By the end of this chapter you'll be able to…

  • 1Prepare and observe onion peel and cheek cell slides, and explain why stain and glycerin are used
  • 2Name the parts of a cell — cell membrane, cytoplasm, nucleus, cell wall — and state what each does
  • 3Compare plant, animal and bacterial cells, including which parts each does and does not have
  • 4Explain how the shape of a cell relates to its function
  • 5Order the levels of organisation: cell → tissue → organ → organ system → organism
  • 6Identify protozoa, algae, fungi and bacteria from pond water and soil suspension
  • 7Explain decomposition, nitrogen fixation by Rhizobium, and biogas production
  • 8Explain fermentation by yeast (carbon dioxide + alcohol) and by Lactobacillus (lactic acid)
  • 9Design fair tests for the conditions microorganisms need — warmth, moisture and air
  • 10Explain why viruses are treated separately from other microorganisms
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Why this chapter matters
Two big ideas in one chapter, and they turn out to be the same idea. First, everything alive is built from cells — established by actually looking at onion peel and at your own cheek under a microscope. Second, a great many living things are *only* one cell, and they run the world: decomposing waste, fixing nitrogen for crops, setting curd, raising dough, and producing more than half the oxygen you breathe. The chapter's arc runs from the invention of the lens to the moment you realise a drop of pond water is crowded.

The Invisible Living World: Beyond Our Naked Eye — Class 8 Science (Curiosity)

The human eye can only see objects above a certain size. Everything in this chapter was invisible until somebody ground a piece of glass into the shape of a lentil seed.

1. About the Chapter

This is Chapter 2 of Curiosity (pages 8–27, Reprint 2026-27), and it carries two big ideas that turn out to be the same idea:

  1. Everything alive is built from cells — not asserted, but shown, by putting onion peel and your own cheek lining under a microscope
  2. A great many living things are only one cell — and they run the world: decomposing waste, fixing nitrogen for crops, setting curd, raising dough, producing more than half the oxygen you breathe
SectionContent
2.1What is a cell? — parts, and why cell shape follows function
2.2Levels of organisation: cell → tissue → organ → organ system → organism
2.3What are microorganisms? — pond water, soil, and the four groups
2.4How are we connected to microbes? — environment, food, microalgae
2.5Why is the cell the basic unit of life?

One thing this chapter does not do. It covers only beneficial microbes. It ends by saying: "We will learn about some of the diseases caused by microbes in the next chapter." Antibiotics, vaccination and immunity belong to Chapter 3, not here.


2. Seeing the Invisible

The human eye can only see objects above a certain size, so for a long time much of the world stayed unknown. What changed it was the lens — and the word itself records its origin. Somebody noticed that a curved piece of glass made small things look bigger; the glass was shaped like a lentil seed, thick in the middle and thin at the edge, so they called it a lens.

Activity 2.1 reproduces the discovery with nothing but a flask. Fill a round-bottom flask with water, cork it, and stand it on an open book: the letters appear larger, because the water in that shape bends light exactly as curved glass does.

Two men and their microscopes

Robert HookeAntonie van Leeuwenhoek
When16651660s
What he publishedMicrographia
His instrumentMagnified 200–300×Better lenses, more useful microscopes
What he sawA thin slice of cork, full of small empty compartmentsThe first clear view of bacteria and blood cells
What followedThe compartments reminded him of a honeycomb, so he called each one a cell — the first scientific use of the wordKnown as the Father of Microbiology

Note what Hooke was actually looking at: cork is dead plant material, so his "empty spaces" were the walls left behind after the living contents had gone. The name stuck even though the thing he named was a hollow.

The magnification ladder

InstrumentMagnificationWhat becomes visible
Hooke's microscope200–300×That cells exist
An ordinary microscope100–400×Microorganisms — protozoa, algae, fungi, bacteria
An electron microscope~10,00,000×Structures inside a cell

A low-cost foldable paper microscope now exists. It gives less detail than a laboratory instrument, but it is enough for the onion peel — and it puts the microscopic world within reach of far more people.


3. Looking at Cells Yourself

Activity 2.2 — onion peel

Pull the thin transparent layer from the inner surface of an onion piece, stain it with safranin for 30 seconds, rinse, mount in glycerin, and lower a coverslip slowly.

