TAML-ArM · Development of an artificial alkane monooxygenase: A leap in bioinspired oxidation catalysis
Horizon 2020 — Marie Skłodowska-Curie Actions
- Duration
- 2017-04-01 → 2019-03-31
- EU contribution
- €175,420
- Participants
- 1
- Scheme
- MSCA-IF-EF-ST
Lines connect the coordinator with its partners.
Results in brief
Development of an artificial alkane monooxygenase: A leap in bioinspired oxidation catalysis
Chemistry plays a central role in many aspects of modern society. Chemical products are ubiquitous in our daily life, ranging from pharmaceuticals prodcts, plastics, agriculture, etc. One of the main challenges that chemists face nowadays is the development of new processes to fulfil the society’s needs by manufacturing new products, compounds and materials in an economical and environmentally friendly way. Catalysis, the process of accelerating a chemical reaction by adding certain chemical compounds (the latter being typically metal-based), has undoubtedly had a crucial impact in the development of new synthetic protocols during the last century. Catalytic methodologies have many advantages compared to traditional stoichiometric processes: they offer undisputable economy in reagent use by carrying out a transformation multiple times per catalyst molecule, and they proceed under mild reaction conditions, thus saving energy and reducing the amount of raw materials consumed. From a chemical point of view, catalytic reagents are used for improving the selectivity of a given chemical reaction, and they allow the development of unprecedented chemical reactions, the introduction of new features to organic molecules, etc. The selective functionalization of strong Carbon-Hydrogen (C-H) bonds is one of the Holy Grail reactions of our times. Nature has developed chemical processes for inserting oxygen atoms in these inert bonds. These reactions are mainly performed by iron-dependent enzymes that are able to generate highly reactive iron-oxygen compounds which can hydroxylate hydrocarbons with exquisite selectivity. These enzymes have served as a source of inspiration to bioinorganic chemists, who have been striving to develop methodologies that allow performing similar oxidation reactions in a lab, in a so-called bioinspired approach. Undoubtedly, developing new ways of transforming hydrocarbon substrates into functionalized high-value-added products (i.e. alcohols, or epoxides) in a more environmentally friendly way and larger scale is of critical importance. The field of bioinspired homogeneous catalysis has achieved significant milestones. Selected iron complexes bearing nitrogen-based ligands (that resemble the structure of the active site of enzymes) have been developed and their combination with hydrogen peroxide (as an alternative to oxygen acting as oxidant) elicits site-selective C-H bond oxidation. Even though some of the reported systems exhibit truly remarkable selectivities in the oxidation of strong C-H bonds in complex molecules, they display limited catalytic activity compared to the natural enzymes, possibly because of side reactions that lead to catalyst deactivation. The assembly of Artificial Metalloenzymes (ArMS), that result from anchoring a metal catalyst to a protein and thus resemble some natural enzymes, has emerged as an attractive to homogenous catalysts during the last decade: in a sense, these systems provide a bridge between homogeneous catalysts and enzymes. As a result, ArMs exhibit some remarkable features that make them promising alternatives to traditional catalysts. In a biomimetic spirit, the well-defined secondary sphere coordination around the metal cofactor provided upon incorporation within the host offers fascinating perspectives to optimize metal-catalyzed transformations to exquisite levels of activity and of selectivity.
Data: CORDIS, © European Union
Project objective
The oxygenation of inert C-H bonds is a highly challenging reaction that has an enormous untapped potential for the European chemical industry. Indeed, it offers attractive means to upgrade cheap hydrocarbons into high value-added products. Nature relies on iron-based enzymes and oxygen to perform such transformations. In a biomimetic spirit, catalytic alkane hydroxylation is best achieved using iron-based catalysts and H2O2 as oxidant. Compared to natural enzymes, however, such systems display modest performance. In the TAML-ArM project, we aim to the development of a novel approach that consists of creating an artificial alkane monooxygenase by introducing a highly active iron complex within a protein scaffold. This strategy, pioneered in the Ward group, has ample precedent for less challenging reactions, and it potentially represents a significant step forward in bioinspired hydroxylation chemistry. To achieve this goal artificial metalloenzymes merge homogeneous- and enzymatic catalysis, two traditionally complementary strategies. We envision that this approach will: i) improve the catalytic activity by protecting the highly reactive Fe=O-moiety by shielding it from undesirable side-reactions and ii) provide novel selectivities, owing to second coordination sphere interactions between the protein and the substrate. Thanks to this innovative catalytic approach, we will develop a paradigm shifting technology for the selective hydroxylation of hydrocarbons: the reactions will be performed in water at room temperature using benign H2O2 as oxidant.
Original text from CORDIS.
Participants
- UNIVERSITAT BASEL · BaselCoordinatorSwitzerland
Links
Data: CORDIS, © European Union
