51cg

Dr Lionel Broche

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Dr Lionel Broche
Dr Lionel Broche
Dr Lionel Broche

PhD, MInstP

Senior Research Fellow

51cg
Email Address
l.broche@abdn.ac.uk
Office Address

Biomedical Physics Building Room F10 Foresterhill

School/Department
School of Medicine, Medical Sciences and Nutrition



Biography

Dr Lionel Broche is a medical physicist and academic researcher based in Aberdeen. He serves as a Senior Research Fellow at the 51cg within the School of Medicine, Medical Sciences and Nutrition.

Dr Broche specialises in advanced medical imaging, particularly in the development and application of Fast Field-Cycling methods applied to Magnetic Resonance Imaging. His work focuses on improving diagnostic techniques by using fast variations of magnetic fields, which informs on the behaviour of water and lipid molecules in human tissues. This innovative approach provides new insights into disease progression and tissue changes that are not detectable with conventional MRI technology.

He leads research efforts clinical studies on conditions such as stroke, breast cancer, brain tumours, liver disease, and osteoarthritis. His interdisciplinary research spans physics, engineering, biology, and clinical medicine, reflecting a strong commitment to translational science that bridges laboratory innovation and patient care.

In addition to his research, Dr Broche contributes to postgraduate teaching, particularly in medical physics and imaging programmes. Through both his academic work and scientific publications, he has played a significant role in advancing low-field MRI technologies and expanding their potential in modern healthcare.

Latest Publications

  • Ultralow-Field NMR Relaxometry and Bumetanide: A Theranostic Strategy against GBM Invasion

    Rakhshan, S., Baroni, S., El-Atifi Borel, M., Zarechian Soudani, A., Broche, L., Berger, F., Geninatti Crich, S., Lahrech, H.
    Chemical & Biomedical Imaging
    Contributions to Journals: Articles
  • Ultra-low-field NMR relaxometry and bumetanide: a theranostic strategy against GBM invasion

    Geninatti Crich, S., Rakhshan, S., Baroni, S., El Atifi Borel, M., Zarechian Soudani, A., Broche, L., Berger, F., Lahrech, H.
    Chemical & Biomedical Imaging
    Contributions to Journals: Articles
  • Discrimination of haematoma and peri-haematoma regions of sub-acute intracerebral haemorrhage using Field-Cycling Imaging at field strengths below 0.2 T

    Senn, N., Mallikourti, V., Ross, J., Levi, R., Oren, N., Broche, L., Waiter, G., Macleod, M.
    UK Stroke Forum, pp. 40
    Contributions to Journals: Abstracts
  • Stroke Diagnosis from Field-Cycling Imaging using Machine Learning

    Ali-Gombe, A., Senn, N., Broche, L., Mallikourti, V., Ross, J., Waiter, G., Macleod, M.
    UK Stroke Forum, pp. 41
    Contributions to Journals: Abstracts
  • Field-Cycling Imaging yields repeatable brain R1 dispersion measurement at fields strengths below 0.2 Tesla with optimal fitting routine

    Senn, N., Ross, P. J., Ayde, R., Mallikourti, V., Krishna, A., James, C., de Vries, C., Broche, L., Waiter, G., Macleod, M.
    Magnetic Resonance Materials in Physics, Biology and Medicine, vol. 38, pp. 465–474
    Contributions to Journals: Articles

View My Publications

Research

Research Overview

I am currently leading the Fast Field-Cycling group at the 51cg, which is world-leading in the development of large-band, field-cycling imaging scanners. We are currently developing Field-Cycling Imaging (FCI), a new imaging technology derived from MRI that has the unique ability to measure the dynamics of water and lipid molecules non-invasively. This provides unique insights on the pathological remodelling of tissues during the progression of diseases, with exciting applications in medicine. FCI opens access to a new domain of medical research that remains to be explored.

I am currently conducting clinical research showing that FCI can detect stroke, breast cancer, brain glioma, liver fibrosis and osteoarthritis, amongst other pathologies. My research encompasses many disciplines such as electronic engineering, spin physics, biophysics, physiology, cell biology, system engineering or electromagnetism, and my current research direction focuses on three research topics:

- discovering the medical applications of FCI, incuding the biological mechanisms underlying the FCI image contrast

- technology developments of FCI

- dissemination of FFC imaging using open-source hardware

Research Areas

Biomedical Sciences

  • Supervising

Physics

  • Supervising

Research Specialisms

  • Biomedical Engineering
  • Diagnostic Imaging
  • Systems Engineering
  • Medical Physics
  • Electromagnetism

Our research specialisms are based on the Higher Education Classification of Subjects (HECoS) which is , published under the licence.

