Showing posts with label DHFR. Show all posts
Showing posts with label DHFR. Show all posts

Monday, 21 July 2014

Getting Started on our DHFR Project



Time to get to our DHFR project. As we have explained before our aim is to express, purify and do some characterization of DHFR while learning a few things along the way.

In our previous posts, we discussed how to plan a project, identify the key characteristics of your sample and target protein, along with reviewing the key analysis methods to be aware of. We also looked at the thinking around whether you should tag your protein or not and looked at the key/common tags.

With that in mind, a couple of things we need to consider; since we are planning to characterize DHFR using biophysical methods, we are aiming for milligram levels of active protein at a purity of more than 95 %. For our purposes, it would make sense to add a small tag, such as the Histidine tag (unlikely to interfere with our analysis methods and would simplify the purification process). However, since we are doing this to learn and demonstrate how to use protein expression, purification and analysis methodologies and the large variety of tools and techniques, we have (deep breath :) taken the decision to express and purify human DHFR without a tag. Hopefully, this will not be too complicated.

Among the methodologies we plan to use, we have already discussed CIPP – Capture, Intermediate Purification, and Polishing. Another methodology that we plan to use throughout our project is Design of Experiments (DoE). DoE is a structured approach to experimental planning that provides a framework to explore parameters that may influence the outcome of your protocol. It will help you minimize the number of experiments that you have to carry out, while maximizing the information you get out of them in order to improve or optimize your desired outcomes. As it should add logic and structure, we will try to apply DoE to protein expression, purification and any other opportunities that we may come across as our project progresses.

In our experiment, the first step is expression. To express DHFR, we have chosen the most common host, E. coli. There are many different systems that can be used (and we will review the pros and cons of the most common in a future post) but we chose E. coli as it is simple, fast, reliable, low-cost, and easy to get high expression levels (remember we need 95%). One drawback with this host is that there are no post-translation modifications, such as glycosylation. With this choice of host, there is also a chance that we will get our protein expressed in inclusion bodies. While this would require having to refold the protein, it may not be a negative thing for the purification, since the inclusion bodies precipitate and therefore can be easily isolated, plus you get very high purity of your target protein if it is expressed in IBs. 

In our next post, we will look at the gene construct, vector and the cloning of the DHFR expression vector in the E. coli host. 

Meanwhile, if you are interested in learning more about Design of Experiments for protein expression and purification, you can take a look at our handbook.




Wednesday, 23 April 2014

Getting to Know your Sample



Proteins are a bit like people. People have common structural themes, but there are still differences. Luckily, proteins differ between each other more than people. Purification requires picking out ONE out of many.

Any protein based sample is a complex mixture, containing both the things you want (your protein) and a bunch of things you don't want to have. Before you start to plan the purification protocol it is always a good idea to collect as much information as you can about your sample. Consider characteristics such as


  • Molecular weight
  • Isoelectric point
  • Solubility
  • Stability
  • Known Functions


Knowing these characteristics for your protein and critical impurities (e.g. proteases, proteins or other biomolecules that may bind to your protein of interest, isoforms etc.) will help you to plan an efficient purification protocol, because you can use them for separating proteins from each other..



Proteins differ in the number of charged groups on their surface. They may have hydrophobic parts, affinity tag you have added or some biospecificity for other molecules. They can also vary dramatically in size. All of these properties and insights should be used in the design of the purification protocol.

Using a combination of properties makes purification efficient. This is a cornerstone of the CIPP purification strategy; (CIPP means Capture, Intermediate Purification and Polishing). This is always a good approach when you need to set up a purification protocol for your protein since each chromatography technology has its own limitations (we'll discuss in more detail in a coming post).

DHFR Example

In our DHFR project we hope to show you the thinking behind our choices  as well as sharing the consequences.
So, before we start to plan the protocol for the purification, we need to collect some information about DHFR.

