US2006155164A1PendingUtilityA1

Ex vivo remodeling of excised blood vessels for vascular grafts

Assignee: UNIV PENNSYLVANIAPriority: Jun 8, 2001Filed: Nov 14, 2005Published: Jul 13, 2006
Est. expiryJun 8, 2021(expired)· nominal 20-yr term from priority
C12N 5/0691Y10S623/916A61L 27/3625A61L 27/3691A61L 27/3695A61F 2/062
48
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Claims

Abstract

The present invention provides an ex vivo vascular remodeling methods and system by which an excised, small diameter blood vessel can be harvested and expanded to provide viable vascular grafts, as demonstrated at the physical and molecular levels, and as optimized in vivo. The tissue-engineered vessels generated by the present invention closely resemble native vessels in terms of structure, histologically, including endothelial coverage and intricate structural components such as the internal elastic lamina, viability (as measured with the MTT assay and TUNEL analysis), and function (vasoactivity, mechanical and biomechanical properties). Thus, the resulting vascular grafts behave in a manner similar to native arteries in terms of mechanical integrity, and provide clinically relevant patency rates when implanted in vivo. Moreover, the ex vivo methods and system permit the precise control of the mechanical environment involving the excised vessel, while at the same time permitting carefully monitoring of the resulting growth/remodeling, thereby opening new avenues of research regarding the mechanical stimuli responsible for specific aspects of remodeling in vivo.

Claims

exact text as granted — not AI-modified
1 . A method of physically remodeling a small blood vessel, while maintaining the viability of the vessel, comprising the steps of: 
 excising the blood vessel from its native site, and    subjecting the excised vessel to a controlled, ex vivo mechanical environment for a time sufficient to remodel the vessel by increasing the diameter, length, or wall thickness of the vessel, or any combination thereof.    
     
     
         2 . The method of  claim 1 , wherein the excised vessel is a small artery or a vein.  
     
     
         3 . The method of  claim 1 , further comprising applying pressure, shear, and strain to the vessel under controlled conditions within the mechanical environment, wherein transmural pressure drop regulates wall thickness, longitudinal tension regulates length, and flow-induced shear stress regulates inner diameter of the remodeled vessel.  
     
     
         4 . The method of  claim 3 , wherein the mechanical environment is controlled by an ex vivo perfusion system.  
     
     
         5 . The method of  claim 1 , further comprising using the remodeled vessel as an arterial graft in vivo.  
     
     
         6 . The method of  claim 1 , wherein length of the remodeled vessel is increased at least 100% over its native length when excised, and wherein more than 50% of the increased length is retained after recoil when the remodeled vessel is removed from the controlled mechanical environment.  
     
     
         7 . A method of physically remodeling a small blood vessel to be used in vivo as a vessel graft in a patient in need of such a graft, comprising the steps of: 
 excising the blood vessel from its native site; and    subjecting the excised vessel to a controlled, ex vivo mechanical environment for a time sufficient to increase diameter, length, or wall thickness of the vessel, or any combination thereof;    removing the remodeled vessel from the ex vivo mechanical environment; and    surgically inserting the remodeled vessel in vivo as a vessel graft (artery or vein) into the patient.    
     
     
         8 . The method of  claim 7 , wherein the excised vessel is a small artery or a vein.  
     
     
         9 . The method of  claim 7 , wherein the excised vessel is autologous to the patient.  
     
     
         10 . The method of  claim 7 , further comprising applying pressure, shear, and strain to the vessel under controlled conditions within the mechanical environment, wherein transmural pressure drop regulates wall thickness, longitudinal tension regulates length, and flow-induced shear stress regulates inner diameter of the remodeled vessel.  
     
     
         11 . The method of  claim 7 , wherein the mechanical environment is controlled by an ex vivo perfusion system.  
     
     
         12 . The method of  claim 7 , wherein length of the remodeled vessel is increased at least 100% over its native length when excised, and wherein more than 50% of the increased length is retained after recoil when the remodeled vessel is removed from the controlled mechanical environment.  
     
     
         13 . An ex vivo perfusion system for exposing a viable, excised blood vessel to precisely controlled flow and pressure regimes, wherein the system comprises: 
 a pump means, which when activated, continuously pushes fluid through the system;    a housing means, comprising a medium-filled chamber, within which chamber the excised vessel is housed, and the excised vessel is cannulated with two sliding tubes, wherein when activated, the chamber housing the vessel is perfused with cell culture medium supplemented with serum and antibiotics, and wherein temperature, pH, pO 2 , pCO 2 , and nutrients are maintained at levels sufficient to maintain the viability of the vessel;    a reservoir within which the culture medium is pooled, having a gas exchange port, which permits gas exchange within the medium;    a controller means to control pressure within the chamber housing the excised blood vessel;    an in-line probe means to measure and report pressure within the system;    a data measurement means attached to the in-line probe means for digitizing the measured pressure data; and    a computer node attached to the data measurement means to record, analyze and store the digital data.    
     
     
         14 . The ex vivo perfusion system of  claim 13 , wherein the system further comprises: 
 as the pump means, a pulsatile blood pump, which when activated, continuously pushes fluid through the system;    as the housing means, an enclosed Plexiglas cylinder, which forms the housing comprising a medium-filled chamber, cannulated on each end, within which chamber the excised vessel is cannulated with two sliding stainless-steel tubes, wherein the chamber housing the vessel is perfused with cell culture medium supplemented with serum and antibiotics, and wherein temperature, pH, pO 2 , pCO 2 , and nutrients are maintained at levels sufficient to maintain the viability of the vessel;    a reservoir within which the culture medium is pooled, having a gas exchange port, which permits gas exchange within the medium, before the medium is returned to the pump for circulation within the system;    as a controller, a needle valve controller at either end of the chamber to control pressure within the chamber housing the excised blood vessel;    as an in-line probe, at least one in-line probe to measure pressure within the system at a rate of approximately 250 times per second, wherein the data is reported in analog;    as a data measurement means, a data measurement module attached to the in-line probe(s) for digitizing the analog pressure.    
     
     
         15 . The system of  claim 13 , wherein the excised vessel is a small artery or a vein.  
     
     
         16 . The system of  claim 13 , comprising a single excised blood vessel.  
     
     
         17 . The system of  claim 13 , comprising multiple excised blood vessels run in parallel, each vessel contained within its own housing, corresponding chambers and needle valves.  
     
     
         18 . The system of  claim 13 , wherein ports on the Plexiglas cylinder allow the exchange of medium and nutrients, fluid overflow and air/CO 2  discharge.  
     
     
         19 . The system of  claim 13 , wherein improved control of the mechanical environment provides localized intravascular and extravascular pressure measurement and control, which provides real time monitoring of vessel remodeling.  
     
     
         20 . The system of  claim 14 , wherein the two sliding stainless-steel tubes slide independently of the rest of the unit to control vessel strain.

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