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| WK | LSN | STRAND | SUB-STRAND | LESSON LEARNING OUTCOMES | LEARNING EXPERIENCES | KEY INQUIRY QUESTIONS | LEARNING RESOURCES | ASSESSMENT METHODS | REFLECTION |
|---|---|---|---|---|---|---|---|---|---|
| 1 | 1 |
Anatomy and Physiology of Plants
|
Transport - Internal structure of the root (transverse section)
|
By the end of the
lesson, the learner
should be able to:
- Describe the internal tissues of the root (piliferous layer, cortex, endodermis, pericycle, vascular tissues) - Relate the structure of each tissue to its function - Explain how the casparian strip in the endodermis acts like a filter to protect the plant from absorbing harmful substances |
In groups, learners are guided to:
- Study the transverse section of monocotyledonous and dicotyledonous roots - Identify and describe the piliferous layer, cortex, endodermis (casparian strip), pericycle and vascular tissues - Discuss the function of each tissue in the root |
How do the internal tissues of the root facilitate water and mineral salt absorption?
|
- Distinction Biology Learner's Book Grade 10 pg. 123
- Digital resources - Charts/photomicrographs of root cross-sections |
- Oral questions
- Written assignments
- Observation
|
|
| 1 | 2 |
Anatomy and Physiology of Plants
|
Transport - Structure and function of stems in transport
Transport - Structure and function of leaves in transport Transport - Structure, functions and adaptations of xylem vessels |
By the end of the
lesson, the learner
should be able to:
- Describe the internal structure of the stem (epidermis, cortex, pith, vascular tissues) - Relate the structure of the stem to its transport function - Connect the waxy cuticle on stems to why some plant stems feel smooth and resist water loss |
In groups, learners are guided to:
- Study cross-sectional drawings of monocotyledonous and dicotyledonous stems - Identify the epidermis, cortex (parenchyma, collenchyma, sclerenchyma), pith and vascular tissues - Discuss the functions of the stem as part of the transport system |
How does the structure of the stem support its transport function?
|
- Distinction Biology Learner's Book Grade 10 pg. 125
- Digital resources - Fresh plant stems - Charts of stem cross-sections - Distinction Biology Learner's Book Grade 10 pg. 127 - Fresh plant leaves - Distinction Biology Learner's Book Grade 10 pg. 129 - Charts/diagrams of xylem vessels |
- Oral questions
- Observation
- Written assignments
|
|
| 1 | 3 |
Anatomy and Physiology of Plants
|
Transport - Structure, functions and adaptations of phloem tissue
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:
- Describe the structure and adaptations of phloem tissue (sieve tubes, companion cells, sieve pores) - Explain how phloem is adapted to transport manufactured food - Explain why ringing the bark of a fruit tree causes fruits above the ring to become sweeter due to sugar accumulation |
In groups, learners are guided to:
- Study diagrams of the phloem tissue and identify sieve tubes, companion cells, sieve pores and plasmodesmata - Discuss the adaptations of phloem to its function (living cells, mitochondria in companion cells, sieve pores) - Compare the structure of xylem and phloem tissues |
How is the phloem adapted to transport manufactured food in plants?
|
- Distinction Biology Learner's Book Grade 10 pg. 131
- Digital resources - Charts/diagrams of phloem tissue - 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 |
- Oral questions
- Written assignments
- Observation
|
|
| 1 | 4-5 |
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) Transport - Absorption of mineral salts and demonstrating water uptake (Practical) |
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 - 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:
- 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 - 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 does water move from the soil into the root of a plant?
How are mineral salts absorbed by plant roots? |
- 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 - Distinction Biology Learner's Book Grade 10 pg. 141 - Fresh young plants - Food colouring/ink - Glass beaker, scalpel, distilled water |
- Oral questions
- Written assignments
- Observation
- Practical assessment - Observation - Written assignments |
|
| 2 | 1 |
Anatomy and Physiology of Plants
|
Transport - The process of transpiration
Transport - Structural factors affecting the rate of transpiration |
By the end of the
lesson, the learner
should be able to:
- Define transpiration and describe how it occurs through the stomata - Relate the internal structure of the leaf to the process of transpiration - Explain why clothes dry faster on a sunny windy day, linking it to how transpiration increases under similar conditions |
In groups, learners are guided to:
- Discuss the process of transpiration and how water vapour diffuses out through the stomata - Study the internal structure of the leaf and relate it to transpiration (spongy mesophyll, sub-stomatal air spaces, guard cells) - Discuss the role of guard cells in controlling the opening and closing of stomata |
How does transpiration occur in plant leaves?
