Master’s-Level Cell Biology & Advanced Molecular Biology Notes
1. Definition
Receptor tyrosine kinases (RTKs) are a major family of cell-surface transmembrane receptors that convert extracellular signals into intracellular responses by activating protein tyrosine kinase activity.
RTKs regulate:
- Cell proliferation
- Cell survival
- Differentiation
- Cell migration
- Metabolism
- Growth
- Development
- Angiogenesis
- Tissue repair
Important RTKs include receptors for:
- Epidermal growth factor (EGF)
- Fibroblast growth factors (FGFs)
- Platelet-derived growth factor (PDGF)
- Vascular endothelial growth factor (VEGF)
- Insulin
- Neurotrophins
2. Basic RTK Structure
A typical RTK contains three major regions:
EXTRACELLULAR
β
Ligand-binding
domain
β
βββββββββββββ
β β
β RTK β
β β
βββββββ¬ββββββ
β
Single TM helix
β
βββββββ΄ββββββ
β β
β Tyrosine β
β kinase β
β domain β
βββββββ¬ββββββ
β
Cytoplasmic tail
β
INTRACELLULAR
Major components
- Extracellular ligand-binding domain
- Single transmembrane Ξ±-helix
- Intracellular tyrosine kinase domain
- Cytoplasmic regulatory regions
3. Important Difference from GPCRs
RTKs differ fundamentally from GPCRs.
| Feature | GPCR | RTK |
|---|---|---|
| Transmembrane segments | 7 | Usually 1 |
| Main signaling partner | Heterotrimeric G protein | Protein/adaptor signaling complexes |
| Intrinsic kinase activity | No | Usually yes |
| Major phosphorylation | Various downstream proteins | Tyrosine residues |
| Major pathways | cAMP, IP3/DAG | RASβMAPK, PI3KβAKT, PLCΞ³ |
| Typical function | Broad physiological signaling | Growth, survival, differentiation, metabolism |
4. General RTK Signaling Mechanism
The canonical sequence is:
Ligand
β
RTK binding
β
Receptor dimerization / rearrangement
β
Kinase activation
β
Tyrosine phosphorylation
β
Recruitment of signaling proteins
β
Intracellular signaling cascades
β
Cellular response
5. Step 1 β Ligand Binding
An extracellular ligand binds the receptor.
For example:
EGF β EGFR
EGF
β
βββββββββββ
β RTK β
ββββββ¬βββββ
β
TM
β
Kinase
Ligand binding induces structural rearrangements that promote receptor activation.
6. Step 2 β Receptor Dimerization
Many RTKs become activated by formation of receptor dimers.
Before ligand
RTK RTK
β β
After ligand
Ligand
β
RTK βββ RTK
β
Dimer
Dimerization brings the intracellular kinase domains into proximity.
Important qualification
Not every RTK follows exactly the same activation mechanism. Some receptors can exist as preformed complexes and become activated through ligand-induced conformational rearrangement.
7. Step 3 β Kinase Activation
The intracellular kinase domains become activated.
The receptor then phosphorylates tyrosine residues on the receptor itself.
This is called:
Autophosphorylation
More precisely, in many RTKs it is trans-autophosphorylation, because one receptor kinase phosphorylates the other receptor molecule in the dimer.
RTK-A kinase ββββ Tyr on RTK-B
RTK-B kinase ββββ Tyr on RTK-A
8. ATP and Tyrosine Phosphorylation
The kinase uses ATP as the phosphate donor.
Conceptually:
ATP + protein-Tyr β ADP + protein-Tyr-P
The phosphorylated tyrosines become docking sites for intracellular signaling proteins.
9. Phosphotyrosine Docking Sites
Activated RTKs function as signaling platforms.
Activated RTK
β
βββ Tyr-P
βββ Tyr-P
βββ Tyr-P
β
ββββ Adaptor protein
ββββ Enzyme
ββββ Scaffold
ββββ Signaling complex
Proteins recognize phosphorylated tyrosines through specialized domains.
10. SH2 and PTB Domains
Two important phosphotyrosine-recognition modules are:
SH2 domains
Src homology 2 domains
They recognize specific phosphotyrosine-containing sequences.
PTB domains
Phosphotyrosine-binding domains
They can recognize phosphotyrosine-containing motifs in specific sequence contexts.
These interactions provide molecular specificity.
