Lecture 5 PPT
Protein NMR Beyond Structure โ Reinhard Wimmer
This lecture explains how NMR is used not just to determine structure โ but to study function, dynamics, binding, folding, and energetics.
๐งญ OVERVIEW
The lecture is divided into:
- Part I โ Introduction
- Part IIA โ Ligand binding by chemical shift perturbation
- Part IIB โ Hydrogen/Deuterium exchange
- Part III โ Ligand binding from NOEs
- Part IV โ Ligand binding from the ligand perspective (STD-NMR)
- Part V โ Protein dynamics
- Part VI โ Paramagnetic relaxation enhancement (PRE)
- Part VII โ pKa values & protein folding
๐ข PART I โ INTRODUCTION
๐ Page 1 โ Title
Introduction to using Protein NMR beyond structure determination.
๐ Page 2 โ The Workflow of NMR Studies
The classical structure determination path:
- Sample preparation
- Resonance assignment
- NOEs & couplings
- Structure calculation
โก๏ธ This consumes huge NMR time and computer time.
But once structure is known โ NMR can study:
- Function
- Dynamics
- Mechanism
๐ Page 3 โ What Can NMR Study?
Beyond structure:
- Ligand binding
- Molecular dynamics
- Protein folding
- pKa values
- Hydrogen exchange
Each topic corresponds to later lecture parts.
๐ Page 4 โ ProteinโLigand Interactions
Methods listed:
- Proteinโligand NOEs (stable complexes only)
- Chemical shift changes
- Hydrogen exchange changes
- PREs
- Saturation transfer (ligand-focused)
Important concept: Different NMR observables report on different aspects of binding.
๐ Page 5 โ 15N-HSQC: The โPower Toolโ ๐ฅ
The HSQC spectrum:
- X-axis: 1H
- Y-axis: 15N
- One peak per backbone NH (mostly)
This is a fingerprint of the protein.
The image shows:
- Structure of a protein
- Corresponding HSQC
Key idea: If something changes in structure or environment โ peaks move.
๐ Page 6 โ Take-Home Messages
NMR can study:
- Binding thermodynamics
- Structural aspects
- Molecular motion
- Folding
- pKa
HSQC = extremely sensitive probe of environment changes.
๐ก PART IIA โ CHEMICAL SHIFT PERTURBATION (CSP)
๐ Page 7 โ Title
๐ Page 8 โ Concept of CSP
Chemical shift reflects:
- Time-averaged local electronic environment
When ligand binds: โ Local environment changes โ Chemical shifts change
So: Map shifted residues โ identify binding site.
๐ Page 9 โ Binding Thermodynamics Refresher
Reaction: P + L โ PL
Parameters:
- kon (binding rate)
- koff (dissociation rate)
- Ka = kon/koff
- Kd = 1/Ka
Diffusion-limited kon โ 10โท Mโปยนsโปยน.
If conformational change required โ slower.
๐ Page 10 โ Experimental Setup
Add ligand โ record HSQC.
Outcomes:
- No change โ no binding
- Peak shifts โ binding
- Map shifts โ binding site
- Fit shifts โ estimate Kd
๐ Pages 11โ12 โ Chemical Exchange Regimes
Important NMR concept.
Exchange rate (kex) compared to chemical shift difference (ฮฮฝ):
1๏ธโฃ Slow exchange (kex << ฮฮฝ)
- Two peaks visible
2๏ธโฃ Fast exchange (kex >> ฮฮฝ)
- One peak moving
3๏ธโฃ Intermediate exchange
- Peak broadening / disappearance
๐ Pages 13โ14 โ Visual Examples
Page 13: Slow exchange spectra at different ligand ratios: Separate free and bound peaks.
Page 14: Fast exchange titration: Peaks gradually shift position.
๐ Page 15 โ Ligand Titration Curves
Strong binding:
- Steep curve
- Saturates quickly
Weak binding:
- Gradual curve
Important: CSP works best for Kd > 0.1 mM.
๐ Pages 16โ17 โ Calculating Ka
In fast exchange:
ฮฮดobs / ฮฮดbound = fraction bound
Using binding equations for 1:1 complex: You can solve for Ka.
Key insight: Chemical shifts can quantify thermodynamics.
๐ Pages 18โ23 โ Case Study: Plectasin
Study: How does antimicrobial peptide plectasin bind lipid II?
Steps:
- Add DPC micelles (membrane mimic)
- Observe binding
- Add lipid II
Findings:
- One hydrophobic end inserts into micelle
- Lipid II binds in semi-ring around protein
- Chemical shift mapping shows binding surface
ฮG = โ27 kJ/mol.
๐ Page 24 โ CSP Pros & Cons
Advantages:
- Simple
- No complex theory
- Gives Ka
- Works for all exchange regimes
Disadvantages:
- No structural detail
- Secondary effects cause shifts
- Not a structure of complex
Rule: Binding site + neighboring residues always shift.
๐ PART IIB โ H/D EXCHANGE
๐ Pages 25โ26 โ Concept
Amide hydrogens exchange with solvent.
In D2O: NH โ ND Peak disappears in HSQC.
