Protein Structure

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.


๐Ÿงญ 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

๐ŸŸข PART I โ€“ INTRODUCTION

๐Ÿ“„ Page 1 โ€“ Title

Introduction to using Protein NMR beyond structure determination.


๐Ÿ“„ Page 2 โ€“ The Workflow of NMR Studies

The classical structure determination path:

  1. Sample preparation
  2. Resonance assignment
  3. NOEs & couplings
  4. Structure calculation

โžก๏ธ This consumes huge NMR time and computer time.

But once structure is known โ†’ NMR can study:

  • Function
  • Dynamics
  • Mechanism

๐Ÿ“„ 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.


๐Ÿ“„ Page 4 โ€“ Proteinโ€“Ligand Interactions

Methods listed:

  • Proteinโ€“ligand 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.


๐Ÿ“„ Page 5 โ€“ 15N-HSQC: The โ€œPower Toolโ€ ๐Ÿ”ฅ

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.


๐Ÿ“„ Page 6 โ€“ Take-Home Messages

NMR can study:

  • Binding thermodynamics
  • Structural aspects
  • Molecular motion
  • Folding
  • pKa

HSQC = extremely sensitive probe of environment changes.


๐ŸŸก PART IIA โ€“ CHEMICAL SHIFT PERTURBATION (CSP)

๐Ÿ“„ Page 7 โ€“ Title


๐Ÿ“„ 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.


๐Ÿ“„ Page 9 โ€“ Binding Thermodynamics Refresher

Reaction: P + L โ‡Œ PL

Parameters:

  • kon (binding rate)
  • koff (dissociation rate)
  • Ka = kon/koff
  • Kd = 1/Ka

Diffusion-limited kon โ‰ˆ 10โท Mโปยนsโปยน.

If conformational change required โ†’ slower.


๐Ÿ“„ 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

๐Ÿ“„ Pages 11โ€“12 โ€“ Chemical Exchange Regimes

Important NMR concept.

Exchange rate (kex) compared to chemical shift difference (ฮ”ฮฝ):

1๏ธโƒฃ Slow exchange (kex << ฮ”ฮฝ)

  • Two peaks visible

2๏ธโƒฃ Fast exchange (kex >> ฮ”ฮฝ)

  • One peak moving

3๏ธโƒฃ Intermediate exchange

  • Peak broadening / disappearance

๐Ÿ“„ Pages 13โ€“14 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.


๐Ÿ“„ 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.


๐Ÿ“„ Pages 16โ€“17 โ€“ Calculating Ka

In fast exchange:

ฮ”ฮดobs / ฮ”ฮดbound = fraction bound

Using binding equations for 1:1 complex: You can solve for Ka.

Key insight: Chemical shifts can quantify thermodynamics.


๐Ÿ“„ Pages 18โ€“23 โ€“ Case Study: Plectasin

Study: How does antimicrobial peptide plectasin bind lipid II?

Steps:

  1. Add DPC micelles (membrane mimic)
  2. Observe binding
  3. Add lipid II

Findings:

  • One hydrophobic end inserts into micelle
  • Lipid II binds in semi-ring around protein
  • Chemical shift mapping shows binding surface

ฮ”G = โˆ’27 kJ/mol.


๐Ÿ“„ 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.


๐ŸŸ  PART IIB โ€“ H/D EXCHANGE

๐Ÿ“„ Pages 25โ€“26 โ€“ Concept

Amide hydrogens exchange with solvent.

In D2O: NH โ†’ ND Peak disappears in HSQC.

Exchange rate depends strongly on pH.


๐Ÿ“„ Page 27 โ€“ HSQC Visibility

Visible: NH Invisible: ND

Thus: Loss of peak intensity reports exchange.


๐Ÿ“„ Page 28 โ€“ Experimental Setup

  1. Freeze-dry protein
  2. Dissolve in D2O
  3. Record HSQC over time
  4. Monitor intensity decay

๐Ÿ“„ Page 29 โ€“ Protection Factor

Hydrogen bonds protect NH from exchange.

Protection factor = observed / expected rate.

High protection indicates:

  • Secondary structure
  • Burial
  • Ligand binding

๐Ÿ“„ Pages 30โ€“31 โ€“ Binding Surface Example

CBP21 + chitin

Observation: Certain residues protected upon substrate binding.

Mapped onto structure: Defines substrate binding surface.


๐Ÿ“„ Page 32 โ€“ Take-Home Messages

H/D exchange useful for:

  • Detecting secondary structure
  • Detecting ligand epitopes
  • Studying folding

๐Ÿ”ด PART III โ€“ NOEs FOR LIGAND BINDING

๐Ÿ“„ Pages 33โ€“34

NOEs between protein and ligand: โ†’ Provide distance restraints โ†’ Can determine structure of complex

Requires: Stable complex (high Ka, slow dissociation).


