Master’s-Level Cell Biology & Advanced Molecular Biology Notes
1. Definition
The actin cytoskeleton is a dynamic network of actin filaments (microfilaments) distributed throughout the cytoplasm.
It provides structural support and participates in:
- Cell shape and polarity
- Cell migration
- Cell adhesion
- Cytokinesis
- Endocytosis
- Exocytosis
- Vesicular trafficking
- Muscle contraction
- Mechanotransduction
- Cellβcell and cellβmatrix interactions
Unlike a static structural scaffold, the actin cytoskeleton is a highly dynamic, regulated system that continuously undergoes polymerization, depolymerization and remodeling.
2. Organization of the Cytoskeleton
The cytoskeleton consists of three major filament systems:
| Component | Approx. diameter | Major function |
|---|---|---|
| Actin filaments | ~7 nm | Cell shape, movement, contraction |
| Intermediate filaments | ~10 nm | Mechanical strength |
| Microtubules | ~25 nm | Intracellular transport, mitosis |
CYTOSKELETON
β
ββββββββββββββββΌβββββββββββββββ
β β β
ACTIN INTERMEDIATE MICROTUBULES
~7 nm ~10 nm ~25 nm
β β β
β β β
Movement Strength Transport
Cortex Stability Mitosis
Contractility Polarity
3. Actin Structure
Actin exists in two major forms:
G-actin
Globular actin
A soluble monomer.
F-actin
Filamentous actin
A polymer composed of actin monomers.
G-actin + G-actin + G-actin
β
Polymerization
β
F-actin filament
4. Actin Monomer
G-actin is a globular protein of approximately 42 kDa.
Each actin monomer binds a nucleotide, usually:
ATP or ADP
The nucleotide state influences actin polymerization and filament stability.
5. F-Actin
F-actin is a helical polymer formed from G-actin monomers.
A simplified representation:
G G G
/ \ / \ / \
G G---G G---G G
\ / \ / \ /
G G G
Actin filaments are polar structures.
They have:
- Plus (+) end
- Minus (β) end
6. Actin Filament Polarity
The two ends behave differently.
Plus end
Usually polymerizes more rapidly.
Minus end
Usually polymerizes more slowly and depolymerizes more readily.
Minus end Plus end
(β) (+)
β β
βββββββββββββββββ
β β
Slower dynamics Faster dynamics
This polarity is crucial for:
- Cell migration
- Vesicle movement
- Cytokinesis
- Polarized cell organization
7. Actin Polymerization
Actin polymerization can be divided conceptually into three phases:
- Nucleation
- Elongation
- Steady state
G-actin
β
Nucleation
β
Small actin nucleus
β
Elongation
β
Long F-actin
β
Steady state
8. Nucleation
Nucleation is the formation of a stable initial actin oligomer.
It is the rate-limiting stage of spontaneous actin polymerization.
G-actin
G G
\ /
G
β
Nucleus
β
Filament growth
Cells use specialized proteins to make nucleation more efficient.
9. Actin Nucleators
Important actin nucleation systems include:
Arp2/3 complex
Produces branched actin networks.
Formins
Promote formation of linear/unbranched actin filaments.
ACTIN NUCLEATORS
βββββββββββββββββ
β β
Arp2/3 Formins
β β
β β
Branched network Linear filaments
10. Arp2/3 Complex
The Arp2/3 complex contains seven protein subunits, including Arp2 and Arp3.
It nucleates new actin filaments from the sides of existing filaments.
The resulting branches are typically approximately 70Β° from the mother filament.
Mother filament
ββββββββββββββββββββββββ
\
\
\
\
β
Branch
This is important in:
- Lamellipodia
- Endocytosis
- Cell migration
- Membrane protrusion
11. Formins
Formins promote nucleation and elongation of linear actin filaments.
They are particularly important in:
- Stress fibers
- Filopodia
- Cytokinetic structures
- Contractile actomyosin systems
Simplified:
Formin
β
Linear actin nucleation
β
Processive elongation
β
Long actin filament
12. Actin Treadmilling
A major concept in actin biology is treadmilling.
At steady state:
- Actin is added preferentially at the plus end.
- Actin is lost preferentially at the minus end.
PLUS END
β
G-actin added
β
βββββββββββββββ
β
G-actin lost
β
MINUS END
The filament can therefore maintain approximately constant length while its subunits move through it.
13. ATP-Actin and ADP-Actin
New actin monomers generally bind ATP.
