Rhys Grinter

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MONASH UNIVERSITY
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Recent Grants

Grant: Close

Hitting bacteria with a Bam: Lectin-Like Antimicrobials as New Antibiotics

Open Date: 2023-03-01

Close Date: 2025-03-01

Grant: Close

Extracting energy from air: mechanism of a bacterial hydrogenase

Open Date: 2023-01-01

Close Date: 2025-01-01

Grant: Close

Targeting iron piracy from host proteins by Neisseria and Haemophilus spp. for the development of novel antimicrobials

Open Date: 2021-01-01

Close Date: 2025-12-01

Grant: Close

Living on air: how do bacteria scavenge atmospheric trace gases?

Open Date: 2020-01-01

Close Date: 2022-12-01

Grant: Close

Determination of the function of the ydd/pqqL operon in uropathogenic Escherichia coli and its role in iron acquisition and virulence .

Open Date: 2015-03-01

Close Date: 2019-02-28

Articles (20)

Developing high-affinity, oxygen-insensitive [NiFe]-hydrogenases as biocatalysts for energy conversion

The splitting of hydrogen (H2) is an energy-yielding process, which is important for both biological systems and as a means of providing green energy. In biology, this reaction is mediated by enzymes called hydrogenases, which utilise complex nickel and iron cofactors to split H2 and transfer the resulting electrons to an electron-acceptor. These [NiFe]-hydrogenases have received considerable attention as catalysts in fuel cells, which utilise H2 to produce electrical current. [NiFe]-hydrogenases are a promising alternative to the platinum-based catalysts that currently predominate in fuel cells due to the abundance of nickel and iron, and the resistance of some family members to inhibition by gases, including carbon monoxide, which rapidly poison platinum-based catalysts. However, the majority of characterised [NiFe]-hydrogenases are inhibited by oxygen (O2), limiting their activity and stability. We recently reported the isolation and characterisation of the [NiFe]-hydrogenase Huc from Mycobacterium smegmatis, which is insensitive to inhibition by O2 and has an extremely high affinity, making it capable of oxidising H2 in air to below atmospheric concentrations. These properties make Huc a promising candidate for the development of enzyme-based fuel cells (EBFCs), which utilise H2 at low concentrations and in impure gas mixtures. In this review, we aim to provide context for the use of Huc for this purpose by discussing the advantages of [NiFe]-hydrogenases as catalysts and their deployment in fuel cells. We also address the challenges associated with using [NiFe]-hydrogenases for this purpose, and how these might be overcome to develop EBFCs that can be deployed at scale.

Year:

2023

Collaborators (17)

Zahra Islam

University of Melbourne

AUSTRALIA

Luciano Abriata

EPFL (École Polytechnique Fédérale de Lausanne)

SWITZERLAND

Thiago Rodrigues de Oliveira

Universität Wien

AUSTRIA

Mitchell Miller

Rice University

UNITED STATES

Christopher J Stewart

Newcastle University

UNITED KINGDOM

Fasséli Coulibaly

Associate Professor

MONASH UNIVERSITY

AUSTRALIA

Scott Beatson

Associate Professor

University of Queensland

AUSTRALIA

Chris Greening

Professor

MONASH UNIVERSITY

AUSTRALIA

Paul K Crellin

MONASH UNIVERSITY

AUSTRALIA

James Andrew Bradley

Senior Lecturer

Queen Mary University of London

UNITED KINGDOM

Gavin J. Knott

Lab Head

MONASH UNIVERSITY

AUSTRALIA

Georg Ramm

MONASH UNIVERSITY

AUSTRALIA

Han Chung Lee

Monash University Malaysia.

AUSTRALIA

Gira Bhabha

Assistant Professor

-

UNITED STATES

Andrzej Joachimiak

Professor

University of Chicago

UNITED STATES

Cécile Breyton

Université Grenoble Alpes

FRANCE

Bettina Böttcher

Professor

Julius-Maximilians-Universität Würzburg

GERMANY
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