Protein Structure

๐Ÿงฌ Lecture Summary โ€” SAXS & Cryo-EM Principles and Practice

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๐ŸŒŸ PART 1 โ€” Small-Angle X-ray Scattering (SAXS)

๐Ÿ”ฌ What is SAXS?

SAXS is a solution-state structural biology technique used to determine:

  • Low-resolution structures
  • Size range: ~10โ€“500 ร…
  • Works on proteins, complexes, flexible systems

โžก๏ธ Unlike crystallography, SAXS studies molecules in native buffer conditions (page 1-2).


โš™๏ธ SAXS Experimental Setup (image slide explained โ€” page 2)

The diagram shows:

  1. X-ray source
  2. Monochromator โ†’ selects wavelength
  3. Collimation (pinholes) โ†’ produces narrow beam
  4. Dilute protein solution (~1% โ‰ˆ 10 mg/mL)
  5. 2D detector measures scattered intensity

Important parameter:

|q| = rac{4pi sin heta}{lambda}

  • q = scattering vector
  • contains structural information (length scale)

๐Ÿ‘‰ Small angles โ†’ large structural features.


๐ŸงŠ SAXS vs Crystallography (image slide explained โ€” page 2)

CrystallographySAXS
Requires crystalsWorks in solution
Possibly non-nativeNative state
High resolutionLow resolution
High information contentLimited information

๐Ÿ’ก SAXS is easier experimentally but harder computationally because of the inverse problem.


๐Ÿ“Š Data Treatment and Inverse Scattering Problem (image slide โ€” page 3)

SAXS measures:

I(q)

But we want:

โžก๏ธ Real-space structure

To obtain that we calculate:

๐Ÿงฎ Pair-distance distribution function โ€” p(r)

  • Probability of distances between points inside particle
  • Gives:
    • Shape
    • Maximum size ( D_ )

This is an inverse problem because many shapes can give similar scattering.


๐Ÿ“ˆ SAXS Plots You Must Know (page 4)

1๏ธโƒฃ Scattering plot

  • Raw data
  • ( ln I(q) ) vs ( q )

2๏ธโƒฃ Guinier plot

  • ( ln I(q) ) vs ( q^2 )
  • Gives:
    • Radius of gyration ( R_g )
    • Molecular weight estimate

3๏ธโƒฃ p(r) plot

  • Real-space information
  • Gives particle shape.

๐Ÿงฉ Particle Shapes from p(r) (image slide โ€” page 4)

Different curves correspond to:

  • Sphere โ†’ symmetric bell shape
  • Rod โ†’ skewed distribution
  • Disk โ†’ different tail behavior
  • Dumbbell โ†’ bimodal

๐Ÿ’ก Therefore SAXS can distinguish overall topology even without atomic resolution.


๐Ÿงฎ Kratky Plot โ€” Flexibility Indicator (page 5-6)

Plot:

s^2 I(s) ext{ vs } s

Interpretation:

ShapeMeaning
Bell-shaped peakCompact folded protein
PlateauFlexible protein
Rising curveUnfolded / IDP

๐Ÿ‘‰ Normalized Kratky allows comparison across proteins.


๐Ÿ“ Porod Law (page 5)

At high q:

I(q) sim q^{-4}

  • Used to estimate excluded volume
  • Deviations โ†’ flexibility or disorder.

๐Ÿงฑ Ab-initio Dummy Atom Modeling (page 6-7)

Concept:

  • Represent protein as many beads (dummy atoms)
  • Optimize arrangement to fit SAXS curve
  • Uses simulated annealing

Output: โžก๏ธ Low-resolution molecular envelope.

Lysozyme example shown in slide.


๐Ÿงฌ Hybrid Modeling (page 7)

If atomic structure exists:

  • Fit crystal structure into SAXS envelope
  • Validate solution conformation.

๐Ÿ‘ Why SAXS? (page 8)

Advantages:

  • Native conditions
  • No crystallization
  • Small sample volumes
  • Works at low concentration

Also:

  • SANS (neutron) useful in high salt / Dโ‚‚O contrast variation

โ„๏ธ PART 2 โ€” Cryo-Electron Microscopy (Cryo-EM)


๐Ÿš€ Resolution Revolution (page 10-11)

Slides show:

  • Explosion in cryo-EM structures in PDB
  • Nobel Prize 2017

Key reason:

  • Direct electron detectors
  • Algorithms (RELION etc.)

๐Ÿงฌ Single Particle Analysis (SPA)

Allows:

  • High resolution (<3 ร… possible)
  • Example shown: GDH at 1.8 ร… (page 12).

๐Ÿงซ Structural Biology In situ โ€” Tomography (page 13)

Tomography:

  • Tilt series โ†’ 3D cellular reconstruction
  • Allows studying molecules in cells

The slide shows neuromuscular synapse rendering.


๐Ÿ”ฌ MicroED (page 14)

Electron diffraction on nanocrystals

Advantages:

  • Needs tiny crystals
  • Bridges XRD and EM.

