Cytoskeletal Regulation

Master’s-Level Cell Biology & Advanced Molecular Biology Notes

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1. Definition

The cytoskeleton is a dynamic intracellular network of protein filaments that determines cell shape, mechanical properties, polarity, intracellular transport, migration, division, and spatial organization.

The three major cytoskeletal systems are:

  1. Actin filaments (microfilaments)
  2. Microtubules
  3. Intermediate filaments

A fourth concept, increasingly important at the Master’s level, is the large group of cytoskeletal regulatory proteins that control filament nucleation, polymerization, depolymerization, cross-linking, severing, stabilization, and interaction with membranes and motor proteins.

                         CYTOSKELETON
                              β”‚
             β”Œβ”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”Όβ”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”
             ↓                ↓                ↓
           ACTIN          MICROTUBULES    INTERMEDIATE
         FILAMENTS                         FILAMENTS
             β”‚                β”‚                β”‚
        Cell cortex       Transport       Mechanical
        Migration         Spindle        strength
        Cytokinesis       Polarity
             β”‚                β”‚
             β””β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”Όβ”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”˜
                              ↓
                    CELLULAR ORGANIZATION

2. Why Cytoskeletal Regulation Is Necessary

Cytoskeletal filaments are not static structures.

They continuously undergo:

  • Polymerization
  • Depolymerization
  • Remodeling
  • Branching
  • Cross-linking
  • Severing
  • Stabilization
  • Reorganization

Therefore, cells require sophisticated regulatory mechanisms to control where, when, and how fast cytoskeletal structures form.


3. Fundamental Principle

A useful way to understand cytoskeletal regulation is:

SIGNAL
  ↓
REGULATORY PROTEIN
  ↓
FILAMENT DYNAMICS
  ↓
CYTOSKELETAL ORGANIZATION
  ↓
CELLULAR RESPONSE

For example:

Growth factor
     ↓
Receptor
     ↓
Rho-family GTPase
     ↓
Actin regulator
     ↓
Actin polymerization
     ↓
Cell migration

4. Major Cytoskeletal Regulatory Processes

ProcessFunction
NucleationInitiates filament formation
ElongationIncreases filament length
DepolymerizationRemoves subunits
CappingControls filament ends
SeveringBreaks existing filaments
BranchingCreates filament networks
Cross-linkingConnects filaments
BundlingProduces parallel filament arrays
StabilizationPrevents excessive disassembly
Motor interactionGenerates force and transport

5. Actin Filament Regulation

Actin exists in two major forms:

G-actin = globular actin

F-actin = filamentous actin

G-actin
  ↓
Nucleation
  ↓
F-actin
  ↓
Elongation
  ↓
Actin network

Actin polymerization is highly regulated because spontaneous nucleation is relatively inefficient.


6. Actin Filament Polarity

Actin filaments have:

  • Plus/barbed end
  • Minus/pointed end
BARBED END                         POINTED END
    +                                  βˆ’
    β”‚                                  β”‚
    β–Ό                                  β–Ό
════════════════════════════════════════
             ACTIN FILAMENT

The two ends have different rates of subunit addition and loss.


7. Actin Polymerization

Actin polymerization involves:

  1. Nucleation
  2. Elongation
  3. Steady-state behavior
       G-actin
          ↓
      Nucleation
          ↓
       Seed
          ↓
    Elongation
          ↓
      F-actin

ATP-bound actin is incorporated preferentially into growing filaments.

ATP is subsequently hydrolyzed to ADP, influencing filament stability.


8. Treadmilling

Actin can undergo treadmilling, where subunits are preferentially added at one end and lost at the other.

              ACTIN FILAMENT

        +                         βˆ’
        β”‚                         β”‚
        ↓                         ↓

      Addition                Loss
       of G-actin            of actin
          ↓                     ↓
════════════════════════════════════

This allows rapid remodeling without requiring complete disassembly of the filament.