After incorporation into the filament:
ATP β ADP + Pi
The nucleotide state influences filament stability.
Simplified:
ATP-actin
β
Polymerization
β
F-actin-ATP
β
ATP hydrolysis
β
ADP-Pi actin
β
Pi release
β
ADP-actin
14. Actin ATP Hydrolysis
Actin’s nucleotide hydrolysis is not primarily used like ATP hydrolysis in a motor protein.
Instead, ATP hydrolysis changes the biochemical properties and stability of actin subunits within the filament.
This helps generate differences between older and newly assembled filament regions.
15. Dynamic Instability vs Actin Treadmilling
Do not confuse actin treadmilling with the dynamic instability characteristic of microtubules.
Actin
Commonly exhibits:
Treadmilling
Microtubules
Characteristically exhibit:
Dynamic instability
ACTIN
Addition (+) β filament β loss (β)
MICROTUBULE
Growth β catastrophe β shrinkage β rescue
16. Actin-Binding Proteins
Actin filaments are regulated by numerous actin-binding proteins (ABPs).
They control:
- Nucleation
- Polymerization
- Depolymerization
- Bundling
- Branching
- Severing
- Capping
- Cross-linking
ACTIN
β
ββββββββββββββΌβββββββββββββ
β β β
Nucleation Capping Severing
β β β
Branching Stability Remodeling
17. Profilin
Profilin is an actin-binding protein that promotes actin assembly by interacting with G-actin.
It can facilitate:
- ATP-actin formation
- Actin monomer delivery
- Formin-mediated filament elongation
Conceptually:
G-actin
β
Profilin
β
Actin assembly
β
F-actin
18. Thymosin Ξ²4
Thymosin Ξ²4 binds actin monomers and helps regulate the pool of available G-actin.
It can therefore act as an actin monomer-sequestering factor.
19. Capping Proteins
Capping proteins bind filament ends and regulate actin growth or shortening.
Two conceptual types:
Plus-end capping
Limits addition of new actin subunits.
Minus-end capping
Limits loss or addition at the minus end.
Cap
β
βββββββββ
β
Protected end
Capping allows cells to control filament length and organization.
20. Cofilin
Cofilin is a major actin-remodeling protein.
It preferentially interacts with older ADP-actin-rich filament regions.
Functions include:
- Actin filament severing
- Promotion of depolymerization
- Recycling of actin subunits
Long filament
βββββββββββββ
β
Cofilin
β
Severing/remodeling
β
Shorter filaments + monomers
21. ADF/Cofilin Family
ADF = Actin depolymerizing factor
ADF/cofilin proteins regulate actin turnover.
They are especially important during:
- Cell migration
- Membrane remodeling
- Cytoskeletal recycling
22. Profilin vs Cofilin
| Protein | Major function |
|---|---|
| Profilin | Promotes actin monomer utilization/polymerization |
| Cofilin | Promotes filament turnover and remodeling |
| Thymosin Ξ²4 | Sequesters actin monomers |
| Capping proteins | Regulate filament ends |
| Arp2/3 | Branched nucleation |
| Formins | Linear filament nucleation/elongation |
23. Actin Networks
Actin filaments can be organized into different architectures.
Major forms include:
- Branched networks
- Parallel bundles
- Contractile bundles
- Cortical networks
- Three-dimensional meshworks
ACTIN ARCHITECTURE
Branched Parallel Contractile
\ ||||| ||||
ββββ\ββ ||||||| βββββββ
βββββ\β ||||||| βββββββ
24. Lamellipodia
Lamellipodia are broad, sheet-like actin-rich protrusions at the leading edge of migrating cells.
They contain dense branched actin networks.
Direction of movement β
βββββββββββββββββ
/ \ / \ / \ / \
Cell body | /\/\/\/\/\/\/
\________________
β
Lamellipodium
Arp2/3-mediated branching is particularly important.
25. Filopodia
Filopodia are thin, finger-like membrane protrusions containing parallel bundles of actin filaments.
They function in:
- Environmental sensing
- Cell migration
- Cell adhesion
- Guidance
Cell
ββββββββ
ββββββββββββββ
ββββββββββββββββ
βββββββββββββββ
β
Filopodia
Formins and actin-bundling proteins are important in filopodial formation.
26. Stress Fibers
Stress fibers are contractile actin structures found in many adherent cells.
They contain:
- Actin filaments
- Myosin II
- Cross-linking proteins
They connect functionally with focal adhesions.