|
- Distinction Biology Learner's Book Grade 10 pg. 143
- Digital resources - Charts of leaf internal structure - Distinction Biology Learner's Book Grade 10 pg. 145 - Internet access |
- Oral questions
- Written assignments
- Observation
|
|
| 2 | 2 |
Anatomy and Physiology of Plants
|
Transport - Environmental factors affecting the rate of transpiration (Temperature and light intensity practicals)
|
By the end of the
lesson, the learner
should be able to:
- 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:
- 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 temperature and light intensity affect the rate of transpiration?
|
- Distinction Biology Learner's Book Grade 10 pg. 147
- Potted plants - Heat bulb, light bulb - Transparent carrier bags, elastic bands |
- Practical assessment
- Observation
- Written assignments
|
|
| 2 | 3 |
Anatomy and Physiology of Plants
|
Transport - Environmental factors affecting the rate of transpiration (Wind practical and other factors)
Transport - Translocation of manufactured food in plants |
By the end of the
lesson, the learner
should be able to:
- Carry out an experiment to demonstrate the effect of wind on transpiration - Describe how humidity, atmospheric pressure and water availability affect transpiration - Improvise a fan from locally available materials, demonstrating creativity and resourcefulness |
In groups, learners are guided to:
- Carry out an experiment using an improvised fan to demonstrate the effect of wind on transpiration - Discuss how humidity, atmospheric pressure and water availability in the soil affect the rate of transpiration - Compare water droplets on carrier bags of potted plants near and far from the fan |
How do wind, humidity and water availability affect the rate of transpiration?
|
- Distinction Biology Learner's Book Grade 10 pg. 149
- Potted plants - Improvised fan materials - Transparent carrier bags, elastic bands - Distinction Biology Learner's Book Grade 10 pg. 151 - Digital resources - Internet access |
- Practical assessment
- Observation
- Written assignments
|
|
| 2 | 4-5 |
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 Gaseous Exchange and Respiration - Lenticels as gaseous exchange sites in stems Gaseous Exchange and Respiration - Pneumatophores as gaseous exchange sites in roots |
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 - Observe stomata in leaves using a microscope - Describe the structure of stomata and guard cells - Handle microscope slides and nail polish carefully, disposing of waste materials appropriately after the practical |
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) - Apply clear nail polish on the lower surface of a leaf, peel off after drying and observe under a microscope - Identify stomata and guard cells under the microscope - Discuss the structure of guard cells (thin elastic outer walls, thick inner walls) and how they control the opening and closing of stomata |
What evidence confirms translocation of food in plants?
What is the structure of stomata and how are they adapted for gaseous exchange? |
- 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 - 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 |
- Practical assessment
- Observation
- Written assignments
|
|
| 3 | 1 |
Anatomy and Physiology of Plants
|
Gaseous Exchange and Respiration - Photosynthetic theory of stomatal opening and closing
Gaseous Exchange and Respiration - Starch-sugar inter-conversion theory Gaseous Exchange and Respiration - Potassium ion theory of stomatal opening and closing |
By the end of the
lesson, the learner
should be able to:
- Describe the mechanism of opening and closing of stomata using the photosynthetic theory - Explain how glucose production during photosynthesis makes guard cells turgid - Relate why most plants have open stomata during the day and closed stomata at night to everyday observations of morning dew on grass |
In groups, learners are guided to:
- Search for information on the photosynthetic theory explaining the mechanism of opening and closing of stomata - Discuss how during the day, photosynthesis produces glucose increasing osmotic pressure causing guard cells to become turgid and stomata to open - Discuss how at night, glucose is converted to starch reducing osmotic pressure causing stomata to close |
How does photosynthesis influence the opening of stomata during the day?
|
- Distinction Biology Learner's Book Grade 10 pg. 165
- Digital resources - Charts showing open and closed stomata - Distinction Biology Learner's Book Grade 10 pg. 167 - Internet access - Distinction Biology Learner's Book Grade 10 pg. 168 - Internet access - Charts comparing the three theories |
- Oral questions
- Written assignments
- Observation
|
|
| 3 | 2 |
Anatomy and Physiology of Plants
|
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:
- Define respiration and state the word equation for aerobic respiration - Describe the stages of aerobic respiration (glycolysis and Kreb's cycle) - Connect aerobic respiration to why living cells need a constant supply of oxygen to release energy for growth and repair |
In groups, learners are guided to:
- Search for information on the process of respiration and discuss with peers - Identify the cell organelle where respiration occurs (mitochondria) - Discuss aerobic respiration including glycolysis (cytoplasm) and Kreb's cycle (matrix of mitochondria) |
How do plants break down glucose to release energy?
