IB Biology HL Specialised Cells & Stem Cells Paper 1 & 2 ~15 min read

Examples of Specialised Cells

Three families of cell, three completely different problems. Getting oxygen across a barrier, generating force, and getting two cells to become one. In each case the structure of the cell is the solution written out in physical form.

📚 What you need to know

Pneumocytes: the cells of the alveoli

Your lungs contain millions of alveoli, which collectively provide an enormous surface area for gas exchange by diffusion. The walls of each alveolus, called the alveolar epithelium, are only one cell thick, and the capillary walls beside them are also one cell thick. That leaves usually less than 0.5 µm between the air and the blood.

Two different cell types make up that epithelium, and they do completely different jobs.

Two cells share the alveolar wall One is built to be thin; the other is built to secrete.TYPE I PNEUMOCYTE where gas exchange happens TYPE II PNEUMOCYTE where surfactant comes from O2 CO2 surfactant• extremely thin, flattened cells • cover about 95% of the alveolar surface • give a very short diffusion distance • this is where gases actually cross• rounded, with many secretory vesicles • cover only about 5% of the surface • secrete pulmonary surfactant • stop the alveoli collapsing95% of the surface, but only one of the two jobs.
The thinness of the type I cell is not incidental — it is the single feature that makes gas exchange fast enough to keep you alive.

Pulmonary surfactant

The inside of an alveolus is wet, and a wet surface has surface tension: the water molecules pull on each other and try to make the surface as small as possible. In a tiny air sac, that force is strong enough to pull the walls together and collapse it.

Surfactant is the solution. Its molecules have hydrophobic tails and hydrophilic heads, so they form a monolayer on the water surface with the tails facing the alveolar air. That gets between the water molecules and reduces surface tension, which:

The layer of moisture also helps gas exchange directly: oxygen dissolves in it before diffusing into the blood, and carbon dioxide diffuses out from that moist surface before being breathed out.

You have met amphipathic molecules forming a monolayer before — it is exactly what phospholipids do at a water surface. Surfactant is doing the same physics for a completely different biological purpose. Spotting that link is the sort of thing that lifts an extended response.

Muscle: striated and cardiac

Muscles attached to the skeleton are skeletal muscles, and they are described as striated because they look stripy under a microscope. Cardiac muscle in the heart is a specialised kind of striated muscle; smooth muscle in blood vessels and organs is a third type.

Striated muscle cells are bundled into fibres, each surrounded by a single plasma membrane called the sarcolemma. These fibres are usually called cell-like units rather than cells, and the reason is worth knowing:

Two kinds of striated muscle Both stripy, but built for very different demands.SKELETAL (STRIATED) moves the body, under nervous control CARDIAC found only in the heart several nuclei along one fibre purple bars are intercalated discs• many nuclei per fibre • clear striations; T-tubules and an SR • contracts only when stimulated• one nucleus per cell, cells branched • faint striations; huge numbers of mitochondria • myogenic: contracts on its own, never tiresSkeletal muscle waits to be told; cardiac muscle does not.
The intercalated discs are the key cardiac feature: they let the contraction signal spread from cell to cell so the whole chamber beats together.
FeatureSkeletal (striated) muscleCardiac muscle
NucleiMany per fibreOne per cell
Cell shapeLong, unbranched fibresShorter, branched cells forming a network
StriationsClear and strongFaint
Junctions between unitsNone — fibres run in parallelIntercalated discs, which spread contraction quickly
ControlContracts when stimulated by a nerveMyogenic — contracts without external stimulation
FatigueTires with sustained useDoes not tire; beats continuously for life
MitochondriaNumerousVery numerous, for continual ATP supply
Myogenic, precisely. Cardiac muscle contracts without any external stimulation from nerves or hormones, which lets the heart beat at its own regular interval. The nervous and endocrine systems can still change how long that interval is — they modify the rhythm rather than create it.

Gametes: sperm and egg

Sperm and ova are the textbook example of structure fitting function, because their functions are so specific. One has to travel and get in; the other has to be got into exactly once, and then support an embryo.