So as suggested we started to plan the purification protocol by collecting some information about DHFR.
The information we found
- it is a single chain enzyme involved in the process for synthesis of nucleic acids (DNA)
- it contains 186 amino acids and only one Cysteine, so there are no disulfide bridges in the structure. 
- the polypeptide folding contains 8 beta sheets connected via 4 alpha helices
- the active site is situated in the N-terminal half of the sequence
- the molecular weight was 21.5 kDa and isoelectric point (pI) pI: 6.9

The pI is important for choosing which ion exchange chromatography technique and which conditions that should be used in your protocol. The size of the protein is important to know to choose a size exclusion chromatography medium with a correct separation range. 

To find the above information about the structure of DHFR we use the data base UniProt/Swiss-Prot as a starting point (http://www.uniprot.org/) we like this resource a lot because it is a hub for much of the information that is known about most proteins. 

Next the interesting part of the analysis (and choosing which methods to use) which we'll discuss in an upcoming post.

Remember the more you know the easier it is to set up your purification protocol and by getting to know your protein and the differences in its structure the better your purification. There are many databases that are excellent shortcuts to gaining valuable information on your protein and if you have some recommendations of your own please let us know via the comments section. 

For more on how to simplify planning & execution of protein purification download our free handbook 


Wednesday, 26 March 2014

The Four Key Factors in Planning Protein Purification

When beginning a new project, where do you start? With a blank page, a bunch of hopes and good intentions? With a protein purification project whatever you do, before you begin, there are a couple of things you always need to consider.

What’s your ultimate goal?
This is the one thing you need to be crystal-clear about: what do you want to accomplish at the end of the project? Do you want to characterize your protein using biophysical methods? Determine the structure using X-ray crystallography or NMR? Use your protein in a functional study? Raise antibodies in a rat or a mouse model? Whatever the ultimate goal, it will decide the quantity of protein needed, the purity and analysis techniques used and these will have a major impact on your planning.


For example with our DHFR project, we’re performing a detailed biophysical characterization including activity and binding studies.

But with any protein purification, there are four key aspects to consider:

1.    Quantity
The quantity of protein needed varies enormously depending on goals. The scale can be from picograms (e.g. for mass spectrometry analysis) to kilograms (e.g. therapeutic proteins). The most common quantities that you will require within a research setting are in the µg to mg scale, for functional and structural studies.

2.    Purity
Again the level of purity required for a protein is intrinsically linked to your goals. To be able to raise antibodies, purities of 90-95% are enough. For crystallography or characterization studies, purity of 99% is often required.

3.    Activity
It is very important to decide whether the protein must be active after purification or not. Protein activity is not important in only a handful of applications; fundamental characterization studies, such as mass determination, amino-acid analysis, etc. Usually in today’s research, and as a rule of thumb, plan to retain the protein’s activity.

4.    Homogeneity
Size or charge homogeneity depends on questions like: is your protein likely to aggregate? What are the consequences for your ultimate goal if it does aggregate? A common pitfall is that a very pure protein sample could be in the form of inactive aggregates; determining if this is acceptable again hinges on the final application.




Fig: an overview of how the scope of a project should be set depending on application

Since our project includes assay development, we need to consider how much protein we have to purify before planning the protocol; so as to avoid low quantities of the protein in any further experiments. (From bitter experience :) many of us have learnt that an under estimate of how much protein you need, can lead to running out of protein half way through or before you have all the results you need. To avoid this, perhaps work in 10s of milligrams at least, as re-doing the experiment takes time and ultimately costs more than the increase in scale.) If you do run out, you may end up having to express and purify more protein and using different batches of purified proteins in the same experiments. This introduces another source of variance and uncertainty when you interpret your results.

So with our DHFR project we aim to purify 10mg quantities at a purity of >95 %, which would be more than enough to perform the activity and binding studies

A couple of tips when planning your project:

  • Try to keep it simple and aim for the purity you need for your experiments, not above that
  • Plan ahead, express and purify enough amount of protein from each batch to cover all experiments in the study
  • Remember the more purification steps you use the more of the protein you will lose
Good planning will make the difference between a successful experiment and one filled with frustration and failure. 
In our next post we'll look at what you need to know about your sample, but in the meantime if you want to share your own tips or have any questions, let us know using the comments/contact boxes below. 

For more on how to simplify planning & execution of protein purification download our free handbook