Team:UCL London/Bioprocess Flowsheet Development

From 2010.igem.org

(Difference between revisions)
(Bioprocess Flowsheet)
 
(15 intermediate revisions not shown)
Line 3: Line 3:
==Bioprocess Flowsheet==
==Bioprocess Flowsheet==
-
[[Image:UCL-ELEASDAS.png|900px|center]]
+
A bioprocess can be described as "process that uses complete living cells or their components (e.g. enzymes, chloroplasts) to effect desired physical or chemical changes". A bioprocess in the scope of Project Hypoxon can be attributed to the production of biopharmaceuticals used to treat millions around the world who suffer from diseases and conditions. It is thus when the 1% of inspiration is transmitted to the world of science in one moment of ingenuity, it is the 99% of perspiration where a bioprocess enters the fold. How does one translate the function of protein to treat disease and meet the global market and needs? How can one even begin to trial humans without a process that can deliver a medicine specialised for its route of administration?
 +
A bioprocess flowsheet must be especially tailored for that specific protein product and downfalls in design could lead to an non-functional protein, a low yield or even the remainder of impurities and toxins! A bioprocess is therefore the path that a protein molecule makes between its expression by a living cell (''E. coli'') to the final formulation ready for its patient at their local pharmacy. These steps may include: fermentation, recovery, purification and formulation. These are undertaken under strict regulations in terms of manufacture and of course the compliance that the product must uphold in terms of safety and efficacy.
-
According to Makrides (1996) the periplasm of E.coli contains only about 4% of the total cell protein. The periplasmic expression allows expression of fragments to be effectively concentratd.  Other reports (Humphreys, 2004) that the antibody expression of Fab fragments can take place in the periplasm of E.coli and purified with an aqueous periplasmic heat extraction, which eliminates most of the host cytoplasmic and membrane proteins, followed by ion exchange chromatography.
+
[[Image:Bioprocess_Flow_Sheet.png|900px|center]]
-
E. coli is an established production system of choice for antibody fragments used in therapeutic applications. One reason is that E. coli provides the means to progress from antibody selection to Good Manufacturing Practice (GMP) production of antibodies in a rapid manner. The other reason is the fact that high production levels of antibody fragments are attainable when using E. coli. As of 2004, there have been several Fabs or Fab’s in clinical trials run by Genentech and Celltech, where the fragments have been produced using E. coli (Anderson et al., 2004).
+
== ''E. coli'' Expression ==
-
+
-
'''Fermentative Pathways'''
+
All current monoclonal antibodies on the market and most in clinical trial have been procured through mammalian cell expression systems due to the bacterial cell’s lack of post-translational modifications such as glycosylation and secretion strategies. However, for the expression of non-glycosylated antibody fragments such as Fvs, scFvs, Fabs or F(ab’)2s, ''Escherichia coli'' is the most renowned host system of choice.
-
Host: Escherichia Coli
+
For example, UCB product CIMZIA ( Crohn's disease), a pegylated FabV fragment made using ''E. coli'' is currently in phase III trials.
-
'''''Advantages'''''
+
Utilising such a copious history of experience with ''E. coli''-based protein expression and the ease of genetic manipulation in ''E. coli'', makes it such an astounding attractive host for expressing antibodies, with research being pioneered to produce full monoclonal forms. The interest relays the necessity of time management where conventional and labour intensive mammalian production systems require approximately four to six months as opposed to a solitary month in ''E. coli''; with shorter processing times and increased scale of operation, cost-of-goods may be reduced.
-
• Provides a wide choice of cloning vectors
+
The chief drawback to ''E. coli'' expression is the distinct lack of post translational modifications such as glycosylation; thus PEGylation (polyethylene glycol) has found favour due to the ability of PEG to effectively increase the half-life of antibody fragments by altering the solubility, immunogenicity, pharmacokinetics, aggregation and proteolytic susceptibility of therapeutic proteins.  The standard protocol for production of antibody fragments require the translocation to the periplasmic space using an N-terminal signal peptide, recognised by the common secretion pathway of ''E. coli'', encoded by the sec genes, which are responsible for the targeted export of most cellular proteins to the extracytoplasmically.
-
• Easily controlled gene expression
+
 
-
• Gives large yields
+
== Periplasmic Expression ==
-
• Secretes good protein
+
-
• Provides fast growth rate
+
   
   
-
'''''Disadvantages'''''
+
This secretion pathway into the periplasm becomes the ideal sub-cellular location for Fab expression due to their oxidising environments that enables formation of intra and inter-chain disulphide bonds (Humphreys., 2004a). Using such expression, the whole cell may not need to homogenised for lysis and rupture but instead ‘periplasmic extraction’ can be exploited maintaining the spheroplast.
 +
 
