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Ceryx Medical, is collaborating with New Zealand scientists and British researchers on a cardiac rhythm management device.
April 11, 2022
By: Michael Barbella
Managing Editor
An international team of scientists and researchers are stepping up the battle against heart disease. Ceryx Medical Limited, together with scientists at the Auckland Bioengineering Institute (ABI) and researchers from the Universities of Bath and Bristol, are developing technology that could radically improve the outlook for patients with serious heart conditions. Ceryx’s co-founder Julian Paton, Professor of Translational Physiology at ABI, began studying the relationship between the heartbeat and respiration more than a decade ago. He has since worked with his team at U.K.-based Ceryx Medical to develop “Cysoni” —a unique cardiac rhythm management device. Pre-clinical data showing a dramatic improvement in directly recorded cardiac output in heart failure has now been published in the international journal, Basic Research in Cardiology. “We are delighted to have our data published, and hope that the advancements we are making in cardiovascular treatment will excite the global healthcare community, as well as giving hope to patients themselves. Five years of rigorous testing have led us to the stage of being ready to begin clinical trials later this year,” Paton said. Cysoni is a bionic device that paces the heart with real-time respiratory modulation. The innovation stems from the idea that heart rate increases and decreases with each breath in normal physiology, termed “respiratory sinus arrhythmia” (RSA). Cysoni replicates this natural interaction, triggering heartbeats based on respiratory function, as opposed to the usual ‘metronomic’ generation by traditional pacemakers. This sets Cysoni apart from existing devices, which generate an output with no breath-by-breath induced variation in the inter-beat interval. In essence, Cysoni listens and responds to the cardiorespiratory system and optimises its performance. The team’s studies found that RSA pacing increased cardiac output by 20 percent, compared to monotonic pacing. This increase in output led to a significant decrease in heart failure-associated symptoms such as apnoeas and significant improvements in performance during exercise. It also reversed cardiomyocyte hypertrophy and restored the T-tubule structure that is essential for force generation. This repair of the cardiac damage indicative of heart failure is particularly encouraging, according to Ceryx. Of the 26 million heart failure patients worldwide, around 50 percent die within five years of diagnosis. Ceryx Medical CEO Dr. Stuart Plant believes that Cysoni stands to dramatically improve not just the existing health and wellbeing of cardiology patients, but also their prognoses. “We are seeing, at single heart cell level, repair to the structure of that cell because of the reinstatement of RSA via Cysoni,” Plant explained. “It’s a huge scientific breakthrough. The improvement in the function of the heart combined with the repair of the heart muscle stands to dramatically improve therapy for patients with cardiac diseases such as heart failure. And while cardiology remains our firm focus for the time being, we anticipate our technology being used to treat conditions including hypertension and spinal cord injuries, and even dementia.” “This is a very important result because current pacemakers never give us such a large improvement in cardiac pumping. If this translates across to humans it may define the way we pace hearts in the future,” said Professor Gianni Angelini, British Heart Foundation Professor of Cardiac Surgery at the Bristol Heart Institute and the National Heart and Lung Institute, Imperial College London. The first clinical study involving the Cysoni technology will begin later this year involving patients from hospitals in the United Kingdom, Australia, and New Zealand. Ceryx Medical is a medical technology company that has developed a revolutionary therapy for the treatment of heart failure that treats both the symptoms and the underlying disease process.
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