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SCHEME OF WORK
Biology
Grade 10 2026
TERM III
School


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WK LSN STRAND SUB-STRAND LESSON LEARNING OUTCOMES LEARNING EXPERIENCES KEY INQUIRY QUESTIONS LEARNING RESOURCES ASSESSMENT METHODS REFLECTION
2 3
Anatomy and Physiology of Plants
Nutrition - Comparing the light and dark stages of photosynthesis
By the end of the lesson, the learner should be able to:
- Differentiate between the light and dark stages of photosynthesis
- Illustrate the two stages of photosynthesis using flow charts and equations
- Explain how disrupting either stage, such as deforestation reducing CO₂ absorption, affects the overall process
In groups, learners are guided to:
- Analyse the differences between the light dependent and light independent stages of photosynthesis
- Use illustrations (flow charts, equations) to compare the two stages
- Discuss the products of each stage and how they link together
How do the light and dark stages of photosynthesis depend on each other?
- Distinction Biology Learner's Book Grade 10 pg. 115
- Digital resources
- Charts comparing stages
- Written assignments - Oral questions - Observation
2 4
Anatomy and Physiology of Plants
Nutrition - Significance of photosynthesis in nature
By the end of the lesson, the learner should be able to:
- Explain the importance of photosynthesis to plants, animals and the environment
- Discuss how photosynthesis ensures food security in the community
- Connect photosynthesis to combating global warming through tree planting and forest conservation
In groups, learners are guided to:
- Discuss the importance of photosynthesis to plants (food production, energy), animals (oxygen, food chains) and the environment (carbon (IV) oxide removal)
- Explain how photosynthesis helps solve global warming by removing carbon (IV) oxide from the atmosphere
- Discuss how photosynthesis ensures food security
How does photosynthesis benefit both plants and animals?
- Distinction Biology Learner's Book Grade 10 pg. 118
- Digital resources
- Charts on importance of photosynthesis
- Oral questions - Written assignments - Observation
2 5
Anatomy and Physiology of Plants
Nutrition - Other products of photosynthesis
Nutrition - Assessment and review on nutrition in plants
Transport - External structures of the plant transport system
By the end of the lesson, the learner should be able to:
- Identify other products of photosynthesis apart from glucose (fatty acids, amino acids)
- Explain the conversion of glucose to starch, fats and proteins in plants
- Relate how plants convert photosynthesis products into nutrients found in everyday foods like beans, avocados and maize
In groups, learners are guided to:
- Discuss how glucose formed during photosynthesis is converted to starch for storage
- Explain the formation of fatty acids (combined to form fats and oils) and amino acids (converted to proteins)
- Search for information on other products of photosynthesis using reference materials
What other substances do plants produce during photosynthesis besides glucose?
- Distinction Biology Learner's Book Grade 10 pg. 117
- Digital resources
- Internet access
- Distinction Biology Learner's Book Grade 10 pg. 119
- Past assessment questions
- Distinction Biology Learner's Book Grade 10 pg. 120
- Fresh plant specimens
- Oral questions - Written assignments - Observation
3 1-2
Anatomy and Physiology of Plants
Transport - Structure and function of roots in transport
Transport - Internal structure of the root (transverse section)
Transport - Structure and function of stems in transport
Transport - Structure and function of leaves in transport
Transport - Structure, functions and adaptations of xylem vessels
Transport - Structure, functions and adaptations of phloem tissue
By the end of the lesson, the learner should be able to:
- Describe the regions of the root (cell division, elongation and differentiation)
- Relate the structure of the root to its function in absorption and transport
- Explain why seedlings with damaged root hairs wilt faster than those with intact roots
- Describe the role of the leaf in transport (transpiration and translocation)
- Identify the vascular tissues involved in leaf transport
- Explain why leaves of potted plants placed near a sunny window lose water faster through transpiration
In groups, learners are guided to:
- Study the longitudinal section of a dicotyledonous root and identify regions of cell division, elongation and differentiation
- Discuss how root hairs increase the surface area for absorption of water and mineral salts
- Draw and label the longitudinal section of a root
- Discuss the structure of the leaf in relation to its transport function
- Identify materials transported within the leaf (water, mineral salts, food materials)
- Discuss transpiration and translocation as transport processes in the leaf
How is the root adapted to absorb water and mineral salts?
What role does the leaf play in the transport system of plants?
