<?xml version="1.0" encoding="UTF-8"?><ns2:project xmlns:ns1="http://gtr.rcuk.ac.uk/gtr/api" xmlns:ns2="http://gtr.rcuk.ac.uk/gtr/api/project" xmlns:ns3="http://gtr.rcuk.ac.uk/gtr/api/fund" xmlns:ns4="http://gtr.rcuk.ac.uk/gtr/api/person" xmlns:ns5="http://gtr.rcuk.ac.uk/gtr/api/project/outcome" xmlns:ns6="http://gtr.rcuk.ac.uk/gtr/api/organisation" ns1:created="2026-07-08T08:44:08Z" ns1:href="http://gtr.ukri.org/gtr/api/projects/5D9C172A-FBEF-4E27-AB6D-91A31DBA3B4E" ns1:id="5D9C172A-FBEF-4E27-AB6D-91A31DBA3B4E"><ns1:links><ns1:link ns1:href="http://gtr.ukri.org/gtr/api/persons/ED0893AF-DE85-44C7-AE02-341E0BADE9E1" ns1:rel="PM_PER"/><ns1:link ns1:href="http://gtr.ukri.org/gtr/api/organisations/4A3C9A09-23B4-40A5-B74F-F2C6A8B0F6F0" ns1:rel="LEAD_ORG"/><ns1:link ns1:href="http://gtr.ukri.org/gtr/api/organisations/4A3C9A09-23B4-40A5-B74F-F2C6A8B0F6F0" ns1:rel="PARTICIPANT_ORG"/><ns1:link ns1:href="http://gtr.ukri.org/gtr/api/organisations/EC9326B5-50D8-459F-9932-1D39B5055FC9" ns1:rel="PARTICIPANT_ORG"/><ns1:link ns1:end="2025-02-28T00:00:00Z" ns1:href="http://gtr.ukri.org/gtr/api/funds/528C8BB7-00A3-4AFA-8294-27E3BC0412C9" ns1:rel="FUND" ns1:start="2023-04-30T23:00:00Z"/></ns1:links><ns2:identifiers><ns2:identifier ns2:type="RCUK">10057643</ns2:identifier></ns2:identifiers><ns2:title>Improving outcomes for haemodialysis patients through minimally invasive arteriovenous fistula creation</ns2:title><ns2:status>Closed</ns2:status><ns2:grantCategory>Collaborative R&amp;D</ns2:grantCategory><ns2:leadFunder>Innovate UK</ns2:leadFunder><ns2:abstractText>One of the most significant, costly, and growing world-wide health epidemics is the 422million people suffering from diabetes. Diabetes is the leading cause of kidney failure, a burdensome chronic condition, resulting in **3.4million patients requiring their blood to be routinely filtered externally through haemodialysis**. The current 'gold-standard' for preparing patients for dialysis involves an open surgical procedure to create a vascular access site (AVF), where blood vessels are dissected and sutured together to form a &amp;quot;short-circuit&amp;quot; which increases blood flow in these vessels, allowing for a dialysis machine to &amp;quot;access&amp;quot; the patient's blood supply and efficiently filter it. **The AVF is a patient's &amp;quot;life-line&amp;quot; and negative outcomes during creation (25% fail immediately; 50% after 1-year, and take 6-months to heal) presents a serious danger to life** and necessitates costly repeat procedures (\&amp;gt;3/year).

To address the challenge, PFM will technically advance its novel catheter system to **enable more complex connections between separate and smaller vessels** using a stent/stent-graft, allowing clinicians to create a vascular access site safely and reliably in a minimally invasive manner. The patented core technology has been CE marked, proven in feasibility studies and in a clinical environment for bypassing blockages in arteries, where only a hole between two lumens in the same vessel is created. This initial application has served as a &amp;quot;clinical stepping-stone&amp;quot; (lowest-risk), to prove the concept on the path toward addressing a more dire clinical need: **the creation of a safe and reliable AVF**. Project success will increase PFM's addressable market and accelerate commercialisation, allowing them to provide a minimally invasive alternative to surgery for more patients, improving quality-of-life, and significantly reducing costs for the healthcare system. In the UK alone, adopting a minimally invasive approach to **AVF creation that fails less often and enables dialysis to start earlier could save the NHS &amp;pound;79million/year.**</ns2:abstractText></ns2:project>