Protein Structure

Lecture 7 Video 12

๐Ÿงฌ Lecture Summary โ€” SAD Phasing, Anomalous Scattering & Density Maps

This lecture focuses on modern experimental phasing methods in X-ray crystallography, especially:

  • Single-wavelength anomalous diffraction (SAD)
  • Anomalous scattering physics
  • Absorption edges & wavelength tuning
  • Phase ambiguity & Harker construction
  • Density modification & map improvement
  • Difference maps used during model building

These concepts are core for solving the phase problem and ultimately obtaining a 3D electron density map of a protein.


โญ 1. Modern Ways to Solve the Phase Problem

Historically, isomorphous replacement was used, but today the two dominant approaches are:

โœ… Molecular Replacement (MR)

  • Uses a known homologous structure as a model.
  • Only requires a native dataset.
  • Phases are calculated by:
    • Finding rotation
    • Finding translation
    • Using Patterson correlations.

โœ… SAD (Single-wavelength anomalous diffraction)

  • Experimental phasing method.
  • Requires a heavy atom inside the protein (e.g., selenium).
  • Only one diffraction dataset is needed.

These two methods dominate modern structure determination.


โšก 2. X-ray Absorption โ€” Why Heavy Atoms Matter

All materials absorb X-rays.

Important trends:

  • Absorption decreases with increasing X-ray energy (shorter wavelength).
  • Heavy atoms absorb much more strongly than light atoms.
  • Proteins naturally contain sulfur โ†’ but sulfur absorption edges are usually outside usable X-ray range.
  • Therefore we introduce heavier elements like selenium or mercury.

This is why:

๐Ÿ‘‰ Methionine โ†’ selenometionine substitution is extremely common.


๐Ÿ”ฌ Absorption Edges

Heavy atoms show step-like features in absorption curves called:

๐Ÿง  X-ray absorption edges These occur when inner-shell electrons (K, L, M shells) are excited.

Around an edge we observe:

  • Pre-edge features
  • White line peak
  • Extended fine structure

The exact edge position depends on chemical environment, so:

๐Ÿ‘‰ A fluorescence scan of the crystal is done โ†’ to tune wavelength precisely for maximum anomalous signal.


๐Ÿ“ก 3. Atomic Scattering Factor โ€” Now Becomes Complex

Normally:

f = f_0

Depends only on scattering angle (resolution) Independent of wavelength.

But near absorption edges:

f = f_0 + f' + i f''

Where:

  • fโ€ฒ (dispersive term) โ†’ real component
  • fโ€ณ (anomalous term) โ†’ imaginary component

Key insight:

๐Ÿง  The imaginary component introduces a 90ยฐ phase shift in the scattering vector.

This breaks symmetry!


๐Ÿšจ 4. Friedelโ€™s Law Breaks

Normally:

I(hkl) = I(-h -k -l)

But anomalous scattering causes:

โ— Intensity differences between Friedel pairs

These differences:

  • Are extremely small
  • But measurable
  • Contain phase information

This is the fundamental signal used in SAD phasing.


๐ŸŽฏ 5. Where Do We Collect Data for SAD vs MAD?

Around the absorption edge there are special wavelength positions:

SAD dataset

  • Collected at peak wavelength
  • Gives maximum anomalous signal (fโ€ณ)

MAD datasets (multiple wavelengths)

  • Peak โ†’ max anomalous signal
  • Inflection point โ†’ minimum dispersive term
  • Remote wavelength โ†’ near zero dispersive contribution

Differences between these datasets provide:

  • Dispersive differences
  • Anomalous differences

These help solve the heavy atom structure.


๐Ÿ“ 6. SAD Phasing Geometry (Harker Construction)

SAD still has phase ambiguity:

  • Two possible phase solutions exist.
  • Figure of merit weighting chooses the most probable direction.

So SAD phasing is:

๐Ÿ‘‰ Conceptually similar to isomorphous replacement But uses anomalous intensity differences instead of native vs derivative datasets.

Huge practical advantage:

โญ Only one dataset is required.


๐Ÿ—บ๏ธ 7. Initial Experimental Maps Are Ugly ๐Ÿ˜…

Experimental phases are usually poor.

Result:

  • Noisy electron density
  • Hard to interpret

Therefore we apply:

๐Ÿง  Density Modification Techniques

1. Non-crystallographic symmetry averaging

  • If multiple copies of protein exist in asymmetric unit
  • Average density โ†’ improves signal.

2. Solvent flattening / solvent flipping

  • Solvent regions should be featureless
  • Enforcing this improves protein density.

3. Histogram matching

  • Adjust density distribution to expected values at given resolution.

These improve:

โญ Phase quality โญ Map interpretability

This process is called phase refinement.


๐Ÿงฉ 8. From Experimental Map โ†’ Model Building

After density improvement:

  • You trace Cฮฑ backbone
  • Place side chains
  • Build atomic model

Now you can compute:

  • Calculated structure factors (Fc) vs
  • Observed structure factors (Fo)

๐Ÿ“Š 9. Difference Maps โ€” Finding Errors

Difference map:

Fo - Fc

Interpretation:

  • Positive density โ†’ something missing in model
  • Negative density โ†’ model built incorrectly

But commonly used map:

โญ 2Foโ€“Fc map

  • Shows full density
  • Highlights model errors subtly
  • Used during refinement.

Even stronger:

โญ 3Foโ€“2Fc map

  • Used to confirm uncertain features.

โš ๏ธ Important Practical Reality โ€” SAD Signal Is Tiny

Compared to isomorphous replacement:

  • Anomalous differences are very very small
  • Requires:
    • High redundancy
    • High multiplicity
    • Very precise measurements

This is critical for successful SAD phasing.


๐Ÿง  Big Picture โ€” All Phasing Methods Compared

You now know three major phasing strategies:

1. Isomorphous Replacement

  • Native vs heavy atom derivative
  • Large intensity differences
  • Historically important.

2. Molecular Replacement

  • Uses homologous model
  • No special experiment needed.

3. SAD / MAD

  • Uses anomalous scattering
  • Needs heavy atoms
  • Requires very precise data.

All aim to recover:

โญ Phase information โ†’ Electron density โ†’ Atomic model


๐Ÿงฌ Final Conceptual Flow

  1. Collect diffraction intensities
  2. Solve phase problem (MR / SAD / etc.)
  3. Calculate experimental density map
  4. Improve map with density modification
  5. Build model
  6. Use difference maps to refine
  7. Obtain final protein structure

Quiz

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