Lecture 5 Video 3
🧪 NH Exchange in Protein NMR – A Powerful Structural Probe
One of the most versatile tools in protein NMR is amide hydrogen (NH) exchange. It allows us to investigate local structure, hydrogen bonding, protection, and ligand binding — all by observing how backbone amide hydrogens exchange with solvent.
This summary walks through everything step-by-step based on your lecture file .
1️⃣ What Is NH Exchange?
When you put a protein into heavy water (D₂O):
- Backbone amide hydrogens (NH) exchange with deuterium (D) from solvent.
- Over time:
- The hydrogen leaves the protein
- A deuterium replaces it
- The hydrogen goes into the water
Why does this matter?
In a ¹H–¹⁵N HSQC spectrum:
- We detect H–N pairs
- But D–N pairs are invisible
So when exchange happens:
➡️ The corresponding HSQC peak disappears
This makes NH exchange directly observable in NMR.
2️⃣ Exchange Rate – What Controls It?
The exchange rate depends strongly on pH.
The y-axis in the lecture plot is:
log (exchange rate in inverse minutes)
Interpretation:
- log = 0 → 1 exchange per minute
- log = 1 → 10 exchanges per minute
- log ≈ 1.8 → 60 exchanges per minute (~1/sec)
- At pH 7 → ~1000 exchanges per minute
That’s very fast.
Important consequence:
- At pH > 7, many backbone NHs vanish quickly
- Only protected ones remain visible
- Therefore, protein NMR samples are usually kept at pH ≤ 7
At pH 3–4:
- Exchange becomes much slower
- But many proteins are unstable there
So there’s a balance between:
- Protein stability
- Exchange rate
3️⃣ What Do We Actually Measure?
Typical experiment:
- Freeze-dry protein
- Redissolve in D₂O
- Start collecting HSQC spectra over time
What happens?
Some peaks:
- Vanish quickly ❌
Others:
- Persist for hours ⏳
If you plot intensity vs time:
- You get an exponential decay curve
- From this, you calculate an exchange rate
This tells you how protected that NH is.
4️⃣ Protection Factor – The Key Concept
The Protection Factor (PF) is:
PF = rac{ ext{expected exchange rate}}{ ext{observed exchange rate}}
If exchange is much slower than expected → high protection.
What causes protection?
🧬 1. Stable Hydrogen Bonds
Backbone NHs involved in:
- α-helices
- β-sheets
Exchange thousands to 10,000 times slower
This is because:
- The hydrogen is already strongly bonded
- Water cannot easily access it
🌊 2. Burial from Solvent
If the NH is buried inside the protein:
- Water cannot reach it
- Exchange slows dramatically
🔗 3. Ligand Binding
If a ligand covers a surface region:
- That surface becomes protected
- Exchange slows
5️⃣ Using NH Exchange to Map Ligand Binding
The lecture gives a beautiful example: a chitinase protein binding chitin .
Chitin is:
- A highly insoluble carbohydrate
- Hard to study using traditional structural methods
The strategy:
Measure NH exchange:
- Protein alone
- Protein + chitin
What was observed?
Most peaks:
- No change
But some peaks:
- Much stronger in presence of chitin
Why?
Without chitin:
- Those NHs exchange quickly
- Peaks vanish
With chitin:
- Chitin shields that surface
- Exchange slows
- Peaks remain visible
6️⃣ Quantitative Analysis
They calculated:
rac{ ext{Intensity with chitin}}{ ext{Intensity without chitin}}
If ratio ≈ 1:
- No effect
If ratio >> 1:
- Protected by chitin
Then they:
- Identified which residues those peaks belonged to
- Mapped them onto the protein surface
Result:
- Clear localization of the chitin binding site
This is extremely powerful because:
- No need to crystallize the complex
- No need for isotope-labeled ligand
- Just measure protection differences
7️⃣ What Makes This Method So Powerful?
NH exchange allows you to probe:
| What you want to study | What exchange tells you |
|---|---|
| Secondary structure | Stable H-bonds protect NH |
| Surface accessibility | Buried residues exchange slowly |
| Folding stability | Highly protected regions = stable core |
| Ligand binding sites | Surface becomes protected upon binding |
| Local dynamics | Flexible regions exchange faster |
8️⃣ Key Conceptual Takeaways
🔹 Exchange removes HSQC signals
Because D–N pairs are invisible.
🔹 Exchange rate depends strongly on pH
Fast at neutral/basic pH, slow at acidic pH.
🔹 Protection factor reflects structural stability
Large PF = hydrogen bonding or burial.
🔹 Ligand binding can be detected indirectly
By surface protection from exchange.
🧠 Big Picture
NH exchange is not just about losing peaks.
It’s a dynamic structural probe.
It tells you:
- Which parts of a protein are stable
- Which are flexible
- Which are solvent-exposed
- Where ligands bind
- How surfaces are reorganized
All from watching peaks disappear over time.
That’s why it’s considered one of the most versatile tools in protein NMR .