โš™๏ธ Transmission Electron Microscope (TEM)


๐Ÿงฒ Lens System (image slide โ€” page 16)

Three main lens systems:

  1. Condenser lens โ†’ focuses beam on sample
  2. Objective lens โ†’ forms first image
  3. Projector lenses โ†’ magnify image

๐Ÿ”ฆ TEM vs Light Microscopy (page 16-17)

Similarities:

  • Imaging optics
  • Magnification stages
  • Specimen holder

Differences:

  • Glass lenses vs electromagnetic lenses
  • Resolution limited by wavelength in LM
  • Electron beam causes radiation damage

๐Ÿ“œ History Slide (page 17)

Timeline shows:

  • 1920s โ†’ wave nature discovery
  • 1930s โ†’ first TEM
  • Later โ†’ resolution improvements.

โšก Why Use Electrons? (page 19)

Electrons:

  • Very small wavelength โ†’ high resolution
  • Strong interaction with matter

BUT:

  • Cause damage
  • Low penetration.

๐Ÿง  New Technologies (page 19)

  • Phase plates
  • Direct detectors
  • Cs correctors
  • Automation
  • Movie mode

These enabled modern cryo-EM success.


โ„๏ธ Cryo-EM SPA Workflow (page 20)

Image slide shows full pipeline:

  1. Purify protein
  2. Apply to grid
  3. Plunge freeze in liquid ethane
  4. Collect movies
  5. Particle picking
  6. 2D classification
  7. 3D reconstruction
  8. Atomic modeling

๐ŸงŠ Vitrification (page 21)

  • Grid diameter โ‰ˆ 3 mm
  • Holes โ‰ˆ 1-2 ยตm
  • Flash freezing โ†’ amorphous ice

Preserves native structure.


๐ŸŽฅ Movie Collection + Drift Correction (page 22)

Instead of single image:

  • Collect dose-fractionated frames
  • Align โ†’ reduce motion blur.

๐Ÿงฑ 2D Classification (page 22)

  • Average similar particle views
  • Remove junk particles.

๐Ÿงฌ 3D Reconstruction (page 23)

  • Combine many orientations
  • Produce density map.

๐Ÿงช Negative Stain vs Cryo-EM (page 24)

Negative stainCryo-EM
Heavy metal stainFrozen native buffer
High contrastLow contrast
Low resolution (2โ€“4 nm)Atomic resolution possible
Easy & cheapComplex & expensive

๐Ÿงฌ Applications (page 25)

Cryo-EM enables:

  • Ligand binding mapping
  • Huge complexes
  • Dynamics
  • Quality control
  • Epitope mapping

Examples shown include virus and ribosome.


๐Ÿ‘ Advantages of Cryo-EM (page 26)

  • No crystallization
  • Handles heterogeneity
  • Small sample amounts

๐Ÿ‘Ž Disadvantages

  • Low SNR
  • Expensive equipment
  • Time-consuming data collection
  • Size limit (~200 kDa typical).

โš›๏ธ PART 3 โ€” Image Formation in EM


๐ŸŒŠ Electrons: Wave-Particle Duality (page 31)

Electrons:

  • Scatter like particles
  • Interfere like waves

Therefore images arise from:

  • Amplitude contrast
  • Phase contrast.

โšซ Amplitude Contrast (page 32)

Mechanism:

  • Electrons absorbed or scattered
  • Fewer reach detector
  • Dense regions appear dark

Dominant in:

โžก๏ธ Negative stain EM.


๐ŸŒˆ Phase Contrast (page 33-35)

Mechanism:

  • Elastic scattering changes phase of electron wave
  • Interference creates image

Dominant in:

โžก๏ธ Cryo-EM.


โšก Elastic vs Inelastic Scattering (page 35)

TypeEffect
ElasticImage formation
InelasticEnergy loss โ†’ damage

๐Ÿ”Š Signal-to-Noise Problem (page 37)

Macromolecules resemble water in EM:

โžก๏ธ Hard to distinguish โ†’ low contrast.

Therefore:

  • Need averaging
  • Filtering
  • Classification.

๐Ÿ”ข Fourier Space in EM (page 38-40)

Key idea:

  • Images easier processed in Fourier space

Applications:

  • Filtering
  • CTF correction
  • Alignment
  • 3D reconstruction

Low frequencies โ†’ overall shape High frequencies โ†’ fine details.


๐Ÿ“ Nyquist Sampling (page 41)

Rule:

pixel size le rac{1}{2} ext{ smallest feature}

Otherwise:

โžก๏ธ Aliasing (information loss).


๐Ÿ“ท Modulation Transfer Function (MTF) (page 42)

Measures detector performance:

  • How well spatial frequencies preserved
  • Ideal value = 1.

๐Ÿ“ก Direct Electron Detectors (page 43-46)

Advantages:

  • Electron counting
  • Super-resolution
  • Motion correction

Result:

โžก๏ธ Huge resolution improvement.


๐Ÿง  FSC โ€” Resolution Determination (page 48)

Gold-standard method:

  1. Split data in half
  2. Process independently
  3. Compare maps

Correlation threshold โ†’ resolution.


๐Ÿงน Particle Selection (page 50)

Keep:

  • Well-aligned particles

Reject:

  • Junk / misclassified

Iterative refinement improves map.


โญ FINAL BIG PICTURE

SAXS

  • Low-resolution solution shape
  • Fast & flexible
  • Complementary to high-resolution methods

Cryo-EM

  • High-resolution structures
  • No crystallization
  • Best for large complexes

EM Image Formation

  • Phase interference physics
  • Requires Fourier processing
  • Modern detectors โ†’ resolution revolution.

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