Cell-Free Protein Synthesis (CFPS)
System Selection Guide
| System |
Best For |
Yield |
PTMs |
Disulfides |
Cost |
| E. coli extract |
Rapid prototyping, prokaryotic proteins |
High (100-400 μg/mL) |
None |
Poor (reducing) |
Low |
| E. coli PURE |
Defined conditions, unnatural AAs |
Medium (50-150 μg/mL) |
None |
Controllable |
High |
| Wheat germ |
Eukaryotic proteins, membrane proteins |
High (100-500 μg/mL) |
Limited |
Moderate |
Medium |
| Rabbit reticulocyte |
Mammalian proteins, post-translational studies |
Low (10-50 μg/mL) |
Some |
Poor |
High |
| Insect (Sf21) |
Glycoproteins, complex folds |
Medium (50-100 μg/mL) |
Glycosylation |
Good |
High |
| HeLa/CHO |
Native mammalian proteins |
Low (10-50 μg/mL) |
Full mammalian |
Good |
Very High |
CFPS Troubleshooting Matrix
| Problem |
Likely Causes |
Design Fix |
Reagent Fix |
| No expression |
Rare codons at N-terminus, poor RBS |
Codon optimize first 30 codons |
Use BL21-CodonPlus extract |
| Low yield |
Strong mRNA secondary structure, template issues |
Optimize 5' UTR (ΔG > -5 kcal/mol) |
Increase Mg²⁺ (10-18 mM), ATP |
| Aggregation |
Hydrophobic protein, fast translation |
Add solubility tags (MBP, SUMO) |
Add 0.1% Tween-20, chaperones |
| Inactive protein |
Misfolding, missing cofactors |
Slow translation (use rare codons!) |
Add GroEL/ES, DnaK/J |
| Truncation |
Rare codon clusters, mRNA instability |
Remove AGG/AGA/CUA clusters |
Supplement rare tRNAs |
| Degradation |
Proteolysis |
N-terminal Met-Ala |
Add protease inhibitors |
Codon Optimization for CFPS
Codons to Avoid in E. coli CFPS
| Codon |
Amino Acid |
Issue |
tRNA Abundance |
| AGG |
Arg |
Very rare, stalling |
0.2% |
| AGA |
Arg |
Very rare, stalling |
0.4% |
| CUA |
Leu |
Low abundance |
0.4% |
| AUA |
Ile |
Rare |
0.5% |
| CGA |
Arg |
Inefficient decoding |
0.6% |
| CCC |
Pro |
Can cause pausing |
0.5% |
| GGA |
Gly |
Moderate |
1.1% |
Design Rules
- First 30 codons: Most critical - use only high-frequency codons
- Rare codon clusters: Avoid 2+ rare codons within 10 nt
- Rare codon content: Keep overall <5% of coding sequence
- GC content: Target 40-60% for balanced expression
- Avoid runs: No >6 consecutive G or C residues (secondary structure)
- Strategic slow codons: Place rare codons between domains (aids folding!)
When to Use Rare Codons
- Domain boundaries (allow cotranslational folding)
- Before complex structural elements
- When protein is prone to misfolding
mRNA Template Design
5' UTR Optimization
| Element |
Optimal Design |
Impact |
| RBS (SD sequence) |
AGGAGG, 7-9 nt from start |
Ribosome binding |
| Spacing |
7 nt between SD and AUG |
Translation initiation |
| Secondary structure |
ΔG > -5 kcal/mol |
Accessibility |
| Upstream AUG |
Avoid (causes false starts) |
Reduces truncations |
Secondary Structure Targets
| Region |
Ideal ΔG |
Impact |
| -30 to +30 around AUG |
> -5 kcal/mol |
Translation initiation |
| Full 5' UTR |
> -10 kcal/mol |
Ribosome loading |
| RBS accessibility |
Unpaired |
Critical |
Template Format
| Format |
Advantages |
Disadvantages |
| Plasmid |
Stable, high yield |
Requires cloning |
| Linear PCR |
Fast, no cloning |
May need stabilization |
| mRNA |
Direct translation |
Unstable, expensive |
Disulfide Bond Formation
System Capabilities
| System |
Native Disulfide Support |
Additives Needed |
| Standard E. coli extract |
Poor (DTT present) |
IAM, PDI, GSSG/GSH |
| Oxidizing E. coli extract |
Good |
Pre-oxidized glutathione |
| Wheat germ |
Moderate |
Lower DTT, add PDI |
| PURE system |
Minimal |
Full oxidative system |
| Insect/Mammalian |
Good |
Microsome membranes |
Oxidative Folding Protocol (E. coli extract)
1. Deplete DTT from extract (dialysis or treatment with IAM 5 mM)
2. Add oxidized/reduced glutathione: 4 mM GSSG, 1 mM GSH (4:1 ratio)
3. Add 10 μM PDI (protein disulfide isomerase)
4. Optional: Add 5 μM DsbC (disulfide isomerase)
