Lecture 4 Video 1
🎬 Lecture 4 – Video 1
🧬 Protein Structure Determination by NMR (Part 2 – Overview)
This lecture introduces the second part of protein NMR spectroscopy, focusing on how we determine protein structures using NMR — and how it compares to X-ray crystallography .
Let’s break everything down clearly and systematically.
🧩 From Resonance Assignment to Structure
You’ve already learned how to:
- Prepare the sample
- Assign resonances
Now we move into the core structural part:
➡️ Collect structural constraints ➡️ Calculate the structure ➡️ Validate and present it properly
This lecture focuses mainly on:
🔎 What structural information can we extract from NMR? 🧮 How do we use it to calculate structures?
🧠 What Structural Information Does NMR Provide?
There are three main categories of structural constraints:
1️⃣ Distance Information (The Most Important!)
Distance is the primary source of structural information in NMR .
📏 Where do distances come from?
- NOEs (Nuclear Overhauser Effects)
- Hydrogen bonds
- Paramagnetic relaxation enhancement (PRE)
All of these give distances between atoms.
Why distances are powerful:
- Short distances (close in sequence) → 🧬 Secondary structure
- Long distances (far apart in sequence) → 🏗️ Tertiary and quaternary structure
So distances give you:
✔ Local information ✔ Global information
They are the backbone of structure determination.
2️⃣ Dihedral Angle Information
We also obtain:
- Scalar couplings
- Chemical shifts
These provide information about:
➡️ Backbone dihedral angles (φ and ψ)
This mainly tells us about:
🧬 Secondary structure
Think back to the Ramachandran plot:
- α-helices → specific φ/ψ values
- β-sheets → different φ/ψ values
But important:
⚠ Dihedral angles alone cannot define the overall fold.
They provide local information only.
3️⃣ Orientation Information
This comes from:
🧭 Residual Dipolar Couplings (RDCs)
RDCs give:
➡️ Orientation of bond vectors relative to the laboratory frame
This is powerful because:
- All vectors are measured in the same lab coordinate system
- This gives indirect global structural information
So RDCs give:
🌍 Global information 🏗️ Tertiary / quaternary structure insight
🧩 Structure Determination = Solving a Puzzle
The lecturer compares structure determination to solving a puzzle :
You must collect:
- 🧩 Many distances
- 🧩 Many dihedral angles
- 🧩 Orientation constraints
Then assemble them computationally.
But there are problems:
❌ Missing pieces
- Signal overlap
- Invisible signals
- Incomplete data
❌ Extra pieces
- Impurities
- Signals that don’t belong to your protein
So structure calculation is an imperfect, constraint-based optimization problem.
📚 What Will the Next Lectures Cover?
The series is divided into:
1️⃣ Distances (NOEs, etc.) 2️⃣ Dihedral angles & orientations 3️⃣ Structure calculation + validation
⚖ NMR vs X-ray Crystallography
Now the lecture compares the two major structure techniques.
🧪 Working Conditions
| NMR | X-ray |
|---|---|
| Works in solution | Works in crystals |
It’s often argued solution is more physiological.
However:
- NMR samples are highly concentrated
- Structures determined by both methods are usually very similar
So in practice, structures do not differ dramatically.
✅ Advantages of NMR
- No need for crystals
- Can study proteins that refuse to crystallize
- Easy to:
- Add ligands
- Change pH
- Change temperature
- Perform titrations
- Measure binding constants
- Can study:
- Folding
- Dynamics
- pKa values
- Flexibility
- Catalytic mechanisms
NMR gives more biophysical richness.
❌ Disadvantages of NMR
🚫 Size limitation
Approx. 30–40 kDa upper limit
Most NMR structures are:
- < 16 kDa
- Few above 25 kDa
Meanwhile:
- X-ray handles larger proteins
- Cryo-EM handles very large complexes
⏳ Time-consuming
- Data recording
- Data evaluation
- Structure calculation
🧪 Requires isotope labeling
NMR:
- Requires stable isotopes (¹³C, ¹⁵N)
X-ray:
- Natural abundance protein is fine
💰 Expensive instrumentation
Both are expensive, but:
- NMR labs often own spectrometers
- X-ray users typically book synchrotron beamtime
📊 Statistics (PDB Distribution)
At the time referenced:
- 87% X-ray
- 12% NMR
- 1% Cryo-EM
Cryo-EM is expected to grow.
NMR structures:
- Mostly proteins
- Some nucleic acids
🔬 Workflow Comparison
🧬 NMR Workflow
- Express & purify protein
- Isotope labeling
- Sample optimization
- Record data
- Evaluate data
- Structure calculation
Critical time-consuming step: ➡ Data acquisition & evaluation
Once sample is good → you're mostly safe.
💎 X-ray Workflow
- Express & purify protein
- Crystallization
- Heavy atom derivative (for phasing)
- Data collection
- Structure calculation
Critical bottleneck: ➡ Crystallization
Once you have a good crystal → you're safe.
🧠 When Should You Choose NMR?
Use NMR when:
- You cannot crystallize the protein
- You want more than just structure:
- Ligand binding
- Folding pathways
- Dynamics
- pKa determination
- Mechanistic insight
- Or if you are fascinated by NMR 😉
🎯 Core Takeaways
🏗️ Structural Constraints in NMR
| Type | Gives | Level |
|---|---|---|
| Distances (NOE, PRE, H-bonds) | Atom distances | Local + Global |
| Dihedral angles | Backbone geometry | Local |
| RDCs | Vector orientation | Global |
🧩 Structure Determination = Constraint Optimization
- Collect incomplete experimental constraints
- Solve computationally
- Validate carefully
⚖ NMR vs X-ray
| NMR | X-ray |
|---|---|
| Solution | Crystal |
| Small proteins | Larger proteins |
| Dynamic info | Static snapshot |
| Flexible experiments | Crystallization bottleneck |
🔜 What Comes Next?
The next three lectures will cover:
1️⃣ Distance constraints in depth 2️⃣ Dihedral angle & orientation constraints 3️⃣ Structure calculation and validation