Protein Structure

Lecture 7 Video 13

๐Ÿงฌ Lecture Summary โ€” Building Atomic Models from Electron Density

๐ŸŒŠ From Diffraction Pattern โ†’ Electron Density โ†’ Atomic Model

After collecting diffraction data and performing Fourier synthesis, the experimental result is:

โžก๏ธ A 3D electron density map of the unit cell

This map is the true experimental representation of where electrons (and therefore atoms) are located. But it is not yet a structure.

๐Ÿ‘‰ The scientist must now interpret the density and build an atomic model inside it.


๐ŸŽจ Different Ways to Represent Protein Structures (Models)

A โ€œmodelโ€ can be shown in many formats โ€” each emphasizes different biological or physical insights.

๐ŸŒ€ Cartoon (Ribbon) Representation

  • Shows secondary structure elements
  • Helps visualize helices, sheets, topology
  • Often combined with ball-and-stick residues for important sites

๐ŸŒ Surface Representation

  • Displays domain organization
  • Shows pockets, interfaces, ligand accessibility
  • Useful for functional interpretation

๐Ÿงฑ Ball-and-Stick in Electron Density

  • Shows how atoms fit into the experimental density
  • Used during model validation

๐Ÿ“š Ensemble Models (Typical for NMR)

  • Many overlaid models
  • Shows flexibility and dynamic regions
  • Regions with spread = more mobile

๐Ÿฅš Atomic Displacement Ellipsoids (Anisotropic B-factors)

  • Each atom drawn as an ellipsoid
  • Shape indicates direction and magnitude of motion
  • Small ellipsoids โ†’ rigid region
  • Large ellipsoids โ†’ flexible region

๐Ÿงฑ How Do We Actually Build the Model?

๐Ÿฆด Step 1 โ€” Build a Skeleton (Historical Method)

  • Skeleton = simplified representation of continuous density
  • Helps trace C-alpha backbone path
  • First used in the 1970s

Goal: โžก๏ธ Identify how the polypeptide chain winds through the density


๐Ÿช„ Step 2 โ€” Pattern Builder (Baton Method)

A baton tool is manually placed in the density:

  • Connect Cฮฑ โ†’ next Cฮฑ โ†’ next Cฮฑ
  • Creates a C-alpha trace
  • Quickly reveals:
    • ฮฑ-helices
    • ฮฒ-strands
    • turns

Once backbone is traced โ†’ side chains are added.


๐Ÿงฉ Recognizing Secondary Structure from Density

When the backbone trace is known:

You can identify:

  • ๐ŸŒ€ ฮฑ-helix
  • ๐Ÿ“„ ฮฒ-sheet (parallel / antiparallel)
  • ๐Ÿ” turns

These structural motifs have distinct geometric patterns.


โš—๏ธ Side Chain Chemistry Matters

The final model must make:

  • Physical sense
  • Chemical sense
  • Biological sense

Interactions to consider:

  • Hydrogen bonds
  • Hydrophobic packing
  • Polar interactions

Incorrect chemistry = incorrect structure.


๐Ÿ”Ž Recognizing Directionality in Density

Peptide bonds produce characteristic density features:

  • Carbonyl โ€œbumpsโ€
  • Planar peptide geometry
  • Side chains emerge from Cฮฑ

These features allow you to determine:

โžก๏ธ N-terminus โ†’ C-terminus direction of the chain.


๐Ÿงฌ Identifying Specific Amino Acids in Density

Some residues are especially diagnostic:

โญ Very characteristic residues

  • Glycine โ†’ no side chain
  • Proline โ†’ cyclic backbone link
  • Methionine โ†’ sulfur density
  • Aromatics โ†’ large rings (Phe, Tyr, Trp)

Scientists often:

  • Use primary sequence knowledge
  • Search for distinctive density patterns Example: two adjacent tryptophans.

โšก Using Heavy Atoms and Anomalous Scatterers

Helpful tricks:

  • Mercury binds cysteine โ†’ reveals cysteine positions
  • Selenium-methionine labeling โ†’ shows methionine sites
  • Sulfur anomalous maps โ†’ locate cysteines/met

These provide anchor points for building the model.


๐Ÿ”ฎ Secondary Structure Prediction Helps!

Before model building, researchers often:

  • Predict helices/sheets computationally
  • Compare prediction with observed Cฮฑ trace
  • Helps assign sequence register correctly

๐Ÿ“Š Resolution โ€” The Key Quality Indicator

Resolution determines how detailed the density is.

๐ŸŸฅ ~4 ร… (Low resolution)

  • Mostly featureless
  • Only fold / chain path visible

๐ŸŸง ~3 ร…

  • Some side chains visible

๐ŸŸฉ ~2 ร…

  • Hydrogen bonding visible
  • Waters / ions visible
  • Good model quality

๐ŸŸฆ ~1 ร… (Atomic resolution)

  • Individual atoms visible
  • โ€œFull chemistryโ€ interpretation possible

๐Ÿ” Rotamer Libraries โ€” Fixing Side Chains

Side chains adopt preferred conformations.

Rotamer libraries:

  • Statistical database of allowed conformations
  • Weighted by observed frequency
  • Helps quickly fit density

Alternative:

  • Manually drag atoms into density
  • Then refine geometry computationally.

๐Ÿงฎ Difference Fourier Maps โ€” Extremely Powerful Tools

These maps show what is missing or wrong in the model.

Fo โˆ’ Fc map

  • Positive density โ†’ something missing
  • Negative density โ†’ something incorrectly modeled

Typical color convention:

  • Green โ†’ add atoms
  • Red โ†’ remove atoms

Applications:

  • Place water molecules
  • Identify mutations
  • Locate metal binding sites
  • Detect conformational changes

โŒ Common Model Building Errors (Very Important for Exams)

From worst โ†’ mildest:

๐Ÿšจ Severe

  • Completely wrong fold
  • Backbone traced in wrong density
  • Secondary structures connected incorrectly

โš ๏ธ Moderate

  • Wrong chain direction
  • Out-of-register sequence placement

๐Ÿ™‚ Minor

  • Wrong peptide plane flip
  • Wrong side chain rotamer

Even PDB structures can contain errors โ†’ always be critical.


๐Ÿค– Automated Model Building (Modern Practice)

Examples:

  • RESOLVE (Phenix)
  • ARP/wARP

๐Ÿ‘ Advantages

  • Fast
  • Objective
  • Can build 50โ€“90% of model

๐Ÿ‘Ž Limitations

  • May fail in difficult regions
  • Hard to define molecular boundaries
  • Trouble with ligands / nucleic acids / modifications

Manual finishing is still essential.


๐Ÿง  Big Picture โ€” What This Lecture Wants You to Understand

Protein structure determination is not:

โŒ โ€œSoftware gives structure automaticallyโ€

It is:

โœ… A scientific interpretation process

You must:

  • Understand density features
  • Know chemistry of residues
  • Use Fourier maps intelligently
  • Validate stereochemistry
  • Be skeptical of models

Quiz

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