Cell Biology & Advanced Molecular Biology
Part I — Advanced Cell Biology
- Cellular organization and compartmentalization
- Evolution of the eukaryotic cell
- Prokaryotic vs eukaryotic organization
- Organelles and functional compartmentalization
- Protein targeting and sorting
- Cellular microdomains
- Membrane-bound vs membraneless organelles
- Phase separation and biomolecular condensates
- Biological membranes
- Fluid mosaic model—modern interpretation
- Membrane lipid composition
- Lipid rafts and membrane asymmetry
- Membrane proteins
- Membrane curvature and remodeling
- Membrane fusion and fission
- Vesicular transport
- Membrane transport and cellular trafficking
Membrane Transport & Cellular Trafficking
Select a mechanism to visualize how substances move across or through the plasma membrane.
Membrane
Simple Diffusion
Small non-polar molecules move directly through the phospholipid bilayer from a region of higher concentration to a region of lower concentration.
- Simple and facilitated diffusion
- Ion channels
- ABC transporters
- Primary and secondary active transport
- Na⁺/K⁺-ATPase
- Ca²⁺ pumps
- Endocytosis
- Exocytosis
- Clathrin-mediated trafficking
- COPI and COPII vesicles
- Rab GTPases
- SNARE proteins
- Cytoskeleton and cellular architecture
- Actin cytoskeleton
- Microtubules
- Intermediate filaments
- Molecular motors
- Kinesin and dynein
- Myosin
- Centrosomes and microtubule-organizing centers
- Cell polarity
- Cytoskeletal regulation
- Mechanotransduction
- Cell junctions and extracellular matrix
- Tight junctions
- Adherens junctions
- Desmosomes
- Hemidesmosomes
- Gap junctions
- Integrins
- Collagen
- Fibronectin
- Laminins
- ECM remodeling
- Matrix metalloproteinases
- Cell signaling
- Receptor–ligand interactions
- GPCR signaling
- Receptor tyrosine kinases
- JAK–STAT signaling
- Ras–MAPK pathway
- PI3K–AKT–mTOR
- Wnt/β-catenin
- TGF-β signaling
- Hedgehog signaling
- Notch signaling
- Calcium signaling
- cAMP and protein kinase cascades
- Signal amplification and termination
- Crosstalk between pathways
- Cell cycle and its molecular regulation
Cell Cycle & Molecular Regulation
Interactive representation of cell-cycle progression, checkpoints and cyclin–CDK regulation
Cell Growth
DNA Replication
Preparation
Mitosis
CYCLE
CHECKPOINT
CHECKPOINT
CHECKPOINT
G₁ Phase — Cell Growth
During G₁, the cell increases in size, synthesizes RNA and proteins, duplicates organelles and prepares for DNA replication.
Molecular Regulatory Pathway
- G1, S, G2 and M phases
- Cyclins and CDKs
- Restriction point
- DNA-damage checkpoints
- Spindle assembly checkpoint
- APC/C
- SCF complex
- Cyclin degradation
- Mitotic spindle
- Chromosome segregation
- Cytokinesis
- Cell-cycle dysregulation in cancer
- Apoptosis and programmed cell death
- Intrinsic pathway
- Extrinsic pathway
- Caspases
- Bcl-2 family
- Cytochrome c
- Apoptosome
- Death receptors
- Necroptosis
- Pyroptosis
- Ferroptosis
- Autophagy-associated cell death
- Crosstalk between cell-death pathways
- Autophagy
- Macroautophagy
- Microautophagy
- Chaperone-mediated autophagy
- Autophagosome formation
- ATG proteins
- ULK complex
- Beclin-1/VPS34
- LC3 processing
- Lysosomal fusion
- Autophagy in cancer and neurodegeneration
- Mitochondrial biology
- Mitochondrial genome
- Endosymbiotic origin
- Electron transport chain
- Oxidative phosphorylation
- Mitochondrial dynamics
- Fusion and fission
- Mitophagy
- ROS generation
- Mitochondrial apoptosis
- Mitochondrial inheritance
- Endoplasmic reticulum and Golgi apparatus
- ER protein folding
