Have your competent? doctor lay out a path to stroke recovery with all this chip based research.
Do you
prefer your doctor, hospital and board of director's incompetence NOT
KNOWING? OR NOT DOING? Your choice; let them be incompetent or demand
action!
Researchers have pioneered a way to create miniaturized copies of a person's carotid artery that could help doctors predict and manage the patient's stroke risk, a new study suggests.
In the research, published in July in the journal Cell Biomaterials, scientists used these "arteries-on-a-chip" to monitor how real blood flows through a patient's carotid arteries, which carry blood to the brain, face and neck. This could enable doctors to identify not just how and what type of clots form in that specific patient, but also determine which medications would be most effective in dealing with the blockage.
While the technique is currently a proof-of-concept, someday, it could help medical practitioners to better tailor treatments for each patient.
"When the inner lining of an artery is damaged, material underneath the cells, including collagen, becomes exposed to the blood," Zhao said. A bloodborne protein called von Willebrand factor (VWF) grabs hold of platelets from the flowing blood. Those platelets then stick together and recruit more platelets, building a clot, he said.
But forming a clot is only half the story; it's what this mass does next that determines the risk to the patient.
In some cases, the growing ball of clotted blood will stay firmly rooted to the artery wall, slightly impeding blood flow but not posing any immediate danger. However, if tiny fragments break off this static clot, they can travel toward the brain, where they risk blocking smaller vessels and thus causing a stroke.
"Clinically, we are very good at imaging how narrow an artery is," Zhao said, "but narrowing alone does not tell us exactly how a clot will behave."
This is where artery-on-a-chip models come in, he said. Rather than relying purely on medical scans, the team's model recreates the exact shape and structure of an individual patient's blood vessels using 3D printing. To create the models, they first use a patient’s existing CT scans to 3D print a plastic replica of their carotid artery, including any narrowing caused by atherosclerosis. Next, the inside of this plastic structure is coated with collagen, and then cells that line the carotid artery get layered on top. Blood is passed through the replica artery, mimicking the speed and pressure of blood flow in the body.
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