|
- Distinction Biology Learner's Book Grade 10 pg. 169
- Digital resources - Internet access - Distinction Biology Learner's Book Grade 10 pg. 171 |
- Oral questions
- Written assignments
- Observation
|
|
| 3 | 3 |
Anatomy and Physiology of Plants
|
Gaseous Exchange and Respiration - Investigating aerobic and anaerobic respiration (Practical)
|
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 |
- Practical assessment
- Observation
- Written assignments
|
|
| 3 | 4-5 |
Anatomy and Physiology of Plants
|
Gaseous Exchange and Respiration - Economic importance of anaerobic respiration
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:
- Explain the economic importance of anaerobic respiration in various industries - Describe how anaerobic respiration is applied in brewing, baking, dairy and biogas production - Relate anaerobic respiration to locally made products like yoghurt, cheese, bread and traditional fermented drinks - Outline the significance of gaseous exchange and respiration to plants and the environment - Design a portfolio illustrating the significance of gaseous exchange and respiration - Relate the significance of gaseous exchange to why deforestation contributes to climate change and why reforestation is encouraged |
In groups, learners are guided to:
- Discuss the economic importance of anaerobic respiration in brewing, baking, biogas production, dairy industry, sewage treatment, silage formation, pharmaceutical industry and compost manure production - Explain how yeast breaks down sugars anaerobically in brewing and baking - Discuss how bacteria produce lactic acid in dairy products - Discuss the significance of gaseous exchange and respiration to plants (energy production, growth, photosynthesis) and the environment (oxygen supply, carbon cycling, temperature regulation) - Design a portfolio illustrating the significance of gaseous exchange and respiration - Show portfolios to peers for assessment |
How is anaerobic respiration applied in everyday industries and products?
How do gaseous exchange and respiration contribute to the survival of plants and the environment? |
- Distinction Biology Learner's Book Grade 10 pg. 174
- Digital resources - Charts showing applications of anaerobic respiration - 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 |
- Oral questions
- Written assignments
- Observation
- Portfolio assessment - Oral questions - Observation |
|
| 4 | 1 |
Anatomy and Physiology of Plants
Anatomy and Physiology of Animals Anatomy and Physiology of Animals Anatomy and Physiology of Animals |
Gaseous Exchange and Respiration - Assessment and review on gaseous exchange and respiration
Mouthparts of insects - Structure of mouthparts of insects and their functions Mouthparts of insects - Biting and chewing mouthparts Mouthparts of insects - Piercing and sucking mouthparts |
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. 175 - Fresh locust, grasshopper or cockroach - Hand lens or dissecting microscope - Pair of forceps - Petri dish - Protective clothing - Internet access - Charts showing mouthparts of insects - Distinction Biology Learner's Book pg. 177 - Photographs of mosquito and tsetse fly mouthparts |
- Written tests
- Oral questions
- Observation
|
|
| 4 | 2 |
Anatomy and Physiology of Animals
|
Mouthparts of insects - Siphoning mouthparts
Mouthparts of insects - Comparing mouthparts and modes of feeding Beaks of birds - Structure of beaks of birds |
By the end of the
lesson, the learner
should be able to:
- Describe the siphoning mode of feeding in butterflies and moths - Relate the structure of the proboscis to its function in siphoning nectar - Relate siphoning in butterflies to real-life processes such as pollination of flowers in farms and gardens |
In groups, learners are guided to:
- Study photographs and illustrations of siphoning mouthparts of a butterfly or moth - Discuss how the proboscis is adapted for siphoning nectar - Relate the structure of the proboscis to its function in siphoning - Use digital devices to watch video animations on siphoning mouthparts |
How is the proboscis of a butterfly adapted for siphoning nectar from flowers?