Actin βββββββββββββββ
β
Myosin II
β
Contractility
β
Focal adhesion
27. Actomyosin System
Actin interacts with myosin motor proteins to generate force.
Actin filament
ββββββββββββββββββββ
β β
Myosin Myosin
β β
Mechanical force
This produces:
- Contraction
- Cell movement
- Cytokinesis
- Muscle contraction
28. Myosin II
Myosin II is a major contractile motor.
It contains:
- Motor heads
- Neck region
- Tail region
Its motor heads bind actin and use ATP hydrolysis to generate movement.
ATP
β
Myosin conformational cycle
β
Actin interaction
β
Force generation
β
Sliding
29. ActinβMyosin Sliding
The basic mechanism resembles muscle contraction.
Actin filament
βββββββββββββββββββββ
Myosin
β
<======
β
Movement
Relative sliding between actin filaments and myosin generates contractile force.
30. Muscle Contraction
In skeletal muscle, actin is associated with the thin filament.
Major components include:
- Actin
- Tropomyosin
- Troponin
Thin filament
Actin + Tropomyosin + Troponin
β
CaΒ²βΊ signal
β
Myosin binding
β
Contraction
31. Cortical Actin
A dense actin network exists immediately beneath the plasma membrane.
This is called the:
cell cortex
Functions include:
- Cell shape
- Membrane stability
- Cell polarity
- Endocytosis
- Exocytosis
- Mechanical sensing
Plasma membrane
ββββββββββββββββββ
Actin cortex
ββββββββββββββββββ
Cytoplasm
32. Actin and Cell Shape
Actin networks allow cells to dynamically change shape.
For example:
Round cell
β
Actin remodeling
β
Protrusion
β
Polarization
β
Elongated/migrating cell
This is essential for:
- Development
- Immune responses
- Wound healing
- Cancer cell invasion
33. Actin in Cell Migration
Cell migration requires coordinated actin dynamics.
A simplified cycle:
1. Protrusion
β
2. Adhesion
β
3. Cell-body contraction
β
4. Rear release
β
5. Forward movement
Actin polymerization at the leading edge pushes the plasma membrane forward.
34. Rho Family GTPases and Actin
A major molecular regulatory system involves:
- Rho
- Rac
- Cdc42
These small GTPases regulate different aspects of actin organization.
Simplified:
Rho
β
Contractile actin structures
Rac
β
Lamellipodia
Cdc42
β
Filopodia/polarity
This is a simplified framework; their functions overlap and depend on cellular context.
35. Actin and Endocytosis
Actin contributes to membrane deformation during endocytosis.
Plasma membrane
β
Membrane invagination
β
Actin assembly
β
Neck constriction/remodeling
β
Vesicle formation
This is especially important in cells where membrane tension or cargo geometry makes actin assistance necessary.
36. Actin and Exocytosis
Actin also regulates secretory trafficking.
The actin cortex can act as:
- A barrier
- A trafficking platform
- A structural organizer
Local actin remodeling can permit secretory vesicles to access the plasma membrane.
37. Actin and Vesicular Transport
Unlike microtubules, which often mediate long-range intracellular transport, actin is particularly important for short-range transport near the cell cortex.
Microtubules
β
Long-range transport
β
Cell periphery
β
Actin network
β
Short-range transport
β
Plasma membrane
Myosin motors mediate movement along actin.
38. ActinβMyosin Transport
Different myosin proteins transport specific cargos.
Cargo
β
Myosin
β
Actin filament
ββββββββββββββββββββ
β
Cargo movement
This creates a functional relationship between:
actin β myosin β cargo transport
39. Actin in Cytokinesis
During animal-cell cytokinesis, actin and myosin form the:
contractile ring
Cell
βββββββββββββ
β β
β βββββββ β
β Actin + β
β Myosin β
β ring β
βββββββββββββ
The ring contracts and helps produce the cleavage furrow.
40. Cytokinetic Ring
Sequence:
Actin + Myosin II
β
Contractile ring assembly
β
Ring constriction
β
Cleavage furrow
β
Daughter-cell separation
This is a classic example of actomyosin-generated force.
41. Actin and Cell Adhesion
Actin interacts with cell-adhesion structures.
Cellβmatrix adhesion
Actin connects functionally to integrins through focal adhesion complexes.
Cellβcell adhesion
Actin connects to cadherin-based adherens junctions.