- Distinction Biology Learner's Book Grade 10 pg. 121
- Digital resources
- Charts of root structure
- Distinction Biology Learner's Book Grade 10 pg. 123
- Charts/photomicrographs of root cross-sections
- Distinction Biology Learner's Book Grade 10 pg. 125
- Fresh plant stems
- Charts of stem cross-sections
- Distinction Biology Learner's Book Grade 10 pg. 127
- Digital resources
- Fresh plant leaves
- Distinction Biology Learner's Book Grade 10 pg. 129
- Charts/diagrams of xylem vessels
- Distinction Biology Learner's Book Grade 10 pg. 131
- Charts/diagrams of phloem tissue
- Oral questions - Observation - Written assignments
- Oral questions - Written assignments - Observation
3 3
Anatomy and Physiology of Plants
Transport - Arrangement of vascular tissues in roots of monocots and dicots (Practical)
Transport - Arrangement of vascular tissues in stems of monocots and dicots (Practical)
By the end of the lesson, the learner should be able to:
- Observe and draw cross-sections of monocotyledonous and dicotyledonous roots under a microscope
- Compare the arrangement of vascular tissues in roots of monocots and dicots
- Handle laboratory apparatus such as microscopes and scalpels safely and responsibly
In groups, learners are guided to:
- Cut thin cross-sections of monocotyledonous and dicotyledonous roots, stain with iodine solution and observe under a microscope
- Draw well-labelled cross-sectional drawings of monocot and dicot roots
- Compare the arrangement of vascular tissues in the two types of roots
How does the arrangement of vascular tissues differ in roots of monocots and dicots?
- Distinction Biology Learner's Book Grade 10 pg. 133
- Light microscope
- Fresh plant roots
- Iodine solution, scalpel, glass slides, cover slips
- Distinction Biology Learner's Book Grade 10 pg. 135
- Fresh plant stems
- Observation - Practical assessment - Written assignments
3 4
Anatomy and Physiology of Plants
Transport - Mechanisms of water uptake in plants (osmosis and active transport)
Transport - Movement of water up the plant (transpiration pull, cohesion, adhesion, capillarity, root pressure)
By the end of the lesson, the learner should be able to:
- Describe the mechanisms of water uptake in plants (osmosis, active transport)
- Explain how water moves from soil particles to the xylem vessels in the root
- Relate osmosis in root hair cells to why plants wilt when placed in very salty soil
In groups, learners are guided to:
- Search for information on mechanisms of water and mineral salt uptake in plants
- Study diagrams showing the absorption of water by plant roots
- Discuss how water moves from the soil particles through the root hair cells to the xylem vessels by osmosis
How does water move from the soil into the root of a plant?
- Distinction Biology Learner's Book Grade 10 pg. 137
- Digital resources
- Charts showing water absorption in plants
- Distinction Biology Learner's Book Grade 10 pg. 139
- Internet access
- Oral questions - Written assignments - Observation
3 5
Anatomy and Physiology of Plants
Transport - Absorption of mineral salts and demonstrating water uptake (Practical)
Transport - The process of transpiration
By the end of the lesson, the learner should be able to:
- Explain the mechanism of mineral salt absorption (active transport and diffusion)
- Carry out an experiment to demonstrate uptake of water in plants using dye/ink
- Handle chemicals like food colouring safely and dispose of waste materials responsibly after the experiment
In groups, learners are guided to:
- Discuss how mineral salts are absorbed by active transport and diffusion
- Carry out a dye/ink experiment to demonstrate uptake of water in plants
- Observe exudation and guttation in the experimental set-up and draw conclusions
How are mineral salts absorbed by plant roots?
- Distinction Biology Learner's Book Grade 10 pg. 141
- Fresh young plants
- Food colouring/ink
- Glass beaker, scalpel, distilled water
- Distinction Biology Learner's Book Grade 10 pg. 143
- Digital resources
- Charts of leaf internal structure
- Practical assessment - Observation - Written assignments
4 1-2
Anatomy and Physiology of Plants
Transport - Structural factors affecting the rate of transpiration
Transport - Environmental factors affecting the rate of transpiration (Temperature and light intensity practicals)
Transport - Environmental factors affecting the rate of transpiration (Wind practical and other factors)
By the end of the lesson, the learner should be able to:
- Describe the structural factors that affect the rate of transpiration (leaf size, leaf surface, number and position of stomata, leaf hairs)
- Explain how each structural factor affects transpiration rate
- Explain why cactus plants survive in arid areas by relating their leaf structure to reduced water loss
- Carry out experiments to demonstrate the effect of temperature and light intensity on transpiration
- Explain how temperature and light intensity affect the rate of transpiration
- Set up a control experiment and explain its purpose in ensuring valid results
In groups, learners are guided to:
- Discuss structural factors affecting the rate of transpiration (broad lamina, glossy surface, number of stomata, sunken stomata, leaf hairs)
- Explain midday closure and reversed stomatal rhythm
- Search for information on structural factors using available reference materials
- Carry out an experiment using a heat bulb to demonstrate the effect of temperature on transpiration
- Carry out an experiment using a light bulb to demonstrate the effect of light intensity on transpiration
- Compare condensation on plastic bottles/carrier bags in both experiments and draw conclusions
How do leaf structures influence the rate of water loss in plants?
How do temperature and light intensity affect the rate of transpiration?