9. Nucleation-Promoting Factors

Major actin nucleation mechanisms include:

  • Arp2/3 complex
  • Formins
  • Spire proteins
  • Other nucleators

10. Arp2/3 Complex

The Arp2/3 complex generates branched actin networks.

It nucleates a new filament from the side of an existing filament.

             Parent filament
──────────────────────────────
             \
              \
               \  New branch
                \
                 \

This is particularly important in:

  • Lamellipodia
  • Endocytosis
  • Phagocytosis
  • Cell migration

11. Formins

Formins promote the formation of long, often unbranched actin filaments.

They are particularly important for:

  • Filopodia
  • Stress fibers
  • Cytokinetic structures
  • Contractile actin networks
Formin
  ↓
Actin nucleation
  ↓
Linear filament
  ↓
Elongation

12. Arp2/3 vs Formin

FeatureArp2/3Formins
Main architectureBranchedLinear/unbranched
Major structuresLamellipodiaFilopodia/stress fibers
MechanismBranch nucleationLinear nucleation/elongation
RegulationNPFsRho-family pathways, other signals

13. Actin Capping Proteins

Capping proteins bind filament ends and regulate subunit exchange.

Examples include:

  • CapZ
  • Tropomodulin
                 CAP
                  β”‚
                  β–Ό
═════════════════●
             ACTIN FILAMENT

Capping can prevent uncontrolled elongation or depolymerization.


14. Profilin

Profilin binds G-actin and promotes actin polymerization under appropriate conditions.

It can:

  • Bind actin
  • Promote ATP-actin availability
  • Facilitate actin incorporation into growing filaments
  • Interact with proline-rich proteins
Profilin
   +
G-actin
   ↓
Actin delivery
   ↓
Filament elongation

15. Cofilin

Cofilin is an important actin-remodeling protein.

It preferentially associates with ADP-actin-containing filaments and promotes:

  • Filament turnover
  • Severing
  • Depolymerization
        F-actin
════════════════════
       ↓ cofilin
══════════╱═════════
         β•±
        β•±
   Fragmentation

Its activity is regulated by phosphorylation.


16. ADF/Cofilin Regulation

A simplified pathway:

LIM kinase
    ↓
Cofilin phosphorylation
    ↓
Reduced actin-severing activity

Conversely, cofilin dephosphorylation promotes its actin-remodeling activity.

Thus:

LIMK ↔ cofilin is an important regulatory axis.


17. Rho-Family GTPases

Three major regulators are:

  • RhoA
  • Rac1
  • Cdc42

They act as molecular switches.

GDP-bound
INACTIVE
   β”‚
   β”‚ GEF
   ↓
GTP-bound
ACTIVE
   β”‚
   ↓
Effector proteins
   β”‚
   ↓
Cytoskeletal remodeling

18. RhoA

RhoA is strongly associated with:

  • Stress fibers
  • Actomyosin contractility
  • Focal adhesion maturation
  • Cell-body contraction

Simplified pathway:

RhoA-GTP
   ↓
ROCK
   ↓
Myosin light-chain regulation
   ↓
Myosin II activity
   ↓
Contractility

19. Rac1

Rac1 promotes:

  • Lamellipodia
  • Branched actin
  • Cell spreading
  • Leading-edge formation
Rac1-GTP
   ↓
WAVE complex
   ↓
Arp2/3 activation
   ↓
Branched actin
   ↓
Lamellipodium

20. Cdc42

Cdc42 is particularly important for:

  • Cell polarity
  • Filopodia
  • Directional migration
  • PAR-complex regulation
Cdc42-GTP
    ↓
WASP
    ↓
Arp2/3
    ↓
Actin remodeling
    ↓
Polarity / protrusion

21. RhoA–Rac–Cdc42 Integration

These GTPases do not operate independently.

