Anatomical reconstructions of the human cardiac venous system using contrast-computed tomography of perfusion-fixed specimens
- PMID: 23629052
- PMCID: PMC3665293
- DOI: 10.3791/50258
Anatomical reconstructions of the human cardiac venous system using contrast-computed tomography of perfusion-fixed specimens
Abstract
A detailed understanding of the complexity and relative variability within the human cardiac venous system is crucial for the development of cardiac devices that require access to these vessels. For example, cardiac venous anatomy is known to be one of the key limitations for the proper delivery of cardiac resynchronization therapy (CRT)(1) Therefore, the development of a database of anatomical parameters for human cardiac venous systems can aid in the design of CRT delivery devices to overcome such a limitation. In this research project, the anatomical parameters were obtained from 3D reconstructions of the venous system using contrast-computed tomography (CT) imaging and modeling software (Materialise, Leuven, Belgium). The following parameters were assessed for each vein: arc length, tortuousity, branching angle, distance to the coronary sinus ostium, and vessel diameter. CRT is a potential treatment for patients with electromechanical dyssynchrony. Approximately 10-20% of heart failure patients may benefit from CRT(2). Electromechanical dyssynchrony implies that parts of the myocardium activate and contract earlier or later than the normal conduction pathway of the heart. In CRT, dyssynchronous areas of the myocardium are treated with electrical stimulation. CRT pacing typically involves pacing leads that stimulate the right atrium (RA), right ventricle (RV), and left ventricle (LV) to produce more resynchronized rhythms. The LV lead is typically implanted within a cardiac vein, with the aim to overlay it within the site of latest myocardial activation. We believe that the models obtained and the analyses thereof will promote the anatomical education for patients, students, clinicians, and medical device designers. The methodologies employed here can also be utilized to study other anatomical features of our human heart specimens, such as the coronary arteries. To further encourage the educational value of this research, we have shared the venous models on our free access website: www.vhlab.umn.edu/atlas.
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References
-
- Burkhardt JD, Wilkoff BL. Interventional electrophysiology and cardiac resynchronization therapy: delivering electrical therapies for heart failure. Circ. 2007;115:2208–2220. - PubMed
-
- Lu F. Cardiac resynchronization therapy. In: Iaizzo P, editor. Handbook of cardiac physiology and anatomy. 2nd ed. New York, N.Y: Springer Science; 2009. pp. 475–497.
-
- Eggen MD, Swingen CM, Iaizzo PA. Ex vivo diffusion tensor MRI of human hearts: relative effects of specimen decomposition. Magn. Reson. Med. 2012;67:1703–1709. - PubMed
-
- Manzke R, Binner L, Bornstedt A, Merkle N, Lutz A, Gradinger R, Rasche V. Assessment of the coronary venous system in heart failure patients by blood pool agent enhanced whole-heart MRI. Eur. Radiol. 2010;21:799–806. - PubMed
-
- Abbara S, Cury RC, Nieman K, Reddy V, Moselewski F, Schmidt S, Ferencik M, Hoffman U, Brady TJ, Achenbach S. Noninvasive evaluation of cardiac veins with 16-MDCT angiography. AJR. Am. J. Roentgenol. 2005;185:1001–1006. - PubMed
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