(*contributed equally to this work) 发布: 2025年03月20日第15卷第6期 DOI: 10.21769/BioProtoc.5247 浏览次数: 2466
评审: Shun Yu Jasemine YangAnonymous reviewer(s)
Abstract
Dual-modal imaging, combining photoacoustic (PA) and ultrasound localization (UL) with microbubbles, holds substantial promise across biomedical fields such as oncology, neuroscience, nephrology, and immunology. The combination of PA and UL imaging faces challenges due to acquisition speed mismatches, limiting their combined efficacy. Here, we introduce a protocol that applies sparsity constraint optimization to accelerate dual-modal data acquisition, enabling in vivo super-resolution imaging of vascular and physiological structures at under two seconds per frame. The protocol provides detailed guidelines for constructing an interleaved PA/UL (PAUL) imaging system, covering material selection, system setup, and calibration, as well as methods for image acquisition, reconstruction, post-processing, and troubleshooting. This approach empowers the biomedical community to establish a rapid, dual-modal PAUL imaging platform, broadening biomedical applications and advancing imaging capabilities in clinical research.
Key features
• Introducing high-temporal-resolution dual-modal imaging that integrates PA and UL techniques, enabling super-resolution vascular and physiological imaging in less than two seconds per frame.
• Providing step-by-step guidelines for constructing an interleaved PAUL imaging system, including material selection, system calibration, image acquisition, reconstruction, and troubleshooting methods.
• Demonstrating super-resolved imaging of renal hemodynamics and oxygenation with PAUL imaging, enhancing the study of kidney physiology and disease mechanisms.
Keywords: Photoacoustic imaging (光声成像)Background
Ultrasound localization (UL) or super-resolution ultrasound imaging surpasses the acoustic diffraction limit of traditional ultrasounds, enhancing spatial resolution by up to ten times while retaining the ability to probe deep tissues [1,2]. This technique works by localizing microbubbles flowing through the bloodstream and compiling these positions to create a super-resolved map of the microvasculature. Furthermore, tracking microbubble positions provides detailed hemodynamic information. In contrast, photoacoustic (PA) imaging utilizes the photoacoustic effect to produce high-contrast blood vessel images and can also deliver insights into blood oxygenation, tissue components like lipids and collagen, and disease-related biomarkers [3–7].
By integrating both modalities, PA and UL (PAUL) imaging offer a powerful tool that provides anatomical, structural, functional, and even molecular information, making it an ideal candidate for comprehensive assessments in disease and cancer research [8–11], such as kidney disease [12,13], ischemic stroke [10], and breast cancer [8–11,14,15]. For instance, PAUL imaging has been used for simultaneous renal oxygenation and hemodynamics sensing [8], both of which are known to be associated with acute kidney injury (AKI) and could potentially be applied to AKI studies. Additionally, both modalities operate within the same ultrasound system, allowing interleaved dual-contrast scans for enhanced spatial and temporal alignment of complementary datasets.
While this combination holds significant promise, a major limitation is the difference in data acquisition speeds: UL imaging requires over a minute to capture enough microbubble events for reconstruction, whereas PA imaging operates at a much higher rate of 10–100 Hz. To address this challenge, we developed a computationally accelerated UL approach and integrated it with PA imaging, resulting in a faster PAUL imaging system [8].
This protocol specifically supports the development and optimization of fast PAUL imaging, expanding its use in cancer, neuroscience, nephrology, and immunology research. By improving imaging speed and dual-modality integration, our protocol aims to promote the broader adoption and impact of PAUL imaging across diverse clinical research fields.
Materials and reagents
1. Female BALB/cJ mice (8–10 weeks) (Jackson Laboratory)
2. Ultrasound gel (Medvat, catalog number: MED-USG-LAV-5L-A)
3. Hair removal body cream (Nair, catalog number: 022600291093)
4. Plastic membrane (Kirkland Signature Plastic Food Wrap, catalog number: B081THWMDK)
5. Deionized water
6. Isoflurane (Fluriso VETONE, catalog number: 501017)
7. Microbubbles (Vevo MicroMarker, FUJIFILM VisualSonics, Inc)
8. Phosphate-buffered saline (PBS) (Corning, catalog number: MT21040CV)
9. 1 mL syringe (BD, catalog number: 309628)
10. Sterile swab (Dukal, catalog number: CTA-9016)
11. Eye lubricant (Systane lubricant eye drops) (Alcon, catalog number: 0065143307)
Equipment
1. Verasonics ultrasound system (Verasonics, model: Vantage 256)
2. Linear array ultrasound transducer (FUJIFILM VisualSonics, model: MS200 or custom transducer from Vermon, Tours, France)
3. Optical parametric oscillator (OPO) laser source (Opotek, model: Phocus Essential)
4. Optical bifurcated fiber bundle (Nanjing Chunhui Technology, customized)
5. Function generator (Siglent Technologies, model: SDG1032X)
6. Robotic arm (Meca 500, Mecademic, model: Meca 500)
7. Animal anesthesia system (RWD Life Science, model: R500)
8. Laser goggles (Thorlabs)
9. Laser power meter (Ophir Optronics, model: PE25C)
10. 3D Printer (Ultimaker B.V., model: Ultimaker S3)
12. Surgical clipper (WAHL, model: BRAVMINI)
13. Labeling tape
Software and datasets
1. MATLAB2022b (MATLAB, 9/20/2022, https://www.mathworks.com/products/new_products/release2022b.html)
2. Vantage 4.5.4-2108261500 (Verasonics, 08/21/2021, https://verasonics.com)
3. OPOTEC Control Software v1.3.17 (OPOTEC, 05/22/2019, https://www.opotek.com)
4. StarLab 2.40 (Ophir Optronics, https://www.ophiropt.com)
Procedure
文章信息
稿件历史记录
提交日期: Nov 14, 2024
接收日期: Feb 7, 2025
在线发布日期: Mar 6, 2025
出版日期: Mar 20, 2025
版权信息
© 2025 The Author(s); This is an open access article under the CC BY-NC license (https://creativecommons.org/licenses/by-nc/4.0/).
如何引用
Zhao, S., Paul, S., Yi, J. and Chen, Y. S. (2025). Dual-Modal Fast Photoacoustic/Ultrasound Localization Imaging with Sparsity-Constrained Optimization. Bio-protocol 15(6): e5247. DOI: 10.21769/BioProtoc.5247.
分类
生物工程 > 生物医学工程
生物物理学 > 显微技术
生物科学
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