Protein Structure

Lecture 7 Video 3

๐ŸŒŸ Lecture Summary โ€” X-ray Generation, Diffraction & Resolution

This lecture explains how X-rays are produced, how they scatter from protein crystals, and the core theory (Braggโ€™s law, lattice planes, reciprocal space) behind protein crystallography.


โšก How X-rays are produced (X-ray tubes)

To perform X-ray diffraction experiments, we first need an X-ray source.

๐Ÿ”ง Sealed X-ray tube mechanism

  • A cathode emits electrons.
  • The tube is under vacuum, and a high voltage accelerates electrons toward a metal anode.
  • When electrons hit the anode:
    • ๐Ÿ”ฅ Most energy โ†’ heat
    • ๐ŸŒˆ Small fraction โ†’ X-rays

Two types of X-ray radiation are generated:

๐ŸŒŠ 1. Continuous radiation (Bremsstrahlung)

  • Produced when charged particles decelerate.
  • Gives a smooth spectrum with a sharp cutoff at short wavelengths.
  • Minimum wavelength depends on accelerating voltage (e.g., ~0.4 nm at 35 kV).

๐ŸŽฏ 2. Characteristic radiation (sharp peaks)

  • Due to electronic transitions in the anode atoms.
  • Example:
    • Cu Kฮฑ wavelength = 1.5418 ร… โ†’ very commonly used in protein crystallography.

๐Ÿ’ฅ What happens when X-rays hit a crystal?

X-rays interact with electrons inside the crystal and are scattered.

Two types of scattering:

โœ… Elastic (coherent / Thomson scattering)

  • No energy loss โ†’ same wavelength.
  • Produces useful diffraction spots.

โŒ Inelastic scattering

  • Energy lost โ†’ lower wavelength.
  • Adds noise to diffraction pattern.

๐Ÿ‘‰ Therefore crystallographers focus on elastic scattering only.


๐Ÿ”ฌ Experimental diffraction setup

Typical crystallography experiment includes:

  • ๐Ÿ’ก Incoming X-ray beam
  • ๐ŸงŠ Protein crystal mounted in a loop
  • ๐Ÿ”„ Goniometer (rotates crystal: ฯ†, ฯ‡, ฯ‰ angles)
  • โ„๏ธ Nitrogen cryostream (~100 K) โ†’ reduces radiation damage
  • ๐Ÿ›‘ Beam stop โ†’ blocks strong direct beam
  • ๐Ÿ“Ÿ Detector โ†’ records scattered X-rays

Only ~1โ€“2% of X-rays are scattered โ€” signals are very weak.


๐ŸงŠ Cryoprotection (very important!)

Crystals are flash-frozen to prevent damage.

Common cryoprotectants:

  • Alcohols (glycerol, ethylene glycol)
  • PEG 400
  • Sugars (trehalose, sucrose)
  • DMSO
  • Oils

Crystals are tiny (loop size ~0.05โ€“1 mm) and embedded in a thin cryosolution film.


๐ŸŒŠ Diffraction basics โ€” Huygensโ€™ principle & interference

Every point on a wavefront generates a secondary wave.

When waves from multiple scatterers meet:

โž• Constructive interference

  • Peaks align with peaks โ†’ strong signal
  • Amplitude increases (e.g., from e โ†’ 2e).

โž– Destructive interference

  • Peaks meet troughs โ†’ signal cancels.

๐Ÿ‘‰ Diffraction pattern depends on distance between scatterers โ†’ structural information can be deduced.


๐Ÿงฑ Crystal lattice & Miller indices (hkl)

Inside a crystal:

  • Unit cell repeats in 3D.
  • We can define sets of equally spaced lattice planes.

These planes are labeled using Miller indices (h, k, l):

  • h โ†’ divisions along a-axis
  • k โ†’ divisions along b-axis
  • l โ†’ divisions along c-axis

Example:

  • If axes are divided into 2, 3, and 4 parts โ†’ planes have index (2 3 4).

Each reflection on the detector corresponds to a specific (hkl) plane.


๐Ÿ“ธ Detectors & measuring intensities

Modern detectors:

  • CMOS (new)
  • CCD (older)
  • Image plates / film (very old)

Each diffraction spot:

  • Contains many pixels.
  • Spot intensity is fitted to a Gaussian peak.
  • Integrated intensity โˆ square of wave amplitude โ†’ important for structure calculation.

โ„๏ธ Artifacts in diffraction images

Common experimental issues:

๐Ÿ”ต Ice rings

  • Caused by tiny frozen solvent crystals.
  • Produce continuous rings instead of discrete spots.

๐Ÿงต Fiber diffraction

  • From mounting loop material.

๐Ÿ›‘ Beamstop shadow

  • Blocks central region.

These can often be tolerated if not too strong.


๐Ÿ“ Diffraction condition โ€” Braggโ€™s Law

Constructive interference occurs when:

nlambda = 2d sin heta

Where:

  • ฮป = X-ray wavelength
  • d = distance between lattice planes
  • ฮธ = scattering angle

Key consequences:

๐Ÿ”Ž Smaller d โ†’ Larger ฮธ โ†’ Higher resolution

  • Small plane spacing samples finer structural details.

Typical protein crystal resolutions:

  • ~3 ร… (moderate)
  • 1.8โ€“2 ร… (good)
  • ~1 ร… (exceptional)

๐Ÿ”ฌ Why crystals are needed (signal amplification)

Single molecule โ†’ scattering too weak.

Crystal lattice:

  • Many identical molecules.
  • Scattering adds constructively.
  • Crystal acts as a molecular signal amplifier.

๐Ÿง  Phase problem (important future topic)

Diffraction gives:

  • Intensities (amplitudes)

But phases are missing.

Determining phases is essential to: โžก reconstruct the electron density map โžก build the protein structure.

This will be discussed later in the course.


๐ŸŒ Real space vs Reciprocal space

Crystallography uses two coordinate systems:

๐Ÿงฑ Real space

  • Physical crystal lattice (unit cell a, b, c)

โœจ Reciprocal space

  • Mathematical lattice where:
    • Each point = one reflection (hkl)
    • Reciprocal axes (a*, b*, c*) are perpendicular to real-space planes.

Important relationships:

  • Reciprocal spacing โˆ 1/d
  • Real cell volume ร— reciprocal cell volume = 1.

โญ Big Picture Takeaways

โœ… X-rays are produced via electron acceleration โ†’ bremsstrahlung + characteristic lines โœ… Elastic scattering from electrons gives diffraction spots โœ… Crystals amplify weak molecular scattering โœ… Diffraction depends on interference from lattice planes โœ… Braggโ€™s law links resolution โ†” scattering angle โ†” plane spacing โœ… Miller indices label reflections โœ… Reciprocal space is the natural framework for analyzing diffraction

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