Key result
Valved aortic allografts in rats provide a useful model for investigating aortic wall calcification, which was nearly completely inhibited by diphosphonates, ferric chloride, or aluminum chloride.
Valved aortic allografts in rats provide a useful model for investigating aortic wall calcification and its inhibition, but not valve cusp calcification.
Rat model may aid preclinical testing of calcification inhibitors; leaves open translation to human valve cusps.
Experiments were carried out to investigate rat aortic allograft calcification using valved abdominal aortic allografts. Results indicated that this was a potentially useful model for investigating fresh allograft calcification, as well as mineralization of glutaraldehyde-crosslinked valved allografts. Valve cusp results, however, were not comparable to those noted in large animal or human studies, while aortic wall calcification was more comparable. Calcification inhibitor investigations demonstrated that nearly complete inhibition of the calcification of the aortic wall of glutaraldehyde-crosslinked allografts was achieved using a number of individual inhibitors, including controlled release diphosphonates, and pretreatment with either ferric chloride or aluminum chloride. However, aminopropanehydroxydiphosphonate pretreatment was not efficacious, and sodium dodecyl sulfate pretreatment was only partially effective for inhibiting the aortic wall calcification in the glutaraldehyde-crosslinked allografts. It is concluded that valved aortic allografts in rats provide a useful model for investigating aortic wall (but not valve cusp) calcification and its inhibition.
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Levy et al. (1995) studied Aortic allograft calcification. Calcification inhibitors (diphosphonates, ferric chloride, aluminum chloride) was evaluated on Aortic wall and valve cusp calcification. Valved aortic allografts in rats provide a useful model for investigating aortic wall calcification, which was nearly completely inhibited by diphosphonates, ferric chloride, or aluminum chloride.
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