| Literature DB >> 18703844 |
Ting Chou Hu1, Justyna Korczyńska, David K Smith, Andrzej Marek Brzozowski.
Abstract
Protein crystallization has been revolutionized by the introduction of high-throughput technologies, which have led to a speeding up of the process while simultaneously reducing the amount of protein sample necessary. Nonetheless, the chemistry dimension of protein crystallization has remained relatively undeveloped. Most crystallization screens are based on the same set of precipitants. To address this shortcoming, the development of new protein precipitants based on poly-gamma-glutamic acid (PGA) polymers with different molecular-weight ranges is reported here: PGA-LM (low molecular weight) of approximately 400 kDa and PGA-HM (high molecular weight) of >1,000 kDa. It is also demonstrated that protein precipitants can be expanded further to polymers with much higher molecular weight than those that are currently in use. Furthermore, the modification of PGA-like polymers by covalent attachments of glucosamine substantially improved their solubility without affecting their crystallization properties. Some preliminary PGA-based screens are presented here.Entities:
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Year: 2008 PMID: 18703844 PMCID: PMC2526455 DOI: 10.1107/S0907444908021616
Source DB: PubMed Journal: Acta Crystallogr D Biol Crystallogr ISSN: 0907-4449
Figure 1Synthesis scheme of poly-γ-glutamate–glucosamine conjugates via amide coupling in a two-phase system using EDC/DMAP (Ho et al., 1995 ▶). The molecule on the left shows the original unmodified PGA.
Figure 21H NMR spectra of poly-γ-glutamic acid (a) and its synthesized glucosamine conjugate (b). The ratio of the incorporated carbohydrate is estimated by integration of the glutamic and glucose protons. In this particular case, the ratio of the glucosamine-conjugated and non-glucosamine-conjugated glutamic segments is about 1:1.
Figure 3Examples of lysozyme crystal growth from PGA-LM. (a) 1%(w/v) PGA-LM, 0.2 M NaCl pH 4.5. (b) As (a) but with 5%(w/v) PGA-LM. (c) As (a) but with 10%(w/v) PGA-LM; crystals grow here as easily as in (a) but frequently intergrow into each other and cluster. (d) As (a) but with 1%(w/v) pectin. (e) As (a) but with 10%(w/v) pectin; a significant slowing of crystal growth can be observed with ‘step/spiral-like’ individual crystal faces. (f) As (a) but with 10%(w/v) gum arabic; some three-dimensional in-gel-like distribution of the crystal can be observed here despite the relatively low viscosity of the solution.
The template PGA screen
| 1 | 2 | 3 | 4 | 5 | 6 | |
|---|---|---|---|---|---|---|
| 5%( | 5%( | |||||
| 0.1 | 0.1 | 0.1 | 0.1 | 0.1 | 0.1 | |
| 0.2 | ||||||
| 0.2 | ||||||
| 0.2 | ||||||
| 0.6 | ||||||
| 0.6 | ||||||
| 0.2 | ||||||
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| 0.2 | ||||||
The 96-condition carbohydrate–PGA screen
| 1 | 2 | 3 | 4 | 5 | 6 | 7 | 8 | 9 | 10 | 11 | 12 | |
|---|---|---|---|---|---|---|---|---|---|---|---|---|
| 5%( | 5%( | 5%( | 5%( | |||||||||
| 0.1 | 0.1 | 0.1 | 0.1 | 0.1 | 0.1 | 0.1 | 0.1 | 0.1 | 0.1 | 0.1 | 0.1 | |
| 0.2 | 0.2 | |||||||||||
| 0.2 | 0.2 | |||||||||||
| 0.2 | 0.2 | |||||||||||
| 0.6 | 0.6 | |||||||||||
| 0.6 | 0.6 | |||||||||||
| 0.2 | 0.2 | |||||||||||
| 0.2 | 0.2 | |||||||||||
| 0.2 | 0.2 | |||||||||||
The 16 glucosamine-PGA conditions
Columns 1 and 2 contain the same salts at identical concentrations. Rows E–H in columns 1 and 2 also contain 10%(w/v) PEG 2K MME.