Exchange rate depends strongly on pH.
๐ Page 27 โ HSQC Visibility
Visible: NH Invisible: ND
Thus: Loss of peak intensity reports exchange.
๐ Page 28 โ Experimental Setup
- Freeze-dry protein
- Dissolve in D2O
- Record HSQC over time
- Monitor intensity decay
๐ Page 29 โ Protection Factor
Hydrogen bonds protect NH from exchange.
Protection factor = observed / expected rate.
High protection indicates:
- Secondary structure
- Burial
- Ligand binding
๐ Pages 30โ31 โ Binding Surface Example
CBP21 + chitin
Observation: Certain residues protected upon substrate binding.
Mapped onto structure: Defines substrate binding surface.
๐ Page 32 โ Take-Home Messages
H/D exchange useful for:
- Detecting secondary structure
- Detecting ligand epitopes
- Studying folding
๐ด PART III โ NOEs FOR LIGAND BINDING
๐ Pages 33โ34
NOEs between protein and ligand: โ Provide distance restraints โ Can determine structure of complex
Requires: Stable complex (high Ka, slow dissociation).
๐ Pages 35โ36 โ Example
Fatty acid binding protein: NOEs define precise orientation of fatty acid.
๐ Page 37 โ Take-Home
NOEs = structural information But only if binding strong enough.
๐ฃ PART IV โ STD-NMR (Ligand Perspective)
๐ Pages 38โ40 โ Saturation Transfer
Saturate protein resonance. Saturation spreads via spin diffusion. Transfers to ligand in contact.
Ligand dissociates: Carries saturation with it.
๐ Pages 41โ43 โ Example: NAโ & RCA120
STD spectrum shows: Strong signals = ligand atoms closest to protein.
Weak/no signal = far from protein.
Thus: Maps ligand binding epitope.
๐ Page 44 โ STD Summary
Advantages:
- No protein assignment needed
- Works at low purity
- No isotope labeling required
Limitation: Gives no protein information.
๐ต PART V โ PROTEIN DYNAMICS
๐ Pages 45โ47 โ Timescales
Protein motions:
10โปยนยฒ s โ side chain rotation 10โปยนโฐโ10โปยนยน s โ loop motions 10โปโนโ10โปโธ s โ overall tumbling 10โปโทโ10โปยณ s โ slow breathing
๐ Page 48 โ Model-Free Approach
Parameters:
- Overall tumbling (ฯm)
- Order parameter Sยฒ (0โ1)
Sยฒ = 1 โ rigid Sยฒ = 0 โ fully flexible
๐ Page 49 โ T1 & T2
T1, T2 relaxation: Depend on mobility.
T1/T2 ratio estimates tumbling.
๐ Pages 50โ54 โ Case Study: Calmodulin
Mutation F141L:
- Increases flexibility in C-lobe
- Linker region extended
Measured using: 15N{1H}-NOE.
๐ Page 55 โ Take-Home
Relaxation measures:
- Overall motion
- Internal flexibility
NOE distinguishes rigid vs flexible regions.
๐ค PART VI โ PRE
๐ Pages 56โ61 โ Basics
Paramagnetic centers (unpaired electrons) โ Strong magnetic moment โ Enhance relaxation โ Signal attenuation
PRE โ rโปโถ (distance dependent)
๐ Pages 62โ67 โ Theory
PRE arises from:
- Dipoleโdipole interactions
- Electronโnucleus interactions
Requires:
- Paramagnetic label (Gdยณโบ, Mnยฒโบ, nitroxide)
- Diamagnetic control
๐ Pages 68โ72 โ Example: Anoplin
Measured PRE distances in micelle. Determined insertion depth.
PDB 2MJQ.
๐ Pages 73โ77 โ Transient Complexes
PRE detects: Very low-populated states (~0.5%).
Example: Multiple transient geometries explain PRE data.
๐ Pages 78โ79 โ PRE Summary
PRE useful for:
- Long-range constraints
- Solvent accessibility
- Transient states
Analogy: Like fluorescence quenching.
๐ก PART VII โ pKa & Folding
๐ Pages 80โ82 โ pKa by NMR
Monitor chemical shifts vs pH.
Protonation changes shift. Fit curve โ get pKa of individual residues.
Example: Active-site His in cutinase.
๐ Pages 83โ84 โ Real-Time Folding
Most proteins fold too fast for NMR.
Rare slow folder: Apoplastocyanin.
Observed folding over hours.
๐ Pages 85โ86 โ Quenched-Flow NMR
Strategy: Allow folding for defined time. Trigger H/D exchange. Freeze state. Measure protection.
Snapshots of intermediates.
๐ Pages 87โ89 โ Folding Example
Human fibroblast growth factor.
Observation: As folding time increases: More H-bonds form. Less exchange. HSQC intensity decreases.
๐ฏ FINAL TAKE-HOME
Protein NMR can study:
โ Ligand binding (CSP, NOE, STD) โ Binding thermodynamics โ Binding epitopes โ Protein dynamics (T1, T2, NOE) โ Paramagnetic long-range effects โ pKa values โ Folding intermediates
HSQC remains the central tool throughout.