- Chaperones
- ER quality control
- Unfolded protein response
- ER-associated degradation
- Golgi cisternal organization
- Glycosylation
- Protein trafficking
- Lysosomal targeting
- Mannose-6-phosphate pathway
- Nucleus and nuclear organization
- Nuclear envelope
- Nuclear pore complex
- Nucleocytoplasmic transport
- Importins/exportins
- Ran-GTP cycle
- Nuclear lamina
- Nuclear bodies
- Nucleolus
- Chromosome territories
Part II — Advanced Molecular Biology
13. DNA structure and genome organization
- DNA topology
- Supercoiling
- Linking number, twist and writhe
- Topoisomerases
- Nucleosomes
- Histones and histone variants
- Higher-order chromatin
- Euchromatin and heterochromatin
- Chromosome territories
- CTCF and chromatin loops
- Cohesin
- TADs
- 3D genome organization
14. DNA replication
- Replication origins
- Origin licensing
- Pre-replication complex
- Helicases
- Primases
- DNA polymerases
- Leading and lagging strand synthesis
- Okazaki fragments
- Sliding clamps
- PCNA
- Replication fork dynamics
- Telomeres
- Telomerase
- Replication stress
- Fork protection and restart
15. DNA damage and repair
Major pathways:
| DNA lesion | Major repair pathway |
|---|---|
| UV-induced pyrimidine dimers | Nucleotide excision repair |
| Deaminated bases | Base excision repair |
| Replication mismatches | Mismatch repair |
| Double-strand breaks | HR / NHEJ |
| Interstrand crosslinks | Fanconi pathway |
| Oxidative DNA damage | BER |
Advanced topics:
- DNA damage sensors
- ATM and ATR
- CHK1 and CHK2
- p53
- Homologous recombination
- Non-homologous end joining
- Alternative end joining
- Synthetic lethality
- PARP inhibition
- DNA repair and cancer
16. Transcriptional regulation
Transcriptional Regulation
Interactive molecular representation of eukaryotic gene regulation
TATA / Initiator
+ General TFs
5′ → 3′
Gene Activation
Activator proteins bind regulatory DNA sequences such as enhancers and recruit coactivators, chromatin-remodeling complexes and the Mediator complex. These interactions facilitate recruitment and activation of RNA polymerase II at the promoter.
Molecular Regulatory Pathway
Eukaryotic transcription
- RNA polymerase I
- RNA polymerase II
- RNA polymerase III
- Promoters
- Enhancers
- Silencers
- Insulators
- General transcription factors
- Mediator complex
- Transcription factor binding
- Chromatin remodeling
- Histone modifications
- Transcriptional bursting
- Enhancer–promoter communication
Important concepts
Cis-regulatory elements
- Promoters
- Enhancers
- Silencers
- Insulators
Trans-regulatory factors
- Transcription factors
- Coactivators
- Corepressors
- Chromatin-remodeling complexes
17. RNA biology
This should be a major Master’s-level section.
RNA classes
- mRNA
- rRNA
- tRNA
- miRNA
- siRNA
- piRNA
- lncRNA
- circRNA
- snoRNA
- snRNA
- enhancer RNA
RNA processing
- 5′ capping
- Polyadenylation
- Splicing
- Alternative splicing
- RNA editing
- RNA modification
- mRNA export
- RNA stability
- RNA localization
RNA modifications
- m⁶A
- m⁵C
- pseudouridine
- RNA editing
RNA surveillance
- Nonsense-mediated decay
- Non-stop decay
- No-go decay
- Exosome-mediated RNA degradation
18. Translation and translational regulation
Translation & Translational Regulation
Interactive molecular representation of protein synthesis and its regulation
Initiation → Elongation → Termination
Translation — Protein Synthesis
Translation converts the nucleotide sequence of mRNA into the amino-acid sequence of a polypeptide. The eukaryotic 80S ribosome consists of a 40S small subunit and a 60S large subunit.