Every step solves one problem:

StepProblem it solves
SafraninThe peel is nearly transparent — a microscope gives magnification but not contrast
RinseToo much stain darkens everything equally and destroys the contrast again
GlycerinStops the cells drying out; improves clarity
Coverslip lowered slowlyTrapped air bubbles look like dark-edged circles and get mistaken for cells

What you see: nearly rectangular cells, packed closely together with no gaps — which is why Fig. 2.3d is a photograph of a brick wall. That comparison carries the chapter's central idea: a wall is built from bricks, and a living structure is built from cells.

Activity 2.3 — cheek cells

Rinse your mouth (to remove food debris that would be mistaken for cells), scrape gently with the blunt end of a toothpick, stain with methylene blue, add glycerin, cover and observe.

What you see: polygon-shaped cells — the inner lining of your mouth.

Comparing the two

Onion peel (plant)Cheek cell (animal)
Cell membrane, cytoplasm, nucleus
Cell wall
ShapeNearly rectangular, regularPolygonal, irregular
ArrangementPacked, no gapsLoose, scattered

The last three rows are not three separate facts. The cell wall provides rigidity and strength, which is exactly why plant cells hold a definite shape and sit compactly together.


4. Inside the Cell

PartWhat it does
Cell membraneEncloses the cell and separates one cell from another. Porous — lets essential materials in and waste out
CytoplasmFills the space between membrane and nucleus; holds carbohydrates, proteins, fats, mineral salts. Most life processes happen here
NucleusRegulates all activities in the cell, and regulates growth
Cell wallProvides rigidity and strength. In plant, fungal AND bacterial cells — not only plants

A step further. Plant cells contain rod-shaped plastids; those containing chlorophyll are chloroplasts and carry out photosynthesis, while plastids in non-green parts store substances. Plant cells also have a large vacuole that stores materials, removes waste and maintains cell shape. Animal cells usually have no vacuole, or only small ones.

So a cell is "not just a simple bag of liquid — it is a complex structure made up of many different parts, each with its own special function."

Shape follows function

CellShapeWhy it suits the job
Muscle cellSpindle-shapedThin and flexible, so it can contract and relax
Nerve cellVery long, branchedReaches distant parts of the body and passes messages quickly
Cheek cellThin and flatForms a protective lining over a surface
Some plant cellsLong tubesCarry water through the plant

Swallowing shows several types at once: muscle cells in the food pipe contract and relax in a wave, pushing food to the stomach — possible only because they are thin, flexible and spindle-shaped. In the stomach, muscle cells churn while lining cells produce digestive juices and acid.


5. Levels of Organisation

Cell → Tissue → Organ → Organ system → Organism

A tissue is a group of similar cells — the word matters. Different tissues form an organ; several organs form an organ system; all the systems together form the organism.

Complex organisms begin as a single cell — the egg — which divides repeatedly to build a whole body. Such organisms are multicellular.

The largest known cell is the yolk of an ostrich egg, about 130–170 mm across. The shell and the white are non-cellular — protection and nourishment — so they are not part of the cell. Cells are usually microscopic, but not by definition.


6. The World in a Drop of Water

Activity 2.4 — one drop of pond water on a slide. Activity 2.5 — moist soil stirred in water, left to settle (so heavy grit sinks) with the drop taken from the top layer, where the finest material and the organisms remain suspended.

Table 2.1 — pond waterRecorded
Amoeba (protozoa)Single cell, moving, irregular shape
Paramecium (protozoa)Single cell, moves using specialised structures
AlgaeSingle cell, green from a green pigment
Table 2.2 — soil suspensionRecorded
Bread mould (fungi)Branched filament, no chlorophyll, sac-like structure
Mould (fungi)Branched filament, no chlorophyll, brush-like structure
AlgaeSpherical, with chlorophyll
BacteriaSpherical, comma, spiral or rod-shaped, with hair-like projections

Two things fall out of these tables. Chlorophyll is the dividing line — algae have it and can make their own food; fungi do not. And bacteria have no single shape, so shape alone cannot identify them.

Microorganisms (micro = very small, organisms = living beings), also called microbes, are found in water, soil, air and inside our bodies — including hot springs and snow-cold zones.

Viruses are the awkward case: microscopic and acellular, they multiply only after entering a living cell. Having no cell at all, they fall outside the rule that living things are built from cells, which is why the chapter boxes them off separately.


