Course review

B3.1 Gas exchange

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Learning objective

B3.1.1—Gas exchange as vital function

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• Gas exchange supplies respiratory gases between organisms and environment • Animals take in oxygen and release carbon dioxide for aerobic respiration • Larger or active organisms need specialized exchange surfaces because SA:V decreases

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Learning objective

B3.1.2—Properties of gas-exchange surfaces

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• Efficient gas-exchange surfaces are permeable, thin, moist, and large • Large surface area and steep concentration gradients increase diffusion • Short diffusion paths speed movement of oxygen and carbon dioxide

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Learning objective

B3.1.3—Maintaining concentration gradients

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• Dense capillary networks provide large exchange area and rapid transport • Continuous blood flow carries oxygen away and carbon dioxide toward the surface • Ventilation refreshes air or water to maintain steep gas gradients

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Learning objective

B3.1.4—Mammalian lung adaptations

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• Many small alveoli provide large surface area and thin squamous walls • Capillary beds maintain gradients and bring red blood cells close to alveolar air • Surfactant reduces surface tension, while elastic fibres support ventilation and recoil

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Learning objective

B3.1.5—Lung ventilation

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• Diaphragm and intercostal muscles change thoracic volume and pressure • Inspiration uses diaphragm and external intercostal contraction to draw air in • Expiration reduces thoracic volume; internal intercostals and abdominal muscles aid forced exhalation

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Learning objective

B3.1.6—Lung volume measurements

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• Spirometry records breathing patterns, ventilation rate, and lung volumes • Tidal volume is air moved during normal relaxed breathing • Vital capacity equals tidal volume plus inspiratory and expiratory reserve volumes

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Learning objective

B3.1.7—Leaf gas exchange adaptations

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• Stomata allow carbon dioxide, oxygen, and water vapour to diffuse • Guard cells open and close stomata by changes in turgor • Waxy cuticle, lower epidermal stomata, air spaces, mesophyll, and veins balance gas exchange with water loss

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Learning objective

B3.1.8—Leaf tissue distribution

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• Dicot leaves have waxy cuticle, upper and lower epidermis, palisade and spongy mesophyll • Vascular bundles contain xylem and phloem for water and assimilate transport • Spongy mesophyll air spaces and stomata create internal diffusion routes

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Learning objective

B3.1.9—Transpiration

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• Transpiration is evaporation from mesophyll walls followed by diffusion of water vapour through stomata • Temperature, humidity, wind, and light alter concentration gradients and stomatal opening • Potometers estimate transpiration indirectly by measuring water uptake

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Learning objective

B3.1.10—Stomatal density

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• Stomatal density is the number of stomata per unit leaf area • Higher density can increase carbon dioxide uptake and water loss • Leaf casts or micrographs allow stomatal counts and comparisons between species

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