Molecular Pathway
Major topics
- Ribosome structure
- Ribosomal biogenesis
- tRNA charging
- Aminoacyl-tRNA synthetases
- Initiation
- Elongation
- Termination
- Ribosome recycling
- Polysomes
- Translational control
- eIF2 regulation
- mTOR signaling
- IRES-mediated translation
- Stress granules
- Ribosome quality control
19. Protein folding and quality control
- Primary → quaternary structure
- Molecular chaperones
- Hsp70
- Hsp90
- Chaperonins
- Protein folding pathways
- Misfolding
- Aggregation
- Ubiquitination
- Proteasome
- ER quality control
- Unfolded protein response
- Protein degradation
- Proteostasis
20. Epigenetics
DNA methylation
- CpG islands
- DNA methyltransferases
- DNMT1
- DNMT3A
- DNMT3B
- TET enzymes
- 5-methylcytosine
- 5-hydroxymethylcytosine
Histone modifications
- Acetylation
- Methylation
- Phosphorylation
- Ubiquitination
- SUMOylation
Epigenetic regulation
- Writers
- Erasers
- Readers
- Chromatin remodeling
- Genomic imprinting
- X-chromosome inactivation
- Epigenetic memory
- Epigenetics in cancer
21. Non-coding RNA and gene regulation
- miRNA biogenesis
- Drosha
- Dicer
- RISC
- Argonaute
- siRNA
- piRNA
- lncRNA
- circRNA
- RNA-mediated gene silencing
- ceRNA concept
- RNA–protein interactions
22. Recombinant DNA technology
Core techniques
- Restriction digestion
- DNA ligation
- Plasmid cloning
- Transformation
- Selection and screening
- Blue-white screening
- Expression vectors
- Reporter genes
- Fusion proteins
Modern cloning
- Gibson assembly
- Golden Gate assembly
- Gateway cloning
- Seamless cloning
23. PCR and advanced nucleic-acid techniques
PCR & Advanced Nucleic-Acid Techniques
Interactive molecular representation of DNA amplification, detection and nucleic-acid analysis
Polymerase
~94–98°C
dsDNA → ssDNA
Primer binding
~50–65°C
DNA synthesis
~72°C
Conventional PCR
Polymerase chain reaction amplifies a defined DNA sequence through repeated cycles of denaturation, primer annealing and DNA synthesis by a thermostable DNA polymerase.
Molecular Workflow
PCR
- Conventional PCR
- RT-PCR
- qPCR
- RT-qPCR
- Multiplex PCR
- Nested PCR
- Digital PCR
- Allele-specific PCR
- Long-range PCR
Quantitative PCR
- Ct/Cq
- Standard curves
- ΔCt
- ΔΔCt
- Reference genes
- Absolute vs relative quantification
- PCR efficiency
24. DNA sequencing
First generation
- Sanger sequencing
Next-generation sequencing
- Illumina sequencing
- Sequencing by synthesis
- Library preparation
- Adapter ligation
- Indexing
- Read depth
- Coverage
- Paired-end sequencing
Third-generation sequencing
- PacBio
- Oxford Nanopore
- Long-read sequencing
- Single-molecule sequencing
Applications
- Whole-genome sequencing
- Whole-exome sequencing
- Targeted sequencing
- RNA-seq
- ChIP-seq
- ATAC-seq
- Single-cell sequencing
25. CRISPR and genome engineering
This should be treated as a core Master’s-level topic.
CRISPR-Cas systems
- CRISPR arrays
- crRNA
- tracrRNA
- Cas proteins
- PAM recognition
- Target cleavage
Genome editing
- Cas9
- Cas12
- Cas13
- sgRNA
- HDR
- NHEJ
- Knockout
- Knock-in
- Base editing
- Prime editing
Advanced concepts
- Off-target effects
- Guide-RNA design
- High-fidelity Cas variants
- CRISPR screens
- CRISPR interference
- CRISPR activation
- Functional genomics
26. Molecular biology of cancer
- Oncogenes
- Tumor suppressor genes
- Proto-oncogenes
- p53
- RB
- MYC
- RAS
- BRAF
- PI3K
- PTEN
- APC
- BRCA1/BRCA2
- Telomerase
- Genomic instability
- Epigenetic alterations
- Tumor microenvironment
- Cancer stem cells
- Metastasis
- EMT
- Precision oncology
27. Stem-cell biology
- Stem-cell hierarchy
- Self-renewal
- Differentiation
- Potency
- Totipotency
- Pluripotency
- Multipotency
- Embryonic stem cells
- Adult stem cells
- Induced pluripotent stem cells
- Reprogramming
- Yamanaka factors
- Organoids
- Tissue regeneration
- Stem-cell niche
- Epigenetic reprogramming
28. Single-cell and spatial molecular biology
Single-cell technologies
- scRNA-seq
- scATAC-seq
- Single-cell DNA sequencing
- Single-cell proteomics
- Cell clustering
- Dimensionality reduction
- UMAP
- t-SNE
- Cell-type identification
- Trajectory analysis
Spatial biology
- Spatial transcriptomics
- In situ sequencing
- Multiplex imaging
- Spatially resolved gene expression
29. Molecular biology experimental techniques
A Master’s student should understand not merely what the technique does, but why each step is performed and how to interpret the result.