- Distinction Biology Learner's Book Grade 10 pg. 145
- Digital resources
- Internet access
- Distinction Biology Learner's Book Grade 10 pg. 147
- Potted plants
- Heat bulb, light bulb
- Transparent carrier bags, elastic bands
- Distinction Biology Learner's Book Grade 10 pg. 149
- Improvised fan materials
- Oral questions - Written assignments - Observation
- Practical assessment - Observation - Written assignments
4 3
Anatomy and Physiology of Plants
Transport - Translocation of manufactured food in plants
By the end of the lesson, the learner should be able to:
- Define translocation and describe the process in plants
- Identify the materials transported during translocation (sucrose, amino acids, vitamins)
- Relate translocation to why fruits, roots and seeds store food, as seen in everyday crops like sugarcane and sweet potatoes
In groups, learners are guided to:
- Discuss the process of translocation of manufactured food from the leaves to other parts of the plant
- Watch animations on translocation and share with peers
- Identify the vascular tissues (phloem) involved in translocation
How is manufactured food transported from the leaves to other parts of the plant?
- Distinction Biology Learner's Book Grade 10 pg. 151
- Digital resources
- Internet access
- Oral questions - Written assignments - Observation
4 4
Anatomy and Physiology of Plants
Transport - Demonstrating translocation by bark ringing and significance of transport in plants
Gaseous Exchange and Respiration - Meaning and significance of gaseous exchange in plants
Gaseous Exchange and Respiration - Stomata as a site for gaseous exchange (Practical)
Gaseous Exchange and Respiration - Distribution of stomata in different plant habitats
By the end of the lesson, the learner should be able to:
- Carry out a bark ringing (girdling) experiment to demonstrate translocation
- Explain the importance of transport in plants
- Carry out bark ringing responsibly without destroying the entire plant, showing care for the environment
In groups, learners are guided to:
- Carry out a bark ringing/girdling experiment on a young tree to demonstrate translocation
- Observe the swelling above the ring and wilting below and draw conclusions
- Discuss the importance of transport in plants (distribution of nutrients, removal of waste products)
What evidence confirms translocation of food in plants?
- Distinction Biology Learner's Book Grade 10 pg. 153
- Young tree/woody plant
- Knife, permanent marker pen
- Digital device for recording
- Distinction Biology Learner's Book Grade 10 pg. 151
- Digital resources
- Internet access
- Distinction Biology Learner's Book Grade 10 pg. 155
- Fresh plant leaves
- Clear nail polish
- Light microscope, glass slides, cover slips
- Distinction Biology Learner's Book Grade 10 pg. 157
- Fresh leaf samples from different habitats
- Light microscope, nail polish
- Glass slides, cover slips
- Practical assessment - Observation - Written assignments
4 5
Anatomy and Physiology of Plants
Gaseous Exchange and Respiration - Lenticels as gaseous exchange sites in stems
Gaseous Exchange and Respiration - Pneumatophores as gaseous exchange sites in roots
Gaseous Exchange and Respiration - Photosynthetic theory of stomatal opening and closing
By the end of the lesson, the learner should be able to:
- Describe the structure and adaptations of lenticels for gaseous exchange
- Explain the mechanism of gaseous exchange through lenticels
- Relate lenticels to the small raised spots visible on the bark of woody plants like hibiscus or guava trees
In groups, learners are guided to:
- Study photomicrographs of lenticels and discuss their structure (loosely packed cork cells, thin film of moisture)
- Discuss how lenticels carry out gaseous exchange continuously
- Explain the mechanism of gaseous exchange through lenticels (diffusion of oxygen in and carbon (IV) oxide out)
How do lenticels facilitate gaseous exchange in woody stems?
- Distinction Biology Learner's Book Grade 10 pg. 161
- Photomicrographs of lenticels
- Digital resources
- Distinction Biology Learner's Book Grade 10 pg. 163
- Photomicrographs/pictures of pneumatophores
- Distinction Biology Learner's Book Grade 10 pg. 165
- Digital resources
- Charts showing open and closed stomata
- Oral questions - Written assignments - Observation
5 1-2
Anatomy and Physiology of Plants
Gaseous Exchange and Respiration - Starch-sugar inter-conversion theory
Gaseous Exchange and Respiration - Potassium ion theory of stomatal opening and closing
Gaseous Exchange and Respiration - The process of respiration and aerobic respiration
Gaseous Exchange and Respiration - Anaerobic respiration in plants
By the end of the lesson, the learner should be able to:
- Describe the mechanism of opening and closing of stomata using the starch-sugar inter-conversion theory
- Explain the role of pH in the conversion of starch to glucose and vice versa
- Connect how changes in carbon (IV) oxide levels during day and night trigger a chain reaction that opens or closes stomata
- Define anaerobic respiration and state its word equation
- Distinguish between aerobic and anaerobic respiration
- Relate anaerobic respiration to the production of alcohol in local brewing and the rising of bread dough during baking
In groups, learners are guided to:
- Discuss how during the day, carbon (IV) oxide is used for photosynthesis causing pH to rise favouring conversion of starch to glucose
- Explain how glucose increases osmotic pressure of guard cells causing water uptake and stomata to open
- Discuss the reverse process at night when carbon (IV) oxide accumulates lowering pH
- Discuss anaerobic respiration as the breakdown of glucose in the absence of oxygen producing ethanol, carbon (IV) oxide and less energy
- Compare aerobic and anaerobic respiration in terms of oxygen requirement, energy released and products
- Discuss where anaerobic respiration occurs in plants (waterlogged areas, germinating seeds)
How does the conversion between starch and sugar control stomatal opening?
