Article | REF: BIO2200 V1

Solid/gas biocatalysis

Authors: Isabelle GOUBET, Thierry MAUGARD, Sylvain LAMARE, Marianne GRABER

Publication date: November 10, 2011, Review date: June 26, 2024

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ABSTRACT

Solid/gas biocatalysis is a technology that utilizes enzymes or cells on gaseous substrates. This technology presents two major advantages; it allows for avoiding effects induced by the solvent and the precise control of every thermodynamic parameters which impact the kinetics of reactions and the catalyst stability. Solid/gas biocatalysis thus allows for studying the impact of each species present within the biocatalyst on its activity, specificity or stability. Furthermore, solid/gas biocatalysis is a low atom and energy consumption process, environmentally friendly and with extremely high yields in comparison to the size of the installation. Applications of the solid/gas catalysis have been firstly implemented in the agrifood industry and could concern the pharmaceutical and environmental sectors in the near future.

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 INTRODUCTION

Solid/gas biocatalysis is a technology based on the use of solid biocatalysts for the conversion of gaseous substrates, in the absence of any solvents. Solid biocatalysts are purified freeze-dried enzymes or enzymes present in dehydrated cells. Bioreactors are used in continuous mode, enabling precise control of all thermodynamic parameters influencing reaction kinetics and biocatalyst stability (temperature, pressure and gas flow composition).

From a fundamental point of view, the absence of solvents and the independent control of each substrate's thermodynamic activity (a parameter reflecting its availability to the biocatalyst) are the strong points of this technology. Indeed, it is possible to free ourselves from the effects induced by the solvent, the main species in liquid media, and access the intrinsic parameters of an enzyme. What's more, the ability to independently modulate the thermodynamic activities of each substrate enables us to study the impact of each species present in the biocatalyst microenvironment on its activity, specificity or stability.

From a technological point of view, solid/gas biocatalysis enables very high production yields to be achieved with a reduced plant size. The absence of solvents simplifies purification steps and facilitates product recovery. Catalysis temperatures, although high for enzymatic conversions, remain modest compared with those often used for chemical catalysis. All these features make solid/gas biocatalysis an atom- and energy-efficient, environmentally-friendly process. Nevertheless, the scope of application of this technology is limited compared with that of non-conventional liquid reaction systems, as it is based on the volatile nature of the substrates and reaction products.

Future applications for solid/gas catalysis could include the environmental and pharmaceutical sectors, with a particular focus on the production of chiral synthons.

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