Lecture 3 Video 2
🧩 Resonance Assignment – Homonuclear Approach (Part 1)
🎯 What is Resonance Assignment?
Resonance assignment is the process of determining:
- Which NMR signal belongs to which atom
- Or ideally: knowing the chemical shift of every atom in the protein
In practice:
- You rarely get 100%
- But >95% assignment is possible
This is essential before you can interpret structure, dynamics, or interactions.
🛠 Manual vs Automatic Assignment
There are two general approaches:
🧑🔬 Manual Assignment
You do it yourself by analyzing spectra and connecting signals.
🤖 Automated Assignment
Software performs the same logic as humans — but:
- Only works well if peak lists are clean
- Requires curated, high-quality data
- Still follows the same principles humans use
This lecture focuses on the manual approach.
🔬 Two Assignment Strategies (Depends on System)
| Protein Type | Strategy |
|---|---|
| Small peptide (no isotope labeling) | Homonuclear spectra |
| Larger protein (¹⁵N/¹³C labeled) | Triple resonance experiments |
This lecture covers:
🧬 Homonuclear assignment using the Sequential Walk
🧠 The Key Concept: Spin Systems
What is a spin system?
A spin system is:
A group of nuclei connected by scalar (J) coupling
In homonuclear ¹H NMR:
- Each amino acid forms its own independent spin system
Why?
Because:
- Coupling across the peptide bond would require 4-bond coupling
- 4-bond ¹H-¹H coupling is too weak to observe
- Therefore: no scalar coupling between different residues
👉 Each amino acid = isolated proton network
💧 Why Can We See NH Protons?
The spectra are recorded in normal water (H₂O), not D₂O.
Amide NH:
- Is in resonance with carbonyl
- Has slow exchange with water
- Therefore visible
- Shows 3-bond coupling to Hα
So NH signals are observable and useful for assignment.
📊 Required Spectra
To perform sequential walk in homonuclear NMR, you need:
- COSY
- TOCSY
- NOESY
(If unfamiliar with these, the video suggests reviewing them first.)
🔎 Chemical Shift Regions
Approximate ¹H shifts:
| Proton Type | ppm range |
|---|---|
| Amide NH | 6.5–10 ppm |
| Hα | 3.5–5.5 ppm |
| Other aliphatic protons | < 3 ppm (usually) |
In 2D homonuclear spectra:
- Same chemical shift ranges appear on both axes
📘 COSY vs TOCSY – What Do They Show?
🔷 COSY
Shows:
- Direct scalar coupling (mostly 3-bond)
You expect:
- NH ↔ Hα cross peaks
- Hα ↔ Hβ
- Hβ ↔ Hβ (sometimes poorly resolved)
So in COSY: You see pairwise couplings only.
🔷 TOCSY
Shows:
- All protons connected by uninterrupted coupling networks
This means:
- From NH, you can potentially see:
- Hα
- Hβ
- Hγ
- Hδ
- etc.
Signal intensity:
- Decreases further away from NH
- May not see full side chain
🔗 When Does TOCSY NOT Show Full Side Chain?
Two important exceptions:
1️⃣ Methionine
Chain: NH → Hα → Hβ → Hγ → S → Hε
The sulfur breaks coupling. NH to methyl beyond sulfur = 4-bond coupling → not observed.
2️⃣ Aromatic residues
No coupling between:
- Aliphatic backbone
- Aromatic ring system
So full chain not always visible.
🔢 Step 1: Identify Spin Systems
You:
- Pick NH peaks
- Follow vertical TOCSY strips
- Assign all coupled protons
- Label spin systems arbitrarily (1, 2, 3, 4…)
Now you have isolated amino-acid-like units.
🧬 Recognizing Amino Acid Types from Spin Systems
This is pattern recognition.
🟢 Glycine
- Two Hα
- Nothing else
🟡 Alanine
- One Hα
- One methyl group
🟠 Threonine
- One Hα
- One methyl
- Hβ unusually high shift (bound to oxygen)
- Hβ can be higher than Hα
Only amino acid where this happens.
🔵 Valine
- One Hβ
- Two methyl groups
Distinctive pattern.
🟣 AMX Spin Systems
Group with:
- One Hα
- Two Hβ
- Possibly more protons
Includes:
- Serine
- Aspartate
- Asparagine
- Cysteine
- Aromatics
Harder to distinguish.
🟤 Leucine & Isoleucine
- Many methyl groups
- Larger spin systems
- Often distinguishable from pattern
🔴 Lysine & Arginine
- Long side chains
- Final side-chain CH₂ around 3–3.5 ppm
- Unique signature
⚫ Proline
Invisible in this method.
Why?
- No NH (secondary amine in peptide bond)
- So no starting point
📊 Sanity Check: Counting Spin Systems
After identifying spin systems:
Ask:
- Does number roughly match expected residues?
- Expected number:
Total amino acids – number of prolines – possibly 1(N - terminus)
Why N-terminus may be invisible:
- It is an amine, not amide
- Exchanges too fast with water
If:
- 30 residues → found 12 → problem
- 12 residues → found 30 → serious problem
Small deviations are fine (overlap, weak peaks).
🧩 What Do We Have After This?
You now know:
- Individual spin systems
- Probable amino acid types
- But NOT:
- Their order
- Their position in sequence
Example from lecture:
- Alanine
- Leucine/Isoleucine
- AMX residue
- Alanine
But which alanine is which?
🚶 The Sequential Walk (Preview)
The next step (Part 2) will:
- Connect spin systems
- Use NOESY
- Establish sequential relationships
- Achieve sequence-specific assignment
That’s where:
Spin system → specific residue number
🧠 Core Concepts to Remember
- Each residue = independent spin system
- COSY → direct couplings
- TOCSY → full coupling network
- Identify amino acids from patterns
- Proline invisible
- Count for consistency
- Sequence assignment requires next step