How does anaerobic respiration differ from aerobic respiration?
- Distinction Biology Learner's Book Grade 10 pg. 167
- Digital resources
- Internet access
- Distinction Biology Learner's Book Grade 10 pg. 168
- Internet access
- Charts comparing the three theories
- Distinction Biology Learner's Book Grade 10 pg. 169
- Distinction Biology Learner's Book Grade 10 pg. 171
- Digital resources
- Internet access
- Oral questions - Written assignments - Observation
5 3
Anatomy and Physiology of Plants
Gaseous Exchange and Respiration - Investigating aerobic and anaerobic respiration (Practical)
Gaseous Exchange and Respiration - Economic importance of anaerobic respiration
By the end of the lesson, the learner should be able to:
- Carry out experiments to distinguish between aerobic and anaerobic respiration
- Explain the role of calcium hydroxide solution and paraffin in the experiments
- Observe safety precautions when handling chemicals and dispose of waste materials appropriately after the experiment
In groups, learners are guided to:
- Set up experiments using germinating bean seeds to demonstrate aerobic respiration (test tube A) and boiled bean seeds to demonstrate anaerobic respiration (test tube B)
- Observe the colour change of calcium hydroxide solution and record temperature readings
- Discuss the role of paraffin in blocking oxygen entry
How can aerobic and anaerobic respiration be demonstrated experimentally?
- Distinction Biology Learner's Book Grade 10 pg. 172
- Germinating and boiled bean seeds
- Test tubes, delivery tubes, rubber stoppers
- Calcium hydroxide solution, paraffin, glucose solution
- Distinction Biology Learner's Book Grade 10 pg. 174
- Digital resources
- Charts showing applications of anaerobic respiration
- Practical assessment - Observation - Written assignments
5 4
Anatomy and Physiology of Plants
Gaseous Exchange and Respiration - Biogas production project
Gaseous Exchange and Respiration - Significance of gaseous exchange and respiration to plants and the environment
By the end of the lesson, the learner should be able to:
- Demonstrate anaerobic respiration through a biogas production project
- Describe the procedure and observations in biogas production
- Relate biogas production to waste management and renewable energy solutions in rural Kenyan communities
In groups, learners are guided to:
- Set up a simple biogas digester using organic waste and water in a sealed container
- Observe balloon inflation over 5-7 days as biogas is produced
- Test the collected gas by bringing it near a flame and observing the blue flame
How can anaerobic respiration be harnessed for biogas production?
- Distinction Biology Learner's Book Grade 10 pg. 175
- Large plastic bottle/container
- Organic waste, water
- Rubber tubing, balloon, tape
- Distinction Biology Learner's Book Grade 10 pg. 177
- Digital resources
- Portfolio materials
- Project assessment - Observation - Written report
5 5
Anatomy and Physiology of Plants
Anatomy and Physiology of Animals
Gaseous Exchange and Respiration - Assessment and review on gaseous exchange and respiration
Significance of transport in animals
By the end of the lesson, the learner should be able to:
- Answer assessment questions on gaseous exchange sites, stomatal mechanisms, types of respiration and economic importance of anaerobic respiration
- Distinguish between gaseous exchange and respiration in plants
- Connect the concepts learned to real-life applications such as food preservation, energy production and environmental conservation
In groups, learners are guided to:
- Answer assessment exercise questions on gaseous exchange and respiration
- Distinguish between gaseous exchange and respiration
- Identify and explain adaptations of gaseous exchange structures (stomata, lenticels, pneumatophores, aerenchyma)
- Describe mechanisms of opening and closing of stomata using the three theories
How are gaseous exchange and respiration essential to the survival of plants?