Two cells built for one meeting Not drawn to the same scale: an egg is about twenty times wider.SPERM CELL head 5 µm, tail 50 µm EGG CELL (OVUM) about 100 µm across flagellum midpiece acrosome zona pellucida cortical granules• haploid nucleus in a streamlined head • acrosome full of hydrolytic enzymes • many mitochondria in the midpiece • a flagellum of protein microtubules• haploid nucleus; meiosis finishes at fertilisation • zona pellucida hardens to block polyspermy • cortical granules release enzymes into it • cytoplasm rich in nutrients for the embryoOne is stripped down for travel; the other is stocked for building.
A layer of follicle cells surrounds the ovum outside the zona pellucida, nourishing and protecting it. It is not shown here to keep the diagram readable.
FeatureWhere it isWhy it is there
Haploid nucleusBoth gametesTwo haploid nuclei fuse to form a diploid zygote
AcrosomeSperm headContains hydrolytic enzymes to digest a path through the zona pellucida
Many mitochondriaSperm midpieceRelease the energy needed to power the flagellum
FlagellumSperm tailMade of protein microtubules; propels the cell towards the egg
Zona pellucidaAround the ovumA jelly layer that hardens after fertilisation to prevent polyspermy
Cortical granulesOvum cytoplasmVesicles that release enzymes into the zona pellucida to harden it
Follicle cellsAround the ovumNourish and protect the developing egg cell
Nutrient-rich cytoplasmOvumFeeds the embryo in the days after fertilisation

Polyspermy is what happens if more than one sperm penetrates the ovum, and it disrupts embryo development. The egg has a two-stage defence: cortical granules release their enzymes into the zona pellucida, and the zona hardens so no further sperm can get through.

🧠

Sperm: three parts, three jobs

Head — carry the DNA and break in. Midpiece — make the ATP. Tail — do the swimming. If you can name the three parts, the adaptations follow from what each one is for.

Worked examples

WE 1

Explaining gas exchange adaptations

Explain how type I pneumocytes are adapted for efficient gas exchange. (3 marks)

Point 1: the structure They are extremely thin and flattened cells. Point 2: the effect This gives a very short diffusion distance between the air in the alveolus and the blood in the capillary, usually under 0.5 µm. Point 3: the scale They cover about 95% of the alveolar surface, so almost the whole of that large surface area is available for diffusion. thin cells over a huge area means a fast rate of diffusion Fick’s law in disguise: large area, short distance, steep gradient
WE 2

Applying knowledge to a clinical case

Babies born very prematurely often have difficulty inflating their lungs. Suggest an explanation in terms of pneumocytes. (3 marks)

Point 1: what is missing Their type II pneumocytes may not yet be producing enough pulmonary surfactant. Point 2: the consequence Without surfactant, the surface tension of the water lining the alveoli is not reduced. Point 3: the effect High surface tension pulls the alveolar walls together, so the alveoli stick shut and collapse, making the lungs very hard to inflate. too little surfactant, so surface tension collapses the alveoli this really is why premature babies are given artificial surfactant
WE 3

Comparing two muscle types

Describe two ways in which cardiac muscle differs from skeletal muscle, and explain the advantage of each. (4 marks)

Difference 1 Cardiac muscle is myogenic, contracting without external stimulation, whereas skeletal muscle contracts only when stimulated by a nerve. The advantage The heart can beat at its own regular rhythm without needing a signal for every beat. Difference 2 Cardiac muscle cells are branched and joined by intercalated discs, whereas skeletal fibres run in parallel and are not joined. The advantage Contraction spreads rapidly from cell to cell, so a whole chamber contracts together as one coordinated beat. myogenic rhythm, and coordinated spread through the network “describe and explain” means every difference needs a consequence attached to it

💡 Exam tips

⚠ Common mistakes

That completes Specialised Cells & Stem Cells. Notice the single idea running through all four pages: a cell’s structure is an answer to a question about its job. Stem cells have not been asked the question yet, differentiation is the moment they answer it, and every specialised cell here — flattened, folded, striped or streamlined — is that answer made physical.

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