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Showing posts with label Heart. Show all posts
Showing posts with label Heart. Show all posts

Monday, July 11, 2011

High-resolution imaging technology reveals cellular details of coronary arteries


Researchers at the Wellman Center for Photomedicine at Massachusetts General Hospital (MGH) have developed a one-micrometer-resolution version of the intravascular imaging technology optical coherence tomography (OCT) that can reveal cellular and subcellular features of coronary artery disease. In a Nature Medicine paper receiving advance online publication, the investigators describe how microOCT – which provides 10 times greater resolution than standard OCT – was able to show individual arterial and inflammatory cells, including features that may identify vulnerable plaques, within coronary artery samples.
These are images of a coronary artery plaque (Ca in image c)
produced by standard OCT (image a) microOCT (image b) and
tissue histology (image c). Credit: Nature Medicine / Wellman
Center for Photomedicine at Massachusetts General Hospital

"MicroOCT has the contrast and resolution required to investigate the cellular and subcellular components underlying coronary atherosclerosis, the disease that precipitates heart attack," says Gary Tearney, MD, PhD, of the Wellman Center and the MGH Pathology Department, who led the study. "This high level of performance opens up the future possibility of observing these microscopic features in human patients, which has implications for improving the understanding, diagnosis and therapeutic monitoring of coronary artery disease."

A catheter-based technology, OCT uses reflected near-infrared light to create detailed images of the internal surfaces of blood vessels. Although the technology is already being used to identify arterial plaques that are likely to rupture, standard OCT can clearly image only structures larger than 10 micrometers (millionths of a meter). Using new types of lenses and advanced imaging components, microOCT is able to image structures as small as one micrometer, revealing in intact tissue the detailed information provided by the prepared tissue slides of traditional pathology much faster and in three dimensions.



The researchers describe how using microOCT to study human and animal coronary artery tissue revealed detailed images of:

  • endothelial cells that line coronary arteries,
  • inflammatory cells that contribute to the formation of coronary plaques,
  • smooth muscle cells that produce collagen in response to inflammation,
  •  fibrin proteins and platelets that are involved in the formation of clots

MicroOCT also produced detailed images of stents placed within coronary arteries, clearly distinguishing bare-metal stents from those covered with a drug-releasing polymer and revealing defects in the polymer coating.

"When we are able to implement microOCT in humans – probably in three to five years – the 10 times greater resolution will allow us to observe cells in the coronary arteries of living patients," says Tearney, a professor of Pathology at Harvard Medical School. "The ability to track and follow cells in three dimensions could help us prove or disprove many theories about coronary artery disease and better understand how clots form on a microscopic level. Improved definitions of high-risk plaques will lead to greater accuracy in identifying those that may go on to rupture and block the coronary artery, and the ability to monitor healing around implanted devices like stents could reduce the number of patients who must be on anticlotting medications, which are expensive and have side effects."

Provided by Massachusetts General Hospital

Wednesday, June 15, 2011

A pulse no longer necessary for life



While most people connect a pulse and a heartbeat to life, Dr. Billy Cohn and Dr. Bud Frazier from the Texas Heart Institute have found a way to keep the blood circulating and extend the life of patients while taking away their pulse.
This X-ray image shows the dual turbinelike 
blood pumps that replaced patient's heart. 
Image: Texas Heart Institute

Researchers have spent years trying to perfect an artificial heart that does not break down, wear out, or cause blood clots and infections. However, Cohn and Frazier have developed an artificial heart, of sorts, that seems to do the trick. The only catch is it isn’t a heart. There is no heartbeat. There is no pulse. If a patient had one of their new hearts, the patient would appear dead. Attaching an EKG would return a flat-line.

The new device uses technology that has been used to aid failing hearts since the 1980s. A ventricular assist device, or VAD, is a circulatory device designed to assist either the right or left ventricle of the heart. The VADs have a rotor of blades that circulate and push the blood forward in a continuous flow.

While VADs are typically used to help one section of the heart, Cohn and Frazier hooked two of these VADs together so they would essentially work as both sides of the heart. They began working on calves and currently have an 8-month-old calf named Abigail who has no heart. Her heart was removed and in its place the doctors inserted their new pump device. Abigail is a healthy and active young calf, however, according to any medical cardiac tests, she would appear dead.

Cohn and Frazier, after testing on 38 calves, wanted to take this new pump one step further and test it on a human patient. This is where Craig Lewis, a 55-year-old man who was dying from amyloidosis comes in. His heart had become so damaged from the disease that doctors had only given him about 12 hours to live. Lewis and his wife agreed to let the doctors try the new artificial heart pump to try and extend his life, if even for a short time. The doctors inserted the new pumps and Lewis did recover and had another month of life before the disease took other organs. His new heart however worked flawlessly.

Cohn and Frazier still have much work to do before the new heart will be available. A final design must be determined, a manufacturer must be found and they must apply for FDA approval. Results show amazing promise and may be the new future in artificial hearts.