                 CELL POLARITY
                       β”‚
          β”Œβ”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”Όβ”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”
          ↓            ↓            ↓
        Cdc42         Rac          RhoA
          ↓            ↓            ↓
       Polarity     Protrusion   Contractility
          β”‚            β”‚            β”‚
          β””β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”Όβ”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”˜
                       ↓
                Cell migration

Their spatial and temporal coordination is essential.


22. Microtubule Regulation

Microtubules are polymers of:

Ξ±-tubulin + Ξ²-tubulin

They are regulated through:

  • Nucleation
  • Polymerization
  • Dynamic instability
  • Stabilization
  • Catastrophe
  • Rescue
  • Severing
  • Microtubule-associated proteins

23. Microtubule Dynamic Instability

Microtubules continuously switch between growth and shrinkage.

Growth
  β”‚
  β”‚
  └──────────┐
             β”‚
         CATASTROPHE
             ↓
         Shrinkage
             β”‚
             β”‚
           RESCUE
             ↑
             β”‚
           Growth

This is called dynamic instability.


24. GTP-Tubulin and Microtubule Stability

Tubulin binds GTP.

During polymerization:

GTP-tubulin
     ↓
Microtubule incorporation
     ↓
GTP hydrolysis
     ↓
GDP-tubulin

A relatively GTP-rich region at the growing end is called the GTP cap.

Loss of this stabilizing state promotes catastrophe.


25. Microtubule-Associated Proteins

MAPs regulate:

  • Stability
  • Spacing
  • Bundling
  • Polymerization
  • Interaction with other proteins

Examples include:

  • Tau
  • MAP2
  • MAP4
  • EB proteins

26. EB Proteins

End-binding proteins, especially EB1, associate with growing microtubule plus ends.

They help recruit other proteins to growing microtubule ends.

                  + END
                    ↓
              [ EB1 ] ●
════════════════════════════
       Microtubule

This creates a dynamic platform for microtubule regulation.


27. Tau and MAP2

Tau is particularly associated with axonal microtubules.

MAP2 is prominent in dendritic compartments.

They contribute to neuronal microtubule organization.

Neuron

Dendrite ── MAP2-associated MTs

Soma
  β”‚
  β”‚
Axon ─────── Tau-associated MTs ─────→

28. Microtubule Severing Proteins

Important severing proteins include:

  • Katanin
  • Spastin
  • Fidgetin

They use ATP-dependent mechanisms to sever microtubules.

══════════════════════════════
             ↓
          Severing
             ↓
═══════             ═════════

Severing can increase the number of microtubule ends and facilitate network remodeling.


29. Microtubule Nucleation

The major nucleation system involves:

Ξ³-tubulin ring complexes (Ξ³-TuRCs)

Ξ³-TuRC
   ↓
Microtubule nucleation
   ↓
Microtubule growth

Major sites include:

  • Centrosomes
  • Spindle poles
  • Golgi-associated MTOCs
  • Other cellular MTOCs

30. Microtubule Stabilization

Some proteins stabilize microtubules by reducing depolymerization.

Stabilization is important for:

  • Long-range transport
  • Cell polarity
  • Axonal architecture
  • Mitotic spindle organization

Microtubule dynamics must be balanced rather than simply maximized.


31. Intermediate Filament Regulation

Intermediate filaments differ from actin and microtubules because they do not have the same pronounced plus/minus polarity.

Examples:

  • Keratins
  • Vimentin
  • Desmin
  • Neurofilaments
  • Lamins

Their major function is mechanical stability.


32. Intermediate Filament Assembly

A simplified assembly pathway:

Monomer
  ↓
Dimer
  ↓
Tetramer
  ↓
Unit-length filament
  ↓
Intermediate filament

The assembly is highly dynamic despite their mechanical stability.


33. Phosphorylation and Intermediate Filaments

Intermediate filament organization can be regulated by phosphorylation.

For example:

Kinase
  ↓
IF phosphorylation
  ↓
Altered filament organization
  ↓
Reorganization

This is particularly important during:

  • Mitosis
  • Cell migration
  • Stress responses

34. Lamins

Nuclear lamins form the nuclear lamina beneath the inner nuclear membrane.