7. How We Are Connected to Microbes

Cleaning the environment

Activity 2.7: bury fruit and vegetable peels in garden soil. After 2–3 weeks they have become dark, nutrient-rich manure — because fungi and bacteria in the soil break plant waste into simpler substances. Manure formation needs suitable temperature and moisture.

This is decomposition, and it is recycling: the nutrients in a leaf came from the soil, and decomposition returns them. Without microorganisms, dead matter would pile up undecomposed, nutrients would never return, and soil fertility would collapse.

Biogas. Some bacteria live without oxygen and decompose waste or household wastewater, releasing biogas — mainly carbon dioxide with a high proportion of methane — used for cooking, heating, electricity and vehicles.

Ananda Mohan Chakrabarty (1938–2020) developed a bacterium in 1971 that could break down oil spills; it received a patent in 1980. A patent prevents others from copying, using or selling an invention without permission. His work showed microbes could be put to work on pollution.

Our scientific heritage. The Vedas, including the Atharvaveda, refer to 'Krimi' — tiny entities both 'Drishya' (visible) and 'Adrishya' (invisible) — and describe their beneficial and harmful effects. A striking distinction to find in a text written long before any microscope.

Microbes in food

Why does fruit rot but a pickle keep? Microbes are everywhere, so a moist, nutrient-rich surface gets colonised. Pickles and murabbas resist because high concentrations of salt or sugar act as preservatives and do not allow microbes to grow. Refrigeration does the same job by removing warmth. Neither kills microbes — both make conditions unsuitable.

Activity 2.8 — yeastActivity 2.9 — curd
OrganismYeast, a unicellular fungusLactobacillus, a bacterium
FoodSugar in the flourLactose, the sugar in milk
ProductCarbon dioxide + a little alcoholLactic acid
ObservedDough rises, turns fluffy, smells differentMilk sets into curd and turns sour
The controlBowl B — same everything, no yeastBowl B — same everything, kept cold

Both are fermentation. Which product you get depends on which organism is doing it — and both need warmth, which is why curd sets on the counter and not in the refrigerator.

Lactobacillus also ferments batter for idli and dosa, and dough for bhatura.

Rhizobium forms swollen root nodules on legumes — beans, peas, lentils — and traps nitrogen from the air, making it usable by the plant. Nitrogen is abundant in air but plants cannot use it directly; the bacteria convert it. This is why legumes need no nitrogen fertiliser, and why farmers grow them in rotation to leave the soil richer for the next crop.

Microalgae

Microscopic plant-like organisms that make their own food using sunlight. They produce more than half of the Earth's oxygen supply, feed aquatic animals, help clean water and yield biofuel. Spirulina is over 60% protein by body weight and a source of vitamin B12; it can be farmed in a tank of pond water and harvested after 3–6 weeks. Pollution, climate change and habitat destruction threaten them.


8. Why the Cell Is the Basic Unit of Life

Unicellular organisms are a single cell carrying out every function needed for survival — bacteria, protozoa. Multicellular organisms are built from many cells with specialised, cooperating roles. Fungi span both: yeast is unicellular, mould is multicellular.

Microbial cells also have a cell membrane. Fungal cells add a cell wall but have no chloroplasts, so they cannot photosynthesise — which is why moulds grow on decaying matter rather than in sunlight.

Bacteria are the exception that defines the rule: they have no well-defined nucleus and no nuclear membrane, only a nucleoid. The chapter is explicit that this distinguishes them from yeast, protozoa, algae, fungi, plants and animals.

The cell is the basic unit of life because every organism's body is made of cells, because a single cell contains everything needed to carry on life (as unicellular organisms demonstrate), and because every higher level — tissue, organ, organ system — is built by combining cells. Just as a brick is the basic unit of a wall.


9. Summary

  • The lens is named for the lentil seed; Hooke named the cell in 1665 from cork; Leeuwenhoek first saw bacteria and is the Father of Microbiology
  • Every cell has a cell membrane, cytoplasm and nucleus; plant, fungal and bacterial cells add a cell wall
  • Bacteria have a nucleoid, not a well-defined nucleus — the feature that sets them apart
  • Cell shape follows function — spindle muscle cells, branched nerve cells, flat lining cells
  • Cell → Tissue → Organ → Organ system → Organism
  • Microorganisms are protozoa, algae, fungi, bacteria — unicellular or multicellular; viruses are acellular and multiply only inside a host
  • Microbes decompose waste and recycle nutrients, produce biogas, and fix nitrogen via Rhizobium in legume root nodules
  • Yeast → carbon dioxide + alcohol (dough rises); Lactobacillus → lactic acid (curd sets and sours)
  • Microalgae produce more than half the Earth's oxygen
  • Carbon dioxide turns lime water milky — the test used in two exercise questions