11. Major RTK Signaling Pathways
The three high-yield pathways are:
RTK
β
βββββββββββββββΌβββββββββββββββ
β β β
RASβMAPK PI3KβAKT PLCΞ³
β β β
Proliferation Survival CaΒ²βΊ/PKC
Differentiation Metabolism
12. RASβMAPK Pathway
This is one of the most important RTK pathways.
RTK
β
GRB2
β
SOS
β
RAS-GTP
β
RAF
β
MEK
β
ERK
β
Nucleus
β
Gene expression
This pathway is strongly associated with:
- Cell proliferation
- Differentiation
- Development
13. GRB2
GRB2 = Growth factor receptor-bound protein 2
GRB2 is an adaptor protein.
It contains:
- SH2 domain
- SH3 domains
The SH2 domain binds phosphorylated receptor tyrosines, while SH3 domains interact with proline-rich regions of other proteins such as SOS.
14. SOS and RAS Activation
SOS = Son of Sevenless
SOS functions as a guanine nucleotide exchange factor (GEF) for RAS.
RTK-P
β
GRB2
β
SOS
β
RAS-GDP β RAS-GTP
RAS is a small GTPase.
RAS-GTP = active
RAS-GDP = inactive
15. RAFβMEKβERK Cascade
Active RAS recruits and activates RAF.
RAS-GTP
β
RAF
β
MEK
β
ERK
β
Nucleus
β
Transcription factors
β
Gene expression
This is called the:
MAPK cascade
16. Why Is It Called a Kinase Cascade?
Each kinase activates downstream components through phosphorylation.
RAF
β
MEK
β
ERK
β
Target proteins
This produces:
- Signal amplification
- Signal integration
- Temporal regulation
17. ERK and Gene Expression
Activated ERK can influence nuclear transcription factors.
RTK
β
RAS
β
RAF
β
MEK
β
ERK
β
Nucleus
β
Transcription factors
β
Gene expression
The resulting genes can regulate:
- Cell-cycle progression
- Differentiation
- Growth
- Survival
18. PI3KβAKT Pathway
Another major RTK pathway is:
RTK
β
PI3K
β
PIP3
β
AKT
β
mTOR and other targets
β
Growth / survival / metabolism
19. PI3K
Phosphoinositide 3-kinase (PI3K) phosphorylates membrane phosphoinositides.
A major reaction is:
PIP2 β PIP3
PIP3 acts as a membrane-associated signaling platform.
20. AKT Recruitment
PIP3 recruits proteins containing PH domains, including:
- AKT
- PDK1
This brings signaling proteins into proximity at the plasma membrane.
PI3K
β
PIP3
β
AKT recruitment
β
AKT activation
21. AKT Functions
AKT regulates:
- Cell survival
- Protein synthesis
- Metabolism
- Cell growth
- Apoptosis
- Cell-cycle regulation
One major downstream pathway involves:
mTOR
RTK
β
PI3K
β
AKT
β
mTOR
β
Protein synthesis / growth
22. PTEN β Important Negative Regulator
PTEN is a major antagonist of PI3K signaling.
It converts PIP3 toward PIP2.
Simplified:
PI3K
PIP2 ββββββ PIP3
β
β
PTEN
β
β
PIP2
Thus:
PI3K promotes AKT signaling
PTEN restrains PI3KβAKT signaling
23. PLCΞ³ Pathway
Some RTKs activate:
Phospholipase C-Ξ³ (PLCΞ³)
RTK
β
PLCΞ³
β
PIP2
β
IP3 + DAG
β
CaΒ²βΊ + PKC
β
Cellular response
This resembles the GqβPLCΞ² pathway but uses a different phospholipase:
- GPCR/Gq β PLCΞ²
- RTK β PLCΞ³
24. IP3 and Calcium
IP3 stimulates CaΒ²βΊ release from the ER.
PLCΞ³
β
IP3
β
IP3 receptor on ER
β
CaΒ²βΊ release
β
CaΒ²βΊ-dependent signaling
25. DAG and PKC
DAG remains associated with the membrane.
Together with appropriate cofactors, it promotes activation of protein kinase C isoforms.
PIP2
β
DAG
β
PKC
β
Protein phosphorylation
26. RTK Signaling as a Network
RTKs do not activate a single linear pathway.
A single activated receptor can simultaneously activate several pathways.
RTK
β
ββββββββββββββΌβββββββββββββ
β β β
RAS PI3K PLCΞ³
β β β
MAPK AKT IP3 + DAG
β β β
Proliferation Survival CaΒ²βΊ/PKC
Therefore RTKs function as signaling hubs.
