffusion. Describe and explain how the results of
this experiment support this statement.
c Substance A enters the cells by active transport. Give two differences between
active transport and diffusion.
1
2Appendix 3: Answers to Baseline assessment
1 1 mark for each correct answer.
A DNA molecule consists of two strands of mononucleotides. Each of these strands is
twisted around the other, forming a (Double) helix .
Each mononucleotide consists of a pentose sugar called deoxyribose, a base and a
phosphate. The two strands are held together by complementary base pairing.
Adenine bonds with Thymine and cytosine bonds with
Guanine . The name of the bond that forms between
these bases is a Hydrogen bond. A DNA molecule that is
composed of 34% adenine will be composed of 16/sixteen % cytosine.
2 a i 1. Reference to alteration in DNA.
2. Change in {base (sequence)/quantity of DNA} / eq
(2 marks)
ii Idea that both of these alleles need to be present in order for the recessive
phenotype to be expressed.
b 1. Idea of a gene being a sequence of bases that code for the sequence of amino
acids in the (protein/polypeptide chain/enzyme/galactocerebrosidase).
2. (Gene) mutation will alter {DNA triplet/DNA code/codon/eq}/eq.
3. This may result in a different {amino acid/stop codon/amino acid
sequence/primary structure/eq}/eq.
4. Idea that is may change the {shape/eq} of {protein/enzyme}.
5. Therefore causing {no synthesis/incomplete/eq} of {enzyme/
galactocerebrosidase}/change of active site/eq.
(3 marks)
3 a 1 mark for each correct answer.
Statement Stage of protein synthesis
Ribosomes are involved. Translation
DNA acts a s a template. Transcription
tRNA is involved. Translation
Peptide bonds are made. Translation
mRNA is made. Transcriptionb i B Glutamine (1 mark)
ii A cysteine glutamine cysteine arginine proline proline (1 mark)
iii C U G U G A A U G U C G G C C A C C C (1 mark)
4 Any three from:
● slime layer/(slime capsule)
● cell wall
● circular DNA/loop of DNA/nucleoid/eq
● plasmids
● {70s/small/eq} ribosomes
● pill.
● Allow reference to mesosome.
(3 marks)
5 a A algae have chloroplasts, fungi do not. (1 mark)
b 1. (Advantage of sexual reproduction/meiosis) {genetically different/greater gene
pool/greater genetic diversity/eq}.
2. (Advantage of asexual reproduction/mitosis) faster/one of each organism
needed/conserves advantageous alleles. Accept don’t need a mate.
(2 marks)
c C Area exposed to bright sunlight and protected from the wind. (1 mark)
6 a A Acrosome (1 mark)
B Flagellum (1 mark)
b 1. Has {23/half} the (required) chromosome complement.
2. (So at fertilisation) full {complement/46} (of chromosomes) is restored/diploid
number restored/eq.
3. Correct reference to allowing mixing of alleles/allowing for {genetic
variation/eq}.
(Maximum 2 marks)
7 a 1. Idea that individuals of a species can {interbreed/eq}.
2. To produce fertile {offspring/eq}.
3. The {hybrids/offspring} can flower and produce viable seeds/eq.
(Maximum 3 marks)
b 1. Different alleles in each of the two {populations/eq}.
2. Each {population/eq} is adapted to live {in different environmental
conditions/at different altitudes/eq}.
3. There will have been different mutations in each population.
4. Reference to alleles from different {species/eq}will mix/hybrids receive alleles
from both {species/eq}/
(Maximum 2 marks)
.c 1. Camouflaged in its environment.
2. (more likely) to catch {prey/eq}/{selective advantage/eq}.
3. (Therefore) survive to adulthood/eq.
4. To breed/eq.
5. Pass on {coat colour allele/genetic information/eq}.
6. To offspring/eq.
7. Change in allele frequency over generations.
8. Reference to disruptive selection.
9. Idea of genetic variation present in ancestral population.
(Maximum 4 marks)
8 a 1. {Movement/diffusion/eq} pf water through a partially permeable
membrane/eq.
2. From a region with more free water to a region with less free water/down
water concentration gradient/eq.
(2 marks)
b i 1. Due to high uptake of more water/eq.
2. As higher water concentration outside potato/eq.
3. Idea of largest difference in concentrations of solutions.
(3 marks)
ii EITHER
1. {mass increased/positive change} at 0.6 and {mass decreased/negative
change}at 0.8 (mol dm–3).
2. Idea that concentration is closer to 0.8 than 0.6 mol dm–3 as the decrease
in mass is greater than the increase in mass –0.11 is closer to zero than
+0.31.
OR
1. Results were plotted onto a graph.
2. The line crossed the x-axis at 0.75 mol dm–3/eq.
3. Idea of no net movement of water.
(Maximum 2 marks)
c Any two from:
● age
● {type/variety/genotypes/country of origin/eq}
● storage time
● growth conditions
● part of potato used
● damage
● sprouting
● {storage conditions/temperature/humidity/light/eq}.
(2 marks)9 a 1 mark for each correct answer.
The mammalian heart consists of four chambers, two upper chambers called
atria/atrium and two lower chambers called ventricles.
The aorta carries oxygenated blood away from the
left ventricle to the cells of the body and the pulmonary
artery carries deoxygenated blood to the lungs. The
vena cava returns deoxygenated blood back to the heart from the
body.
b 1. Diastola/Atria contracting.
2. The {atrioventricular/bicuspid/tricuspid} valves are open/semi-lunar valves
are closed.
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