 +
The processing step involves the disruption of the outer membrane of the cell by the use of Tris-EDTA lyzozyme, permitting the extraction of the fragment. The product is translocated to the periplasm by an NH2 terminal PelB leader sequence where upon fermentation the addition of sucrose can provide a maximum 25 fold of increase in yield of soluble fragments. The major advantages of protein release into the medium include a higher degree of protection from cellular proteases, a lower degree of contamination with endotoxin and more importantly simplified downstream processing.
 +
 +
By the same set of researchers, Anchored periplasmic expression (APEx) is a developed technology for the isolation of ligand-binding proteins from combinatorial libraries anchored on the periplasmic face of the inner membrane of Escherichia coli. Subsequent to disruption of the outer membrane by Tris-EDTA-lysozyme, the inner-membrane-anchored proteins readily bind fluorescently labelled ligands as large as 240 kDa.
 +
 +
== Intracellular Expression ==
 +
 
 +
The intracellular accumulation of the fragment in the cytoplasm takes the form of inclusion bodies; in this environment refolding cannot be efficiently circumvented where the use mini-chaperones and oxidoreductases must be used for functional fragments. A reported a highly efficient refolding process for immunoglobulin-folded proteins using stepwise dialysis. The method accentuates the critical factors for highly efficient recovery of proteins from a denatured and reduced state are prevention of aggregation by adding labilising agents and promotion of proper disulphide bond formation at the appropriate stage of refolding.  Solubilized inclusion bodies could be refolded under these conditions with yields of up to 95%.
 +
[[Image:Untitled.jpg|450px|right]]
 +
 
 +
Another innovative method that could be exploited is the ability of inducing mutations that allow disulphide bonds to form in cytoplasm of ''E. coli''.  When the mutations are exhibited, export-defective versions of alkaline phosphatase and mouse urokinase were used to fold into their enzymatically active conformations in the cytoplasm because their disulphide bonds were formed. The mutations were mapped to the gene for thioredoxin reductase and diminish or eliminate the activity of this enzyme and thus can be used in keeping cysteines reduced in cytoplasmic proteins.
 +
 
 +
== ''E.coli'' Advantages: ==
 +
 
 +
• Simple, well-understood genetics
 +
 
 +
• Established regulatory track record
 +
 
 +
• Rapid cell growth
 +
 
 +
• Inexpensive culture media
 +
 
 +
• Fermentation easy to scale up
 +
 
 +
• Inclusion bodies may be easy to purify
 +
 
 +
• No unintended glycosylation
 +
 
 +
• No viral or prion contamination risk
 +
 
 +
== ''E.coli'' Disadvantages ==
 +
 
 +
• Intra-cellular expression in Gram-negative bacteria (although some systems have been designed for periplasmatic expression of the target protein)
 +
 
 +
• Expression of Met-protein at the N-terminus in Gram-negative bacteria
 +
 
 +
• High endotoxin and host cell protein levels in initial extracts when Gram-negative bacteria have been used
 +
 
 +
• No post-translational modifications possible (cannot express glycosylated, acetylated and amidated proteins)
-
Lacks post-translational modifications
+
In vitro folding often necessary
-
• Posses high levels of endotoxins
+
-
• Forms inclusion bodies (i.e. protein aggregates)
+
-
Escherichia coli produces antibody fragments rather than whole antibodies due to the fact that it lacks post-translational modifications and also since polymeric polypeptide assembly is not well supported (Johansson, 2007
 
-
{:Team:UCL_London/templates/v2/footerFullWidth}}
+
{{:Team:UCL_London/templates/v2/footerFullWidth}}

Latest revision as of 00:36, 28 October 2010

UCL IGEM 2010

RETURN TO IGEM 2010

Bioprocess Flowsheet

A bioprocess can be described as "process that uses complete living cells or their components (e.g. enzymes, chloroplasts) to effect desired physical or chemical changes". A bioprocess in the scope of Project Hypoxon can be attributed to the production of biopharmaceuticals used to treat millions around the world who suffer from diseases and conditions. It is thus when the 1% of inspiration is transmitted to the world of science in one moment of ingenuity, it is the 99% of perspiration where a bioprocess enters the fold. How does one translate the function of protein to treat disease and meet the global market and needs? How can one even begin to trial humans without a process that can deliver a medicine specialised for its route of administration?

A bioprocess flowsheet must be especially tailored for that specific protein product and downfalls in design could lead to an non-functional protein, a low yield or even the remainder of impurities and toxins! A bioprocess is therefore the path that a protein molecule makes between its expression by a living cell (E. coli) to the final formulation ready for its patient at their local pharmacy. These steps may include: fermentation, recovery, purification and formulation. These are undertaken under strict regulations in terms of manufacture and of course the compliance that the product must uphold in terms of safety and efficacy.