27. EGFR
EGFR = Epidermal Growth Factor Receptor
Also called:
ERBB1 / HER1
EGFR is one of the best-studied RTKs.
Ligands include:
- EGF
- TGF-Ξ±
- Other EGFR-family ligands
EGF
β
EGFR
β
Dimerization
β
Tyrosine phosphorylation
β
RASβMAPK
PI3KβAKT
PLCΞ³
28. ERBB Family
The ERBB/HER family includes:
- EGFR / HER1 / ERBB1
- HER2 / ERBB2
- HER3 / ERBB3
- HER4 / ERBB4
These receptors can form different receptor complexes.
Important point
HER2 has unusual ligand-binding characteristics and is a powerful signaling partner in ERBB receptor complexes.
HER3 has impaired intrinsic kinase activity and can signal effectively through partnership with other ERBB receptors.
29. Insulin Receptor
The insulin receptor is an RTK with a distinctive architecture.
It exists as a disulfide-linked receptor complex.
Insulin
β
Insulin receptor
β
Tyrosine phosphorylation
β
IRS proteins
β
PI3KβAKT
β
Metabolic effects
The insulin receptor illustrates how RTKs regulate metabolism in addition to growth.
30. IRS Proteins
IRS = Insulin receptor substrate
After receptor activation, IRS proteins become phosphorylated and serve as signaling platforms.
Major downstream pathway:
Insulin receptor
β
IRS
β
PI3K
β
AKT
β
Metabolic responses
31. VEGF Receptors
VEGF receptors are important in:
Angiogenesis
VEGF
β
VEGFR
β
RTK activation
β
PI3K / MAPK / other pathways
β
Endothelial-cell responses
β
Angiogenesis
32. FGFR
Fibroblast growth factor receptors regulate:
- Development
- Cell proliferation
- Differentiation
- Tissue repair
FGF
β
FGFR
β
RTK activation
β
MAPK / PI3K pathways
β
Cellular response
33. PDGFR
Platelet-derived growth factor receptors regulate:
- Fibroblast proliferation
- Migration
- Vascular biology
- Tissue repair
They are particularly important in wound healing and mesenchymal-cell signaling.
34. Neurotrophin Receptors
Some neurotrophin receptors are RTKs.
Examples:
- TrkA
- TrkB
- TrkC
They regulate:
- Neuronal survival
- Differentiation
- Axonal growth
- Synaptic functions
35. RTKs and Cell Cycle
RTK signaling can promote cell-cycle entry.
Growth factor
β
RTK
β
RASβMAPK
β
Transcriptional changes
β
Cyclin expression
β
CDK activation
β
G1 β S progression
This provides a major link between extracellular growth factors and cell-cycle regulation.
36. RTKs and Cell Survival
RTKs can promote survival through PI3KβAKT.
RTK
β
PI3K
β
AKT
β
Anti-apoptotic signaling
β
Cell survival
AKT can influence multiple components of the apoptotic machinery.
37. RTKs and Cell Migration
RTK signaling can regulate:
- Actin polymerization
- Rho GTPases
- Focal adhesions
- Cell polarity
- Cytoskeletal remodeling
RTK
β
PI3K / Rho / MAPK
β
Actin + focal adhesion remodeling
β
Cell migration
This connects RTK signaling with your earlier topics on integrins, actin cytoskeleton and mechanotransduction.
38. RTKβIntegrin Crosstalk
RTKs and integrins frequently cooperate.
Growth factor
β
RTK
β
Signaling network
β
Integrin
β
ECM
This allows cells to integrate:
- Chemical signals
- Adhesion signals
- Mechanical signals
39. RTK Transactivation
One receptor system can influence another.
For example:
GPCR
β
Signaling intermediates
β
EGFR activation
β
MAPK
This is an example of RTK transactivation.
40. Negative Regulation of RTKs
RTK signaling must be tightly controlled.
Major mechanisms include:
- Protein tyrosine phosphatases
- Receptor internalization
- Ubiquitination
- Endosomal sorting
- Lysosomal degradation
- Negative feedback pathways
41. Protein Tyrosine Phosphatases
Protein tyrosine phosphatases remove phosphate groups from tyrosine residues.
RTK-Tyr-P
β
Tyrosine phosphatase
β
RTK-Tyr
This can reduce signaling.
42. Receptor Internalization
Activated RTKs can be internalized.
RTK activation
β
Endocytosis
β
Endosome
β
ββββββ΄ββββββ
β β
Recycle Degrade
The balance between recycling and degradation affects signal duration.
