Percutaneous treatment for heart valves
The invention is directed to percutaneous transvascular therapeutic procedures, particularly for patients with congestive heart failure, and systems for such procedures. A system of the invention for a “Bow-tie” procedure has an elongated guide catheter, a leaf stabilizing device and a tissue grasping device for grasping the free edges of the patient's heart valve slidably disposed within the guide catheter. Preferably, an artificial cordae tendenae is provided if a natural cordae tendenae of the patient has been torn.
1 . A percutaneous transvascular method of treating a patient' heart valve, comprising:
a. providing a guide catheter having an elongated shaft with a proximal end and a distal end, a discharge port in the distal end, an inner lumen extending therein to and in fluid communication with the discharge port and a distal portion configured or configurable to orient the discharge port toward the heart valve to be treated;
b. advancing the guide catheter through the patient's vascular system until the distal portion is disposed within a chamber of the patient's heart;
c. providing an elongated grasping device having a proximal end, an operable portion at the proximal end, a distal end, a pair of jaws on the distal end which can be opened and closed by the operable portion on the proximal end;
d. advancing a grasping device through the guide catheter until the pair of jaws extend out of the guide catheter;
e. providing a valve leaflet stabilizer having an expandable distal portion configured to engage one or more valve leaflets;
f. advancing an valve leaflet stabilizer member through the inner lumen of the guide catheter and through the valve to be treated;
g. expanding the expandable distal portion of the stabilizer member, engaging one or more leaflets of the valve and guiding one or more leaflets to a grasping location;
h. grasping one or more leaflets at the grasping location with the jaws of the grasping device; and
i. securing together free edges of one or more leaflets at the grasping location with at least one connecting member.
2 . The method of claim 1 wherein the guide catheter includes a subselective tubular element with a shaped distal portion configured to extend out of the guide catheter to provide a desired orientation within the patient's heart chamber.
3 . The method of claim 1 wherein the guide catheter has one or more deflecting strands to deflect the distal portion of the guide catheter to a desired orientation.
4 . The method of claim 1 wherein an artificial cordae tendenae strand is provided and a first end of the artificial cordae tendenae strand is secured to at least one free edge of the valve leaflets and a second end of the artificial cordae tendenae strand is secured to a ventricular wall to hold the valve leaflet in a desired position.
5 . The method of claim 3 wherein the artificial cordae tendenae strand is non-compliant.
6 . The method of claim 5 wherein the artificial cordae tendenae strand is formed of a non-compliant material selected from the group consisting of nylon, polyethylene terephthalate and polytetrafluoroethylene.
7 . The method of claim 1 wherein the grasping device has an inner lumen and the valve leaflet stabilizing member is passed through the inner lumen of the grasping device into the patient's heart.
8 . The method of claim 1 wherein the opposed grasping jaws of the grasping device have inner grooves configured to receive a leaflet edge connecting member.
9 . The method of claim 8 wherein the inner grooves of the grasping jaws taper distally to smaller dimensions to facilitate closing a leaflet edge connecting member when the connecting member is distally advanced therein.
10 . A percutaneous system for treating a patient's heart having heart valve regurgitation, comprising:
a. guide catheter having an elongated shaft with a proximal end and a distal end, a discharge port in the distal end, an inner lumen extending therein to and in fluid communication with the discharge port and a shaped distal portion configured to orient the discharge port toward the heart valve to be treated;
b. an elongated grasping device which has a distal end, a pair of jaws on the distal end configured to grasp free ends of valve leaflets and which has a flexible shaft configured to be advanced through the guide catheter until the pair of jaws extend out of the guide catheter;
c. a stabilizing member having an expandable member on a distal portion thereof which is configured to be advanced through the guide catheter until the expandable member extends out of the guide catheter; and
d. a tissue connecting member to connect free edges of valve leaflets.
11 . The minimally invasive system of claim 10 wherein the grasping jaws of the grasping device are configured to grasp the valve leaflets with free edges disposed together to facilitate securing the free edges together with the connecting member.
12 . The minimally invasive system of claim 10 wherein the stabilizing member is configured to engage valve leaflets and hold the leaflets in a grasping location.
13 . The minimally invasive system of claim 12 wherein the stabilizing member comprises a plurality of arms.
14 . The system of claim 10 wherein the tissue connecting member has an artificial cordae tendenae strand secured thereto.
15 . The system of claim 14 wherein the artificial cordae tendenae strand is configured to be taut during systole.
16 . The system of claim 14 wherein the artificial cordae tendenae strand is configured to be flaccid during diastole.
17 . The system of claim 14 wherein the artificial cordae tendenae strand is formed of relatively non-compliant polymeric material.