Lecture 7 Video 3
๐ 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 (Braggโs law, lattice planes, reciprocal space) behind protein crystallography.
โก How X-rays are produced (X-ray tubes)
To perform X-ray diffraction experiments, we first need an X-ray source.
๐ง 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:
- ๐ฅ Most energy โ heat
- ๐ Small fraction โ X-rays
Two types of X-ray radiation are generated:
๐ 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).
๐ฏ 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.
๐ฅ What happens when X-rays hit a crystal?
X-rays interact with electrons inside the crystal and are scattered.
Two types of scattering:
โ Elastic (coherent / Thomson scattering)
- No energy loss โ same wavelength.
- Produces useful diffraction spots.
โ Inelastic scattering
- Energy lost โ lower wavelength.
- Adds noise to diffraction pattern.
๐ Therefore crystallographers focus on elastic scattering only.
๐ฌ Experimental diffraction setup
Typical crystallography experiment includes:
- ๐ก Incoming X-ray beam
- ๐ง Protein crystal mounted in a loop
- ๐ Goniometer (rotates crystal: ฯ, ฯ, ฯ angles)
- โ๏ธ Nitrogen cryostream (~100 K) โ reduces radiation damage
- ๐ Beam stop โ blocks strong direct beam
- ๐ Detector โ records scattered X-rays
Only ~1โ2% of X-rays are scattered โ signals are very weak.
๐ง 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 ~0.05โ1 mm) and embedded in a thin cryosolution film.
๐ Diffraction basics โ Huygensโ principle & interference
Every point on a wavefront generates a secondary wave.
When waves from multiple scatterers meet:
โ Constructive interference
- Peaks align with peaks โ strong signal
- Amplitude increases (e.g., from e โ 2e).
โ Destructive interference
- Peaks meet troughs โ signal cancels.
๐ Diffraction pattern depends on distance between scatterers โ structural information can be deduced.
๐งฑ 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.
๐ธ 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 โ square of wave amplitude โ important for structure calculation.
โ๏ธ Artifacts in diffraction images
Common experimental issues:
๐ต Ice rings
- Caused by tiny frozen solvent crystals.
- Produce continuous rings instead of discrete spots.
๐งต Fiber diffraction
- From mounting loop material.
๐ Beamstop shadow
- Blocks central region.
These can often be tolerated if not too strong.
๐ Diffraction condition โ Braggโs Law
Constructive interference occurs when:
nlambda = 2d sin heta
Where:
- ฮป = X-ray wavelength
- d = distance between lattice planes
- ฮธ = scattering angle
Key consequences:
๐ Smaller d โ Larger ฮธ โ Higher resolution
- Small plane spacing samples finer structural details.
Typical protein crystal resolutions:
- ~3 ร (moderate)
- 1.8โ2 ร (good)
- ~1 ร (exceptional)
๐ฌ 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.
๐ง Phase problem (important future topic)
Diffraction gives:
- Intensities (amplitudes)
But phases are missing.
Determining phases is essential to: โก reconstruct the electron density map โก build the protein structure.
This will be discussed later in the course.
๐ Real space vs Reciprocal space
Crystallography uses two coordinate systems:
๐งฑ Real space
- Physical crystal lattice (unit cell a, b, c)
โจ 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 โ 1/d
- Real cell volume ร reciprocal cell volume = 1.
โญ Big Picture Takeaways
โ X-rays are produced via electron acceleration โ bremsstrahlung + characteristic lines โ Elastic scattering from electrons gives diffraction spots โ Crystals amplify weak molecular scattering โ Diffraction depends on interference from lattice planes โ Braggโs law links resolution โ scattering angle โ plane spacing โ Miller indices label reflections โ Reciprocal space is the natural framework for analyzing diffraction