Cytoskeleton Flashcards: Fibers, Motors & Functions

Practice cytoskeletal fibers, motor tracks, cell division, and ciliary patterns with 50 English flashcards and short checks for ambiguous clues.

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Practice cytoskeleton structure and function with 50 English flashcards for secondary and introductory-college biology. The focus is on telling actin filaments, microtubules, and intermediate filaments apart, then applying those distinctions to motors, cell structures, and short reasoning prompts. Basic cell knowledge is helpful; the cell organelle flashcards cover that prerequisite.

The cards map filament names to building proteins and structural properties, selected protein or shape clues back to filament families, motor names to tracks and specified travel directions, and named cell structures to their cytoskeletal components. Short error checks distinguish a fiber from its building protein or motor. Other prompts ask what information is missing when support, movement, cell division, vesicle transport, or ATP use does not identify a unique answer.

Start with the three filament families, their assembly, and polarity. Motor tracks and ATP use lead into the actin cortex, microvilli, keratins, nuclear lamins, the spindle, and the animal-cell contractile ring. Basic ciliary architecture and selected motor-direction exceptions then support the final mixed distinctions. Selected reverse prompts and related variants are separated; the review scheduler handles longer-term spacing. Every card carries the cytoskeleton tag.

This is text-based recall practice. It does not test diagram or micrograph identification. Exhaustive reverse cards, arbitrary name-to-example lists, exact filament diameters, detailed motor families, clinical diagnosis, drug treatment, bacterial cytoskeletons, and molecular regulation pathways are excluded to keep the deck focused. Typical ciliary patterns are taught with exceptions, not as universal motility rules. No complete biology course or examination alignment is claimed.

The questions, explanations, sequence, and metadata were written independently with AI assistance. Scientific facts were checked against research publications on cytoskeletal interactions and intermediate filaments, microtubule dynamics, motor proteins, microvilli, animal-cell cytokinesis, actin assembly, cell protrusion, motile cilia, and primary cilia. Source wording, exercises, and diagrams were not copied; those publications retain their own licenses, and scientific facts are not claimed as proprietary. Original material and the AI-generated decorative cover are dedicated under CC0 1.0 to the extent applicable rights exist. The cover is an abstract illustration, not a molecular diagram. This is independent study material without institutional endorsement.

Spjöld í þessum stokki

  1. Spjald 1

    Spurning

    What are the three major cytoskeletal filament families in animal cells?

    Svar

    Actin filaments (microfilaments), microtubules, and intermediate filaments.

  2. Spjald 2

    Spurning

    Which protein builds microfilaments?

    Svar

    Actin.

  3. Spjald 3

    Spurning

    Which two tubulin subunits pair to build microtubules?

    Svar

    Alpha-tubulin and beta-tubulin. Each building unit is an alpha–beta tubulin dimer.

  4. Spjald 4

    Spurning

    Do all intermediate filaments use the same building protein?

    Svar

    No. Different cells use different intermediate-filament proteins, such as keratins, vimentin, and nuclear lamins.

  5. Spjald 5

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    What does filament polarity mean in the cytoskeleton?

    Svar

    The two ends have different molecular structures. Plus and minus label distinct ends, not electrical charges.

  6. Spjald 6

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    What is the basic shape of an actin filament?

    Svar

    Two intertwined strands of actin subunits. It is a thin filament, not a hollow tube.

  7. Spjald 7

    Spurning

    Which major cytoskeletal filament forms a hollow tube?

    Svar

    A microtubule.

  8. Spjald 8

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    Which major cytoskeletal filament has a rope-like assembly of fibrous proteins?

    Svar

    An intermediate filament.

  9. Spjald 9

    Spurning

    Which cytoskeletal filament is the track for myosin motors?

    Svar

    An actin filament.

  10. Spjald 10

    Spurning

    Which major cytoskeletal filament family lacks distinct plus and minus ends?

    Svar

    Intermediate filaments. Actin filaments and microtubules are polar.

  11. Spjald 11

    Spurning

    What directly powers the stepping of myosin, kinesin, and dynein motors?

    Svar

    ATP hydrolysis.

  12. Spjald 12

    Spurning

    Which two motor-protein families move along microtubules?

    Svar

    Kinesins and dyneins.

  13. Spjald 13

    Spurning

    Which filament network is especially prominent in the cortex just beneath an animal cell’s plasma membrane?

    Svar

    Actin filaments. The cortex helps control cell shape and surface mechanics.

  14. Spjald 14

    Spurning

    Keratin networks belong to which cytoskeletal filament family?

    Svar

    Intermediate filaments.

  15. Spjald 15

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    What is microtubule dynamic instability?

    Svar

    Switching between growth and shrinkage. A microtubule can change length as tubulin subunits are added or lost.

  16. Spjald 16

    Spurning

    A cargo moves by kinesin along a microtubule. Which component is the motor?

    Svar

    Kinesin. The microtubule is the track.

  17. Spjald 17

    Spurning

    Which filaments form the supporting bundles inside microvilli?

    Svar

    Actin filaments.

  18. Spjald 18

    Spurning

    Which proteins form the nuclear lamina beneath the inner nuclear membrane?

    Svar

    Lamins, members of the intermediate-filament protein family.

  19. Spjald 19

    Spurning

    Which cytoskeletal filaments form the mitotic spindle?

    Svar

    Microtubules. Spindle microtubules help organize and separate chromosomes.

  20. Spjald 20

    Spurning

    Cytoplasmic dynein carries cargo toward which end of a microtubule?

    Svar

    The minus end.

  21. Spjald 21

    Spurning

    Which filament and motor form the main contractile machinery of the animal-cell cleavage ring?

    Svar

    Actin filaments and myosin II.

  22. Spjald 22

    Spurning

    How can actin assembly help a crawling cell extend its leading edge?

