Lecture 8 Video 2
๐งฌ Lecture 8 Video 2 โ Fun & Educational Summary
(Cryo-EM revolution, tomography, and micro-electron diffraction)
๐ The โResolution Revolutionโ โ Cryo-EM Single Particle Analysis
A major breakthrough in structural biology is the resolution revolution, driven by single-particle cryo-electron microscopy (cryo-EM).
๐ฌ What is single-particle analysis?
- Many images of individual protein particles frozen in ice are collected.
- These noisy 2D images are aligned and averaged computationally.
- From this, researchers reconstruct a high-resolution 3D structure.
๐ How good is the resolution now?
- Record resolutions: ~1.2โ1.4 ร โ extremely high.
- Below 2 ร
resolution, you can:
- See individual water molecules ๐ง
- Observe holes in aromatic rings (a hallmark of very high resolution)
- Potentially resolve ligand binding details ๐
- In favorable cases even detect protons on side chains
๐ This level of detail makes cryo-EM useful for structure-based drug design, allowing pharmaceutical companies to screen drug candidates directly on protein structures.
โ๏ธ Size Limit Problem โ Signal vs Noise
Cryo-EM imaging has low contrast, meaning:
- Small proteins are harder to detect because signal-to-noise ratio decreases as particle size decreases.
๐ Historical vs modern limits
- Earlier: minimum size โ 300 kDa
- Now: approaching ~50 kDa with ~3 ร resolution
Example:
- Hemoglobin (~64 kDa) structure solved at ~3.4 ร resolution
๐ A theoretical limit (~38 kDa) was predicted in the 1990s โ modern technology is approaching this boundary.
๐ง Dream of Structural Biology: Structures Inside Cells
Cells are extremely crowded environments.
๐งฉ Molecular crowding concept
- Cytoplasm and membranes are packed with:
- Filaments
- Proteins
- Complexes
- Water activity is low โ very little free water
- Protein function often depends on interactions with multiple partners
๐ก Therefore: Studying isolated proteins may not reflect their true structure and behavior in vivo.
The big goal:
Determine structures in their native cellular environment (โin situ structural biologyโ).
๐ง Cryo-Electron Tomography โ Structural Biology in 3D Cells
๐ How tomography works
- The intact sample is tilted in the electron microscope
- Images are taken at multiple angles
- A 3D volume (tomogram) is reconstructed
โ ๏ธ Limitation
- Must use very low electron dose โ resolution is usually lower
๐ก Clever solution: Sub-tomogram averaging
- If many identical proteins exist (e.g., in a viral capsid):
- Extract small 3D regions
- Average them together
๐ This can reach <4 ร resolution, allowing atomic modeling without isolating the protein or crystallizing it.
Example:
- HIV capsid proteins solved from intact virus particles
โจ This was a major breakthrough showing structural biology can be done directly on native biological assemblies.
๐ Electron Crystallography & Micro-Electron Diffraction (Micro-ED)
Another powerful emerging method uses tiny crystals in an electron microscope.
๐ฌ Key idea
- Instead of micron-sized crystals (needed for X-ray crystallography), use nanocrystals
These may be:
- Invisible in light microscopy
- But produce strong diffraction in EM
๐ Advantages
- Can achieve ~1.5 ร resolution diffraction data
- Works well for:
- Membrane proteins
- Small peptides
- Small molecules (e.g., drugs)
๐ชก Why โbadโ crystals can be GOOD in Micro-ED
In X-ray crystallography:
- Needle crystals or thin plates โ often useless
In Micro-ED:
- They are ideal samples
๐ง Why?
- Data collected along the long axis
- Multiple crystals merged because:
- Limited tilt range in EM (~20ยฐ per position)
- Crystals lie in many orientations on the grid
๐ Together they give a complete diffraction dataset.
๐ Recognition & Impact
- Micro-ED has been called โMethod of the Yearโ (NIH recognition).
- Revolutionizes structure determination for:
- Difficult protein targets
- Pharmaceutical small molecules
- Nanocrystalline samples
๐ง Big Take-Home Messages
โ Cryo-EM single particle analysis now reaches near-atomic resolution โ Size limits are decreasing โ smaller proteins can be solved โ Cryo-electron tomography enables structures inside intact cells โ Micro-ED allows structure determination from tiny or imperfect crystals โ Together these methods are transforming drug discovery and molecular biology