Appendix — What Belongs to Chapter 3, Not This One

Notes on this chapter frequently import material about disease. The chapter itself closes by saying: "We will learn about some of the diseases caused by microbes in the next chapter." None of the following is in Chapter 2:

Often claimedWhere it belongs
Antibiotics; Fleming and penicillinNot in this chapter
Vaccination; Jenner and smallpoxNot in this chapter
Immunity and how the body fights infectionChapter 3, Health: The Ultimate Treasure
Microbial diseases and how they spreadChapter 3
Nitrogen cycle diagrams in fullBeyond this chapter — only Rhizobium nitrogen fixation appears

Conversely, notes on this chapter often leave out more than half of it. Sections 2.1, 2.2 and 2.5 — the cell, its parts, the levels of organisation, and why the cell is the basic unit of life — are the backbone of the chapter, and the two microscope activities are the only practical work in it.

Key formulas & results

Everything you need to memorise, in one card. Screenshot this for revision.

Parts of a cell
cell membrane + cytoplasm + nucleus
The three basic parts; plant, fungal and bacterial cells add a cell wall
Cell membrane
encloses the cell; porous
Lets essential materials in and waste out; separates one cell from another
Cytoplasm
between membrane and nucleus
Holds carbohydrates, proteins, fats, mineral salts; most life processes happen here
Nucleus
regulates all cell activities and growth
Absent in bacteria, which have a nucleoid instead
Cell wall
rigidity and strength
In PLANT, FUNGAL and BACTERIAL cells — not only plants
Levels of organisation
Cell → Tissue → Organ → Organ system → Organism
A tissue is a group of SIMILAR cells
Yeast fermentation
sugar → carbon dioxide (bubbles) + a little alcohol (smell)
Yeast is a unicellular fungus; makes dough rise
Lactobacillus fermentation
lactose → lactic acid
Sets milk into curd and makes it sour; needs warmth
Nitrogen fixation
Rhizobium in root nodules of legumes traps nitrogen from air
Why legumes are grown in rotation and need no nitrogen fertiliser
Biogas
carbon dioxide + a high proportion of methane
From bacteria decomposing waste WITHOUT oxygen
Test for carbon dioxide
turns lime water milky
Used in exercises 2 and 9
Magnification
Hooke 200-300× · ordinary microscope 100-400× · electron microscope ~10,00,000×
Only the last shows structures inside a cell
⚠️

Common mistakes & fixes

These are the exact errors that cost students marks in board exams. Read them once, save yourself the trouble.

WATCH OUT
Putting 'cell wall' in the plant-only region of the Venn diagram
The chapter's summary says PLANT, FUNGAL AND BACTERIAL cells all have a cell wall. It belongs in the plant–bacterial overlap, not the plant-only region.
WATCH OUT
Putting 'nucleus' in the animal-only region
Plant cells have nuclei too. It is BACTERIA that lack a well-defined nucleus, having a nucleoid instead — so nucleus goes in the animal–plant overlap, and no listed part is unique to the animal cell.
WATCH OUT
Bringing diseases, vaccines and antibiotics into this chapter
This chapter covers only beneficial microbes and cells. It ends by saying diseases caused by microbes come in the NEXT chapter — Fleming, Jenner, immunity and antibiotics are not part of Chapter 2.
WATCH OUT
Saying yeast makes curd, or Lactobacillus makes bread rise
Yeast produces carbon dioxide (bubbles → dough rises) plus a little alcohol. Lactobacillus produces lactic acid (milk sets and turns sour). The product tells you the organism.
WATCH OUT
Treating a virus as just another microorganism
Viruses are ACELLULAR — not made of cells — and multiply only after entering a living cell, so they fall outside the rule that all living things are made of cells.
WATCH OUT
Forgetting the control in an experiment
Bowl B without yeast, test tube A without yeast, and the 'what if no yeast was added' part of exercise 9 all exist for one reason: removing the single variable must remove the effect, or you have not shown a cause.
WATCH OUT
Thinking a stain magnifies
A microscope supplies magnification; a stain supplies CONTRAST. Cells are nearly transparent, so without stain there is nothing to see — and with too much stain everything darkens equally and contrast is lost again.