5. Express at 25°C (not 37°C) for better folding
6. Incubation time: 4-6 hours
Disulfide-Rich Protein Tips
- Start with wheat germ or oxidizing extract
- Use PURE system for precise control
- Consider co-expression of PDI/DsbC
- Verify by non-reducing SDS-PAGE
Expression Prediction from Sequence
| Feature |
Good |
Marginal |
Bad |
| Rare codon content |
<3% |
3-8% |
>10% |
| First 30 codons rare |
0 |
1-2 |
>2 |
| GC content |
45-55% |
35-45% or 55-65% |
<30% or >70% |
| 5' UTR ΔG |
> -3 kcal/mol |
-3 to -8 |
< -10 kcal/mol |
| Hydrophobic stretches |
<5 consecutive |
5-7 |
>8 consecutive |
| N-terminal residue |
Met-Ala, Met-Ser, Met-Gly |
Met-Val, Met-Thr |
Met-Arg, Met-Lys |
| Cysteine pairs |
Paired (even number) |
Mixed |
Odd number (free thiols) |
Solubility Enhancement Strategies
Fusion Tags (ranked by effectiveness)
| Tag |
Size |
Solubility Enhancement |
Cleavage |
Notes |
| MBP |
40 kDa |
Excellent |
TEV, Factor Xa |
Best overall |
| SUMO |
11 kDa |
Very Good |
SUMO protease |
Native N-terminus after cleavage |
| NusA |
55 kDa |
Excellent |
- |
Large size |
| Trx |
12 kDa |
Good |
Enterokinase |
For disulfide proteins |
| GST |
26 kDa |
Moderate |
- |
Dimeric |
| His₆ |
1 kDa |
Minimal |
- |
Mainly for purification |
Buffer Additives for Solubility
| Additive |
Concentration |
Mechanism |
| Trehalose |
50-100 mM |
Chemical chaperone |
| Glycerol |
5-10% |
Reduces hydrophobic aggregation |
| L-Arginine |
50-100 mM |
Suppresses aggregation |
| Tween-20 |
0.05-0.1% |
Prevents surface adsorption |
| Proline |
50 mM |
Osmolyte stabilization |
Chaperone Supplementation
| Chaperone System |
Target Problem |
Concentration |
| GroEL/GroES |
General folding |
1-2 μM |
| DnaK/DnaJ/GrpE |
Aggregation-prone |
1 μM each |
| Trigger Factor |
Nascent chain |
1-2 μM |
| ClpB |
Aggregate resolubilization |
0.5 μM |
Temperature Optimization
| Temperature |
Use Case |
Trade-offs |
| 37°C |
Fast expression, stable proteins |
Higher aggregation risk |
| 30°C |
Balanced (default) |
Good compromise |
| 25°C |
Disulfide proteins, complex folds |
Slower, better folding |
| 18-20°C |
Aggregation-prone proteins |
Much slower, best folding |
| 16°C |
Cold-shock proteins |
Very slow, specialized |
E. coli Extract Preparation (Key Variables)
| Variable |
Impact |
Optimal Range |
| Cell density at harvest |
Ribosome content |
OD₆₀₀ 2.5-3.5 |
| Lysis method |
Extract activity |
Sonication, bead beating |
| Run-off reaction |
Removes endogenous mRNA |
20-80 min at 37°C |
| Mg²⁺ concentration |
Translation fidelity |
10-18 mM |
| K⁺ concentration |
Translation rate |
150-200 mM |
| Energy system |
Sustained synthesis |
ATP/GTP, creatine phosphate |
PURE System Specifics
Advantages
- Defined composition (no proteases/nucleases)
- Linear DNA templates work well
- Unnatural amino acid incorporation
- Reproducible between batches
Limitations
- No chaperones (add separately)
- No post-translational modifications
- Lower yields than crude extracts
- Higher cost
When to Use PURE
- Unnatural amino acid incorporation
- Studying translation mechanisms
- "Clean" proteins needed
- Protease-sensitive targets
- Linear template expression
Common Artifacts and Solutions
Low Molecular Weight Bands
Causes: Premature termination, proteolysis, internal initiation
Solutions:
- Optimize rare codon clusters
- Add protease inhibitors
- Check for internal AUG codons
- Use PURE system
Higher MW Bands
Causes: Incomplete termination, read-through, aggregation
Solutions:
- Ensure strong stop codon (UAA preferred)
- Check template 3' end
- Add release factors (RF1/RF2)
- Reduce protein concentration
No Soluble Protein
Causes: Aggregation during synthesis
Solutions:
- Lower temperature (25°C → 18°C)
- Add chaperones
- Use solubility tag
- Optimize translation rate
References
CFPS Overview
Extract Preparation
PURE System
Wheat Germ
Codon Optimization
Disulfide Formation