- Distinction Biology Learner's Book Grade 10 pg. 178
- Digital resources
- Past assessment questions
- Distinction Biology Learner's Book pg. 186
- Internet access
- Reference books
- Written tests - Oral questions - Observation
6 1-2
Anatomy and Physiology of Animals
Types of circulatory systems - Open and closed circulatory systems
Types of circulatory systems - Single and double circulatory systems
Transport system in insects
Transport system in fish - Structure and blood flow
Transport system in fish - Illustrating the circulatory system
Transport system in amphibians - Structure and blood flow
Transport system in amphibians - Illustrating the circulatory system
By the end of the lesson, the learner should be able to:
- Distinguish between open and closed circulatory systems in animals
- Illustrate open and closed circulatory systems
- Relate open circulatory systems to familiar organisms such as grasshoppers and cockroaches found in the local environment
- Identify the structures that compose the transport system in fish
- Describe the flow of blood in a single circulatory system of fish
- Connect the study of fish transport systems to real-life aquaculture practices in fish farming
In groups, learners are guided to:
- Search for information on open and closed circulatory systems using reference materials and the Internet
- Study illustrations of open and closed circulatory systems
- Discuss how the transport fluid flows in open and closed circulatory systems
- Draw and label diagrams of open and closed circulatory systems
- Search for information on the transport system in fish using reference materials
- Study illustrations and photographs showing the circulatory system in fish
- Identify the heart chambers (atrium and ventricle), gills and blood vessels
- Describe the flow of blood from the heart to the gills and to the body tissues
How does the flow of transport fluid differ in open and closed circulatory systems?
How does blood flow in the single circulatory system of a fish?
- Distinction Biology Learner's Book pg. 188
- Digital resources
- Internet access
- Charts showing circulatory systems
- Distinction Biology Learner's Book pg. 189
- Charts showing single and double circulation
- Distinction Biology Learner's Book pg. 190
- Charts showing insect circulatory system
- Distinction Biology Learner's Book pg. 192
- Digital resources
- Internet access
- Charts showing fish circulatory system
- Distinction Biology Learner's Book pg. 193
- Reference books
- Distinction Biology Learner's Book pg. 194
- Charts showing amphibian circulatory system
- Distinction Biology Learner's Book pg. 195
- Oral questions - Labelled drawings - Written assignments
- Written assignments - Oral questions - Labelled drawings
6 3
Anatomy and Physiology of Animals
Transport system in reptiles - Structure and blood flow
Transport system in reptiles - Illustrating the circulatory system
By the end of the lesson, the learner should be able to:
- Identify the structures that compose the transport system in reptiles
- Describe pulmonary and systemic circulation in reptiles
- Connect the partial septum in the reptile heart to real-life understanding of why reptiles like chameleons and lizards bask in the sun to regulate body temperature
In groups, learners are guided to:
- Search for information on the transport system in reptiles using print and non-print resources
- Study illustrations of the circulatory system in reptiles
- Identify the three-chambered heart with a partial septum and the four-chambered heart of the crocodile
- Describe pulmonary and systemic circulation in reptiles
How does the partial septum in the reptile heart reduce mixing of blood?
- Distinction Biology Learner's Book pg. 197
- Digital resources
- Internet access
- Charts showing reptile circulatory system
- Distinction Biology Learner's Book pg. 198
- Reference books
- Oral questions - Written assignments - Observation
6 4
Anatomy and Physiology of Animals
Transport system in mammals - Structure and components
By the end of the lesson, the learner should be able to:
- Identify the structures that compose the transport system in mammals
- Describe the components of the mammalian circulatory system
- Relate the four-chambered mammalian heart to real-life understanding of why mammals like humans can perform sustained physical activities
In groups, learners are guided to:
- Search for information on the transport system in mammals using print and non-print resources
- Study illustrations and photographs of the circulatory system in mammals
- Identify the four-chambered heart, blood vessels, blood and circulatory pathways
- Discuss the components of the mammalian circulatory system
What are the key components of the mammalian transport system?
- Distinction Biology Learner's Book pg. 199
- Digital resources
- Internet access
- Charts showing mammalian circulatory system
- Oral questions - Written assignments - Observation
6 5
Anatomy and Physiology of Animals
Transport system in mammals - Pulmonary and systemic circulation
Transport system in mammals - Illustrating the circulatory system
By the end of the lesson, the learner should be able to:
- Describe pulmonary and systemic circulation in mammals
- Trace the pathway of blood flow in the mammalian circulatory system
- Connect double circulation in mammals to real-life experiences like increased heartbeat rate during running or exercise
In groups, learners are guided to:
- Use digital devices to search for video animations illustrating the transport system in mammals
- Trace the pathway of blood flow in the mammalian circulatory system
- Describe pulmonary circulation (heart to lungs and back) and systemic circulation (heart to body and back)
- Discuss with peers
How does blood flow through the mammalian heart in pulmonary and systemic circulation?
