PubMed Health⌕ Search

PubMed · 17093973

A decision-support model for evaluating changes in biopharmaceutical manufacturing processes.

Abstract

A simulation is described that evaluates the impacts of altering bio-manufacturing processes. Modifications designed to improve production levels, times and costs were assessed, including increasing feed volumes/titres, replacing initial downstream stages with packed or expanded bed affinity steps and removing ion exchange steps. Options were evaluated for manufactured product mass, COG, batch times and development costs and timescales. Metrics were combined using multi-attribute-decision-making techniques generating a single assessment metric for each option. The utility of this approach was illustrated by application to an FDA-approved process manufacturing rattlesnake anti-venom (Protherics U.K.). Currently, ovine serum containing anti-venom IgG is purified by precipitation/centrifugation, prior to antibody proteolysis by papain. An ion exchanger removes F(C), before affinity chromatography yields the final anti-venom. An expanded bed affinity column operating with an 80% higher IgG titre, 66% higher feed volume and without the ion exchanger delivered the best multi-attribute-decision-making value, potentially providing the most desirable alternative.

Explore related subjects

Keep this discovery

Explore connections, maps & timelines

BibTeXRIS

S Chhatre, R Francis, K O'Donovan, N J Titchener-Hooker, A R Newcombe, E Keshavarz-Moore. 2006-11-09. A decision-support model for evaluating changes in biopharmaceutical manufacturing processes.. https://doi.org/10.1007/s00449-006-0086-8

Cite the original work for its findings. Save a collection to share your selection of sources.

KEEP EXPLORING

Related citations

The preparation of pellets containing a surfactant or a mixture of mono- and di-gylcerides by extrusion/spheronization.

The ability to incorporate either of the two components of a self-emulsifying system (polysorbate 80 (PSG80) and a mixture of mono- and di-glycerides (MDG)) separately into pellets prepared by extrusion/spheronization and the properties of any resulting pellets has been investigated. The results have established that it is possible to prepare satisfactory pellets thus adding to the range of ingredients that can be included in pellet formulations. For PS80, it was found possible to prepare pellets containing at least 92% of the surfactant/water mixture, but with a mixture of (MDG) and water, however, it was not possible to prepare pellets, which contained more than 46% of MDG. By analysis of variance significant relationships were established between the ratio of lactose to MCC and the ratio of the PS80 or MDG to water and the properties of the pellets. There were both similarities and differences of the two input factors, which provided relationships for the two materials. The quantity of liquid required, the fluid content of the pellets, the tensile strength and porosity of the pellets provided relationships for both systems, whereas the extrusion force and the median pellet size gave relationships for the PS80 systems, but they did not for the MDG systems. The opposite was true for interquartile range (IQR), the yield in the modal fraction and the shape factor. It was possible to identify global relationships for these systems and those reported previously, when the two components were combined as a self-emulsifying system, by the application of perceptual mapping. It was found that, there were relationships between the size range, expressed as the IQR and the fluid level required to make pellets; the quantity of the non-aqueous component of the fluid and the pellet shape factor; the extrusion force and the tensile strength of the pellets and the yield in the modal fraction and the ratio of the non-aqueous to aqueous content of the fluid used to prepare the pellets. The ability to use the materials independently offers further alternatives for the formulation of water insoluble drugs into pellet formulations.

Biopharmaceutics↗

Biopharmaceutical drug discovery using novel protein scaffolds.

In recent years, biopharmaceutical drug products have become hugely successful. However, they are often complex molecules that are expensive to manufacture. Commercial needs for cost-effective therapies have therefore led to the development of novel protein scaffold technologies that are increasingly being used for biopharmaceutical drug discovery. Major new scaffolds include single-domain antibodies, small modular immunopharmaceuticals, tetranectins, AdNectins, A-domain proteins, lipocalins and ankyrin repeat proteins. These scaffolds offer low-cost alternatives to classical antibody therapeutic strategies and some have shown early clinical promise. Further progress in the field will permit the commercially successful development of sophisticated protein therapeutics against complex disease targets.

Biopharmaceutics↗

Role of analytical ultracentrifugation in assessing the aggregation of protein biopharmaceuticals.

In developing and manufacturing protein biopharmaceuticals, aggregation is a parameter that needs careful monitoring to ensure the quality and consistency of the final biopharmaceutical drug product. The analytical method of choice used to perform this task is size-exclusion chromatography (SEC). However, it is becoming more and more apparent that considerable care is required in assessing the accuracy of SEC data. One old analytical tool that is now reappearing to help in this assessment is analytical ultracentrifugation (AUC). Developments in AUC hardware and, more importantly, recent developments in AUC data analysis computer programs have converged to provide this old biophysical tool with the ability to extract very high resolution size information about the molecules in a given sample from a simple sedimentation velocity experiment. In addition, AUC allows sample testing to be conducted in the exact or nearly exact liquid formulation or reconstituted liquid formulation of the biopharmaceutical in the vial, with minimal surface area contact with extraneous materials. As a result, AUC analysis can provide detailed information on the aggregation of a biopharmaceutical, while avoiding many of the major problems that can plague SEC, thus allowing AUC to be used as an orthogonal method to verify SEC aggregation information and the associating properties of biopharmaceuticals.

Biopharmaceutics↗