Protein Structure

Lecture 7 Video 2

๐Ÿงฌโœจ Lecture Summary โ€” Protein Crystallization & X-ray Crystallography Basics


๐ŸŒŸ 1. What controls protein crystallization?

Protein crystallization is very delicate because the same parameters that help crystals form can also cause:

  • โŒ Amorphous precipitation
  • โŒ Aggregation
  • โŒ Fibrillation
  • โŒ Denaturation

So crystallization requires fine tuning of solution conditions.

๐Ÿ”ฌ Important parameters you can change

๐Ÿง‚ Ionic strength (salting in vs reverse salting-in)

  • Salting-in: adding salt increases protein solubility.
  • Reverse salting-in: lowering ionic strength pushes proteins out of solution โ†’ promotes crystallization.

๐Ÿ’ง Precipitants (lower water activity)

  • Precipitants remove available water molecules.
  • Proteins start interacting with each other instead of water โ†’ crystal contacts form.

โš™๏ธ Chelating agents (e.g., Znยฒโบ)

  • Metal ions can form bridges between protein surface residues.
  • This stabilizes intermolecular contacts โ†’ nucleation may begin.

๐ŸŒก๏ธ Temperature

  • Some proteins crystallize at low temperature (~4ยฐC)
  • Others at room temperature (~20ยฐC) โ†’ Always test multiple temperatures.

โšก pH

  • Changes protonation of titratable residues.
  • Alters surface charge and interaction patterns โ†’ affects crystallization.

โš ๏ธ Why protein must stay native

Crystallization requires:

โœ… Well-folded protein โŒ Partially denatured protein disrupts crystal packing โŒ Fibrils stop crystal growth

Even small amounts of damaged protein can terminate crystal growth, preventing crystals large enough for diffraction.


โš–๏ธ Kinetics vs Thermodynamics (Very Important Concept)

  • Amorphous precipitation โ†’ kinetically favored (fast).
  • Crystal formation โ†’ thermodynamically favored (slow but stable).

๐Ÿ‘‰ Therefore, conditions must be changed slowly and controllably to obtain crystals.


๐Ÿ“ˆ 2. Phase diagram of crystallization

Axes:

  • Protein concentration
  • Precipitant concentration

Regions

RegionMeaning
UnsaturatedNo crystals
MetastableCrystals can grow but not nucleate
LabileNucleation occurs (also risk of precipitation)

๐Ÿ”‘ Key idea

  • First enter labile region โ†’ nucleation
  • Then move into metastable region โ†’ growth

This trajectory must be controlled for successful crystallization.


๐Ÿ’ง 3. Vapor diffusion (main crystallization method)

Used in ~99.99% of experiments.

Methods

  • Hanging drop
  • Sitting drop

How it works

  1. Mix protein + precipitant (often 1:1).
  2. Drop sealed over reservoir with higher precipitant concentration.
  3. Water evaporates from drop โ†’ concentration increases.
  4. System moves through phase diagram โ†’ nucleation + growth.

Important dynamics:

  • Drop volume decreases.
  • Protein concentration first increases.
  • After nucleation, protein concentration decreases as crystal grows.

๐Ÿ’Ž 4. Why do we need crystals?

Because:

๐Ÿ‘‰ A crystal is a repeating lattice of billions of molecules.

Single molecule scattering is too weak.

Crystal acts as:

โญ โ€œSingle-molecule amplifier.โ€

This amplification makes diffraction measurable.


๐Ÿ“ฆ 5. Unit cell and crystal systems

A unit cell is defined by:

  • Axes: a, b, c
  • Angles: ฮฑ, ฮฒ, ฮณ

From geometric constraints we get:

  • 7 crystal systems
  • 14 Bravais lattices

Examples of increasing symmetry:

SystemConstraints
TriclinicNo constraints
MonoclinicSome angle constraints
OrthorhombicAll angles = 90ยฐ
Cubica=b=c and all angles = 90ยฐ

Lattices may be:

  • Primitive (P)
  • Body-centered (I)
  • Face-centered (F)
  • Base-centered (C)

๐Ÿ”„ 6. Symmetry operations in protein crystals

Allowed:

  • โœ… Translation
  • โœ… Rotation (2-, 3-, 4-, 6-fold)
  • โœ… Screw axes (rotation + translation)

Not allowed:

  • โŒ Mirror planes
  • โŒ Glide planes
  • โŒ Inversion

Reason:

๐Ÿ‘‰ These would convert L-amino acids into D-amino acids, which is biologically impossible.


๐Ÿงฉ 7. Space groups

  • Mathematically: 230 space groups
  • For chiral biomolecules: only 65 allowed

Space groups combine:

  • Bravais lattice
  • Point group symmetry

Example:

  • C2 space group โ†’ 4 equivalent positions.

๐Ÿงฑ 8. Asymmetric unit (Very Exam-Important)

Definition:

๐Ÿ‘‰ Smallest part of crystal structure that cannot be generated by symmetry operations.

Process:

  1. Determine asymmetric unit structure.
  2. Apply symmetry โ†’ build unit cell.
  3. Translate unit cells โ†’ full crystal lattice.

Also:

  • Non-crystallographic symmetry can exist within the asymmetric unit.

โ˜ข๏ธ 9. What are X-rays?

  • Wavelength โ‰ˆ ร… scale (~0.1 nm) โ†’ same as chemical bonds.
  • Energy โ‰ˆ 10โดโ€“10โต eV.

History:

  • Discovered by Wilhelm Rรถntgen (1895).
  • Diffraction demonstrated by Friedrich, Knipping & Laue (1910).

โšก 10. X-ray sources

๐Ÿ  In-house sources

  • Sealed tube
  • Rotating anode

Pros:

  • Reliable
  • Simple

Cons:

  • Low intensity
  • Fixed wavelength
  • Need larger crystals

๐ŸŒ Synchrotron radiation

  • Very high intensity
  • Tunable wavelength
  • Lower beam divergence
  • Helps solve phase problem

๐Ÿš€ Free electron lasers (XFEL)

  • Extremely intense pulses
  • Rare facilities (Hamburg, Stanford, Japan)
  • Emerging technology.

๐ŸŽฏ 11. Diffraction experiment setup

Components:

  1. X-ray source
  2. Collimator
  3. Monochromator crystal
  4. Sample crystal
  5. Detector
  6. Goniometer (rotates crystal โ†’ collect many diffraction spots)

This enables reconstruction of 3D structure.


โญ Ultimate Take-Home Messages

  • Protein crystallization = thermodynamic vs kinetic balance.
  • Vapor diffusion controls movement through phase diagram.
  • Crystal amplifies scattering signal.
  • Only 65 space groups for proteins due to chirality.
  • Goal of X-ray crystallography โ†’ solve asymmetric unit structure.
  • High-intensity X-rays reduce crystal size requirements.

Quiz

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