Negative pressure creates controlled drainage during ureteroscopy, helping remove irrigation fluid, blood, and stone fragments from the operative field. Because fluid exits while irrigation continues, the surgeon can maintain visualization without relying on static fluid accumulation. This drainage may also help limit intrarenal pressure, an important consideration when treating stones within the kidney.
Continuous inflow replenishes the irrigation fluid that suction removes. This balance supports a clearer endoscopic view while the system evacuates blood and debris. Without ongoing inflow, drainage could reduce the fluid available for visualization; with controlled inflow and suction together, the procedure can maintain operative visibility and fluid management during stone treatment.
The suction pathway can evacuate three clinically relevant contents: irrigation fluid, blood, and stone fragments. Removing these materials addresses different operative problems at once, including fluid accumulation, visual obstruction, and residual debris. This combined effect may make the treatment field easier to inspect and can support more efficient clearance after laser fragmentation.
During laser lithotripsy, the technique provides controlled drainage while the stone is treated endoscopically. Suction can carry away irrigation fluid and fragments produced during laser treatment, helping preserve visualization and supporting fragment clearance. Its relevance is greatest in kidney stone procedures, where the operative field and the management of intrarenal fluid directly affect procedural control.
Suction may be delivered through a suction-enabled access sheath or catheter used during ureteroscopy. These components create a pathway for controlled evacuation while irrigation continues through the procedure. Their role is not limited to fragment removal: they also support blood and fluid evacuation, which can improve visualization and contribute to more controlled drainage of the upper urinary tract.
The approach may provide a clearer operative field, more controlled fluid drainage, improved fragment clearance, and greater procedural efficiency. It may also help limit intrarenal pressure during upper urinary tract treatment. These potential benefits explain its use as a minimally invasive strategy for kidney stone procedures, particularly when laser lithotripsy requires sustained visualization and debris management.