๐Ÿ“„ Pages 35โ€“36 โ€“ Example

Fatty acid binding protein: NOEs define precise orientation of fatty acid.


๐Ÿ“„ Page 37 โ€“ Take-Home

NOEs = structural information But only if binding strong enough.


๐ŸŸฃ PART IV โ€“ STD-NMR (Ligand Perspective)

๐Ÿ“„ Pages 38โ€“40 โ€“ Saturation Transfer

Saturate protein resonance. Saturation spreads via spin diffusion. Transfers to ligand in contact.

Ligand dissociates: Carries saturation with it.


๐Ÿ“„ Pages 41โ€“43 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.


๐Ÿ“„ Page 44 โ€“ STD Summary

Advantages:

  • No protein assignment needed
  • Works at low purity
  • No isotope labeling required

Limitation: Gives no protein information.


๐Ÿ”ต PART V โ€“ PROTEIN DYNAMICS

๐Ÿ“„ Pages 45โ€“47 โ€“ Timescales

Protein motions:

10โปยนยฒ s โ€“ side chain rotation 10โปยนโฐโ€“10โปยนยน s โ€“ loop motions 10โปโนโ€“10โปโธ s โ€“ overall tumbling 10โปโทโ€“10โปยณ s โ€“ slow breathing


๐Ÿ“„ Page 48 โ€“ Model-Free Approach

Parameters:

  • Overall tumbling (ฯ„m)
  • Order parameter Sยฒ (0โ€“1)

Sยฒ = 1 โ†’ rigid Sยฒ = 0 โ†’ fully flexible


๐Ÿ“„ Page 49 โ€“ T1 & T2

T1, T2 relaxation: Depend on mobility.

T1/T2 ratio estimates tumbling.


๐Ÿ“„ Pages 50โ€“54 โ€“ Case Study: Calmodulin

Mutation F141L:

  • Increases flexibility in C-lobe
  • Linker region extended

Measured using: 15N{1H}-NOE.


๐Ÿ“„ Page 55 โ€“ Take-Home

Relaxation measures:

  • Overall motion
  • Internal flexibility

NOE distinguishes rigid vs flexible regions.


๐ŸŸค PART VI โ€“ PRE

๐Ÿ“„ Pages 56โ€“61 โ€“ Basics

Paramagnetic centers (unpaired electrons) โ†’ Strong magnetic moment โ†’ Enhance relaxation โ†’ Signal attenuation

PRE โˆ rโปโถ (distance dependent)


๐Ÿ“„ Pages 62โ€“67 โ€“ Theory

PRE arises from:

  • Dipoleโ€“dipole interactions
  • Electronโ€“nucleus interactions

Requires:

  • Paramagnetic label (Gdยณโบ, Mnยฒโบ, nitroxide)
  • Diamagnetic control

๐Ÿ“„ Pages 68โ€“72 โ€“ Example: Anoplin

Measured PRE distances in micelle. Determined insertion depth.

PDB 2MJQ.


๐Ÿ“„ Pages 73โ€“77 โ€“ Transient Complexes

PRE detects: Very low-populated states (~0.5%).

Example: Multiple transient geometries explain PRE data.


๐Ÿ“„ Pages 78โ€“79 โ€“ PRE Summary

PRE useful for:

  • Long-range constraints
  • Solvent accessibility
  • Transient states

Analogy: Like fluorescence quenching.


๐ŸŸก PART VII โ€“ pKa & Folding

๐Ÿ“„ Pages 80โ€“82 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.


๐Ÿ“„ Pages 83โ€“84 โ€“ Real-Time Folding

Most proteins fold too fast for NMR.

Rare slow folder: Apoplastocyanin.

Observed folding over hours.


๐Ÿ“„ Pages 85โ€“86 โ€“ Quenched-Flow NMR

Strategy: Allow folding for defined time. Trigger H/D exchange. Freeze state. Measure protection.

Snapshots of intermediates.


๐Ÿ“„ Pages 87โ€“89 โ€“ Folding Example

Human fibroblast growth factor.

Observation: As folding time increases: More H-bonds form. Less exchange. HSQC intensity decreases.


๐ŸŽฏ FINAL TAKE-HOME

Protein NMR can study:

โœ… Ligand binding (CSP, NOE, STD) โœ… Binding thermodynamics โœ… Binding epitopes โœ… Protein dynamics (T1, T2, NOE) โœ… Paramagnetic long-range effects โœ… pKa values โœ… Folding intermediates

HSQC remains the central tool throughout.

Quiz

Score: 0/30 (0%)