Actin
β
Adaptor proteins
β
Adhesion complex
β
Cadherin / Integrin
β
Extracellular environment
42. Focal Adhesions
Focal adhesions connect:
extracellular matrix β integrins β intracellular proteins β actin cytoskeleton
ECM
β
Integrin
β
Focal adhesion proteins
β
Actin
ββββββββββββββββββ
They function in:
- Adhesion
- Mechanotransduction
- Migration
- Signaling
43. Adherens Junctions
At adherens junctions:
Cadherins connect neighboring cells.
Intracellular adaptor proteins connect cadherins to actin.
Cell A Cell B
Actin Actin
β β
Adaptor Adaptor
β β
Cadherin βββββββββββββ Cadherin
β
Cell-cell adhesion
44. Actin and Mechanotransduction
Actin networks can sense and transmit mechanical forces.
Mechanical force
β
Adhesion complex
β
Actin cytoskeleton
β
Conformational/signaling changes
β
Cellular response
This process is known as mechanotransduction.
45. Actin and Cell Polarity
Actin organization contributes to establishment and maintenance of cell polarity.
This is particularly important in:
- Epithelial cells
- Migrating cells
- Neurons
- Developing tissues
Cell polarity
β
Localized signaling
β
Localized actin remodeling
β
Directed membrane trafficking
β
Polarized cell behavior
46. Actin in Neurons
Actin is highly abundant in neuronal structures including:
- Growth cones
- Dendritic spines
- Axonal regions
- Synaptic terminals
It contributes to:
- Neurite extension
- Synaptic plasticity
- Spine remodeling
- Membrane trafficking
47. Dendritic Spines
Dendritic spines contain dynamic actin networks.
Actin remodeling contributes to changes in spine:
- Size
- Shape
- Stability
These changes are important in synaptic plasticity.
48. Actin in the Growth Cone
The neuronal growth cone uses actin-rich structures to sense environmental cues and direct axon growth.
Axon
ββββββββ
\ | /
\ | /
Growth cone
actin-rich
Filopodia and lamellipodia-like structures explore the extracellular environment.
49. Actin Cross-Linking Proteins
Cross-linking proteins organize individual actin filaments into networks or bundles.
Examples include:
- Ξ±-actinin
- Filamin
- Fimbrin
- Fascin
Different proteins generate different architectures.
Individual filaments
β β β β β β
β β β β β β
Cross-linking
β
Bundle/network
50. Bundles vs Networks
Parallel bundle
Filaments arranged in parallel.
Common in:
- Filopodia
Contractile bundle
Antiparallel actin filaments with myosin.
Common in:
- Stress fibers
- Contractile structures
Branched network
Dense branched architecture.
Common in:
- Lamellipodia
51. Major Actin Structures
| Structure | Organization | Major function |
|---|---|---|
| Lamellipodium | Branched network | Cell migration |
| Filopodium | Parallel bundles | Sensing/protrusion |
| Stress fiber | Contractile bundles | Tension/adhesion |
| Cortex | Dense meshwork | Cell shape |
| Contractile ring | Actomyosin ring | Cytokinesis |
| Microvilli | Parallel bundles | Surface-area expansion |
52. Microvilli
Microvilli contain parallel actin bundles.
They increase the surface area of cells such as intestinal epithelial cells.
Microvilli
β β β β β β
β β β β β β
βββββββββββββ΄ββ΄ββ΄ββ΄ββ΄ββ΄ββββ
Cell
Actin filaments provide structural support.
53. Actin and Membrane Curvature
Actin polymerization can generate mechanical forces against the plasma membrane.
Actin polymerization
β
Mechanical force
β
Membrane deformation
β
Protrusion
Conversely, membrane curvature can also influence actin assembly.
Thus, actin and membrane geometry form a bidirectional feedback system.
54. ActinβMembrane Feedback
A sophisticated concept:
Membrane signal
β
Actin assembly
β
Force generation
β
Membrane deformation
β
New signaling environment
β
Further actin remodeling
This feedback is important in migration, endocytosis and cell morphogenesis.
55. Regulation by Rho GTPases
RhoA
Promotes:
- Stress fibers
- Actomyosin contractility
- Contractile structures
Rac1
Promotes:
- Lamellipodia
- Branched actin networks
Cdc42
Promotes:
- Filopodia
- Polarity signaling
RHO FAMILY
β
ββββββββββΌβββββββββ
β β β
RhoA Rac1 Cdc42
β β β
Contractile Lamelli- Filopodia/
structures podia polarity
56. Actin Regulation by Phosphoinositides
Phosphoinositides in the plasma membrane can recruit actin-regulatory proteins.
