Every card in Cells and organisation, Year 10: specialised cells and microscopes
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- The middle section of a sperm cell is packed with one type of sub-cellular structure, which releases the energy the cell needs to swim. Which structure? (one word, plural)
mitochondria
HintThey are the site of aerobic respiration.
WhySwimming to the egg needs a constant supply of energy for the tail. Mitochondria release energy by aerobic respiration, so having many of them, right next to the tail, suits the cell to its job.
- A nerve cell has a very long, thin fibre. How does this suit the job the cell does?
It can carry electrical impulses over long distances in the body
HintThink what has to get all the way to a toe when you decide to wiggle it.
WhySome nerve cells run all the way from the spinal cord to a toe. Being long means one cell can carry a signal the whole distance without passing it on. Branches at each end let it connect with many other cells.
- Muscle cells contain protein fibres that can slide past one another. What does this allow a muscle cell to do?
Contract (get shorter)
HintThink what your biceps does when you bend your arm.
WhyWhen the fibres slide over each other the whole cell shortens, and when thousands of cells do this together the muscle pulls on a bone. Muscle cells also contain many mitochondria, because contracting needs a lot of energy.
- Mature xylem cells are dead and hollow, with no end walls between them. How does this suit their job?
They form long continuous tubes that water can flow through
HintThink of drinking straws joined in a line.
WhyWith no cytoplasm and no end walls, nothing blocks the flow, so water and dissolved mineral ions move easily from the roots up to the leaves. The side walls are strengthened so the tubes do not collapse.
- The end walls between phloem cells have small pores in them. What are the pores for?
To let dissolved sugars pass from one cell to the next
HintPhloem is the plant's food-carrying tissue, and the food has to get along it somehow.
WhyPhloem cells are joined end to end in tubes. Unlike xylem cells they keep their end walls, but the pores let cell sap, carrying dissolved sugars, move along the tube from cell to cell.
- The process by which a cell becomes specialised to carry out a particular job
Differentiation
HintThe word is related to "different".
WhyAn organism starts as unspecialised cells. As it develops, cells change: each gains the sub-cellular structures it needs for one function and becomes, for example, a nerve cell or a root hair cell.
- In animals, most kinds of cell become specialised at an ____ stage of development.
early
HintThink about when in life an embryo forms its heart, nerves and muscles.
WhyIn animals, most cells become specialised while the organism is still an embryo. After that, most of them cannot change into another type. This is very different from plants.
- How do plant cells differ from most animal cells in when they are able to differentiate?
Many plant cells can differentiate throughout the plant's life
HintA cutting taken from an old stem can still grow brand new roots.
WhyMost animal cells lose the ability to differentiate early on. Many plant cells keep it, which is why a plant goes on producing new roots, leaves and flowers for as long as it lives, and why cuttings work.
- In a fully grown animal, what is cell division mainly used for?
Repairing tissues and replacing cells
HintThink about a grazed knee, or the skin flakes you lose every day.
WhyOnce an animal has finished growing, it no longer needs division for growth. Cells still wear out, die or get damaged, so division carries on to replace them and to mend injuries.
- Why is cell differentiation important in an organism made of many cells?
It produces the different specialised cells needed to do different jobs
HintImagine a body in which every single cell was exactly alike.
WhyA large organism needs cells that carry oxygen, cells that carry signals, cells that contract and many more. Differentiation is how one fertilised egg cell gives rise to all of these. Without it there could be no tissues or organs.
- The ability of a microscope to show two points that are very close together as separate points
Resolution (resolving power)
HintA sharp photograph has more of it than a blurred one.
WhyResolution decides how much detail an image holds. Two microscopes can magnify by the same amount, but the one with better resolution shows fine structures separately while the other shows a blur.
- How do the magnification and the resolution of an electron microscope compare with those of a light microscope?
Both are much higher
HintIt was the newer of the two inventions, and it changed what biologists could see.
WhyAn electron microscope uses a beam of electrons instead of light. It can separate points less than a nanometre apart, where a light microscope is limited to about 200 nanometres, and it can magnify far more before the image blurs.
- How did the electron microscope increase biologists' understanding of cells?
It showed sub-cellular structures in much finer detail, including many never seen before
HintThink about what lies inside the cytoplasm that a school microscope shows only as dots, or not at all.
WhyWith a light microscope, a mitochondrion is a faint speck and a ribosome is invisible. The electron microscope showed the inside of mitochondria and chloroplasts and revealed ribosomes, so biologists could work out what each structure does.
- A pupil keeps enlarging a blurred light-microscope image, hoping to see ribosomes. Why will this never work?
Enlarging adds no detail: the light microscope's resolution is too low
HintZooming in on a blurry phone photograph gives you a bigger blur.
WhyMagnifying an image only spreads out the detail that is already there. If two points were not separated by the microscope in the first place, no amount of enlargement will separate them.
- Which type of microscope first allowed biologists to see ribosomes? (one word)
electron
HintIt uses a beam of tiny charged particles in place of light.
WhyRibosomes are far smaller than anything a light microscope can resolve. Electron microscopes were developed in the 1930s, about three centuries after the first light microscopes, and in the following decades they revealed ribosomes and the detail inside other structures.
- A cell is really 0.05 mm long. In a drawing, the same cell is 40 mm long. What is the magnification of the drawing? (number only)
800
HintBoth lengths are already in the same unit, so compare them directly.
WhyMagnification = size of image ÷ size of real object, so 40 ÷ 0.05. Magnification has no unit, because it is one length divided by another; it is written as ×800.
- A bacterium 2 µm long is viewed at a magnification of ×1500. How long is its image, in millimetres?
3 mm
HintFind the length of the image in the original unit first, then convert.
WhyImage size = magnification × real size, so 1500 × 2 µm = 3000 µm. There are 1000 micrometres in a millimetre, so divide by 1000.
- Rearrange the equation magnification = image size ÷ real size to make real size the subject.
Real size = image size ÷ magnification
HintOf the three quantities, the picture is the largest, so it is never the one you divide by.
WhyMultiply both sides by real size, then divide both sides by magnification. The specification states the equation in this section; the saved pages do not say that it is given in the exam, so learn it and its two rearrangements.
- An image of a virus is 5 mm wide at a magnification of ×50 000. What is the real width of the virus in metres, in standard form?
1 × 10⁻⁷ m
HintWork out the real width in the unit you were given, then change that unit, then tidy the number.
WhyReal size = image size ÷ magnification = 5 mm ÷ 50 000 = 0.0001 mm. A millimetre is 10⁻³ m, so 0.0001 mm is 10⁻⁴ × 10⁻³ m. That is the same as 100 nanometres.
- Before calculating a magnification, the image size and the real size must be converted into the same ____.
units
HintOne length might be given in millimetres and the other in micrometres.
WhyDividing 40 mm by 50 µm gives a meaningless 0.8. Convert first: 40 mm is 40 000 µm, and 40 000 ÷ 50 = 800. The safest habit is to change the larger measurement into the smaller unit before dividing.
1★ GCSE-BIOL-CEL-0017
2★ GCSE-BIOL-CEL-0018
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4★ GCSE-BIOL-CEL-0020
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18★ GCSE-BIOL-CEL-0034
19★ GCSE-BIOL-CEL-0035
20★ GCSE-BIOL-CEL-0036
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