Scanning Acoustic Microscopy and Time-Resolved Fluorescence Spectroscopy for Characterization of Atherosclerotic Plaques
Atherosclerotic plaques constitute the primary cause of heart attack and stroke. However, we still lack a clear identification of the plaques. Here, we evaluate the feasibility of scanning acoustic microscopy (SAM) and time-resolved fluorescence spectroscopy (TRFS) in atherosclerotic plaque characte...
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Published in | Scientific reports Vol. 8; no. 1; pp. 14378 - 11 |
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Main Authors | , , , , , |
Format | Journal Article |
Language | English |
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Nature Publishing Group UK
26.09.2018
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Abstract | Atherosclerotic plaques constitute the primary cause of heart attack and stroke. However, we still lack a clear identification of the plaques. Here, we evaluate the feasibility of scanning acoustic microscopy (SAM) and time-resolved fluorescence spectroscopy (TRFS) in atherosclerotic plaque characterization. We perform dual-modality microscopic imaging of the human carotid atherosclerotic plaques. We first show that the acoustic impedance values are statistically higher in calcified regions compared with the collagen-rich areas. We then use CdTe/CdS quantum dots for imaging the atherosclerotic plaques by TRFS and show that fluorescence lifetime values of the quantum dots in collagen-rich areas are notably different from the ones in calcified areas. In summary, both modalities are successful in differentiating the calcified regions from the collagen-rich areas within the plaques indicating that these techniques are confirmatory and may be combined to characterize atherosclerotic plaques in the future. |
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AbstractList | Atherosclerotic plaques constitute the primary cause of heart attack and stroke. However, we still lack a clear identification of the plaques. Here, we evaluate the feasibility of scanning acoustic microscopy (SAM) and time-resolved fluorescence spectroscopy (TRFS) in atherosclerotic plaque characterization. We perform dual-modality microscopic imaging of the human carotid atherosclerotic plaques. We first show that the acoustic impedance values are statistically higher in calcified regions compared with the collagen-rich areas. We then use CdTe/CdS quantum dots for imaging the atherosclerotic plaques by TRFS and show that fluorescence lifetime values of the quantum dots in collagen-rich areas are notably different from the ones in calcified areas. In summary, both modalities are successful in differentiating the calcified regions from the collagen-rich areas within the plaques indicating that these techniques are confirmatory and may be combined to characterize atherosclerotic plaques in the future. Abstract Atherosclerotic plaques constitute the primary cause of heart attack and stroke. However, we still lack a clear identification of the plaques. Here, we evaluate the feasibility of scanning acoustic microscopy (SAM) and time-resolved fluorescence spectroscopy (TRFS) in atherosclerotic plaque characterization. We perform dual-modality microscopic imaging of the human carotid atherosclerotic plaques. We first show that the acoustic impedance values are statistically higher in calcified regions compared with the collagen-rich areas. We then use CdTe/CdS quantum dots for imaging the atherosclerotic plaques by TRFS and show that fluorescence lifetime values of the quantum dots in collagen-rich areas are notably different from the ones in calcified areas. In summary, both modalities are successful in differentiating the calcified regions from the collagen-rich areas within the plaques indicating that these techniques are confirmatory and may be combined to characterize atherosclerotic plaques in the future. |
ArticleNumber | 14378 |
Author | Kafa, Ulku Unlu, Mehmet Burcin Bilen, Bukem Gokbulut, Belkis Heves, Emre Inci, Mehmet Naci |
Author_xml | – sequence: 1 givenname: Bukem surname: Bilen fullname: Bilen, Bukem email: bukem.bilen1@boun.edu.tr organization: Bogazici University, Physics Department – sequence: 2 givenname: Belkis surname: Gokbulut fullname: Gokbulut, Belkis organization: Bogazici University, Physics Department – sequence: 3 givenname: Ulku surname: Kafa fullname: Kafa, Ulku organization: Mehmet Akif Ersoy Thoracic and Cardiovascular Surgery Training Research Hospital – sequence: 4 givenname: Emre surname: Heves fullname: Heves, Emre organization: Quantag Nanotechnologies – sequence: 5 givenname: Mehmet Naci surname: Inci fullname: Inci, Mehmet Naci organization: Bogazici University, Physics Department – sequence: 6 givenname: Mehmet Burcin surname: Unlu fullname: Unlu, Mehmet Burcin organization: Bogazici University, Physics Department, Global Station for Quantum Medical Science and Engineering, Global Institution for Collaborative Research and Education (GI-CoRE), Hokkaido University, Department of Radiation Oncology, Stanford University School of Medicine |
BackLink | https://www.ncbi.nlm.nih.gov/pubmed/30258115$$D View this record in MEDLINE/PubMed |
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Keywords | Scanning Acoustic Microscopy (SAM) Quantum Dots Collagen-rich Regions Time-resolved Fluorescence Spectroscopy (TRFS) Acoustic Impedance Values |
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Snippet | Atherosclerotic plaques constitute the primary cause of heart attack and stroke. However, we still lack a clear identification of the plaques. Here, we... Abstract Atherosclerotic plaques constitute the primary cause of heart attack and stroke. However, we still lack a clear identification of the plaques. Here,... |
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SubjectTerms | 639/766/747 692/53/2421 Acoustics Arteriosclerosis Atherosclerosis Calcification Centenarians Collagen Fluorescence Fluorescence spectroscopy Humanities and Social Sciences Microscopy multidisciplinary Myocardial infarction Plaques Quantum dots Scanning Science Science (multidisciplinary) Spectroscopy Spectrum analysis |
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Title | Scanning Acoustic Microscopy and Time-Resolved Fluorescence Spectroscopy for Characterization of Atherosclerotic Plaques |
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