They provide:

  • Mechanical support
  • Nuclear shape
  • Chromatin organization
  • Nuclear-envelope organization
      NUCLEUS
β”Œβ”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”
β”‚ Chromatin           β”‚
β”‚                     β”‚
β”‚                     β”‚
β””β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”˜
═══════════════════════
      Nuclear lamina

35. Cytoskeletal Cross-Linkers

Cross-linking proteins connect filaments to one another.

Examples include:

  • Ξ±-actinin
  • Filamin
  • Spectrin
  • Plectin
Actin ═════════════════
          β”‚
       Cross-linker
          β”‚
Actin ═════════════════

Cross-linking produces mechanically and functionally specialized networks.


36. Cytoskeleton–Membrane Linkers

Proteins connect cytoskeletal filaments to the plasma membrane.

Examples:

  • Spectrin
  • ERM proteins
  • Talin
  • Vinculin
  • Dystrophin

This allows mechanical and signaling information to be transmitted between the membrane and cytoskeleton.


37. Focal Adhesions

Focal adhesions connect:

Extracellular matrix β†’ integrin β†’ cytoskeleton

      ACTIN
══════════════════
       β”‚
    Vinculin
       β”‚
     Talin
       β”‚
    Integrin
       β”‚
══════════════════
       ECM

They function as both:

  • Adhesion structures
  • Mechanosensing/signaling platforms

38. Mechanotransduction

Cells sense mechanical forces through the cytoskeleton.

Mechanical force
       ↓
Integrin / adhesion
       ↓
Actin cytoskeleton
       ↓
Mechanosensitive proteins
       ↓
Signal transduction
       ↓
Gene expression

Thus the cytoskeleton is not simply a structural framework.

It is also a mechanochemical signaling system.


39. Cytoskeleton and Molecular Motors

The cytoskeleton provides tracks for molecular motors.

Microtubules

  • Kinesin
  • Dynein

Actin

  • Myosin
CYTOSKELETON
     β”‚
 β”Œβ”€β”€β”€β”΄β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”
 ↓               ↓
Microtubules     Actin
 ↓               ↓
Kinesin          Myosin
Dynein

40. Cytoskeleton and Cell Migration

Migration requires coordination of all three major cytoskeletal systems.

Signal
  ↓
Polarity
  ↓
Actin protrusion
  ↓
Adhesion
  ↓
Microtubule organization
  ↓
Myosin contraction
  ↓
Rear detachment
  ↓
CELL MOVEMENT

41. Cytoskeleton in Cytokinesis

During animal-cell cytokinesis:

      CELL
   β”Œβ”€β”€β”€β”€β”€β”€β”€β”€β”€β”
   β”‚         β”‚
   β”‚   DNA   β”‚
   β”‚         β”‚
   β””β”€β”€β”€β”€β”¬β”€β”€β”€β”€β”˜
        β”‚
    Actomyosin
     contractile
        ring
        ↓
   Furrow ingression
        ↓
   Two daughter cells

The contractile ring contains:

  • Actin
  • Myosin II
  • Regulatory proteins

42. Cytoskeleton in Mitosis

Microtubules form the mitotic spindle.

Three major categories are:

  • Kinetochore microtubules
  • Interpolar microtubules
  • Astral microtubules
      Centrosome
          ●
         /|\
        / | \
       /  |  \
      /   |   \
     X    X    X
      \   |   /
       \  |  /
        \ | /
         \|/
          ●
      Centrosome

43. Cytoskeleton and Cell Polarity

The cytoskeleton both responds to and establishes polarity.

Polarity signals
      ↓
Rho GTPases
      ↓
Cytoskeletal remodeling
      ↓
Directional transport
      ↓
Cell polarity
      ↓
Localized signaling
      ↓
Further cytoskeletal remodeling

This creates feedback.


