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  • 2017년 09월호
    [Med Phys. ] Contrast-enhanced ultrasound imaging in vivo with laser-activated nanodroplets.

    Georgia Institute of Technology/ 윤희철, Stanislav Y. Emelianov*

  • 출처
    Med Phys.
  • 등재일
    2017 Jul
  • 저널이슈번호
    44(7):3444-3449. doi: 10.1002/mp.12269. Epub 2017 May 16.
  • 내용

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    Abstract

    PURPOSE: 

    This study introduces a real-time contrast-enhanced ultrasound imaging method with recently developed laser-activated nanodroplets (LANDs), a new class of phase-change nanometer-scale contrast agents that provides perceptible, sustained high-contrast with ultrasound.

     

    METHODS: 

    In response to pulsed laser irradiation, the LANDs-, which contain liquid perfluorohexane and optical fuses-blink (vaporize and recondense). That is, they change their state from liquid nanodroplets to gas microbubbles, and then back to liquid nanodroplets. In their gaseous microbubble state, the LANDs provide high-contrast ultrasound, but the microbubbles formed in situ typically recondense in tens of milliseconds. As a result, LAND visualization by standard, real-time ultrasound is limited. However, the periodic optical triggering of LANDs allows us to observe corresponding transient, periodic changes in ultrasound contrast. This study formulates a probability function that measures how ultrasound temporal signals vary in periodicity. Then, the estimated probability is mapped onto a B-scan image to construct a LAND-localized, contrast-enhanced image. We verified our method through phantom and in vivo experiments using an ultrasound system (Vevo 2100, FUJIFILM VisualSonics, Inc., Toronto, ON, Canada) operating with a 40-MHz linear array and interfaced with a 10 Hz Nd:YAG laser (Phocus, Opotek Inc., Carlsbad, CA, USA) operating at the fundamental 1064 nm wavelength.

     

    RESULTS: 

    From the phantom study, the results showed improvements in the contrast-to-noise ratio of our approach over conventional ultrasound ranging from 129% to 267%, with corresponding execution times of 0.10 to 0.29 s, meaning that the developed method is computationally efficient while yielding high-contrast ultrasound. Furthermore, in vivo sentinel lymph node (SLN) imaging results demonstrated that our technique could accurately identify the SLN.

     

    CONCLUSIONS: 

    The results indicate that our approach enables efficient and robust LAND localization in real time with substantially improved contrast, which is essential for the successful translation of this contrast agent platform to clinical settings.​ 

     

    Author information

    Yoon H1, Yarmoska SK2, Hannah AS2,3, Yoon C4, Hallam KA2, Emelianov SY1,2.

    1School of Electrical and Computer Engineering, Georgia Institute of Technology, Atlanta, Georgia, 30332, USA.2The Wallace H. Coulter Department of Biomedical Engineering, Georgia Institute of Technology and Emory University School of Medicine, Atlanta, Georgia, 30332, USA.3Applied Physics Laboratory, Center for Industrial and Medical Ultrasound, University of Washington, Seattle, Washington, 98105, USA.4Department of Biomedical Engineering, Inje University, Gimhae, Gyeongnam, 621-749, Korea. 

  • 키워드
    contrast-enhanced ultrasound; laser-activated nanodroplets; microbubbles; perfluorocarbon nanodroplets; phase-change contrast agents; sentinel lymph node
  • 편집위원

    LANDs 자체가 흥미로운 주제이며 skah 사이즈의 contrast agents를 활용한 CSR 증대 효과가 매우 커서 추후 US 영상 분석에 많은 임상적 도움을 줄 것으로 사료됩니다.

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