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Associate Professor

Jeffrey Harmer

Email: 
Phone: 
+61 7 334 60351

Overview

Background

Present Position

I am an ARC Future Fellow at the Centre for Advanced Imaging and associated with the University of Oxford as a Senior Visiting Research Fellow.

Previous Positions

  • August 2007 to March 2013: Scientific Coordinator and Applications manager of the Centre of Advanced Electron Spin Resonance (CAESR) at the Oxford University, UK.
  • 2002-July 2007: Project leader (“Ober-assistent”) in the Physical Chemistry Department at the Swiss Federal Institute of Technology (ETH), Zürich. I was a project leader in the electron paramagnetic resonance group of Prof. Arthur Schweiger.
  • 1999-2002: Postdoctoral position at ETH, Zurich. In the group of Prof. Arthur Schweiger I used CW and pulse EPR as a tool to investigate the geometric and electronic properties of transition metal complexes.
  • 1996-1999: Doctor of Philosophy from the Chemistry Department of the University of Newcastle, Australia, Advanced Coal Characterization by Nuclear Magnetic Resonance. The project was funded by the Collaborative Research Centre for Black Coal Utilization and I was supervised by the University of Newcastle (Prof. Marcel Maeder), BHP Research Melbourne (Dr. Brian Smith) and Callcott Coal Consulting (Dr. Tom Callcott).
  • 1995: Researcher at BHP Central Research Laboratories, Newcastle, Australia. I developed experimental techniques to measure the conductivity and the permeability of coal as it pertains to coke ovens.
  • 1992-1995: Researcher at Oakbridge Research Center, Newcastle, Australia. I worked on high temperature Nuclear Magnetic Resonance (NMR) for coal characterization (for my Bachelor of Science Honors thesis). This was a collaboration between the CSIRO Coal and Energy Division (North Ryde, Sydney), Oakbridge Research Centre and the University of Newcastle.

Keywords

structural biology · protein interactions · metalloenzymes · metal complexes · electron transfer · Iron sulphur clusters · pulse EPR · CW EPR · DEER · PELDOR ·HYSCORE · ENDOR · ESEEM · density functional theory · molecular dynamics

Availability

Associate Professor Jeffrey Harmer is:
Available for supervision

Qualifications

  • Bachelor (Honours) of Science (Advanced), University of Newcastle
  • Doctor of Philosophy, University of Newcastle

Research interests

  • Electron Paramagnetic Resonance (EPR) spectroscopy in biological, medical, chemical and physical sciences.

    My main research field is Electron Paramagnetic Resonance (EPR) spectroscopy, a technique that probes the interaction of unpaired electrons with their surroundings. Paramagnetic centres are intrinsic to many systems and materials, for example biomolecules may contain metal clusters (e.g. [2Fe-2S]), transition metals (e.g. Cu, Fe, Mn, Ni) or organic radicals. Paramagnetic centres can also be attached to specific points in diamagnetic materials, as for example with the MTLS molecule that contains a nitroxide radical which is extensively used in site-directed spin labelling of biomolecules. A powerful technique of modern EPR is dipolar spectroscopy which is utilised in structural studies of biomolecules, for example with soluble and membrane proteins and their oligomers, DNA and RNA. Here dipolar spectroscopy refers to the measurement of electron-electron couplings with techniques such as Double Electron-Electron Resonance (DEER) or synonymously pulsed electron double resonance (PELDOR), double-quantum EPR (DQ-EPR), and related EPR methods. These EPR techniques can very accurately measure the dipole interaction between unpaired electron spins which enables the distance between them and their relative orientation to be determined. Owing to the large magnetic moment of the electron, the technique delivers information in the distance range from ca. 15-80 Å. From a set of such measurements a structural model of the system under investigation can be developed. For example DEER studies deliver information on protein conformational changes on ligand binding, and enable the investigation of protein-protein complexes and oligomers in frozen solution. The standard paramagnetic spin-label for dipolar spectroscopy is MTLS which is covalently attached to a protein via a disulfide bond with a cysteine residue, although there are a number of other organic labels and a number employing Cu2+ and Gd3+ ions for example. Possibilities also exist to attach spin-labels via other amino acids. DNA and RNA studies are also readily amendable to dipolar spectroscopy technologies. My area of research encompasses the characterization of structure-function relationships of biomolecules and their complexes, which includes development of the methodologies to measure electron-electron couplings and distances, the development of improved data analysis algorithms, and the development of modelling the sparse set of EPR constrains into 3D structures (for example using rigid-body docking, molecular dynamic simulations, etc.). Unpaired electrons are also coupled to nearby nuclear spins (e.g. 1H, 14N, 13C, 31P) and these couplings provide information in the distance range ca. <10 Å from the unpaired electron(s). Structural and electronic information of the paramagnetic centre from experiments is obtained with multi-frequency continuous wave (CW) EPR, and multi-frequency pulse EPR techniques such as electron nuclear double resonance (ENDOR), electron spin-echo envelope spectroscopy (ESEEM), and hyperfine sublevel correlation spectroscopy (HYSCORE). The experimentally measured EPR couplings describe the samples electronic structure as they relate in a direct way to the spin density distribution and thus single occupied molecular orbital. EPR couplings allow for example the identification of the type of nucleus, provide a description of the coordination environment in metal complexes, in metalloenzyme locate a substrate bound too or near the active site, and enable the identification of organic radicals. To aid in the interpretation of the experimental data extensive use of quantum chemistry calculations is used to further characterise the system under investigation.