44. Cytoskeleton and Cell Signaling

Many signaling pathways directly regulate cytoskeletal dynamics.

Important regulators include:

  • Rho-family GTPases
  • PI3K
  • PAK
  • ROCK
  • LIMK
  • Src-family kinases
  • FAK
Growth factor
     ↓
Receptor
     ↓
Ras / PI3K / Rho pathways
     ↓
Cytoskeletal regulators
     ↓
Actin / microtubules
     ↓
Cell behavior

45. Temporal and Spatial Regulation

A crucial Master’s-level concept is that cytoskeletal regulation is both:

Spatial

Different regions of the same cell can contain different cytoskeletal structures.

Temporal

The cytoskeleton changes rapidly in response to signals.

                 CYTOSKELETAL REGULATION

                   SPATIAL
                      +
                   TEMPORAL
                      ↓
             DYNAMIC ORGANIZATION
                      ↓
        Precise cellular responses

46. Cytoskeletal Feedback Loops

Cytoskeletal systems regulate signaling, while signaling regulates cytoskeletal systems.

Signal
  ↓
Cytoskeleton
  ↓
Membrane organization
  ↓
Receptor localization
  ↓
Signal amplification
  ↓
More cytoskeletal remodeling

This explains why cytoskeletal organization can become highly polarized and persistent.


47. Actin–Microtubule Crosstalk

Actin and microtubules do not operate independently.

They communicate through:

  • Cross-linking proteins
  • +TIP proteins
  • Motor proteins
  • Rho-family GTPases
  • Adhesion complexes
ACTIN ═════════════════
          β•²
           β•² Crosstalk
            β•²
             β•‘
             β•‘
             β•‘
MICROTUBULE ═════════════

Their coordination is essential for:

  • Migration
  • Polarity
  • Division
  • Vesicular transport

48. Cytoskeletal Regulation During Migration

A simplified sequence:

External signal
      ↓
Cdc42 establishes polarity
      ↓
Rac activates protrusion
      ↓
Arp2/3 β†’ branched actin
      ↓
Leading edge
      ↓
Adhesion formation
      ↓
Microtubule reorganization
      ↓
RhoA β†’ ROCK β†’ myosin II
      ↓
Rear contraction
      ↓
Migration

49. Pharmacological Regulation

Cytoskeletal dynamics can be experimentally manipulated using drugs.

Actin-associated agents

  • Cytochalasins
  • Latrunculins
  • Jasplakinolide

Microtubule-associated agents

  • Nocodazole
  • Colchicine
  • Taxanes

These compounds are widely used in experimental cell biology.


50. Microtubule Stabilizing vs Destabilizing Agents

CategoryExamplesGeneral effect
Microtubule destabilizersNocodazole, colchicinePromote microtubule loss
Microtubule stabilizersPaclitaxelStabilize microtubules
Actin destabilizersCytochalasin, latrunculinReduce actin polymerization
Actin stabilizing agentJasplakinolideStabilizes actin filaments

These drugs are useful tools for studying cytoskeletal dynamics.


51. Cytoskeletal Regulation and Disease

Abnormal cytoskeletal regulation is associated with:

  • Cancer
  • Neurodegenerative diseases
  • Muscular disorders
  • Cardiomyopathies
  • Ciliopathies
  • Developmental disorders
  • Cell-migration abnormalities

52. Cancer

Cancer cells frequently exhibit altered:

  • Actin organization
  • Focal adhesion dynamics
  • Rho GTPase signaling
  • Microtubule organization
  • Intermediate filament expression

These changes can promote:

  • Migration
  • Invasion
  • Metastasis
  • Abnormal division

53. Neurodegeneration

Microtubule-associated proteins are particularly important in neurons.

Abnormal regulation of proteins such as tau can disrupt:

  • Axonal transport
  • Microtubule stability
  • Neuronal architecture

This links cytoskeletal biology to neurodegenerative disease mechanisms.