- Distinction Biology Learner's Book pg. 200
- Digital resources
- Internet access
- Reference books
- Oral questions - Written assignments - Class discussions
7 1-2
Anatomy and Physiology of Animals
Transport system in mammals - Dissection of a small mammal
Pumping mechanism of the mammalian heart - Structure of the heart
Pumping mechanism of the mammalian heart - The cardiac cycle
By the end of the lesson, the learner should be able to:
- Dissect a small mammal to observe parts of the transport system
- Identify the heart, lungs, blood vessels and other organs of the transport system
- Handle specimens humanely and relate the observed structures to how the circulatory system supports life in real mammals
- Describe the pumping mechanism of the mammalian heart
- Explain systole and diastole in the cardiac cycle
- Connect the cardiac cycle to real-life experiences such as feeling the pulse at the wrist or neck during exercise
In groups, learners are guided to:
- Wear protective clothing (hand gloves and laboratory coat)
- With the help of the teacher, carry out the dissection of a freshly killed rat or rabbit
- Observe the thoracic cavity containing the heart and lungs
- Identify the pulmonary vein, pulmonary artery, blood vessels and renal veins
- Draw a well-labelled diagram of the transport system of the mammal
- Watch animations illustrating the pumping mechanism of the mammalian heart
- Describe the flow of blood from the vena cava through the heart chambers and out through the aorta
- Explain the role of valves in preventing backflow of blood
- Discuss the contraction (systole) and relaxation (diastole) phases of the cardiac cycle
What structures can be observed in the transport system of a dissected mammal?
How does the heart pump blood through the body in a continuous cycle?
- Distinction Biology Learner's Book pg. 201
- Freshly killed rat or rabbit
- Dissecting board and pins
- Cotton wool
- Hand lens
- Protective clothing
- Distinction Biology Learner's Book pg. 202
- Digital resources
- Internet access
- Charts showing the mammalian heart
- Distinction Biology Learner's Book pg. 203
- Digital resources
- Internet access
- Reference books
- Labelled drawings - Observation - Oral questions
- Oral questions - Written assignments - Class discussions
7 3
Anatomy and Physiology of Animals
Human lymphatic system - Structure and components
Human lymphatic system - Functions
By the end of the lesson, the learner should be able to:
- Describe the human lymphatic system
- Identify the components of the lymphatic system
- Relate the lymphatic system to real-life situations such as swelling of lymph nodes during infections like sore throat or tonsillitis
In groups, learners are guided to:
- Watch video animations on the human lymphatic system using digital devices
- Identify the components of the lymphatic system (lymph fluid, lymphatic vessels, lymph nodes and lymphoid organs)
- Discuss the structure and arrangement of the lymphatic system
- Share findings with peers for discussion
What are the components of the human lymphatic system and how are they arranged?
- Distinction Biology Learner's Book pg. 204
- Digital resources
- Internet access
- Charts showing the lymphatic system
- Distinction Biology Learner's Book pg. 205
- Reference books
- Oral questions - Written assignments - Observation
7 4
Anatomy and Physiology of Animals
Human immune system - Types of immunity
By the end of the lesson, the learner should be able to:
- Describe the immune system in human beings
- Distinguish between inherited and acquired immunity
- Relate immunity to real-life experiences such as why a person who recovers from chickenpox rarely gets it again
In groups, learners are guided to:
- Study a flow chart illustrating forms of immunity
- Distinguish between inherited (innate) and acquired immunity
- Discuss how inherited immunity is passed from parent to offspring
- Explain how acquired immunity develops through interaction with the environment
- Distinguish between active and passive immunity
What is the difference between inherited and acquired immunity?
- Distinction Biology Learner's Book pg. 206
- Digital resources
- Internet access
- Charts showing types of immunity
- Oral questions - Written assignments - Observation
7 5
Anatomy and Physiology of Animals
Human immune system - Active and passive immunity
Blood clotting mechanism in humans
By the end of the lesson, the learner should be able to:
- Distinguish between active and passive immunity
- Give examples of naturally and artificially acquired immunity
- Connect vaccination programmes in Kenya (such as polio and measles vaccines) to the concept of artificially acquired active immunity
In groups, learners are guided to:
- Discuss active immunity where the body produces its own antibodies when triggered by antigens
- Discuss passive immunity where the body receives antibodies from an external source
- Give examples such as breastfeeding (passive) and recovery from disease (active)
- Relate naturally and artificially acquired immunity to real-life vaccination programmes
How do vaccines help the body develop immunity against diseases?
- Distinction Biology Learner's Book pg. 207
- Digital resources
- Internet access
- Reference books
- Charts showing the blood clotting process
- Written assignments - Oral questions - Class discussions
8 1-2
Anatomy and Physiology of Animals
Blood clotting mechanism - Importance and flow chart
ABO and rhesus factor blood grouping systems - Blood groups and antigens
ABO and rhesus factor blood grouping systems - Rhesus factor and blood transfusion
Respiratory surfaces in animals - General characteristics
By the end of the lesson, the learner should be able to:
- Explain the importance of blood clotting in mammals
- Illustrate the blood clotting process using a flow chart
- Relate blood clotting to real-life medical situations such as why doctors check clotting time before surgery and why haemophilia patients need special care
- Explain the rhesus factor blood grouping system
- Describe blood donor-recipient compatibility
- Connect blood transfusion compatibility to real-life medical emergencies where matching blood types saves lives
In groups, learners are guided to:
- Study a flow chart summarising the blood clotting process
- Describe the mechanism of blood clotting step by step
- Discuss the importance of blood clotting in preventing blood loss, entry of pathogens and healing of wounds
- Share responses with peers for comparison and assessment
- Discuss the rhesus factor (Rh+ and Rh-) and its role in blood transfusion and pregnancy
- Explain the concepts of universal donor (O) and universal recipient (AB)
- Prepare charts illustrating blood donor-recipient compatibility
- Discuss the importance of knowing one's blood type and rhesus status for medical safety
Why is blood clotting important for the survival of mammals?