    Svar

    Growing actin filaments can push the plasma membrane outward.

  23. Spjald 23

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    Which filaments form the axoneme, the internal framework of eukaryotic cilia and flagella?

    Svar

    Microtubules.

  24. Spjald 24

    Spurning

    Conventional kinesin-1 carries cargo toward which end of a microtubule?

    Svar

    The plus end.

  25. Spjald 25

    Spurning

    What mechanical role do intermediate-filament networks provide when a cell is stretched?

    Svar

    They help distribute tensile stress and resist damage from stretching.

  26. Spjald 26

    Spurning

    In an animal-cell contractile ring, is myosin II a motor or an actin building subunit?

    Svar

    A motor. Actin supplies the filament subunits.

  27. Spjald 27

    Spurning

    What does the typical 9 + 2 pattern of an airway motile cilium describe?

    Svar

    Nine outer microtubule doublets around two central single microtubules.

  28. Spjald 28

    Spurning

    Does the name kinesin alone guarantee plus-end-directed movement?

    Svar

    No. Kinesin families differ; some move toward minus ends. Specify the kinesin type before assigning a direction.

  29. Spjald 29

    Spurning

    How do the core filaments of microvilli differ from those of eukaryotic cilia?

    Svar

    Microvilli have actin bundles; cilia have a microtubule-based axoneme.

  30. Spjald 30

    Spurning

    The nuclear lamina is built from which major filament family?

    Svar

    Intermediate filaments, specifically lamins.

  31. Spjald 31

    Spurning

    In animal-cell division, which structure constricts the cell surface: the spindle or the contractile ring?

    Svar

    The contractile ring. Its actin–myosin machinery narrows the cleavage furrow.

  32. Spjald 32

    Spurning

    What is a common role of a non-motile primary cilium?

    Svar

    Sensing and coordinating signals. It acts as a specialized signaling compartment.

  33. Spjald 33

    Spurning

    Which motor family drives sliding between neighboring microtubule doublets in a motile cilium?

    Svar

    Axonemal dyneins. Structural constraints convert that sliding into bending.

  34. Spjald 34

    Spurning

    Does vesicle transport by itself identify a microtubule track?

    Svar

    No. Vesicles can use microtubules or actin-based transport. The motor identity or filament composition supplies a better clue.

  35. Spjald 35

    Spurning

    A prompt asks for the filament family containing keratin. Is keratin alone the requested answer?

    Svar

    No. Answer intermediate filaments. Keratin names a building protein, not the filament family.

  36. Spjald 36

    Spurning

    What microtubule pattern is commonly used to describe a primary cilium?

    Svar

    The 9 + 0 pattern: nine outer doublets without a central pair. It is a typical description, not a universal rule for every cross-section.

  37. Spjald 37

    Spurning

    A filament is assembled from alpha–beta tubulin dimers. Which filament family is it?

    Svar

    Microtubules.

  38. Spjald 38

    Spurning

    What does the centrosome do for microtubules in many animal cells?

    Svar

    It acts as a microtubule-organizing center, helping nucleate and organize the microtubule array.

  39. Spjald 39

    Spurning

    A vesicle is moved by myosin. Which filament supplies its track?

    Svar

    Actin. Myosin-based cargo transport uses actin filaments.

  40. Spjald 40

    Spurning

    Why can’t a 9 + 0 axoneme alone establish that a cilium is non-motile?

    Svar

    Motile embryonic nodal cilia are a counterexample. Arrangement alone does not establish motility.

  41. Spjald 41

    Spurning

    What extra clue would help identify a fiber described only as supporting cell shape?

    Svar

    Its protein composition or a specific structure it forms. All three major filament systems contribute to cell mechanics.

  42. Spjald 42

    Spurning

    Why is the claim that all intermediate filaments lie in the cytoplasm incorrect?

    Svar

    Lamins form the nuclear lamina inside the nucleus.

  43. Spjald 43

    Spurning

    In a 9 + 2 axoneme, does the 9 count nine individual microtubules?

    Svar

    No. It counts nine outer doublets. The central 2 counts two single microtubules.

  44. Spjald 44

    Spurning

    An ATP-powered motor uses either actin or microtubules. What missing information would identify its track?

    Svar

    The motor family. Myosins use actin; kinesins and dyneins use microtubules. ATP use alone does not distinguish them.

  45. Spjald 45

    Spurning

    What missing detail would distinguish fibers described only as helping animal-cell division?

    Svar

    The division structure or step. Spindle fibers are microtubules; the contractile ring contains actin.

  46. Spjald 46

    Spurning

    A student says microvilli are miniature cilia because both project from the cell. What core-filament correction is needed?

    Svar

    Microvilli are supported by actin bundles; cilia have a microtubule-based core. Surface shape alone does not make them the same structure.

  47. Spjald 47

    Spurning

    In microtubule-based transport, how does the filament’s role differ from the motor’s?

    Svar

    The microtubule supplies a track; kinesin or dynein supplies motor activity.

  48. Spjald 48

    Spurning

    What extra detail is needed to identify a cytoskeletal system described only as enabling cell movement?

    Svar

    The type of movement. Actin supports crawling; microtubules and dyneins support ciliary or flagellar motion.

  49. Spjald 49

    Spurning

    Is it accurate to say that microtubules have no role in animal-cell cytokinesis because the ring uses actin?

    Svar

    No. Microtubules also help coordinate cytokinesis, including positioning and organizing the division machinery.

  50. Spjald 50

    Spurning

    Is the cytoskeleton a permanent, unchanging scaffold?

    Svar

    No. Its filaments and networks can assemble, disassemble, and reorganize as the cell’s needs change.

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Cytoskeleton Flashcards: Fibers, Motors & Functions

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