Current Research

Clinical applications of Field-Cycling Imaging

(FCI) is a unique imaging technique that has the ability to quantify the motion of water and lipids in vivo, non invasively and using low and safe magnetic fields. Water naturally diffuses through the body and interacts with all its components, hence water motion is sensitive to the pathological tissue remodelling that occur as diseases progress. Using FCI, it is possible to detect and measure these changes, and therefore to detect and follow the progression of certain diseases.

Our pilot studies show excellent results in several applications:

Characterisation of brain stroke in vivo

The management of stroke has increasingly focused on early identification, early scanning and thrombolysis and/or clot retrieval. These techniques rely heavily on imaging of the stroke but there are practical and interpretational limitations to current imaging modalities for early diagnosis of ischaemic stroke.

Field-Cycling Imaging (FCI) uses low magnetic fields to extract non-invasively information on the molecular dynamics of tissues that is not accessible by any other imaging modalities. Our PUFFINS pilot study shows great potential to identify ‘what is going on’ at the molecular level after a brain infarct and to give information on the composition of intra-arterial thrombus, which might aid choice of treatments for acute strokes. Other potential benefits of FCI are foreseen for patients with small vessel disease and amyloid deposition, not to mention other brain diseases such as vasculitis, tumour and multiple sclerosis.

Detection of osteoarthritis using the quadrupolar signal

(OA) is the most prevalent joint disorder and cause of disability in the United Kingdom with an estimated , and it is a . Multiple risk factors appear to be involved in the onset and progression of OA, including age, genetics, gender, overuse, trauma and obesity, even though none of these have been identified as a clear cause of the disease. There are currently no pharmacological interventions available to patients for modifying the underlying disease but early patient management can help to slow down its progression. it is therefore crutial to detect OA before irreversible damages develop.

The underlying pathophysiology of OA has been extensively studied and recent research identifying the importance of matrix-degrading enzymes, chondrocyte hypertrophy and apoptosis, subchondral bone metabolism, cytokines and inflammation has identified a number of potential targets for disease modifying agents. Interest in developing potential therapeutic agents has highlighted the need for biomarkers of disease progression with imaging biomarkers currently appearing to offer the best prospect.

A on excised samples of OA cartilage from hip replacement showed promising results: it appeared that this technique can offer degradation-sensitive contrast using a particular signal, the . A more extensive study is being undertaken at the moment in collaboration with and in order to assess this technique.

Characterisation of fibrin clots and applications to thrombosis

Fibrin is one of the main constituents of blood clots. It is derived from , a long, narrow and heavy protein (340 kDa), under the action of thrombin.

Fibrin protein are insoluble and aggregate into long filaments that can cross-link to form a rigid gel structure. The size and diameter of these filaments, together with the amount of cross-linking, can be controled more or less independantly during the clotting process by several paremeters such as the concentration of calcium ions or the content of factor XIII and RS283 proteins.

The rigidity of the clot is an important parameter for the treatment of (DVT), a pathology that may develop in several diseases or conditions such as cast ankle, high saturated fat diet or drug abuse. DVT is treated by thrombolysis when the conditions allow, but response to treatment varies greatly due to the nature of the clot.

have showed that field-cycling can detect fibrin quantitatively, with possible applications to DVT characterisation. A study has been initiated on DVT patients in parternship with the NHS at the Aberdeen Royal Infirmary to assess whether FCI can predict the response to thrombolitic treatment.

An in-vitro  study of fibrin systems is also being developed in partnership with and that aims to detect differences in clot structure due to the chains during the clot.

Detection of tumours at low magnetic fields

one of the parameters of interest that is measured by an MRI scan is the transverse relaxation time of spins, also called T1. This parameteris known to vary greatly between tissues at low magnetic field (typically below 0.05T) but much less at high fields. This is part of the reason why contrast agents are needed for tumour detection on conventional MRI clinical scanners.

Unfortunately, low magnetic fields also come with low image resolution and long scan time. This is the reason why MRI scanners are operating at ever increasing fields.

FCI offers a compromise between high contrast and high resolution that cannot be reached by conventional fixed-field MRI scanners. This opens new avenues for contrast-based studies with potential applications in many fields of medicine.

One particular area of interest is breast cancer: breast tumours are commonly detected by analysis of contrast in MRI scans but may be difficult to assess if their extent is restricted to a few millimeters. A study has been initiated by Dr Lionel Broche in collaboration with , Dr I. Miller, , , Dr D. Boddie and to assess FFC MRI in the context of breast cancer.

