Lecture 4 Video 3
๐ Lecture 4 โ Video 3
Protein Structure Determination by NMR (Part 3)
Topic: Dihedral Angles & Orientational Information from NMR
This lecture focuses on how we extract dihedral angles and overall molecular orientation from NMR data โ two critical ingredients for determining protein structures.
File reference:
๐งฌ 1. Chemical Shifts & Secondary Structure
๐ Key Idea:
Backbone chemical shifts are highly sensitive to secondary structure.
If you compare:
- Cฮฑ in ฮฑ-helices
- Cฮฑ in ฮฒ-sheets
You see clear differences (some overlap, but distinct trends). This applies not only to:
- Cฮฑ
- Cฮฒ
- Hฮฑ
- Carbonyl (Cโ)
- Nitrogen (N)
๐ Essentially all backbone atoms show structural dependence.
๐งช Secondary Chemical Shift
To use this information quantitatively:
extbf{Secondary Shift} = ext{Observed Shift} - ext{Random Coil Shift}
What is a random coil shift?
The chemical shift the atom would have in a completely disordered conformation.
Any deviation = structural influence.
You calculate secondary shifts typically for:
- Cฮฑ
- Cฮฒ
- N
- Cโ
- Hฮฑ
Sometimes also include neighboring residues (i-1 and i+1) for better prediction.
๐ง TALOS: Predicting Dihedral Angles from Shifts
Software evolution:
- TALOS
- TALOS+
- TALOS-N
Same core idea, progressively improved.
๐ก How TALOS Works:
- Calculate secondary shifts for residue triplets.
- Search a database of proteins with:
- Known structures
- Known chemical shifts
- Find best matches (usually top 10).
- Extract their ฯ (phi) and ฯ (psi) angles.
- Predict your residueโs allowed Ramachandran region.
Even the amino acid type does not have to match โ it matches based on secondary shifts.
๐ Example Outcome
If all 10 best matches cluster in a ฮฒ-sheet region of the Ramachandran plot:
โ Very likely your residue is also ฮฒ-sheet.
If matches scatter across different regions:
โ No reliable prediction.
๐ฏ Why This Is Powerful
- You already measure chemical shifts for assignment.
- No extra experiment required.
- Gives backbone angle restraints for structure calculation.
- Often defines secondary structure very well.
Because of this efficiency: ๐ J-coupling-based angle measurements are now rarely used.
๐ 2. Scalar Couplings (J-Couplings) & Dihedral Angles
Scalar couplings depend on local geometry.
They follow Karplus curves โ sinusoidal relationships between: J = f( ext{dihedral angle})
๐ Example: ฯ Angle
The coupling between:
- HN
- Hฮฑ
depends on ฯ.
If you measure:
- J = 10 Hz โ ฯ โ 120ยฐ (well-defined)
- J = 4 Hz โ ambiguous (could correspond to multiple angles)
โ ๏ธ Problem:
- Many angles give the same coupling.
- Small couplings are difficult to measure.
- ฯ and ฯ1 couplings are even harder (small values).
Conclusion:
Chemical shifts are:
- Easier
- Already measured
- More reliable
Hence: TALOS dominates.
๐งญ 3. Orientational Information: Residual Dipolar Couplings (RDCs)
Now comes something very powerful.
Normally:
Proteins tumble freely in solution. All orientations equally probable. Dipolar couplings average to zero.
Because the angular term:
3cos^2 heta - 1
averages to zero over all orientations.
๐งฒ What if We Partially Align the Protein?
Use anisotropic media like:
- Liquid crystalline solvents
- Stretched polyacrylamide gels
- Lipid bicelles
- Bacteriophages
These align in the magnetic field.
Dissolve protein in such media โ protein becomes slightly oriented.
๐ Residual Dipolar Couplings (RDCs)
Now dipolar couplings no longer fully average to zero.
You observe small, non-zero couplings: โ Residual Dipolar Couplings
They depend on:
- Internuclear distance (fixed for NH bond)
- Angle ฮธ between bond vector and magnetic field
So for an NH pair:
- Distance is known.
- Measure RDC โ determine orientation angle.
You can do this for:
- NH bonds
- CH bonds
- (theoretically HH)
๐งฉ What Does This Give You?
You now get orientation of many bond vectors relative to:
- The laboratory frame (magnetic field axis)
This provides:
- Long-range angular information
- Global structural constraints
- Domain orientation information
๐งฑ Domain Orientation Problem
Imagine:
- Two domains
- Each domain has a well-defined structure
- You donโt know how they orient relative to each other
RDCs allow:
- Assigning coordinate frames to each domain
- Comparing them
- Finding orientation where coordinate systems coincide
Only one orientation satisfies both RDC datasets.
This is extremely powerful for:
- Multi-domain proteins
- Flexible linkers
- Assemblies
๐ Summary of Information Sources
| Method | Gives | Strength | Limitation |
|---|---|---|---|
| Chemical Shifts (TALOS) | ฯ, ฯ prediction | Easy, reliable | Statistical |
| J-couplings | ฯ (mostly) | Direct geometry | Ambiguous, hard to measure |
| RDCs | Bond orientations | Long-range orientation | Difficult sample prep |
๐ Big Picture
In protein NMR structure determination:
- Assign chemical shifts
- Extract:
- Dihedral angle restraints (TALOS)
- Distance restraints (NOEs, earlier video)
- Orientational restraints (RDCs)
- Feed all restraints into structure calculation
- Obtain 3D model
This lecture covered the angular and orientational components.
๐ Core Takeaways
- Chemical shifts encode secondary structure.
- Secondary shifts โ TALOS โ ฯ/ฯ restraints.
- J-couplings follow Karplus curves but are ambiguous.
- Partial alignment enables measurement of RDCs.
- RDCs give global orientation information.
- Especially powerful for multi-domain proteins.
Next step (Video 4): Structure calculation and validation.