|
- Distinction Biology Learner's Book pg. 178
- Digital resources - Internet access - Photographs of butterfly mouthparts - Distinction Biology Learner's Book pg. 179 - Charts showing mouthparts of various insects - Internet access - Distinction Biology Learner's Book pg. 181 - Charts and photographs of bird beaks |
- Oral questions
- Written assignments
- Class presentations
|
|
| 4 | 3 |
Anatomy and Physiology of Animals
|
Beaks of birds - Filter feeders, fish eaters and wood chippers
Beaks of birds - Fruit eaters, multipurpose feeders and insect eaters Beaks of birds - Nature walk to observe birds and their feeding habits |
By the end of the
lesson, the learner
should be able to:
- Describe the structure of beaks in filter feeders, fish eaters and wood chippers - Relate the structure of beaks of flamingos, kingfishers and woodpeckers to their mode of feeding - Link filter feeding in flamingos to real-life examples like water filtration methods used in homes |
In groups, learners are guided to:
- Study photographs and illustrations of beaks of flamingos, ducks, kingfishers, herons and woodpeckers - Discuss how the broad flat beak of a duck is adapted for filter feeding - Relate the long sharp beak of a kingfisher to catching fish - Describe how the chisel-shaped beak of a woodpecker is adapted for drilling wood |
How are the beaks of filter feeders and fish eaters adapted for obtaining food from water?
|
- Distinction Biology Learner's Book pg. 183
- Digital resources - Internet access - Photographs of bird beaks - Photographs and charts of bird beaks - Distinction Biology Learner's Book pg. 184 - Binoculars (optional) - Magnifying glass - Digital devices - Protective clothing such as reflective vests and proper shoes |
- Written assignments
- Oral questions
- Observation
|
|
| 4 | 4-5 |
Anatomy and Physiology of Animals
|
Beaks of birds - Comparing beaks and modes of feeding in birds
Importance of diversity in feeding modes of insects and birds Significance of transport in animals Types of circulatory systems - Open and closed circulatory systems |
By the end of the
lesson, the learner
should be able to:
- Compare the structure and function of beaks in different birds - Tabulate the adaptations of beaks of birds to their modes of feeding - Apply knowledge of beak adaptations to real-life situations such as understanding why certain birds are effective pest controllers in farms - Explain the importance of diversity in feeding modes of insects and birds in nature - Describe how diversity in feeding modes helps in pollination, seed dispersal and pest control - Relate feeding diversity to real-life environmental benefits such as how insect-eating birds reduce crop pests in farms and how nectar-feeding insects support fruit production |
In groups, learners are guided to:
- Draw a comparison table relating the structure of beaks of birds to their modes of feeding - Discuss and compare the beaks of seed eaters, flesh eaters, nectar feeders, filter feeders, fish eaters, wood chippers, fruit eaters and multipurpose feeders - Share findings with peers for discussion and peer assessment - Discuss the importance of diversity in feeding modes of insects and birds in nature - Explain how diversity in feeding modes of insects and birds helps in plant pollination and seed dispersal - Describe how birds feeding on insects help in controlling pests in the environment - Analyse a wheel chart on the importance of diversity in feeding modes |
Why do birds have differently shaped and sized beaks?
How does the diversity in feeding modes of insects and birds benefit the environment? |
- Distinction Biology Learner's Book pg. 185
- Charts and photographs of bird beaks - Digital resources - Internet access - Distinction Biology Learner's Book pg. 185 - Digital resources - Internet access - Charts on importance of feeding diversity - Distinction Biology Learner's Book pg. 186 - Reference books - Distinction Biology Learner's Book pg. 188 - Charts showing circulatory systems |
- Written assignments
- Oral questions
- Peer assessment
- Oral questions - Written assignments - Class discussions |
|
| 5 | 1 |
Anatomy and Physiology of Animals
|
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 |
By the end of the
lesson, the learner
should be able to:
- Distinguish between single and double circulatory systems in animals - Illustrate single and double circulatory systems - Connect single circulation in fish to real-life observations of how fish survive in aquatic environments |
In groups, learners are guided to:
- Study illustrations of single and double circulatory systems - Discuss how blood flows through the heart once in single circulation and twice in double circulation - Compare single and double circulatory systems giving examples of animals - Draw and label diagrams of single and double circulatory systems |
How many times does blood pass through the heart in single and double circulatory systems?
