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New DNA test finds answers for patients with inherited muscle disease

09.24.26 | Garvan Institute of Medical Research

A world-first test developed by researchers at the Garvan Institute of Medical Research has identified the genetic cause of inherited muscle disease in people who remained without answers after years, sometimes decades, of standard testing.

Published in Nature Communications , the study applied the test to 53 Australians with known or suspected inherited muscle disease, including 31 whose previous genetic testing had failed to identify a cause. Over a third of those unsolved cases received a diagnosis through the new test. On average, these participants had been living without answers to their symptoms for 14 years.

Inherited muscle diseases, which include muscular dystrophies, affect an estimated 6,000 Australians. They gradually weaken and waste the muscles, often robbing people of the ability to walk, swallow, speak clearly or use their hands. They can begin in childhood or adulthood, worsen over time, and there are currently no cures.

The new test uses long-read ‘nanopore’ sequencing, a newer technology that reads much longer stretches of DNA than standard methods and can pick up complex genetic changes that older tests routinely miss. In a single experiment, it screens more than 300 genes known to cause inherited muscle disease and detects the full range of DNA changes behind them.

“Many muscle diseases have no available genetic test and for others there is a separate test for each different gene involved,” says Dr Ira Deveson, Lab Head at Garvan and co-senior author. “Here we've shown that it's possible to test all genes at once and that's a game-changer for someone who has been through years of inconclusive tests.”

Standard diagnostic tests for inherited muscle disease look for one kind of DNA change at a time – but these conditions can be caused by many genetic changes. Some involve single-letter errors in the DNA code, others involve large missing or duplicated sections, unstable expansions of repeated sequences, or ‘epigenetic’ chemical marks that switch genes on and off. Until now, no single test could detect all of these changes at once – a gap that long-read sequencing closes.

New genetic causes of muscle disease also continue to be identified, and each one takes time to build into an accredited clinical test – which means many people affected by conditions recognised in the last five to 10 years cannot be diagnosed. The new test covers them all, while at the same time detecting variants that have been known about for a longer time.

For some participants, the new test identified a gene variant that no Australian clinical test currently looks for. For others, it corrected a misdiagnosis.

Either way, the results have significant practical consequences, says Associate Professor Kishore Kumar, Group Leader at Garvan, neurologist at Concord Repatriation General Hospital and co-senior author. “A confirmed genetic diagnosis changes the counselling we can offer families, opens access to supports such as the National Disability Insurance Scheme, prompts monitoring for complications such as heart problems, and allows people to enrol in clinical trials that require a known genetic cause. Without it, many of those doors stay closed. This new test puts Australia at the cutting edge of genetic diagnosis, and other countries will follow.”

Dr Dennis Yeow, neurologist and PhD candidate at The University of Sydney who co-led the study, says the impact on individuals is often striking. “Some patients had been searching for an explanation for their symptoms for over a decade, undergoing repeated investigations, including blood tests, MRI scans, neurophysiologic studies and even muscle biopsies. Being able to finally give them a name for what they have is significant, both for them and for their families.”

The team is now working with NSW Health Pathology’s Molecular Medicine Laboratory at Concord Hospital to bring the test into routine care. The researchers estimate it could be available across Australia within about two years.

Dr Andre Reis, Senior Research Officer at Garvan and lead bioinformatician on the study built much of the analysis framework that makes the test workable in a clinical context. “Long-read sequencing generates a huge amount of complex information about a person’s DNA. We’ve turned that into clear, reliable findings that a diagnostic laboratory can act on. That is what takes it from a research technique to something that can genuinely help people,” he says.

While the study focused on muscle disease, the same test approach could be applied to other rare inherited conditions.

“The long-read technology we have applied in this test is disease-agnostic,” Dr Deveson says. “What we have shown for muscle disease could, in time, be built for many of the rare genetic conditions where people currently spend years searching for a name for what they have. That is where we want this to go.”

– ENDS –

The study was supported by the Ainsworth 4 Foundation, Terry and Helen Jones, the Medical Research Future Fund and the National Health and Medical Research Council, with in-kind support from Oxford Nanopore Technologies and FSHD Global. The authors acknowledge the contributions of the ANZAC Research Institute and the Molecular Medicine Laboratory at Concord Repatriation General Hospital.

Dr Ira Deveson is Lab Head at the Garvan Institute and a Conjoint Associate Professor at the Faculty of Medicine and Health, UNSW Sydney.

Associate Professor Kishore Kumar leads the Translational Neurogenomics Group at the Garvan Institute and is an Associate Professor at the Faculty of Medicine and Health, University of Sydney; and Conjoint Associate Professor at the Faculty of Medicine and Health, UNSW Sydney; and holds a joint appointment with the ANZAC Research Institute.

Dr Dennis Yeow is a PhD candidate at the Faculty of Medicine and Health, University of Sydney; Visiting Scientist at the Garvan Institute; Conjoint Research Fellow at Neuroscience Research Australia; Visiting Medical Officer at concord Repatriation General Hospital, and Neurology Staff Specialist at the Neurodegenerative Service at Prince of Wales Hospital. He is supported by a Muscular Dystrophy NSW PhD Scholarship.

Dr Andre Reis is a Senior Research Officer at the Garvan Institute and a Conjoint Lecturer at the Faculty of Medicine and Health, UNSW Sydney.

Nature Communications

10.1038/s41467-026-75144-z

Observational study

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Article Information

Contact Information

Brittany Cooper
Garvan Institute of Medical Research
b.cooper@garvan.org.au
Ana Porta Cubas
Garvan Institute of Medical Research
a.portacubas@garvan.org.au

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This article is based on a news release from Garvan Institute of Medical Research. BrightSurf curates and republishes science news from research institutions worldwide; the original release is linked below.

How to Cite This Article

APA:
Garvan Institute of Medical Research. (2026, September 24). New DNA test finds answers for patients with inherited muscle disease. Brightsurf News. https://www.brightsurf.com/news/1GRY3DE8/new-dna-test-finds-answers-for-patients-with-inherited-muscle-disease.html
MLA:
"New DNA test finds answers for patients with inherited muscle disease." Brightsurf News, Sep. 24 2026, https://www.brightsurf.com/news/1GRY3DE8/new-dna-test-finds-answers-for-patients-with-inherited-muscle-disease.html.