54. Integrated Cytoskeletal Regulatory Network

                    EXTERNAL SIGNAL
                          β”‚
                          ↓
                      RECEPTOR
                          β”‚
             β”Œβ”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”Όβ”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”
             ↓            ↓            ↓
           PI3K        Rho GTPases     Src/FAK
             β”‚            β”‚            β”‚
             β”‚       β”Œβ”€β”€β”€β”€β”Όβ”€β”€β”€β”€β”       β”‚
             β”‚       ↓    ↓    ↓       β”‚
             β”‚     Cdc42 Rac  RhoA      β”‚
             β”‚       β”‚    β”‚    β”‚        β”‚
             β”‚       ↓    ↓    ↓        β”‚
             β”‚     Actin Actin Myosin   β”‚
             β”‚       β”‚    β”‚    β”‚        β”‚
             β””β”€β”€β”€β”€β”€β”€β”€β”΄β”€β”€β”€β”€β”Όβ”€β”€β”€β”€β”΄β”€β”€β”€β”€β”€β”€β”€β”€β”˜
                          ↓
                 CYTOSKELETAL NETWORK
                          β”‚
          β”Œβ”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”Όβ”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”
          ↓               ↓                ↓
        ACTIN         MICROTUBULES    INTERMEDIATE
                                        FILAMENTS
          β”‚               β”‚                β”‚
       Shape          Transport        Mechanical
       Migration      Polarity         stability
       Division       Mitosis
          β”‚               β”‚                β”‚
          β””β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”Όβ”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”˜
                          ↓
                  CELLULAR BEHAVIOR

55. High-Yield Comparison

FeatureActinMicrotubulesIntermediate filaments
SubunitActinΞ±/Ξ²-tubulinIF proteins
Diameter~7 nm~25 nm~10 nm
PolarityYesYesGenerally no
Main ATP/GTPATP-actinGTP-tubulinNo equivalent nucleotide-driven polymerization
Major motorMyosinKinesin/dyneinNo conventional motor
Major functionsShape, migration, contractionTransport, spindle, polarityMechanical strength
Major nucleatorsArp2/3, forminsΞ³-TuRCVarious assembly mechanisms
Dynamic behaviorHighHighMore mechanically stable

56. Master’s-Level Concept: Cytoskeletal Regulation Is Energy Dependent

Cytoskeletal remodeling is coupled to cellular energy metabolism.

ATP
 ↓
Actin dynamics
 ↓
Myosin activity
 ↓
Cellular force generation


GTP
 ↓
Tubulin dynamics
 ↓
Microtubule remodeling

Therefore, cytoskeletal behavior is closely linked to cellular energy status.


57. Master’s-Level Concept: Cytoskeleton as a Signaling Platform

The cytoskeleton is not merely a scaffold.

It can:

  • Localize signaling molecules
  • Transmit mechanical forces
  • Control receptor distribution
  • Regulate transcription indirectly
  • Influence organelle positioning
  • Determine cell shape

Thus:

The cytoskeleton is simultaneously a structural, transport, mechanical, and signaling system.


58. Master’s-Level Concept: Mechanochemical Feedback

Cells convert biochemical signals into mechanical responses and mechanical information back into biochemical signals.

BIOCHEMICAL SIGNAL
       ↓
Cytoskeletal remodeling
       ↓
Mechanical force
       ↓
Mechanosensitive signaling
       ↓
Gene expression / signaling
       ↓
Further cytoskeletal remodeling

This is called mechanochemical feedback.


59. Short Examination Answer

Cytoskeletal Regulation

Cytoskeletal regulation refers to the coordinated control of the assembly, disassembly, organization, stability and interactions of actin filaments, microtubules and intermediate filaments. It is essential for maintaining cell shape, polarity, migration, intracellular transport, mitosis and cytokinesis.