 

Funding and Grants

See my for up-to-date details.

Teaching

Teaching Responsibilities

Dr Lionel Broche teaches the physics of Fast Field-Cycling Magnetic Resonance Imaging on the MSc programmes in , , and .

Publications

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  • Towards applying NMR relaxometry as a diagnostic tool for bone and soft tissue sarcomas: a pilot study

    Masiewicz, E., Ashcroft, G., Boddie, D., Dundas, S. R., Kruk, D., Broche, L.
    Scientific Reports, vol. 10, 14207
    Contributions to Journals: Articles
  • Slow dynamics of solid proteins: Nuclear Magnetic Resonance relaxometry versus Dielectric Spectroscopy

    Kruk, D., Masiewicz, E., Wojciechowski, M., Florek-Wojciechowska, M., Broche, L. M., Lurie, D. J.
    Journal of Magnetic Resonance, vol. 314, 106721
    Contributions to Journals: Articles
  • In vivo assessment of tumour associated macrophages in murine melanoma obtained by low-field relaxometry in the presence of iron oxide particles

    Baroni, S., Ruggiero, M. R., Bitonto, V., Broche, L. M., Lurie, D. J., Aime, S., Crich, S. G.
    Biomaterials, vol. 236, 119805
    Contributions to Journals: Articles
  • Fast field-cycling magnetic resonance detection of intracellular ultra-small iron oxide particles in vitro: Proof-of-concept

    Abbas, H., Broche, L., Ezdoglian, A., Li, D., Yuecel, R., Ross, P. J., Cheyne, L., Wilson, H. M., Lurie, D. J., Dawson, D. K.
    Journal of Magnetic Resonance, vol. 313, 106722
    Contributions to Journals: Articles
  • Mechanism of Water Dynamics in Hyaluronic Dermal Fillers Revealed by Nuclear Magnetic Resonance Relaxometry

    Kruk, D., Rochowski, P., Masiewicz, E., Wilczynski, S., Wojciechowski, M., Broche, L., Lurie, D.
    ChemPhysChem, vol. 20, no. 21, pp. 2816-2822
    Contributions to Journals: Articles
  • Dynamics of Solid Proteins by Means of Nuclear Magnetic Resonance Relaxometry

    Kruk, D., Masiewicz, E., Borkowska, A. M., Rochowski, P., Fries, P. H., Broche, L. M., Lurie, D. J.
    Biomolecules, vol. 9, no. 11, 652
    Contributions to Journals: Articles
  • A whole-body Fast Field-Cycling scanner for clinical molecular imaging studies

    Broche, L. M., Ross, P. J., Davies, G. R., Macleod, M., Lurie, D. J.
    Scientific Reports, vol. 9, 10402
    Contributions to Journals: Articles
  • Bilateral Breast coil for Fast Field-Cycling Relaxometric MRI

    Davies, G. R., Broche, L., Gagliardi, T., Lurie, D. J., Ross, P. J.
    27th Annual Meeting, International Society for Magnetic Resonance in Medicine
    Contributions to Conferences: Abstracts
  • Comparison of fast field-cycling magnetic resonance imaging methods and future perspectives

    Bödenler, M., de Rochefort, L., Ross, P. J., Chanet, N., Guillot, G., Davies, G. R., Gösweiner, C., Scharfetter, H., Lurie, D. J., Broche, L. M.
    Molecular Physics, vol. 117, no. 7-8, pp. 832-848
    Contributions to Journals: Articles
  • Techniques and Applications of Field-cycling Magnetic Resonance in Medicine

    Lurie, D. J., Ross, P. J., Broche, L. M.
    Field-cycling NMR Relaxometry: Instrumentation, Model Theories and Applications. Kimmich, R. (ed.). Royal Society of Chemistry, pp. 358-384, 27 pages
    Chapters in Books, Reports and Conference Proceedings: Chapters (Peer-Reviewed)
  • A novel imaging modality (Fast Field-Cycling MRI) identifies ischaemic stroke at ultra-low magnetic field strength

    Macleod, M. J., Broche, L., Ross, J., Guzman-Guttierez, G., Lurie, D.
    International Journal of Stroke, vol. 13, no. 3_Suppl, pp. 62-63
    Contributions to Journals: Abstracts
  • Open Source Medical Devices for Innovation, Education and Global Health: Case Study of Open Source Magnetic Resonance Imaging