43. Ubiquitination
Some RTKs are tagged with ubiquitin following activation.
A major example is EGFR.
RTK
β
Ubiquitination
β
Endosomal sorting
β
Lysosome
β
Degradation
Ubiquitination therefore contributes to receptor downregulation.
44. Cbl
Cbl is an important E3 ubiquitin ligase involved in regulation of activated RTKs, particularly EGFR-family signaling.
Activated RTK
β
Cbl recruitment
β
Ubiquitination
β
Endocytosis / degradation
45. Signal Duration
RTK signaling is determined not simply by whether the receptor is activated, but by:
- Strength of activation
- Duration
- Subcellular location
- Receptor trafficking
- Feedback
- Phosphatase activity
- Downstream pathway state
Signal
β
ββββββββ Strong + transient
β
β vs
β
βββββββββ Weak + prolonged
βββββββββββββββββββββ Time
Different temporal patterns can produce different cellular outcomes.
46. RTK Mutations and Disease
Abnormal RTK signaling can contribute to:
- Cancer
- Developmental disorders
- Metabolic disease
- Fibrotic processes
Mechanisms include:
- Activating mutations
- Gene amplification
- Receptor overexpression
- Gene rearrangements
- Excess ligand production
- Failure of negative regulation
47. Oncogenic RTK Signaling
A simplified cancer model:
RTK mutation / amplification
β
Persistent receptor activity
β
RASβMAPK + PI3KβAKT
β
β proliferation
β survival
β
Tumor progression
48. Constitutive Activation
A mutant RTK may signal even without ligand.
Normal:
Ligand β RTK β Signal
Mutant:
No ligand
β
RTK*
β
Continuous signaling
This is called:
Constitutive activation
49. RTK Inhibitors
Because abnormal RTK signaling occurs in several diseases, RTKs are important therapeutic targets.
Two broad approaches are:
Monoclonal antibodies
Can target extracellular receptor regions or ligands.
Small-molecule kinase inhibitors
Can inhibit intracellular kinase activity.
Mechanistically:
RTK
β
Kinase inhibition
β
β phosphorylation
β
β downstream signaling
50. RTK Signaling and Systems Biology
A modern view treats RTK signaling as a network rather than a linear pathway.
RTK
β
βββββββββββββββΌββββββββββββββ
β β β
RAS PI3K PLCΞ³
β β β
RAF AKT IP3/DAG
β β β
MEK mTOR CaΒ²βΊ
β β β
ERK βββββββ¬ββββββββ
β β
βββββββββββ¬ββββββββββ
β
Cellular response
Crosstalk and feedback make RTK signaling highly dynamic.
51. Master-Level Concept: RTKs as Signaling Hubs
An activated RTK can be viewed as a phosphotyrosine signaling platform.
RTK
β
Tyr-P Tyr-P Tyr-P
β β β
β β β
GRB2 PI3K PLCΞ³
β β β
RAS AKT CaΒ²βΊ
β β β
MAPK mTOR PKC
β β β
ββββββββΌβββββββ
β
Cellular response
This is more accurate than viewing an RTK as a simple linear switch.
52. RTK Signaling and Cellular Outcomes
| Pathway | Major cellular functions |
|---|---|
| RASβRAFβMEKβERK | Proliferation, differentiation |
| PI3KβAKT | Survival, growth, metabolism |
| mTOR | Protein synthesis, growth, metabolism |
| PLCΞ³βIP3/DAG | CaΒ²βΊ signaling, PKC |
| Rho GTPases | Cytoskeleton, migration |
| STAT-associated pathways | Context-dependent transcription |
53. High-Yield RTK Signaling Diagram
GROWTH FACTOR
β
βββββββββββ
β RTK β
ββββββ¬βββββ
β
DIMERIZATION
β
TYROSINE-P
β
βββββββββββββββββββΌββββββββββββββββββ
β β β
GRB2 PI3K PLCΞ³
β β β
SOS PIP3 PIP2
β β ββββ΄βββ
RAS-GTP AKT IP3 DAG
β β β β
RAF mTOR CaΒ²βΊ PKC
β β β β
MEK Growth/survival βββ¬βββ
β β
ERK Cellular response
β
Gene expression
β
Proliferation /
differentiation
54. RTK vs GPCR: Examination Comparison
| Characteristic | GPCR | RTK |
|---|---|---|
| Receptor architecture | 7 TM | Single TM |
| Intracellular mechanism | G proteins | Tyrosine kinase |
| Receptor phosphorylation | Regulatory, not intrinsic kinase activity | Central activation mechanism |
| Main second messengers | cAMP, IP3, DAG, CaΒ²βΊ | Often phosphotyrosine-dependent networks |
| Major pathways | Gs/Gi/Gq/G12/13 | MAPK, PI3KβAKT, PLCΞ³ |
| Common roles | Hormonal/neural/sensory | Growth/development/metabolism |
| Examples | Ξ²-adrenergic receptor | EGFR, insulin receptor |
55. Examination Answer
Receptor Tyrosine Kinases
Receptor tyrosine kinases are single-pass transmembrane receptors that possess intrinsic intracellular tyrosine kinase activity. They play major roles in cell proliferation, differentiation, survival, metabolism, migration and development.