NCERT exercises (with solutions)

Every NCERT exercise from this chapter — what it covers and how many questions to expect.

Practice problems

Work through this chapter's problems as a readiness check — reveal each solution, mark yourself honestly, and get your gap report at the end.

Readiness check

Are you exam-ready for "The Invisible Living World: Beyond Our Naked Eye"?

8 problems from this chapter. Try each one, reveal the worked solution, mark yourself honestly — get your gap report at the end.

8 questions~6 min

5-minute revision

The whole chapter, distilled. Read this the night before the exam.

  • Lens is named from the lentil seed — thick in the middle, thin at the edge
  • Robert Hooke, Micrographia 1665, saw cork through a 200-300× microscope and named the cell after honeycomb compartments
  • Antonie van Leeuwenhoek, 1660s, made better lenses and first described bacteria and blood cells — Father of Microbiology
  • Three basic parts of every cell: cell membrane, cytoplasm, nucleus
  • Cell membrane is porous — lets essentials in and waste out
  • Most life processes happen in the cytoplasm
  • Nucleus regulates all cell activities and growth
  • Cell wall gives rigidity — present in plant, fungal and bacterial cells, absent in animal cells
  • Plastids include chloroplasts (chlorophyll, photosynthesis); plant cells have a large vacuole, animal cells usually none
  • Cell shape follows function: spindle muscle cells contract, branched nerve cells carry messages, flat cheek cells line surfaces
  • Cell → Tissue → Organ → Organ system → Organism (a tissue is SIMILAR cells)
  • Largest known cell: ostrich egg yolk, 130-170 mm; shell and white are non-cellular
  • Microorganisms: protozoa, algae, fungi, bacteria — unicellular or multicellular
  • Yeast is a unicellular fungus; mould is a multicellular fungus
  • Bacteria have a nucleoid, not a well-defined nucleus — the feature that sets them apart
  • Viruses are acellular and multiply only inside a host cell
  • Decomposition returns nutrients to the soil; manure needs suitable temperature and moisture
  • Biogas = carbon dioxide + a high proportion of methane, made without oxygen
  • Rhizobium in legume root nodules traps nitrogen from air — hence crop rotation
  • Yeast → carbon dioxide (rising) + alcohol (smell); Lactobacillus → lactic acid (curd, sourness)
  • Microalgae produce more than half of Earth's oxygen; Spirulina is over 60% protein
  • Carbon dioxide turns lime water milky

Odisha (BSE) marks blueprint

Where the marks come from in this chapter — so you can plan your prep.

Typical chapter weightage: High weightage — cells and microorganisms are examined every year

Question typeMarks eachTypical countWhat it tests
MCQ / Very Short12-3Cell parts and which cell types have them; products of fermentation; the lime water test
Short Answer2-32-3Levels of organisation; plant versus animal cells; Rhizobium and crop rotation; decomposition
Long Answer4-51-2Designing fair tests for microbial growth; explaining an experimental set-up and its control; the cell-parts Venn diagram
Prep strategy
  • Learn the cell-parts table by cell type — animal, plant, bacterial — not as a single list
  • Remember cell wall = plant + fungal + bacterial, NOT plant only
  • Pair each fermentation with its product: yeast → CO₂ + alcohol; Lactobacillus → lactic acid
  • For every activity, be able to say what the control was and why
  • Keep this chapter's beneficial microbes separate from Chapter 3's diseases
  • Learn the three magnification figures and what each level reveals
  • Practise drawing and labelling both the onion peel and cheek cell

Where this shows up in the real world

This chapter isn't just an exam topic — it lives in the world around you.

Curd, idli, dosa and bhatura

Lactobacillus ferments milk into curd with lactic acid and ferments idli and dosa batter; yeast raises bread, cakes and bhatura with carbon dioxide.

Composting and waste management

Fungi and bacteria turn fruit peels and dried leaves into nutrient-rich manure in two to three weeks, given suitable warmth and moisture — the basis of every compost pit.

Biogas for cooking and electricity

Bacteria working without oxygen convert dung, crop residue and household wastewater into methane-rich biogas, with manure left over. India's oldest plants date from the late 1850s.

Crop rotation and soil fertility

Rhizobium in legume root nodules fixes atmospheric nitrogen, so pulses need no nitrogen fertiliser and leave the soil richer for the crop that follows.