|
- Distinction Biology Learner's Book pg. 189
- Digital resources - Internet access - 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 - Charts showing fish circulatory system - Distinction Biology Learner's Book pg. 193 - Reference books |
- Written assignments
- Oral questions
- Peer assessment of drawings
|
|
| 5 | 2 |
Anatomy and Physiology of Animals
|
Transport system in amphibians - Structure and blood flow
Transport system in amphibians - Illustrating the circulatory system Transport system in reptiles - Structure and blood flow |
By the end of the
lesson, the learner
should be able to:
- Identify the structures that compose the transport system in amphibians - Describe pulmonary and systemic circulation in amphibians - Connect the three-chambered heart in amphibians to real-life understanding of how frogs survive both in water and on land |
In groups, learners are guided to:
- Search for information on the transport system in amphibians using print and non-print resources - Study illustrations of the transport system in amphibians - Identify the three-chambered heart (one ventricle and two atria), blood vessels, lungs and blood - Describe pulmonary and systemic circulation in amphibians |
How does the double circulatory system in amphibians support their life on land and in water?
|
- Distinction Biology Learner's Book pg. 194
- Digital resources - Internet access - Charts showing amphibian circulatory system - Distinction Biology Learner's Book pg. 195 - Reference books - Distinction Biology Learner's Book pg. 197 - Charts showing reptile circulatory system |
- Oral questions
- Written assignments
- Observation
|
|
| 5 | 3 |
Anatomy and Physiology of Animals
|
Transport system in reptiles - Illustrating the circulatory system
|
By the end of the
lesson, the learner
should be able to:
- Illustrate the structure of the transport system in reptiles - Explain the significance of the partial septum in the reptile heart - Relate the ectothermic nature of reptiles to real-life observations of lizards sunbathing on rocks and walls |
In groups, learners are guided to:
- Draw a well-labelled diagram of the circulatory system in reptiles - Discuss the role of the partial septum in reducing mixing of oxygenated and deoxygenated blood - Compare the circulatory systems of amphibians and reptiles - Share drawings with peers for peer assessment |
Why is the transport system in reptiles suited to their ectothermic nature?
|
- Distinction Biology Learner's Book pg. 198
- Digital resources - Internet access - Reference books |
- Peer assessment of drawings
- Oral questions
- Written assignments
|
|
| 5 | 4-5 |
Anatomy and Physiology of Animals
|
Transport system in mammals - Structure and components
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:
- 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 - Illustrate the structure of the transport system in mammals - Draw a well-labelled diagram of the mammalian circulatory system - Relate the efficient separation of oxygenated and deoxygenated blood to real-life benefits like high energy levels in active mammals such as cheetahs and horses |
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 - Draw a well-labelled diagram of the circulatory system in mammals - Use digital devices to search for pictures showing the transport system in mammals - Exchange exercise books with peers for peer assessment - Compare the circulatory systems of insects, fish, amphibians, reptiles and mammals |
What are the key components of the mammalian transport system?
Why do mammals have a more efficient circulatory system compared to other animals? |
- Distinction Biology Learner's Book pg. 199
- Digital resources - Internet access - Charts showing mammalian circulatory system - Distinction Biology Learner's Book pg. 200 - Reference books - Distinction Biology Learner's Book pg. 200 - Digital resources - Internet access - Reference books |
- Oral questions
- Written assignments
- Observation
- Peer assessment of drawings - Written assignments - Oral questions |
|
| 6 | 1 |
Anatomy and Physiology of Animals
|
Transport system in mammals - Dissection of a small mammal
Pumping mechanism of the mammalian heart - Structure of the heart |
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 |
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 |
What structures can be observed in the transport system of a dissected mammal?
|
- 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 |
- Labelled drawings
- Observation
- Oral questions
|
|
| 6 | 2 |
Anatomy and Physiology of Animals
|
Pumping mechanism of the mammalian heart - The cardiac cycle
Human lymphatic system - Structure and components |
By the end of the
lesson, the learner
should be able to:
- 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:
- 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 |
How does the heart pump blood through the body in a continuous cycle?
|
- Distinction Biology Learner's Book pg. 203
- Digital resources - Internet access - Reference books - Distinction Biology Learner's Book pg. 204 - Charts showing the lymphatic system |
- Oral questions
- Written assignments
- Class discussions
|
|
| 6 | 3 |
Anatomy and Physiology of Animals
|
Human lymphatic system - Functions
|
By the end of the
lesson, the learner
should be able to:
- Explain the functions of the human lymphatic system - Describe how the lymphatic system helps maintain fluid balance and defend against infections - Relate lymphatic functions to real-life examples such as how swollen ankles (oedema) occur when the lymphatic system fails to drain excess fluid |
In groups, learners are guided to:
- Discuss the functions of the human lymphatic system including maintaining fluid balance, filtering pathogens and absorbing fats - Explain how lymph nodes house immune cells that detect and fight infections - Describe how the lymphatic system returns excess tissue fluid to the bloodstream - Share work with classmates for comparison |
How does the lymphatic system protect the body against infections?