Solubility Tags
Temperature Effects
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1---2name: adaptyvbio-protein-design-skills-cell-free-expression3description: Cell-Free Protein Synthesis (CFPS)4---56# Cell-Free Protein Synthesis (CFPS)78## System Selection Guide910| System | Best For | Yield | PTMs | Disulfides | Cost |11|--------|----------|-------|------|------------|------|12| **E. coli extract** | Rapid prototyping, prokaryotic proteins | High (100-400 μg/mL) | None | Poor (reducing) | Low |13| **E. coli PURE** | Defined conditions, unnatural AAs | Medium (50-150 μg/mL) | None | Controllable | High |14| **Wheat germ** | Eukaryotic proteins, membrane proteins | High (100-500 μg/mL) | Limited | Moderate | Medium |15| **Rabbit reticulocyte** | Mammalian proteins, post-translational studies | Low (10-50 μg/mL) | Some | Poor | High |16| **Insect (Sf21)** | Glycoproteins, complex folds | Medium (50-100 μg/mL) | Glycosylation | Good | High |17| **HeLa/CHO** | Native mammalian proteins | Low (10-50 μg/mL) | Full mammalian | Good | Very High |1819---2021## CFPS Troubleshooting Matrix2223| Problem | Likely Causes | Design Fix | Reagent Fix |24|---------|---------------|------------|-------------|25| **No expression** | Rare codons at N-terminus, poor RBS | Codon optimize first 30 codons | Use BL21-CodonPlus extract |26| **Low yield** | Strong mRNA secondary structure, template issues | Optimize 5' UTR (ΔG > -5 kcal/mol) | Increase Mg²⁺ (10-18 mM), ATP |27| **Aggregation** | Hydrophobic protein, fast translation | Add solubility tags (MBP, SUMO) | Add 0.1% Tween-20, chaperones |28| **Inactive protein** | Misfolding, missing cofactors | Slow translation (use rare codons!) | Add GroEL/ES, DnaK/J |29| **Truncation** | Rare codon clusters, mRNA instability | Remove AGG/AGA/CUA clusters | Supplement rare tRNAs |30| **Degradation** | Proteolysis | N-terminal Met-Ala | Add protease inhibitors |3132---3334## Codon Optimization for CFPS3536### Codons to Avoid in E. coli CFPS3738| Codon | Amino Acid | Issue | tRNA Abundance |39|-------|------------|-------|----------------|40| AGG | Arg | Very rare, stalling | 0.2% |41| AGA | Arg | Very rare, stalling | 0.4% |42| CUA | Leu | Low abundance | 0.4% |43| AUA | Ile | Rare | 0.5% |44| CGA | Arg | Inefficient decoding | 0.6% |45| CCC | Pro | Can cause pausing | 0.5% |46| GGA | Gly | Moderate | 1.1% |4748### Design Rules49501. **First 30 codons**: Most critical - use only high-frequency codons512. **Rare codon clusters**: Avoid 2+ rare codons within 10 nt523. **Rare codon content**: Keep overall <5% of coding sequence534. **GC content**: Target 40-60% for balanced expression545. **Avoid runs**: No >6 consecutive G or C residues (secondary structure)556. **Strategic slow codons**: Place rare codons between domains (aids folding!)5657### When to Use Rare Codons58- Domain boundaries (allow cotranslational folding)59- Before complex structural elements60- When protein is prone to misfolding6162---6364## mRNA Template Design6566### 5' UTR Optimization6768| Element | Optimal Design | Impact |69|---------|----------------|--------|70| **RBS (SD sequence)** | AGGAGG, 7-9 nt from start | Ribosome binding |71| **Spacing** | 7 nt between SD and AUG | Translation initiation |72| **Secondary structure** | ΔG > -5 kcal/mol | Accessibility |73| **Upstream AUG** | Avoid (causes false starts) | Reduces truncations |7475### Secondary Structure Targets7677| Region | Ideal ΔG | Impact |78|--------|----------|--------|79| -30 to +30 around AUG | > -5 kcal/mol | Translation initiation |80| Full 5' UTR | > -10 kcal/mol | Ribosome loading |81| RBS accessibility | Unpaired | Critical |8283### Template Format8485| Format | Advantages | Disadvantages |86|--------|------------|---------------|87| **Plasmid** | Stable, high yield | Requires cloning |88| **Linear PCR** | Fast, no cloning | May