News | Advanced Visualization | April 25, 2016

Researchers believe microfocus CT may help develop more targeted, individualized therapies for idiopathic pulmonary fibrosis

microfocus CT, University of Southampton study, IPF, 3-D imaging, lung disease

April 25, 2016 — Doctors and scientists at the University of Southampton have used advanced 3-D X-ray imaging technology to give new insight into the way an aggressive form of lung disease develops in the body.

Originally designed for the analysis of substantial engineering parts, such as jet turbine blades, the powerful scanning equipment at Southampton’s µ-VIS Centre for Computed Tomography (CT) has been used to image idiopathic pulmonary fibrosis (IPF) lung tissue samples for the first time.

IPF is usually diagnosed via a hospital CT scan or by using a microscope to view a lung biopsy sample. However, Southampton researchers have now successfully applied microfocus CT to image biopsy samples. This allowed them to view each lung sample with a level of detail similar to an optical microscope but now in 3-D.

It had been thought that active scarring in IPF progressed like a large ‘wave’ from the outside to the inside of the lung. Instead, the study, published in JCI Insight, found that there are large numbers of individual sites of active disease scarring. The research team, from the National Institute for Health Research Southampton Respiratory Biomedical Research Unit, believes this finding will help to ensure doctors develop targeted therapies focusing on these areas.

Each year over 5,000 new cases of IPF are diagnosed in the United Kingdom, and the number of cases is increasing by around 5 percent every year. The condition, one of a group of disorders known collectively as interstitial lung diseases, causes inflammation and scarring of the lung tissue. This makes it increasingly difficult to breathe, and it leaves sufferers with a life expectancy of only three to five years.

The study’s lead author Mark Jones, Ph.D., a Wellcome Trust fellow from the University of Southampton and University Hospital Southampton, commented: “Whilst accurate diagnosis of IPF is essential to start the correct treatment, in certain cases this can be extremely challenging to do using the tools currently available. This technology advance is very exciting as for the first time it gives us the chance to view lung biopsy samples in 3-D. We think that the new information gained from seeing the lung in 3-D has the potential to transform how diseases such as IPF are diagnosed. It will also help to increase our understanding of how these scarring lung diseases develop, which we hope will ultimately mean better targeted treatments are developed for every patient.”

The study was funded by the Wellcome Trust and also involved researchers at the Royal Brompton Hospital, National Jewish Health in Colorado and University College Dublin. The µ-VIS Centre received launch funding from the Engineering and Physical Sciences Research Council (grant EP-H01506X) and the University of Southampton, along with ongoing imaging collaboration with Nikon Metrology.

Microfocus CT can scan inside objects in great detail – rotating 360 degrees whilst taking thousands of 2-D images, which are then used to build detailed 3-D images.

The Southampton team are now studying how this technique can help doctors improve the way we diagnose such diseases more accurately, to ensure every patient will receive the correct treatment.

For more information: www.insight.jci.org


Related Content

News | FDA

Nov. 26, 2025 — a2z Radiology AI has received U.S. FDA clearance for a2z-Unified-Triage, a single device that flags and ...

Time December 03, 2025
arrow
News | RSNA 2025

Nov. 13, 2025 — Nano-X Imaging Ltd., a medical imaging technology company, will showcase its Nanox.ARC X multi-source ...

Time November 25, 2025
arrow
News | Interventional Radiology

Nov. 12, 2025 — On Nov. 11, Huntsman Cancer Institute at the University of Utah (the U) opened its first specialized ...

Time November 13, 2025
arrow
Feature | Teleradiology | Kyle Hardner

Once viewed as a solution for after-hours coverage, teleradiology is rapidly expanding into a critical part of radiology ...

Time November 06, 2025
arrow
News | Magnetic Resonance Imaging (MRI) | Children's Hospital Los Angeles

Oct. 28, 2025 — Bronchopulmonary dysplasia (BPD) is the most common — and most serious — complication of extreme ...

Time October 31, 2025
arrow
News | Radiology Imaging | UC San Diego Health

Oct. 16, 2025 — A strategic collaboration between UC San Diego Health and GE HealthCare will focus on bringing advanced ...

Time October 20, 2025
arrow
News | X-Ray

Sept. 08, 2025 — A new clinical case study, presented by Qure.ai and Hacettepe University, Turkey, at the IASLC World ...

Time September 10, 2025
arrow
News | Mammography

Sept. 3, 2025 — According to ARRS’ American Journal of Roentgenology (AJR), a commercial artificial intelligence (AI) ...

Time September 09, 2025
arrow
News | Focused Ultrasound Therapy

Aug. 26, 2025 — In a quest for ever-more-effective treatments for pancreatic cancer, HonorHealth Research Institute is ...

Time August 29, 2025
arrow
News | Lung Imaging

Aug. 26, 2025 — Optellum, a global leader in AI for lung health, recently announced the world’s first thorax CT ...

Time August 26, 2025
arrow
Subscribe Now