Food preservation

Pickles and murabbas keep because high salt or sugar stops microbial growth; refrigeration does the same by removing warmth. Neither kills microbes — both make conditions unsuitable.

Microalgae — oxygen, food and fuel

Microalgae produce more than half the Earth's oxygen, feed aquatic animals, clean water and yield biofuel; Spirulina is farmed as a protein-rich supplement and a livelihood.

Cleaning up pollution

Ananda Mohan Chakrabarty's oil-degrading bacterium, patented in 1980, showed that microbes could be engineered to solve environmental problems.

Exam strategy

Battle-tested tips from teachers and toppers for this chapter.

1
For any Venn or comparison question, check each part against ALL THREE cell types before writing
2
Name the control whenever you describe an experiment — it earns marks and it is usually the point
3
State the product, not just the organism: carbon dioxide and alcohol for yeast, lactic acid for Lactobacillus
4
Quote the lime water test precisely — carbon dioxide turns lime water MILKY
5
In diagram questions, label cell membrane, cytoplasm and nucleus at minimum; add cell wall for plant cells
6
Do not import Chapter 3 material — no diseases, vaccines or antibiotics here
7
When asked why a cell has a particular shape, answer in terms of the job it does

Going beyond the textbook

For olympiad aspirants and curious learners — topics that build on this chapter.

STRETCH
Why the surface-area-to-volume ratio limits how large a single cell can be — and how the ostrich yolk gets around it
STRETCH
Cell theory: Schleiden, Schwann and Virchow, and how it followed from Hooke and Leeuwenhoek
STRETCH
Gram-positive versus Gram-negative bacterial cell walls
STRETCH
Aerobic versus anaerobic respiration, and why one yields methane and the other does not
STRETCH
The nitrogen cycle in full — fixation, nitrification, denitrification
STRETCH
Why viruses resist classification as living, and what a virus needs from its host
STRETCH
Extremophiles: microbes in hot springs, glaciers and deep-sea vents

Where else this chapter is tested

CBSE board isn't the only one — other exams test this chapter too.

CBSE Class 8 School ExamVery High
Class 8 Olympiad (NSO/NSTSE)High — cell structure and microbe identification
NTSE / NMMSHigh
Class 9 — The Fundamental Unit of LifeVery High — direct continuation
Class 8 Curiosity Chapter 3 (Health)Very High — diseases follow directly from here

Questions students ask

The real ones — pulled from the Q&A community and tutor sessions.

No, and this is the most common slip in the chapter. The Snapshots summary says plant, FUNGAL and BACTERIAL cells all have a cell wall around the cell membrane. Only animal cells lack one. So in the exercise Venn diagram the cell wall belongs where the plant and bacterial circles overlap, not in the plant-only region.

None of the six listed in the exercise. Cytoplasm and cell membrane are in all three cell types; nucleus is in animal and plant cells; cell wall is in plant and bacterial cells; chloroplast is plant-only; nucleoid is bacterial-only. The animal cell is defined by what it lacks — no cell wall, no chloroplast — rather than by anything it alone has.

Both ferment sugar for energy, but the by-product differs and that is what you observe. Yeast, a fungus, releases carbon dioxide — the bubbles make dough rise and turn fluffy — plus a little alcohol, which is the smell. Lactobacillus, a bacterium, produces lactic acid, which sets milk into curd and makes it sour. Both need warmth, which is why curd sets in a warm place and not in a refrigerator.

The second one is the control. Bowl B has no yeast, test tube A has no yeast, and exercise 9 asks what would happen with no yeast at all. In each case everything else is identical, so if the effect disappears when only the yeast is removed, the yeast must be the cause. Chapter 1's fair-test rule is doing the work throughout.

No. It covers cells and beneficial microbes only, and ends by saying: 'We will learn about some of the diseases caused by microbes in the next chapter.' Fleming and penicillin, Jenner and vaccination, immunity and antibiotics are not part of Chapter 2 — bringing them in is a common error in notes on this chapter.

The chapter does not settle it, and neither does science neatly. Viruses are microscopic and acellular — not built from cells — and they multiply only after entering a living cell. That puts them outside the chapter's own rule that all living organisms are made of cells, which is exactly why they are described in a separate box rather than alongside bacteria, fungi and protozoa.
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Last reviewed on 3 August 2026. Written and reviewed by subject-matter experts — read about our process.
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