need stabilization |89| **mRNA** | Direct translation | Unstable, expensive |9091---9293## Disulfide Bond Formation9495### System Capabilities9697| System | Native Disulfide Support | Additives Needed |98|--------|--------------------------|------------------|99| Standard E. coli extract | Poor (DTT present) | IAM, PDI, GSSG/GSH |100| Oxidizing E. coli extract | Good | Pre-oxidized glutathione |101| Wheat germ | Moderate | Lower DTT, add PDI |102| PURE system | Minimal | Full oxidative system |103| Insect/Mammalian | Good | Microsome membranes |104105### Oxidative Folding Protocol (E. coli extract)106107```1081. Deplete DTT from extract (dialysis or treatment with IAM 5 mM)1092. Add oxidized/reduced glutathione: 4 mM GSSG, 1 mM GSH (4:1 ratio)1103. Add 10 μM PDI (protein disulfide isomerase)1114. Optional: Add 5 μM DsbC (disulfide isomerase)1125. Express at 25°C (not 37°C) for better folding1136. Incubation time: 4-6 hours114```115116### Disulfide-Rich Protein Tips117- Start with wheat germ or oxidizing extract118- Use PURE system for precise control119- Consider co-expression of PDI/DsbC120- Verify by non-reducing SDS-PAGE121122---123124## Expression Prediction from Sequence125126| Feature | Good | Marginal | Bad |127|---------|------|----------|-----|128| **Rare codon content** | <3% | 3-8% | >10% |129| **First 30 codons rare** | 0 | 1-2 | >2 |130| **GC content** | 45-55% | 35-45% or 55-65% | <30% or >70% |131| **5' UTR ΔG** | > -3 kcal/mol | -3 to -8 | < -10 kcal/mol |132| **Hydrophobic stretches** | <5 consecutive | 5-7 | >8 consecutive |133| **N-terminal residue** | Met-Ala, Met-Ser, Met-Gly | Met-Val, Met-Thr | Met-Arg, Met-Lys |134| **Cysteine pairs** | Paired (even number) | Mixed | Odd number (free thiols) |135136---137138## Solubility Enhancement Strategies139140### Fusion Tags (ranked by effectiveness)141142| Tag | Size | Solubility Enhancement | Cleavage | Notes |143|-----|------|------------------------|----------|-------|144| **MBP** | 40 kDa | Excellent | TEV, Factor Xa | Best overall |145| **SUMO** | 11 kDa | Very Good | SUMO protease | Native N-terminus after cleavage |146| **NusA** | 55 kDa | Excellent | - | Large size |147| **Trx** | 12 kDa | Good | Enterokinase | For disulfide proteins |148| **GST** | 26 kDa | Moderate | - | Dimeric |149| **His₆** | 1 kDa | Minimal | - | Mainly for purification |150151### Buffer Additives for Solubility152153| Additive | Concentration | Mechanism |154|----------|---------------|-----------|155| Trehalose | 50-100 mM | Chemical chaperone |156| Glycerol | 5-10% | Reduces hydrophobic aggregation |157| L-Arginine | 50-100 mM | Suppresses aggregation |158| Tween-20 | 0.05-0.1% | Prevents surface adsorption |159| Proline | 50 mM | Osmolyte stabilization |160161### Chaperone Supplementation162163| Chaperone System | Target Problem | Concentration |164|------------------|----------------|---------------|165| GroEL/GroES | General folding | 1-2 μM |166| DnaK/DnaJ/GrpE | Aggregation-prone | 1 μM each |167| Trigger Factor | Nascent chain | 1-2 μM |168| ClpB | Aggregate resolubilization | 0.5 μM |169170---171172## Temperature Optimization173174| Temperature | Use Case | Trade-offs |175|-------------|----------|------------|176| **37°C** | Fast expression, stable proteins | Higher aggregation risk |177| **30°C** | Balanced (default) | Good compromise |178| **25°C** | Disulfide proteins, complex folds | Slower, better folding |179| **18-20°C** | Aggregation-prone proteins | Much slower, best folding |180| **16°C** | Cold-shock proteins | Very slow, specialized |181182---183184## E. coli Extract Preparation (Key Variables)185186| Variable | Impact | Optimal Range |187|----------|--------|---------------|188| **Cell density at harvest** | Ribosome content | OD₆₀₀ 2.5-3.5 |189| **Lysis method** | Extract activity | Sonication, bead beating |190| **Run-off reaction** | Removes