Histology-Validated Dielectric Characterisation of Lung Carcinoma Tissue for Microwave Thermal Ablation Applications

Author:

Farina Laura12ORCID,Ruvio Giuseppe1ORCID,Shatwan Ramadan3,Shalaby Aliaa3,O’Halloran Martin2,White Alexandra4ORCID,Soo Alan4,Breen David5,Lowery Aoife6,Quinn Anne Marie3

Affiliation:

1. R & D, Endowave Ltd., H91 DCH9 Galway, Ireland

2. College of Medicine, Nursing and Health Sciences, University of Galway, H91 TK33 Galway, Ireland

3. Department of Anatomic Pathology, Galway University Hospitals, H91 YR71 Galway, Ireland

4. Department of Cardiothoracic Surgery, Galway University Hospital, H91 YR71 Galway, Ireland

5. Interventional Respiratory Unit, Department Respiratory Medicine, Galway University Hospital, H91 YR71 Galway, Ireland

6. Discipline of Surgery, School of Medicine, University of Galway, H91 TK33 Galway, Ireland

Abstract

Microwave thermal ablation is a promising emerging treatment for early-stage lung cancer. Applicator design optimisation and treatment planning rely on accurate knowledge of dielectric tissue properties. Limited dielectric data are available in the literature for human lung tissue and pulmonary tumours. In this work, neoplastic and non-neoplastic lung dielectric properties are characterised and correlated with gross and histological morphology. Fifty-six surgical specimens were obtained from twelve patients undergoing lung resection for lung cancer in University Hospital of Galway, Ireland. Dielectric spectroscopy in the microwave frequency range (500 MHz–8.5 GHz) was performed on the ex vivo lung specimens with the open-ended coaxial probe technique (in the Department of Pathology). Dielectric data were analysed and correlated with the tissue histology. The dielectric properties of twelve lung tumours (67% non-small cell carcinoma (NSCC)) and uninvolved lung parenchyma were obtained. The values obtained from the neoplastic lung specimens (relative permittivity: 52.0 ± 5.4, effective conductivity: 1.9 ± 0.2 S/m, at 2.45 GHz) were on average twice the value of the non-neoplastic lung specimens (relative permittivity: 28.3 ± 6.7, effective conductivity: 1.0 ± 0.3 S/m, at 2.45 GHz). Dense fibrosis was comparable with tumour tissue (relative permittivity 49.3 ± 4.6, effective conductivity: 1.8 ± 0.1 S/m, at 2.45 GHz).

Funder

Government of Ireland, Disruptive Technology Innovation Fund

European Union Horizon 2020 Research and Innovation Programme under the Fast Track for Innovation project

Irish Cancer Society Clinician Research Leadership Award

Publisher

MDPI AG

Subject

Cancer Research,Oncology

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