Day 2 part 1
📘 Protein Chemistry – Day 2 (Part 1)
Focus: Chemical Reactivity of Amino Acids & Post-Translational Modifications (PTMs) (Theory only, based strictly on the lecture transcript )
🔬 Why Do We Care About Side-Chain Chemistry?
The human genome encodes ~30,000 genes, but the number of proteins is far greater due to:
- Alternative splicing
- Post-translational modifications (PTMs)
Understanding PTMs requires understanding side-chain chemistry — especially nucleophilicity.
⚛️ Nucleophilicity vs Basicity
- Basicity → Lone pair attacks a proton (H⁺)
- Nucleophilicity → Lone pair attacks something other than hydrogen (e.g., phosphate)
Most PTMs are nucleophilic reactions
🌊 Serine & Threonine
Structure:
Both contain a hydroxyl (-OH) group.
❓ Why are they not very reactive unless the proton is removed?
The OH group has lone pairs, but:
- When protonated → oxygen is neutral
- When deprotonated → oxygen becomes alkoxide (O⁻) → very strong nucleophile
This is why:
- In serine proteases, histidine removes the proton → creates strong nucleophile
- Without deprotonation → very slow reactivity
So you were correct: Serine and threonine become strongly reactive only after proton removal.
🔁 Phosphorylation (Ser, Thr, Tyr)
Adds:
- 2 negative charges
- Extra hydrogen bonding capacity
- Increased steric bulk
Effects:
- Major regulatory PTM
- Alters protein–protein interactions
- Frequently regulates transcription and signaling
🍬 O-Linked Glycosylation (Ser/Thr)
❓ Does O-glycosylation mean glucose attached to oxygen?
Not necessarily glucose specifically. It means:
- A sugar chain is attached to the oxygen atom of Ser/Thr.
The sugar can be various types (mannose, galactose, etc.)
📍 Where does it happen?
- In the ER lumen and Golgi
- Protein must be fully translated
- Occurs after entry into ER lumen
❓ What recognizes the signal sequence?
- Translation starts in cytoplasm
- N-terminal signal peptide emerges
- Recognized by Signal Recognition Particle (SRP)
- SRP docks to ER membrane
- Translation continues through ER membrane via translocon
So translation continues — but now into ER lumen.
❓ No consensus sequence — what does that mean?
For O-glycosylation:
- No defined peptide motif around Ser
- Not determined by sequence
- Determined by 3D structure once protein folds
So your idea was right: It depends on structural accessibility, not sequence motif.
🌾 N-Linked Glycosylation (Asn)
Unlike O-linked:
- Has consensus sequence
- Occurs co-translationally (not strictly post-translational!)
Consensus motif:
Asn-X-Ser/Thr
Not all sites are modified — but modification requires this motif.
🔗 Transglutaminase Crosslinks
Glutamine can form covalent crosslinks with:
- Lysine
- Cysteine
Enzyme involved:
Transglutaminase
Used industrially (e.g., plant-based meat structure).
⚡ Lysine
Primary amine (NH₃⁺)
- Good nucleophile when deprotonated
- Reactivity increases at high pH
PTMs:
- Acetylation
- Methylation
- Ubiquitination
- Biotinylation
- Lipoylation
❓ What enzyme does biotinylation?
Biotin is attached enzymatically to lysine residues by biotin ligases (biotin protein ligase). It is a PTM
🧬 Histone Modifications
Lysine & arginine methylation/acetylation:
- Neutralizes positive charge
- Weakens DNA binding
- Regulates gene expression
🧲 Histidine
Contains imidazole ring
At physiological pH:
- One nitrogen protonated
- One has lone pair
❓ How does His-tag work?
Not active site chemistry.
His-tag:
- Several histidines engineered at N- or C-terminus
- Lone pair electrons coordinate to Ni²⁺
- Forms coordination bond
- Lowering pH protonates histidine → releases from nickel
It does NOT donate proton to serine in this context. That happens in enzyme active sites — unrelated to His-tag purification.
🔪 Proteolytic Cleavage
Yes — occurs after protein synthesis
It is considered a post-translational modification
Example: signal peptide removal, pro-protein activation.
🧪 Methionine Removal
Yes — removal of N-terminal Met is:
- A post-translational modification
- Very common
🔥 Cysteine — The Most Reactive Amino Acid
Contains SH group.
❓ Why is cysteine a strong nucleophile at physiological pH?
pKa ≈ 8–8.3
Physiological pH ≈ 7.4
Using Henderson-Hasselbalch:
When pH is 1 unit below pKa:
→ ~10% is deprotonated
So:
- ~10% exists as thiolate (S⁻)
- Thiolate is extremely strong nucleophile
- Therefore high reactivity even at pH 7.4
Your understanding was correct: Yes, roughly ~10% negatively charged explains strong nucleophilicity.
🔗 Disulfide Bonds
Oxidation:
2 Cys → Cys-S-S-Cys
Reduction:
- DTT
- β-mercaptoethanol
- TCEP
🟡 Ellman’s Reagent
Used to detect free cysteine
Reacts with free thiols → yellow product
Absorbance max: 412 nm
❓ Does yellow mean non-covalently bound?
Small correction:
Yellow means free thiol (not involved in disulfide bond)
It does NOT mean “non-covalently bound” — it means:
The cysteine is not covalently linked via disulfide bridge.
🧠 Quick Concept Summary
| Amino Acid | Key PTMs | Important Chemical Feature |
|---|---|---|
| Ser/Thr | Phosphorylation, O-glycosylation | Needs deprotonation for strong nucleophilicity |
| Tyr | Phosphorylation | Aromatic + OH |
| Asp/Glu | Metal coordination | Negatively charged |
| Asn | N-glycosylation | Has consensus sequence |
| Lys | Acetyl, methyl, ubiquitin, biotin | Reactive when deprotonated |
| Arg | Methylation | Charge delocalized → less reactive |
| His | Metal coordination, acid/base catalysis | pKa near physiological pH |
| Met | Oxidation, N-terminal removal | Weak nucleophile |
| Cys | Disulfide, oxidation | Strong nucleophile (thiolate) |
🎯 Final Clarifications
You misunderstood only two minor points:
- His-tag ≠ active site chemistry
- Ellman’s reagent detects free thiols, not “non-covalent binding”
Everything else you interpreted correctly.