Works

Search Professor Jeffrey Harmer’s works on UQ eSpace

144 works between 2001 and 2025

141 - 144 of 144 works

2001

Journal Article

Highly efficient phosphodiester hydrolysis promoted by a dinuclear copper(II) complex

Gajda, T, Dupre, Y, Torok, I, Harmer, J, Schweiger, A, Sander, J, Kuppert, D and Hegetschweiler, K (2001). Highly efficient phosphodiester hydrolysis promoted by a dinuclear copper(II) complex. Inorganic Chemistry, 40 (19), 4918-4927. doi: 10.1021/ic0005902

Highly efficient phosphodiester hydrolysis promoted by a dinuclear copper(II) complex

2001

Journal Article

A rapid coal characterisation analysis by low-resolution NMR spectroscopy and partial least-squares regression

Harmer, JR, Callcott, TG, Maeder, M and Smith, BE (2001). A rapid coal characterisation analysis by low-resolution NMR spectroscopy and partial least-squares regression. Fuel, 80 (9), 1341-1349. doi: 10.1016/S0016-2361(01)00006-0

A rapid coal characterisation analysis by low-resolution NMR spectroscopy and partial least-squares regression

2001

Journal Article

A novel approach for coal characterization by NMR spectroscopy: global analysis of proton T-1 and T-2 relaxations

Harmer, J, Callcott, T, Maeder, M and Smith, BE (2001). A novel approach for coal characterization by NMR spectroscopy: global analysis of proton T-1 and T-2 relaxations. Fuel, 80 (3), 417-425. doi: 10.1016/S0016-2361(00)00103-4

A novel approach for coal characterization by NMR spectroscopy: global analysis of proton T-1 and T-2 relaxations

2001

Journal Article

Electron Paramagnetic Resonance spectroscopy

Calle, C, Eichel, RA, Finazzo, C, Forrer, J, Granwehr, J, Gromov, I, Groth, W, Harmer, J, Kalin, M, Lammler, W, Liesum, L, Madi, Z, Stoll, S, Van Doorslaer, S and Schweiger, A (2001). Electron Paramagnetic Resonance spectroscopy. Chimia, 55 (10), 763-766.

Electron Paramagnetic Resonance spectroscopy

Funding

Current funding

  • 2025 - 2027
    Evolving the nitrogen-nitrogen three electron bond as a technology enabler
    ARC Discovery Projects
    Open grant
  • 2025 - 2028
    Harnessing structural insights into bacterial zinc efflux for new therapeutics (NHMRC Ideas grant administered by University of Melbourne)
    University of Melbourne
    Open grant
  • 2024 - 2027
    Protein Structure and Dynamics by Electron / Nuclear Paramagnetic Resonance (ARC Discovery Project led by The Australian National University)
    Australian National University
    Open grant

Past funding

  • 2023 - 2024
    High-Resolution Electron Paramagnetic Resonance Imaging and Spectroscopy
    ARC Linkage Infrastructure, Equipment and Facilities
    Open grant
  • 2021 - 2024
    Methods for protein structure analysis by electron paramagnetic resonance (ARC Discovery Project administered by The Australian National University)
    Australian National University
    Open grant
  • 2021 - 2023
    ACRF Facility for Targeted Radiometals in Cancer (AFTRiC)
    Australian Cancer Research Foundation
    Open grant
  • 2020 - 2022
    Molecular basis of zinc acquisition by Streptococcus pneumoniae (NHMRC Ideas Grant led by the University of Melbourne)
    University of Melbourne
    Open grant
  • 2018 - 2021
    Novel insights into the molecular mechanisms of manganese recognition and acquisition by pathogenic bacteria (NHMRC Project Grant led by The University of Melbourne)
    University of Melbourne
    Open grant
  • 2017 - 2018
    Australian high field EPR facility (ARC LIEF project administered by the Australian National University)
    Australian National University
    Open grant
  • 2013 - 2019
    Elucidation of structure-function relationships in biological systems utilising advanced electron spin resonance
    ARC Future Fellowships
    Open grant

Supervision

Availability

Associate Professor Jeffrey Harmer is:
Available for supervision

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Supervision history

Current supervision

  • Doctor Philosophy

    Methods for protein structure analysis using spin labelling, electron paramagnetic resonance spectroscopy and molecular modelling

    Principal Advisor

    Other advisors: Dr Craig Bell, Professor Bostjan Kobe, Dr Rhia Stone

  • Doctor Philosophy

    Functional Materials for Organic Flow Batteries

    Associate Advisor

    Other advisors: Associate Professor Bin Luo

  • Doctor Philosophy

    Studies of complex biomolecular systems using advanced biochemical and biophysical techniques

    Associate Advisor

    Other advisors: Professor Mehdi Mobli

Completed supervision

Media

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