    Winter, L., Pellicer-Guridi, R., Broche, L., Winkler, S. A., Reimann, H. M., Han, H., Arndt, F., Hodge, R., Günyar, S., Moritz, M., Ettinger, K. M., de Fresnoye, O., Niendorf, T., Benchoufi, M.
    Co-Creation: Reshaping Business and Society in the Era of Bottom-up Economics. Redlich, T., Moritz, M., Wulfsberg, J. P. (eds.). Springer International Publishing AG, pp. 147-163, 17 pages
    Chapters in Books, Reports and Conference Proceedings: Chapters
  • Fast Field-Cycling MRI technology: prototype human scanner and first clinical results

    Lurie, D. J., Broche, L., Davies, G. R., Guzman Gutierrez, G., Macleod, M., Ross, P. J.
    Radiological Society of North America Annual Meeting
    Contributions to Conferences: Abstracts
  • A Fast Field-Cycling MRI system for clinical applications

    Ross, P. J., Broche, L., Davies, G. R., Lurie, D. J.
    2018 ISMRM British Chapter Annual meeting
    Contributions to Conferences: Abstracts
  • Fast-field cycling magnetic resonance imaging – developing a new biomarker for early osteoarthritis of the knee

    Ashcroft, G. P., Myint, P. K., Broche, L., Lurie, D. J.
    Osteoarthritis and Cartilage, vol. 26, no. Supplement 1, pp. S467
    Contributions to Journals: Abstracts
  • Simple algorithm for the correction of MRI image artefacts due to random phase fluctuations

    Ross, P. J., Broche, L., Lurie, D. J.
    The ISMRM 26th Annual Meeting & Exhibition, pp. 2710
    Contributions to Conferences: Abstracts
  • Simple algorithm for the correction of MRI image artefacts due to random phase fluctuations

    Broche, L. M., Ross, P. J., Davies, G. R., Lurie, D. J.
    Magnetic Resonance Imaging, vol. 44, pp. 55-59
    Contributions to Journals: Articles
  • A Fast Field-Cycling MRI system for clinical applications

    Ross, P. J., Broche, L., Davies, G. R., Lurie, D. J.
    34th Annual Congress of the European Society for Magnetic Resonance in Medicine and Biology (ESMRMB), pp. 56
    Contributions to Conferences: Abstracts
  • Correction of environmental magnetic fields for the acquisition of Nuclear magnetic relaxation dispersion profiles below Earth’s field

    Zampetoulas, V., Lurie, D. J., Broche, L. M.
    Journal of Magnetic Resonance, vol. 282, pp. 38-46
    Contributions to Journals: Articles
  • Fast Field-cycling Magnetic Resonance Imaging

    Lurie, D. J., Broche, L., Davies, G. R., Payne, N. R., Ross, P. J., Zampetoulas, V.
    Italian Magnetic Resonance Group XLVI National Congress, pp. 11
    Contributions to Conferences: Abstracts
  • Fast Field-cycling Magnetic Resonance Imaging

    Lurie, D. J., Broche, L., Davies, G. R., Payne, N. R., Ross, P. J., Zampetoulas, V.
    European Congress on Magnetic Resonance (EUROMAR 2017), pp. 378
    Contributions to Conferences: Abstracts
  • Design and commissioning of a whole-body 0.2 T fast field-cycling MRI magnet

    Broche, L., Ross, P. J., Davies, G. R., Lurie, D. J.
    10th Conference on Fast Field-Cycling NMR Relaxometry, pp. 7
    Contributions to Conferences: Abstracts
  • Evolution of the Quadrupole Peak determinants in the NMRD profile of biological tissue. A relaxometric study of model samples

    Baroni, S., Geninatti Crich, S., Broche, L., Lurie, D. J., Aime, S.
    10th Conference on Fast Field-Cycling NMR Relaxometry, pp. 35
    Contributions to Conferences: Abstracts
  • Fast Field-Cycling Magnetic Resonance Imaging

    Lurie, D. J., Broche, L., Davies, G. R., Payne, N. R., Ross, P. J., Zampetoulas, V.
    10th Conference on Fast Field-Cycling NMR Relaxometry, pp. 6
    Contributions to Conferences: Abstracts
  • Fast Field-cycling MRI: T1-Dispersion for Enhanced Medical Diagnosis

    Lurie, D. J., Broche, L., Davies, G. R., Payne, N. R., Ross, P. J., Zampetoulas, V.
    AMPERE NMR School (2017), pp. 19
    Contributions to Conferences: Abstracts
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