endogenous mRNA | 20-80 min at 37°C |191| **Mg²⁺ concentration** | Translation fidelity | 10-18 mM |192| **K⁺ concentration** | Translation rate | 150-200 mM |193| **Energy system** | Sustained synthesis | ATP/GTP, creatine phosphate |194195---196197## PURE System Specifics198199### Advantages200- Defined composition (no proteases/nucleases)201- Linear DNA templates work well202- Unnatural amino acid incorporation203- Reproducible between batches204205### Limitations206- No chaperones (add separately)207- No post-translational modifications208- Lower yields than crude extracts209- Higher cost210211### When to Use PURE212- Unnatural amino acid incorporation213- Studying translation mechanisms214- "Clean" proteins needed215- Protease-sensitive targets216- Linear template expression217218---219220## Common Artifacts and Solutions221222### Low Molecular Weight Bands223**Causes**: Premature termination, proteolysis, internal initiation224**Solutions**:225- Optimize rare codon clusters226- Add protease inhibitors227- Check for internal AUG codons228- Use PURE system229230### Higher MW Bands231**Causes**: Incomplete termination, read-through, aggregation232**Solutions**:233- Ensure strong stop codon (UAA preferred)234- Check template 3' end235- Add release factors (RF1/RF2)236- Reduce protein concentration237238### No Soluble Protein239**Causes**: Aggregation during synthesis240**Solutions**:241- Lower temperature (25°C → 18°C)242- Add chaperones243- Use solubility tag244- Optimize translation rate245246---247248## References249250### CFPS Overview251- [User's Guide to CFPS - PMC](https://pmc.ncbi.nlm.nih.gov/articles/PMC6481089/)252- [Optimising Protein Synthesis in Cell-Free Systems - PMC](https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9996726/)253- [CFPS Systems Comparison - PMC](https://pmc.ncbi.nlm.nih.gov/articles/PMC8258279/)254255### Extract Preparation256- [Crude Extract Preparation - MDPI Methods](https://www.mdpi.com/2409-9279/2/3/68)257- [Simple Rapid Cell-Free Lysate - PLOS One](https://journals.plos.org/plosone/article?id=10.1371/journal.pone.0165137)258- [High-Throughput Extract Preparation - Nature Scientific Reports](https://www.nature.com/articles/srep08663)259260### PURE System261- [PURE System Evolution - PMC](https://pmc.ncbi.nlm.nih.gov/articles/PMC10521753/)262- [PURE System for Membrane Proteins - Nature Protocols](https://www.nature.com/articles/nprot.2015.082)263264### Wheat Germ265- [Wheat Germ Systems Review - FEBS Letters](https://febs.onlinelibrary.wiley.com/doi/10.1016/j.febslet.2014.05.061)266- [Wheat Germ for Structural Biology - PMC](https://pmc.ncbi.nlm.nih.gov/articles/PMC8027086/)267268### Codon Optimization269- [Rare Codons and Solubility - PMC](https://pmc.ncbi.nlm.nih.gov/articles/PMC2723077/)270- [Codon Influence on Expression - Nature](https://www.nature.com/articles/nature16509)271- [Synonymous Codon Substitutions Perturb Folding - PNAS](https://www.pnas.org/doi/10.1073/pnas.1907126117)272273### Disulfide Formation274- [Oxidative Protein Folding in ER - PMC](https://pmc.ncbi.nlm.nih.gov/articles/PMC4312752/)275- [PDI-Regulated Disulfide Formation - PMC](https://pmc.ncbi.nlm.nih.gov/articles/PMC7794689/)276277### Solubility Tags278- [SUMO Fusion for Difficult Proteins - PMC](https://pmc.ncbi.nlm.nih.gov/articles/PMC7129290/)279- [Fusion Tags Review - Frontiers Microbiol](https://www.frontiersin.org/journals/microbiology/articles/10.3389/fmicb.2014.00063/full)280281### Temperature Effects282- [Cold Shock Promoters - PMC](https://pmc.ncbi.nlm.nih.gov/articles/PMC9800685/)283- [Strategies to Optimize E. coli Expression - PMC](https://pmc.ncbi.nlm.nih.gov/articles/PMC7162232/)284285---286> Converted and distributed by [TomeVault](https://tomevault.io/claim/adaptyvbio) — claim your Tome and manage your conversions.287<!-- tomevault:4.0:skill_md:2026-04-11 -->