Binding of an extracellular ligand generally induces receptor dimerization or a conformational rearrangement that activates the intracellular kinase domains. The receptors undergo trans-autophosphorylation on tyrosine residues using ATP. These phosphotyrosine residues serve as docking sites for intracellular proteins containing SH2 or PTB domains.
Major signaling pathways include the GRB2βSOSβRASβRAFβMEKβERK pathway, which regulates proliferation and differentiation; the PI3KβPIP3βAKTβmTOR pathway, which promotes survival, growth and metabolism; and the PLCΞ³βIP3/DAG pathway, which regulates CaΒ²βΊ and PKC signaling.
RTK signaling is terminated or attenuated through protein tyrosine phosphatases, receptor internalization, ubiquitination, endosomal sorting and degradation. Dysregulated RTK signaling caused by receptor overexpression, amplification or activating mutations can contribute to cancer and other diseases.
56. Viva Questions
Q1. What is an RTK?
A transmembrane receptor with intrinsic or closely associated tyrosine kinase activity that converts extracellular signals into intracellular responses.
Q2. How many transmembrane domains does a typical RTK have?
One.
Q3. What happens after ligand binding?
The receptor undergoes dimerization or conformational rearrangement, kinase activation and tyrosine phosphorylation.
Q4. What is trans-autophosphorylation?
One receptor kinase phosphorylates tyrosine residues on the other receptor molecule in an activated receptor complex.
Q5. Why are phosphotyrosines important?
They serve as docking sites for signaling proteins containing SH2 or PTB domains.
Q6. What is the role of GRB2?
It acts as an adaptor linking activated RTKs to SOS and RAS.
Q7. What is SOS?
A guanine-nucleotide exchange factor that promotes RAS-GDP β RAS-GTP.
Q8. Name the MAPK cascade.
RAS β RAF β MEK β ERK.
Q9. What does PI3K produce?
PIP3 from PIP2.
Q10. What is the major downstream kinase activated by the PI3K pathway?
AKT.
Q11. What does PTEN do?
It antagonizes PI3K signaling by converting PIP3 toward PIP2.
Q12. Which phospholipase is activated downstream of many RTKs?
PLCΞ³.
Q13. What are the products of PLCΞ³-mediated PIP2 cleavage?
IP3 and DAG.
Q14. Name three important RTKs.
EGFR, insulin receptor and VEGFR.
Q15. How can RTKs contribute to cancer?
Through amplification, overexpression, activating mutations or failure of receptor downregulation, resulting in persistent signaling.
57. One-Minute Revision
LIGAND
β
RTK
β
DIMERIZATION /
CONFORMATIONAL CHANGE
β
TYROSINE PHOSPHORYLATION
β
DOCKING PROTEINS
β
βββββββββββββββΌβββββββββββββββ
β β β
GRB2 PI3K PLCΞ³
β β β
SOS PIP3 PIP2
β β ββββ΄βββ
RAS-GTP AKT IP3 DAG
β β β β
RAF mTOR CaΒ²βΊ PKC
β β β β
MEK ββββββββ¬βββββββ΄βββββ
β β
ERK CELLULAR RESPONSE
β
GENE EXPRESSION
β
PROLIFERATION /
DIFFERENTIATION
Core memory line
Ligand β RTK dimerization/rearrangement β Tyr phosphorylation β docking proteins β MAPK + PI3K/AKT + PLCΞ³ β cellular response
GRB2 β SOS β RAS β RAF β MEK β ERK
PI3K β PIP3 β AKT β mTOR
PLCΞ³ β IP3 + DAG β CaΒ²βΊ + PKC
PTEN opposes PI3K
RTKs are signaling hubs, not simple ON/OFF switches.