Protein techniques
- SDS-PAGE
- Native PAGE
- Western blotting
- ELISA
- Immunoprecipitation
- Co-IP
- Pull-down assays
- Immunofluorescence
- Flow cytometry
- Mass spectrometry
DNA techniques
- Agarose gel electrophoresis
- Southern blotting
- Restriction mapping
- DNA sequencing
- DNA footprinting
- EMSA
RNA techniques
- Northern blotting
- RT-PCR
- qPCR
- RNA-seq
- RNA immunoprecipitation
30. Advanced microscopy and imaging
- Bright-field microscopy
- Phase contrast
- DIC
- Fluorescence microscopy
- Confocal microscopy
- TIRF
- Super-resolution microscopy
- STED
- PALM
- STORM
- Live-cell imaging
- FRAP
- FRET
- Calcium imaging
31. Proteomics and systems biology
Proteomics
- Bottom-up proteomics
- Top-down proteomics
- LC-MS/MS
- Label-free quantification
- SILAC
- TMT
- Protein interaction networks
Systems biology
- Gene regulatory networks
- Protein–protein interaction networks
- Metabolic networks
- Network centrality
- Systems-level modeling
- Multi-omics integration
32. Bioinformatics for molecular biology
A Master's-level course should include practical bioinformatics.
Sequence analysis
- BLAST
- Multiple sequence alignment
- Phylogenetic analysis
- ORF identification
- Motif analysis
Genome analysis
- Genome browsers
- Variant calling
- SNP analysis
- Structural variants
- Annotation
RNA-seq
- Read quality assessment
- Alignment/pseudoalignment
- Transcript quantification
- Differential expression
- Gene ontology
- Pathway enrichment
33. Molecular evolution
- Mutation
- Genetic drift
- Natural selection
- Molecular clocks
- Neutral theory
- Gene duplication
- Horizontal gene transfer
- Genome evolution
- Comparative genomics
- Molecular phylogenetics
34. Advanced laboratory methods: experimental design
A strong Master's-level course should end with experimental reasoning, not just memorization.
Students should learn:
- How to formulate a molecular hypothesis.
- How to select an appropriate experimental model.
- How to identify positive and negative controls.
- How to select biological vs technical replicates.
- How to distinguish correlation from causation.
- How to quantify experimental results.
- How to determine statistical significance.
- How to identify experimental artifacts.
- How to reproduce an experiment.
- How to interpret contradictory results.
Recommended examination framework
For each chapter, the notes can follow this structure:
1. Learning objectives
2. Core concepts
3. Molecular mechanism
4. Step-by-step pathway
5. Key proteins/genes
6. Experimental techniques
7. Experimental interpretation
8. Clinical/biomedical significance
9. Research applications
10. Conceptual diagrams
11. Master's-level MCQs
12. Short-answer questions
13. Long-answer questions
14. Problem-based questions
15. Viva questions
16. Research-paper discussion
17. Key molecules to remember
18. High-yield examination points
Suggested complete course structure
| Module | Major area |
|---|---|
| I | Cell organization & membranes |
| II | Organelles & intracellular trafficking |
| III | Cytoskeleton & cell junctions |
| IV | Cell signaling |
| V | Cell cycle & cell death |
| VI | Mitochondria, ER & Golgi |
| VII | Genome organization |
| VIII | DNA replication |
| IX | DNA repair |
| X | Transcription |
| XI | RNA biology |
| XII | Translation |
| XIII | Epigenetics |
| XIV | Recombinant DNA technology |
| XV | PCR & sequencing |
| XVI | CRISPR/genome editing |
| XVII | Cancer molecular biology |
| XVIII | Stem-cell biology |
| XIX | Omics & single-cell biology |
| XX | Proteomics & systems biology |
| XXI | Bioinformatics |
| XXII | Experimental molecular biology |