Actin dynamics are regulated by nucleators such as the Arp2/3 complex and formins, capping proteins, profilin, cofilin and Rho-family GTPases. Rac promotes branched actin formation through WAVE–Arp2/3 signaling, Cdc42 regulates polarity and actin remodeling, whereas RhoA promotes actomyosin contractility through ROCK and myosin II.

Microtubule dynamics are regulated by Ξ³-tubulin-dependent nucleation, GTP-dependent polymerization, dynamic instability, microtubule-associated proteins, plus-end tracking proteins and severing proteins such as katanin and spastin. Intermediate filaments provide mechanical stability and are regulated through assembly dynamics and post-translational modifications such as phosphorylation.

Cytoskeletal systems communicate extensively with each other and with membrane-associated signaling complexes. This integration enables cells to convert extracellular signals into spatially and temporally controlled changes in morphology, movement, transport and division.


60. Viva Questions

Q1. What are the three major cytoskeletal systems?
Actin filaments, microtubules and intermediate filaments.

Q2. Which cytoskeletal systems have intrinsic polarity?
Actin filaments and microtubules.

Q3. What is dynamic instability?
The alternating growth and shrinkage of microtubules.

Q4. What is actin treadmilling?
Addition of actin subunits at one end with loss at the other.

Q5. What does Arp2/3 do?
It nucleates branched actin filaments.

Q6. What do formins do?
They promote nucleation and elongation of linear actin filaments.

Q7. What is the function of cofilin?
It promotes actin filament turnover through severing and depolymerization.

Q8. What is the role of profilin?
It regulates G-actin availability and supports actin polymerization.

Q9. What are the three major Rho-family GTPases?
RhoA, Rac and Cdc42.

Q10. Which GTPase is associated with lamellipodia?
Rac.

Q11. Which GTPase promotes actomyosin contractility?
RhoA.

Q12. Which GTPase is strongly associated with polarity?
Cdc42.

Q13. What is Ξ³-TuRC?
A Ξ³-tubulin-containing complex that nucleates microtubules.

Q14. What are kinesin and dynein?
Microtubule-based molecular motors.

Q15. What is the major actin-based motor?
Myosin.

Q16. What is the function of katanin?
Microtubule severing.

Q17. What is mechanotransduction?
Conversion of mechanical forces into biochemical signaling responses.

Q18. Why is cytoskeletal crosstalk important?
It coordinates polarity, migration, trafficking, adhesion and cell division.


61. One-Minute Revision

                         CYTOSKELETAL REGULATION
                                  β”‚
          β”Œβ”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”Όβ”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”
          ↓                       ↓                       ↓
        ACTIN                MICROTUBULES         INTERMEDIATE
                                                   FILAMENTS
          β”‚                       β”‚                       β”‚
     Arp2/3 + formins         Ξ³-TuRC                 Assembly
     Profilin                 MAPs                    Phosphorylation
     Cofilin                  EB proteins             Stability
     Capping                  Katanin
          β”‚                       β”‚
          ↓                       ↓
     RhoA / Rac / Cdc42       GTP dynamics
          β”‚                       β”‚
          ↓                       ↓
      Migration               Transport
      Polarity                Spindle
      Cytokinesis             Polarity
          β”‚                       β”‚
          β””β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”¬β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”˜
                      ↓
              CYTOSKELETAL CROSSTALK
                      ↓
       β”Œβ”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”Όβ”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”€β”
       ↓              ↓              ↓
   Cell shape      Migration      Transport
       ↓              ↓              ↓
     Division       Polarity      Signaling
                      ↓
               CELL FUNCTION

Core memory rule

Arp2/3 β†’ branched actin
Formin β†’ linear actin
Profilin β†’ actin assembly
Cofilin β†’ actin turnover
Rac β†’ protrusion
Cdc42 β†’ polarity
RhoA β†’ contractility
Ξ³-TuRC β†’ microtubule nucleation
EB1 β†’ growing microtubule ends
Katanin β†’ microtubule severing
Myosin β†’ actin-based force
Kinesin/dynein β†’ microtubule-based transport

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