| 1 | 2 | |
|---|---|---|
| 15%( | 15%( | |
| 0.2 | ||
| 0.2 | ||
| 0.2 | ||
| 0.2 | ||
| 0.2 | ||
| 0.2 | ||
| 0.2 | ||
| 0.2 | ||
16 conditions that were found useful in combination of glucosamine-PGA with regular PEGs
PEG 3350 was at 25%(w/v) and PEG 400 at 35%(w/v).
| 1 | 2 | |
|---|---|---|
| 5%( | 5%( | |
| PEG 3350 | PEG 3350 | |
| PEG 400 | PEG 400 | |
| PEG 3350, 0.2 | PEG 3350, 0.2 | |
| PEG 400, 0.2 | PEG 400, 0.2 | |
| PEG 3350, 10% Tacsimate | PEG 3350, 10% Tacsimate | |
| PEG 400, 10% Tacsimate | PEG 400, 10% Tacsimate | |
| PEG 3350, 0.2 | PEG 3350, 0.2 | |
| PEG 400, 0.2 | PEG 400, 0.2 |
All PEG concentrations are given in %(w/v); glycerol, MPD and 1,2,6-hexanetriol (HXT) concentrations are given in %(v/v).
| 1 | 2 | 3 | 4 | 5 | 6 | |
|---|---|---|---|---|---|---|
| 8% PGA-LM | 16% PGA-LM | 5% PGA-LM | 15% PGA-LM | 5% PGA-LM | 15% PGA-LM | |
| 0.3 | 0.3 | 20% PEG 1K | 20% PEG 1K | 30% PEG 200 | 20% PEG 200 | |
| 0.2 | 0.2 | 20% PEG 2K MME | 20% PEG 2K MME | 30% PEG 400 | 20% PEG 400 | |
| 10% Tacsimate | 10% Tacsimate | 20% PEG 3350 | 20% PEG 3350 | 30% PEG 550 MME | 20% PEG 550 MME | |
| 0.2 | 0.2 | 15% PEG 4K | 15% PEG 4K | 30% PEG 750 MME | 20% PEG 750 MME | |
| 0.4 | 0.4 | 20% PEG 5K MME | 20% PEG 5K MME | 30% PEG 600 | 20% PEG 600 | |
| 0.2 | 0.2 | 15% PEG 6K | 15% PEG 6K | 30% MPD | 20% MPD | |
| 0.2 | 0.2 | 12% PEG 8K | 12% PEG 8K | 20% HXT | 20% HXT | |
| 0.2 | 0.2 | 10% PEG 20K | 10% PEG 20K | 20% glycerol | 20% glycerol |
| 7 | 8 | 9 | 10 | 11 | 12 | |
|---|---|---|---|---|---|---|
| 10% PGA-LM, 10% Tacsimate | 10% PGA-LM, 10% Tacsimate | 10% PGA-LM, 0.3 | 10% PGA-LM, 0.3 | 10% PGA-LM, 0.2 | 10% PGA-LM, 0.2 | |
| 20% PEG 1K | 30% PEG 200 | 20% PEG 1K | 30% PEG 200 | 20% PEG 1K | 30% PEG 200 | |
| 20% PEG 2K MME | 30% PEG 400 | 20% PEG 2K MME | 30% PEG 400 | 20% PEG 2K MME | 30% PEG 400 | |
| 20% PEG 3350 | 30% PEG 550 MME | 20% PEG 3350 | 30% PEG 550 MME | 20% PEG 3350 | 30% PEG 550 MME | |
| 15% PEG 4K | 30% PEG 750 MME | 15% PEG 4K | 30% PEG 750 MME | 15% PEG 4K | 30% PEG 750 MME | |
| 20% PEG 5K MME | 30% PEG 600 | 20% PEG 5K MME | 30% PEG 600 | 20% PEG 5K MME | 30% PEG 600 | |
| 15% PEG 6K | 30% MPD | 15% PEG 6K | 30% MPD | 15% PEG 6K | 30% MPD | |
| 12% PEG 8K | 20% HXT | 12% PEG 8K | 20% HXT | 12% PEG 8K | 20% HXT | |
| 10% PEG 20K | 20% glycerol | 10% PEG 20K | 20% glycerol | 10% PEG 20K | 20% glycerol |