Lecture 8 PPT
๐งฌ Lecture Summary โ SAXS & Cryo-EM Principles and Practice
Source:
๐ PART 1 โ Small-Angle X-ray Scattering (SAXS)
๐ฌ What is SAXS?
SAXS is a solution-state structural biology technique used to determine:
- Low-resolution structures
- Size range: ~10โ500 ร
- Works on proteins, complexes, flexible systems
โก๏ธ Unlike crystallography, SAXS studies molecules in native buffer conditions (page 1-2).
โ๏ธ SAXS Experimental Setup (image slide explained โ page 2)
The diagram shows:
- X-ray source
- Monochromator โ selects wavelength
- Collimation (pinholes) โ produces narrow beam
- Dilute protein solution (~1% โ 10 mg/mL)
- 2D detector measures scattered intensity
Important parameter:
|q| = rac{4pi sin heta}{lambda}
- q = scattering vector
- contains structural information (length scale)
๐ Small angles โ large structural features.
๐ง SAXS vs Crystallography (image slide explained โ page 2)
| Crystallography | SAXS |
|---|---|
| Requires crystals | Works in solution |
| Possibly non-native | Native state |
| High resolution | Low resolution |
| High information content | Limited information |
๐ก SAXS is easier experimentally but harder computationally because of the inverse problem.
๐ Data Treatment and Inverse Scattering Problem (image slide โ page 3)
SAXS measures:
I(q)
But we want:
โก๏ธ Real-space structure
To obtain that we calculate:
๐งฎ 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.
๐ SAXS Plots You Must Know (page 4)
1๏ธโฃ Scattering plot
- Raw data
- ( ln I(q) ) vs ( q )
2๏ธโฃ Guinier plot
- ( ln I(q) ) vs ( q^2 )
- Gives:
- Radius of gyration ( R_g )
- Molecular weight estimate
3๏ธโฃ p(r) plot
- Real-space information
- Gives particle shape.
๐งฉ 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
๐ก Therefore SAXS can distinguish overall topology even without atomic resolution.
๐งฎ Kratky Plot โ Flexibility Indicator (page 5-6)
Plot:
s^2 I(s) ext{ vs } s
Interpretation:
| Shape | Meaning |
|---|---|
| Bell-shaped peak | Compact folded protein |
| Plateau | Flexible protein |
| Rising curve | Unfolded / IDP |
๐ Normalized Kratky allows comparison across proteins.
๐ Porod Law (page 5)
At high q:
I(q) sim q^{-4}
- Used to estimate excluded volume
- Deviations โ flexibility or disorder.
๐งฑ 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: โก๏ธ Low-resolution molecular envelope.
Lysozyme example shown in slide.
๐งฌ Hybrid Modeling (page 7)
If atomic structure exists:
- Fit crystal structure into SAXS envelope
- Validate solution conformation.
๐ Why SAXS? (page 8)
Advantages:
- Native conditions
- No crystallization
- Small sample volumes
- Works at low concentration
Also:
- SANS (neutron) useful in high salt / DโO contrast variation
โ๏ธ PART 2 โ Cryo-Electron Microscopy (Cryo-EM)
๐ 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.)
๐งฌ Single Particle Analysis (SPA)
Allows:
- High resolution (<3 ร possible)
- Example shown: GDH at 1.8 ร (page 12).
๐งซ 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.
๐ฌ MicroED (page 14)
Electron diffraction on nanocrystals
Advantages:
- Needs tiny crystals
- Bridges XRD and EM.
โ๏ธ Transmission Electron Microscope (TEM)
๐งฒ Lens System (image slide โ page 16)
Three main lens systems:
- Condenser lens โ focuses beam on sample
- Objective lens โ forms first image
- Projector lenses โ magnify image
๐ฆ 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
๐ History Slide (page 17)
Timeline shows:
- 1920s โ wave nature discovery
- 1930s โ first TEM
- Later โ resolution improvements.
โก Why Use Electrons? (page 19)
Electrons:
- Very small wavelength โ high resolution
- Strong interaction with matter
BUT:
- Cause damage
- Low penetration.
๐ง 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:
- Purify protein
- Apply to grid
- Plunge freeze in liquid ethane
- Collect movies
- Particle picking
- 2D classification
- 3D reconstruction
- Atomic modeling
๐ง Vitrification (page 21)
- Grid diameter โ 3 mm
- Holes โ 1-2 ยตm
- Flash freezing โ amorphous ice
Preserves native structure.
๐ฅ Movie Collection + Drift Correction (page 22)
Instead of single image:
- Collect dose-fractionated frames
- Align โ reduce motion blur.
๐งฑ 2D Classification (page 22)
- Average similar particle views
- Remove junk particles.
๐งฌ 3D Reconstruction (page 23)
- Combine many orientations
- Produce density map.
๐งช Negative Stain vs Cryo-EM (page 24)
| Negative stain | Cryo-EM |
|---|---|
| Heavy metal stain | Frozen native buffer |
| High contrast | Low contrast |
| Low resolution (2โ4 nm) | Atomic resolution possible |
| Easy & cheap | Complex & expensive |
๐งฌ Applications (page 25)
Cryo-EM enables:
- Ligand binding mapping
- Huge complexes
- Dynamics
- Quality control
- Epitope mapping
Examples shown include virus and ribosome.
๐ Advantages of Cryo-EM (page 26)
- No crystallization
- Handles heterogeneity
- Small sample amounts
๐ Disadvantages
- Low SNR
- Expensive equipment
- Time-consuming data collection
- Size limit (~200 kDa typical).
โ๏ธ PART 3 โ Image Formation in EM
๐ Electrons: Wave-Particle Duality (page 31)
Electrons:
- Scatter like particles
- Interfere like waves
Therefore images arise from:
- Amplitude contrast
- Phase contrast.
โซ Amplitude Contrast (page 32)
Mechanism:
- Electrons absorbed or scattered
- Fewer reach detector
- Dense regions appear dark
Dominant in:
โก๏ธ Negative stain EM.
๐ Phase Contrast (page 33-35)
Mechanism:
- Elastic scattering changes phase of electron wave
- Interference creates image
Dominant in:
โก๏ธ Cryo-EM.
โก Elastic vs Inelastic Scattering (page 35)
| Type | Effect |
|---|---|
| Elastic | Image formation |
| Inelastic | Energy loss โ damage |
๐ Signal-to-Noise Problem (page 37)
Macromolecules resemble water in EM:
โก๏ธ Hard to distinguish โ low contrast.
Therefore:
- Need averaging
- Filtering
- Classification.
๐ข 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.
๐ Nyquist Sampling (page 41)
Rule:
pixel size le rac{1}{2} ext{ smallest feature}
Otherwise:
โก๏ธ Aliasing (information loss).
๐ท Modulation Transfer Function (MTF) (page 42)
Measures detector performance:
- How well spatial frequencies preserved
- Ideal value = 1.
๐ก Direct Electron Detectors (page 43-46)
Advantages:
- Electron counting
- Super-resolution
- Motion correction
Result:
โก๏ธ Huge resolution improvement.
๐ง FSC โ Resolution Determination (page 48)
Gold-standard method:
- Split data in half
- Process independently
- Compare maps
Correlation threshold โ resolution.
๐งน 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.