Why is it important to determine blood compatibility before transfusion?
- Distinction Biology Learner's Book pg. 208
- Digital resources
- Internet access
- Reference books
- Distinction Biology Learner's Book pg. 209
- Charts showing ABO blood grouping
- Distinction Biology Learner's Book pg. 210
- Digital resources
- Internet access
- Charts showing blood donor-recipient compatibility
- Distinction Biology Learner's Book pg. 211
- Reference books
- Written assignments - Oral questions - Flow chart construction
- Written assignments - Oral questions - Chart construction
8 3
Anatomy and Physiology of Animals
Respiratory structures in insects - Tracheal system
Respiratory structures in insects - Adaptations and observation
Respiratory structures in fish - Structure of gills
By the end of the lesson, the learner should be able to:
- Describe the structure of the tracheal system in insects
- Identify spiracles, trachea and tracheoles in the tracheal system
- Relate the tracheal system to real-life observations of how spiracles on a grasshopper's body allow it to breathe
In groups, learners are guided to:
- Study illustrations of the tracheal system in insects
- Identify the spiracles, trachea, tracheoles and air sacs
- Describe how valves on the spiracles regulate air flow into the insect's body
- Discuss how the tracheal system delivers oxygen directly to cells
How does the tracheal system in insects deliver oxygen directly to body cells?
- Distinction Biology Learner's Book pg. 213
- Digital resources
- Internet access
- Charts showing tracheal system
- Distinction Biology Learner's Book pg. 214
- Live or dead locust or grasshopper
- Hand lens
- Boiling tube
- Protective clothing
- Distinction Biology Learner's Book pg. 216
- Charts showing fish gills
- Oral questions - Labelled drawings - Written assignments
8 4
Anatomy and Physiology of Animals
Respiratory structures in fish - Counter current flow and practical observation
Respiratory structures in amphibians
Respiratory structures in birds
By the end of the lesson, the learner should be able to:
- Explain the counter current exchange system in fish gills
- Observe the structure of gills of a bony fish through dissection
- Relate counter current flow to real-life engineering concepts such as how heat exchangers in factories work on a similar principle
In groups, learners are guided to:
- Discuss the counter current exchange system where blood and water flow in opposite directions across gill filaments
- Explain how this system maintains a concentration gradient for maximum oxygen absorption
- Where possible, dissect a fresh bony fish to observe the gills using a hand lens
- Draw a well-labelled diagram of the gills of a bony fish
How does the counter current flow system in fish gills ensure efficient gaseous exchange?
- Distinction Biology Learner's Book pg. 217
- Fresh or preserved bony fish
- Scalpel
- Hand lens
- Protective clothing
- Distinction Biology Learner's Book pg. 218
- Digital resources
- Internet access
- Charts showing amphibian respiratory structures
- Distinction Biology Learner's Book pg. 220
- Charts showing bird respiratory system
- Labelled drawings - Oral questions - Observation
8 5
Anatomy and Physiology of Animals
Mechanism of gaseous exchange in humans - Respiratory structures
Inhalation and exhalation in humans
Model to demonstrate inhalation and exhalation
By the end of the lesson, the learner should be able to:
- Identify the structures of the respiratory system in human beings
- Describe how gaseous exchange takes place in the alveoli
- Relate the respiratory system to real-life experiences such as how a doctor listens to breathing sounds using a stethoscope to diagnose respiratory problems
In groups, learners are guided to:
- Study illustrations of the respiratory structure in human beings
- Identify the nostrils, trachea, bronchi, bronchioles, alveoli, lungs and diaphragm
- Describe how oxygen diffuses from the alveoli into the blood capillaries and carbon (IV) oxide diffuses out
- Discuss the characteristics of the alveoli that allow efficient gaseous exchange
How does gaseous exchange take place in the alveoli of human lungs?
