Abstract :
The smooth, powerful muscles of a newborn baby´s heart are pulsing normally, squeezing in and letting go rhythmically as a 3-mm-wide catheter-like tube snakes its way through, entering via an artery and being guided slowly by a surgeon. When it reaches its target - a protruding knot of malformed muscle tissue within a ventricle that has been partly blocking the valve - the tip of the precisely controlled tube whirs into action, with tiny scissor-like rotating blades gently grinding up the excess tissue as those pieces are sucked back into the device, leaving no floating particles that could lead to a blockage elsewhere. The defect is fully removed, and the heart´s function is restored to normal, leaving the child with the prospect of a normal life. The whole minimally invasive process takes place inside a beating heart and would otherwise have required open-heart surgery, with the heart stopped for a cardiopulmonary bypass.
Keywords :
bioMEMS; cardiovascular system; catheters; genomics; muscle; paediatrics; surgery; three-dimensional printing; 3D printing; beating heart; cardiopulmonary bypass; catheter-like tube snakes; guided microtools; malformed muscle tissue; minimally invasive process; open-heart surgery; pediatric cardiology; precision genome editing; protruding knot; scissor-like rotating blades; surgeon; ventricle; Biomedical optical imaging; Cardiology; Catheters; Genetics; Hospitals; Pediatrics; Photoacoustic effects; Surgery;