For example, PIP2 participates in regulation of several actin-binding proteins and membrane-associated signaling processes.
PIP2-rich membrane
β
Actin regulators
β
Local actin assembly
β
Membrane remodeling
57. Actin and Membrane Trafficking
Actin interacts with the trafficking systems discussed previously.
Rab
β
Vesicle targeting
β
Actin-associated machinery
β
Myosin
β
Short-range transport
β
SNARE-mediated fusion
Therefore, actin is an important component of the broader membrane-trafficking network.
58. Actin and SNARE-Dependent Exocytosis
At the cell cortex:
Secretory vesicle
β
Rab
β
Actin/myosin-dependent positioning
β
Tethering
β
SNARE complex
β
Fusion
Actin can therefore influence where and when secretory vesicles reach the plasma membrane, while SNAREs execute fusion.
59. Actin vs Microtubules
| Feature | Actin | Microtubules |
|---|---|---|
| Diameter | ~7 nm | ~25 nm |
| Monomer | Actin | Tubulin |
| Motor | Myosin | Kinesin/dynein |
| Major ATP/GTP | ATP-actin | GTP-tubulin |
| Polarity | Yes | Yes |
| Typical role | Cortex, movement, contraction | Long-range transport, mitosis |
| Major dynamic behavior | Treadmilling | Dynamic instability |
| Cytokinesis | Contractile ring | Spindle |
60. Actin vs Intermediate Filaments
| Feature | Actin | Intermediate filaments |
|---|---|---|
| Diameter | ~7 nm | ~10 nm |
| Major role | Movement/dynamics | Mechanical strength |
| Polarity | Polar | Generally nonpolar |
| Motors | Myosin | No conventional motor |
| Major function | Remodeling | Structural resilience |
61. Actin and Disease
Abnormal actin regulation is associated with:
- Cancer invasion
- Metastasis
- Cardiovascular disease
- Neurological disorders
- Immunological dysfunction
- Developmental abnormalities
- Muscle diseases
Cancer cells, for example, frequently remodel actin to increase migration and invasion.
Altered actin regulation
β
Cell polarity/motility changes
β
Increased migration
β
Potential invasion/metastasis
62. Actin and Pathogens
Some pathogens manipulate host actin.
They can induce:
- Actin polymerization
- Cytoskeletal rearrangement
- Cellular invasion
- Intracellular movement
This demonstrates that actin is also an important interface between host cells and pathogens.
63. Integrated Actin Regulatory Network
EXTRACELLULAR SIGNAL
β
β
Rho GTPases
β
ββββββββββββββΌβββββββββββββ
β β β
RhoA Rac1 Cdc42
β β β
β β β
Contractility Lamellipodia Filopodia
β β β
ββββββββββββββΌβββββββββββββ
β
ACTIN REMODELING
β
ββββββββββββββββΌβββββββββββββββ
β β β
Migration Adhesion Endocytosis
β β β
ββββββββββββββββΌβββββββββββββββ
β
Cellular behavior
64. Master-Level Concept: Actin Is a Dynamic Material
The actin cytoskeleton should not be considered merely a collection of rigid rods.
It behaves as a dynamic, viscoelastic network whose:
- Filament density
- Connectivity
- Cross-linking
- Polymerization
- Contractility
- Attachment to membranes
can change rapidly.
This allows cells to adapt mechanically and structurally to their environment.
65. Master-Level Concept: Polymerization Generates Force
Actin polymerization can itself generate mechanical force.
G-actin
β
Polymerization
β
F-actin elongation
β
Membrane pushing
β
Cell protrusion
This principle is fundamental to:
- Lamellipodia formation
- Cell migration
- Phagocytosis
- Intracellular pathogen movement
66. Master-Level Concept: Actomyosin Generates Contractile Force
Polymerization is not the only mechanism by which actin generates force.
The actinβmyosin system produces active contractility.
Actin
+
Myosin II
β
ATP hydrolysis
β
Filament sliding
β
Contractile force
Thus, two major mechanical strategies are:
Actin polymerization β protrusive force
Actomyosin interaction β contractile force
67. Master-Level Concept: Actin Homeostasis
Cells must maintain an appropriate balance between:
G-actin β F-actin
G-actin
β
F-actin
This is controlled by:
- Profilin
- Thymosin Ξ²4
- Cofilin
- Capping proteins
- Nucleators
- Severing proteins
- Actin-depolymerizing factors
Disruption of this balance can profoundly alter cellular morphology.
