SYSTEMS AND METHODS FOR TRANSFEMORAL CAROTID INTERVENTION
A system is used to access and treat a carotid artery. The system includes an arterial access device that receives blood flow from the common carotid artery via a distal region of the arterial access device. A shunt fluidly connects to the arterial access device and defines a blood flow pathway for blood to flow from the arterial access device to a return site. A flow control assembly assists blood flow through the shunt and includes a pump having at least one roller that interacts with the tubing of the shunt to pump blood through the shunt toward the return site.
1 . A system for use in accessing and treating a carotid artery, the system comprising:
an arterial access device adapted to be introduced into a common carotid artery via a percutaneous access location in a groin of a patient and receive blood flow from the common carotid artery via a distal region of the arterial access device, wherein the arterial access device includes a distal sheath which enters the common carotid artery;
a shunt fluidly connected to the arterial access device, wherein the shunt comprises tubing defining a blood flow pathway for blood to flow from the arterial access device to a return site; and
a flow control assembly coupled to the shunt and adapted to assist blood flow through the shunt, the flow control assembly including a pump having at least one roller that interacts with the tubing of the shunt to pump blood through the shunt toward the return site.
2 . The system of claim 1 , wherein the percutaneous access location is in a femoral vein.
3 . The system of claim 1 , wherein the at least one roller includes a plurality of rollers, each roller of the plurality of rollers coupled to a rotor that rotates to successively move each roller into contact with the tubing.
4 . The system of claim 3 , wherein each roller is coupled to a belt that forms an elongated pathway upon which each roller moves into contact with the tubing.
5 . The system of claim 3 , wherein the tubing of the shunt extends along a pathway having a predetermined shape, wherein the predetermined shape is straight or curved.
6 . The system of claim 5 , wherein a rigid structure extends along a portion of the tubing in a side-by-side relationship such that the tubing conforms to the shape of the structure.
7 . The system of claim 1 , wherein a relative position between the roller and the tubing can be adjusted to adjust a degree of occlusion that the roller achieves relative to an internal lumen of the tubing.
8 . The system of claim 1 , further comprising a dilator formed of an elongated body sized and shaped to be inserted into the arterial access device.
9 . The system of claim 8 , wherein the dilator has a first tapered region at a distal location of the dilator.
10 . The system of claim 8 , wherein the dilator has a second tapered region at a distal location of the dilator.
11 . The system of claim 8 , wherein the dilator has an optical marker on a proximal region of the dilator and wherein, when the optical marker aligns with a landmark of the arterial access device, the first tapered region fully extends from a distal tip of the arterial access device.
12 . The system of claim 11 , wherein alignment between the optical marker and the landmark of the arterial access device indicates to a user that a location where the dilator begins to taper is aligned with a distal most end of arterial access device.
13 . The system of claim 1 , wherein the arterial access device further comprises an expandable balloon on a distal region of the sheath, the expandable balloon adapted to occlude the common carotid artery.
14 . The system of claim 13 , wherein the sheath is formed of an outer jacket co-axially positioned over an inner layer, and wherein a distal portion of the balloon is connected to one of the outer jacket or the inner layer and a proximal portion of the balloon is connected to the other of the outer jacket or the inner layer.
15 . The system of claim 13 , wherein the sheath is formed of an outer jacket co-axially positioned over an inner layer, and wherein a distal portion of the balloon is connected to the inner layer and a proximal portion of the balloon is connected to the outer jacket.
16 . A method of treating a carotid artery, comprising:
percutaneously accessing a femoral artery by inserting an arterial access device into the femoral artery through a puncture in the femoral artery, the arterial access device comprises a distal sheath;
introducing the distal sheath into a common carotid artery via an aortic arch;
expanding a balloon on the distal sheath to occlude at least a portion of the common carotid artery to cause blood to flow in a retrograde direction from an internal carotid artery into the distal sheath;
shunting blood from the sheath to a return site via a shunt fluidly coupled to the distal sheath; and
assisting blood flow through the shunt using a pump having at least one roller that interacts with a tubing of the shunt to pump blood through the shunt toward the return site.
17 . The method of claim 16 , wherein the at least one roller includes a plurality of rollers, each roller of the plurality of rollers coupled to a rotor that rotates to successively move each roller into contact with the tubing.
18 . The method of claim 17 , wherein each roller is coupled to a belt that forms an elongated pathway upon which each roller moves into contact with the tubing.
19 . The method of claim 17 , wherein the tubing of the shunt extends along a pathway having a predetermined shape, wherein the predetermined shape is straight or curved.
20 . The method of claim 17 , further comprising adjusting a relative position between the roller and the tubing to adjust a degree of occlusion that the roller achieves relative to an internal lumen of the tubing.