- Distinction Biology Learner's Book pg. 221
- Digital resources
- Internet access
- Charts showing human respiratory system
- Distinction Biology Learner's Book pg. 222
- Charts showing inhalation and exhalation
- Distinction Biology Learner's Book pg. 224
- Bell jar or plastic bottle
- Rubber stopper
- Y-shaped connecting tube
- Balloons
- Rubber sheet
- Protective clothing
- Oral questions - Written assignments - Labelled drawings
9 1-2
Anatomy and Physiology of Animals
Dissection to observe gaseous exchange structures in mammals
Aerobic respiration in animals
Demonstrating aerobic respiration in animals
By the end of the lesson, the learner should be able to:
- Dissect a small mammal to observe the gaseous exchange structures
- Identify the trachea, bronchi, lungs and alveoli in the dissected mammal
- Relate the observed structures to real-life understanding of how lung diseases like asthma affect the airways
- Describe the process of aerobic respiration in animals
- Write the word equation for aerobic respiration
- Relate aerobic respiration to real-life activities such as how the body uses oxygen to break down food during walking, running or studying
In groups, learners are guided to:
- Wear protective clothing
- With the help of the teacher, dissect a freshly killed rat or rabbit to observe the gaseous exchange structures
- Identify the trachea, lungs and observe the internal structures
- Connect a drinking straw to the trachea and blow air to observe the lungs inflate
- Draw a well-labelled diagram of the gaseous exchange structures
- Discuss the process of aerobic respiration where glucose is broken down in the presence of oxygen to produce energy, carbon (IV) oxide and water
- Write the word equation for aerobic respiration
- Describe the two stages of aerobic respiration: glycolysis and Kreb's cycle
- Discuss the uses of energy produced during respiration
What gaseous exchange structures can be observed in a dissected small mammal?
How does the body use oxygen to break down food and release energy?
- Distinction Biology Learner's Book pg. 225
- Freshly killed rat or rabbit
- Dissecting board and pins
- Scalpel or pair of scissors
- Hand lens
- Drinking straw
- Protective clothing
- Distinction Biology Learner's Book pg. 227
- Digital resources
- Internet access
- Reference books
- Distinction Biology Learner's Book pg. 228
- Small animal (snail or rat)
- Bell jar
- Conical flask
- Delivery tubes
- Soda lime
- Lime water
- Protective clothing
- Labelled drawings - Observation - Oral questions
- Oral questions - Written assignments - Observation
9 3
Anatomy and Physiology of Animals
Anaerobic respiration and oxygen debt
By the end of the lesson, the learner should be able to:
- Describe the process of anaerobic respiration in animals
- Explain the concept of oxygen debt
- Relate anaerobic respiration to real-life experiences such as muscle cramps and fatigue felt after sprinting or intense exercise
In groups, learners are guided to:
- Discuss anaerobic respiration where glucose is broken down in the absence of oxygen to produce lactic acid and energy
- Engage in vigorous physical activity for 3 minutes and observe increased breathing rate
- Explain the concept of oxygen debt as the extra amount of oxygen needed to eliminate lactic acid
- Discuss why breathing rate remains faster after stopping intense physical exercise
Why do muscles feel fatigued and sore after vigorous physical exercise?
- Distinction Biology Learner's Book pg. 229
- Stopwatch
- Playfield
- Writing materials
- Oral questions - Written assignments - Observation of physical activity
9 4
Anatomy and Physiology of Animals
Factors affecting energy requirement in humans
Respiratory substrates
By the end of the lesson, the learner should be able to:
- Identify factors affecting energy requirement in human beings
- Explain how age, sex, body size and physical activity affect energy needs
- Relate energy requirements to real-life examples such as why athletes eat more food than office workers and why growing teenagers need more energy than elderly people
In groups, learners are guided to:
- Search for information on factors affecting energy requirement in human beings
- Compare the energy needs of teenagers and the elderly, males and females, athletes and secretaries
- Discuss how pregnant and lactating mothers require more energy
- Share ideas in class for discussion
Why do different people require different amounts of energy?
- Distinction Biology Learner's Book pg. 231
- Digital resources
- Internet access
- Reference books
- Distinction Biology Learner's Book pg. 232
- Oral questions - Written assignments - Class discussions
9 5
Anatomy and Physiology of Animals
Calculating the respiratory quotient
Factors affecting the rate of respiration
Importance of gaseous exchange and respiration in animals
By the end of the lesson, the learner should be able to:
- Define respiratory quotient (RQ)
- Calculate the respiratory quotient for various foods
- Relate RQ values to real-life applications such as how doctors use RQ to assess a patient's metabolic state and determine which substrates their body is burning
In groups, learners are guided to:
- Discuss the formula for calculating respiratory quotient: RQ = CO₂ produced / O₂ consumed
- Calculate the RQ for carbohydrates (RQ = 1.0), proteins (RQ = 0.9) and lipids (RQ = 0.7)
- Solve practical problems on calculating RQ
- Discuss what an RQ value of more than 1 indicates (anaerobic respiration)
How is the respiratory quotient used to determine the substrate being oxidised during respiration?
- Distinction Biology Learner's Book pg. 233
- Digital resources
- Internet access
- Reference books
- Distinction Biology Learner's Book pg. 234
- Distinction Biology Learner's Book pg. 235
- Written assignments - Oral questions - Problem-solving exercises

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