68. High-Yield Examination Summary
Actin exists as:
G-actin β monomer
F-actin β filament
Actin filaments are:
Polar
Major nucleators:
Arp2/3 β branched networks
Formins β linear filaments
Major regulatory proteins:
Profilin β promotes monomer utilization
Cofilin β turnover/severing
Capping proteins β regulate filament ends
Major motor:
Myosin
Major structures:
Lamellipodia, filopodia, stress fibers, cortex, contractile ring, microvilli
Major signaling regulators:
Rho, Rac, Cdc42
69. Examination Short Note
Actin Cytoskeleton
The actin cytoskeleton is a highly dynamic network of approximately 7-nm actin filaments that plays essential roles in cell shape, migration, adhesion, intracellular trafficking, endocytosis, exocytosis, cytokinesis and mechanotransduction. Actin exists as soluble G-actin and polymerized F-actin. F-actin is a polar filament with distinct plus and minus ends and undergoes regulated polymerization, depolymerization and treadmilling.
Actin nucleation is regulated by proteins such as the Arp2/3 complex, which generates branched networks, and formins, which promote linear filament assembly. Actin dynamics are controlled by numerous actin-binding proteins, including profilin, cofilin, capping proteins and cross-linking proteins. Actin interacts with myosin motors to generate mechanical force and contractility.
Different actin architectures perform specialized functions. Branched actin networks form lamellipodia, parallel bundles form filopodia and microvilli, contractile actomyosin bundles form stress fibers, and actinβmyosin II forms the cytokinetic contractile ring. Rho-family GTPases, particularly RhoA, Rac1 and Cdc42, provide major upstream regulatory control.
The actin cytoskeleton also interacts with membrane-trafficking machinery, including Rab GTPases, myosin motors and SNARE-dependent exocytosis. Its dynamic nature allows cells to rapidly modify their architecture in response to biochemical and mechanical signals.
70. Viva Questions
Q1. What is the diameter of an actin filament?
Approximately 7 nm.
Q2. What is G-actin?
Globular, soluble actin monomer.
Q3. What is F-actin?
Filamentous polymerized actin.
Q4. Is an actin filament polar?
Yes; it has plus and minus ends.
Q5. What is treadmilling?
Addition of actin subunits preferentially at one end with loss at the other, allowing subunit flux through a filament.
Q6. Which complex produces branched actin networks?
Arp2/3 complex.
Q7. Which proteins promote linear actin filament formation?
Formins.
Q8. What is the function of cofilin?
Actin filament remodeling, severing and depolymerization.
Q9. Which motor protein interacts with actin?
Myosin.
Q10. What forms the contractile ring during cytokinesis?
Actin and myosin II.
Q11. Which Rho-family GTPase promotes lamellipodia?
Rac1.
Q12. Which promotes stress fibers and contractility?
RhoA.
Q13. Which is associated with filopodia formation and polarity?
Cdc42.
Q14. What is a lamellipodium?
A broad, actin-rich protrusion containing a branched actin network.
Q15. What is a filopodium?
A thin membrane protrusion containing parallel actin bundles.
71. One-Minute Revision Diagram
ACTIN
β
βββββββββββββββ΄ββββββββββββββ
β β
G-ACTIN F-ACTIN
monomer filament
β β
β Polar (+ / β)
β β
β β
Polymerization Treadmilling
β β
βββββββββββββββ¬ββββββββββββββ
β
ACTIN REMODELING
β
ββββββββββββββββββΌβββββββββββββββββ
β β β
Arp2/3 Formin Cofilin
β β β
Branched Linear Turnover
network filaments
β β β
ββββββββββββββββββΌβββββββββββββββββ
β
CELLULAR FORCE
β
βββββββββββββββ΄ββββββββββββββ
β β
Polymerization Myosin
force contractility
β β
β β
Protrusion Contraction
β β
βββββββββββββββ¬ββββββββββββββ
β
Migration / Adhesion /
Endocytosis / Cytokinesis /
Mechanotransduction
Core memory rule
Arp2/3 = branches
Formin = linear filaments
Profilin = actin assembly
Cofilin = actin turnover
Myosin = force
Rac = lamellipodia
Cdc42 = filopodia/polarity
RhoA = contractility/stress fibers