|
- Distinction Biology Learner's Book pg. 205
- Digital resources - Internet access - Reference books |
- Written assignments
- Oral questions
- Class discussions
|
|
| 6 | 4-5 |
Anatomy and Physiology of Animals
|
Human immune system - Types of immunity
Human immune system - Active and passive immunity Blood clotting mechanism in humans |
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 - Describe the mechanism of blood clotting in human beings - Identify the role of platelets, thromboplastin, thrombin and fibrin in blood clotting - Connect blood clotting to real-life experiences such as how a cut on the skin stops bleeding and forms a scab |
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 - Watch video animations on the mechanism of blood clotting using digital devices - Identify the blood cells (platelets) involved in blood clotting - Describe the steps in the blood clotting process: platelets release thromboplastin, prothrombin converts to thrombin, fibrinogen converts to fibrin - Discuss the role of calcium ions and vitamin K in blood clotting |
What is the difference between inherited and acquired immunity?
What happens in the body when a blood vessel is injured to stop bleeding? |
- Distinction Biology Learner's Book pg. 206
- Digital resources - Internet access - Charts showing types of immunity - Distinction Biology Learner's Book pg. 207 - Reference books - Distinction Biology Learner's Book pg. 207 - Digital resources - Internet access - Charts showing the blood clotting process |
- Oral questions
- Written assignments
- Observation
|
|
| 7 | 1 |
Anatomy and Physiology of Animals
|
Blood clotting mechanism - Importance and flow chart
ABO and rhesus factor blood grouping systems - Blood groups and antigens |
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 |
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 |
Why is blood clotting important for the survival of mammals?
|
- 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 |
- Written assignments
- Oral questions
- Flow chart construction
|
|
| 7 | 2 |
Anatomy and Physiology of Animals
|
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 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:
- 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 it important to determine blood compatibility before transfusion?
|
- 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
- Chart construction
|
|
| 7 | 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 Respiratory structures in fish - Counter current flow and practical observation |
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 - Distinction Biology Learner's Book pg. 217 - Fresh or preserved bony fish - Scalpel |
- Oral questions
- Labelled drawings
- Written assignments
|
|
| 7 | 4-5 |
Anatomy and Physiology of Animals
|
Respiratory structures in amphibians
Respiratory structures in birds Mechanism of gaseous exchange in humans - Respiratory structures Inhalation and exhalation in humans Model to demonstrate inhalation and exhalation Dissection to observe gaseous exchange structures in mammals |
By the end of the
lesson, the learner
should be able to:
- Describe the respiratory structures in amphibians (skin, lungs and buccal cavity) - Explain how each respiratory structure is adapted for gaseous exchange - Relate amphibian breathing through skin to real-life understanding of why frogs must stay near moist environments to survive - Describe the process of inhalation and exhalation in human beings - Explain the role of the diaphragm, rib cage and intercostal muscles in breathing - Connect breathing mechanics to real-life situations like how deep breathing exercises help calm the body during stress |
In groups, learners are guided to:
- Discuss how amphibians use the skin, lungs and buccal cavity for gaseous exchange - Describe the adaptations of the skin (thin, moist, rich blood supply) for gaseous exchange - Explain gaseous exchange in the lungs and buccal cavity of amphibians - Study illustrations showing the respiratory structures in amphibians - Share findings with peers - Study illustrations showing what happens during inhalation and exhalation - Describe how the diaphragm contracts and flattens during inhalation increasing the volume of the thoracic cavity - Explain how the diaphragm relaxes during exhalation reducing the lung volume - Discuss the role of external and internal intercostal muscles in moving the rib cage |
Why do amphibians use multiple respiratory structures for gaseous exchange?
What changes occur in the chest cavity during inhalation and exhalation? |
- 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 - Distinction Biology Learner's Book pg. 221 - Charts showing human respiratory system - Distinction Biology Learner's Book pg. 222 - Digital resources - Internet access - 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 - 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 |
- Oral questions
- Written assignments
- Class discussions
- Oral questions - Written assignments - Observation |
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