Bioprocess Flow Sheet.png

E. coli Expression

All current monoclonal antibodies on the market and most in clinical trial have been procured through mammalian cell expression systems due to the bacterial cell’s lack of post-translational modifications such as glycosylation and secretion strategies. However, for the expression of non-glycosylated antibody fragments such as Fvs, scFvs, Fabs or F(ab’)2s, Escherichia coli is the most renowned host system of choice.

For example, UCB product CIMZIA ( Crohn's disease), a pegylated FabV fragment made using E. coli is currently in phase III trials.

Utilising such a copious history of experience with E. coli-based protein expression and the ease of genetic manipulation in E. coli, makes it such an astounding attractive host for expressing antibodies, with research being pioneered to produce full monoclonal forms. The interest relays the necessity of time management where conventional and labour intensive mammalian production systems require approximately four to six months as opposed to a solitary month in E. coli; with shorter processing times and increased scale of operation, cost-of-goods may be reduced.

The chief drawback to E. coli expression is the distinct lack of post translational modifications such as glycosylation; thus PEGylation (polyethylene glycol) has found favour due to the ability of PEG to effectively increase the half-life of antibody fragments by altering the solubility, immunogenicity, pharmacokinetics, aggregation and proteolytic susceptibility of therapeutic proteins. The standard protocol for production of antibody fragments require the translocation to the periplasmic space using an N-terminal signal peptide, recognised by the common secretion pathway of E. coli, encoded by the sec genes, which are responsible for the targeted export of most cellular proteins to the extracytoplasmically.

Periplasmic Expression

This secretion pathway into the periplasm becomes the ideal sub-cellular location for Fab expression due to their oxidising environments that enables formation of intra and inter-chain disulphide bonds (Humphreys., 2004a). Using such expression, the whole cell may not need to homogenised for lysis and rupture but instead ‘periplasmic extraction’ can be exploited maintaining the spheroplast.

The processing step involves the disruption of the outer membrane of the cell by the use of Tris-EDTA lyzozyme, permitting the extraction of the fragment. The product is translocated to the periplasm by an NH2 terminal PelB leader sequence where upon fermentation the addition of sucrose can provide a maximum 25 fold of increase in yield of soluble fragments. The major advantages of protein release into the medium include a higher degree of protection from cellular proteases, a lower degree of contamination with endotoxin and more importantly simplified downstream processing.

By the same set of researchers, Anchored periplasmic expression (APEx) is a developed technology for the isolation of ligand-binding proteins from combinatorial libraries anchored on the periplasmic face of the inner membrane of Escherichia coli. Subsequent to disruption of the outer membrane by Tris-EDTA-lysozyme, the inner-membrane-anchored proteins readily bind fluorescently labelled ligands as large as 240 kDa.

Intracellular Expression

The intracellular accumulation of the fragment in the cytoplasm takes the form of inclusion bodies; in this environment refolding cannot be efficiently circumvented where the use mini-chaperones and oxidoreductases must be used for functional fragments. A reported a highly efficient refolding process for immunoglobulin-folded proteins using stepwise dialysis. The method accentuates the critical factors for highly efficient recovery of proteins from a denatured and reduced state are prevention of aggregation by adding labilising agents and promotion of proper disulphide bond formation at the appropriate stage of refolding. Solubilized inclusion bodies could be refolded under these conditions with yields of up to 95%.

Untitled.jpg

Another innovative method that could be exploited is the ability of inducing mutations that allow disulphide bonds to form in cytoplasm of E. coli. When the mutations are exhibited, export-defective versions of alkaline phosphatase and mouse urokinase were used to fold into their enzymatically active conformations in the cytoplasm because their disulphide bonds were formed. The mutations were mapped to the gene for thioredoxin reductase and diminish or eliminate the activity of this enzyme and thus can be used in keeping cysteines reduced in cytoplasmic proteins.

E.coli Advantages:

• Simple, well-understood genetics

• Established regulatory track record

• Rapid cell growth

• Inexpensive culture media

• Fermentation easy to scale up

• Inclusion bodies may be easy to purify

• No unintended glycosylation

• No viral or prion contamination risk

E.coli Disadvantages

• Intra-cellular expression in Gram-negative bacteria (although some systems have been designed for periplasmatic expression of the target protein)

• Expression of Met-protein at the N-terminus in Gram-negative bacteria

• High endotoxin and host cell protein levels in initial extracts when Gram-negative bacteria have been used

• No post-translational modifications possible (cannot express glycosylated, acetylated and amidated proteins)

• In vitro folding often necessary


Retrieved from "http://2010.igem.org/Team:UCL_London/Bioprocess_Flowsheet_Development"