Department of Radiology, Translational Research in Ultrasound Theranostics (TRUST) Program, University of Texas Southwestern Medical Center, Dallas, Texas 75390, United States.
Biochemistry Graduate Program, University of Texas Southwestern Medical Center, Dallas, Texas 75390, United States.
ACS Appl Mater Interfaces. 2020 Nov 25;12(47):52298-52306. doi: 10.1021/acsami.0c12043. Epub 2020 Nov 10.
Microbubbles (MBs) are optimal ultrasound contrast agents because their unique acoustic response allows for exquisite sensitivity . This unique response is derived from MBs' elasticity that allows them to oscillate differently from surrounding tissues. While the main use of MBs in the clinic is for cardiac and perfusion imaging, imparting MBs with bioresponsive properties would expand their use to detect pathophysiologic changes. This can be achieved by damping MBs' oscillations to silence their signal and rescuing it when they encounter the biomarker of interest to improve detection and specificity of diseases such as deep vein thrombosis (DVT). Here, we demonstrate that conjugating perfluorobutane-filled MBs with hyaluronic acid (HA) and cross-linking HA with biodegradable linkers eliminates harmonic signal because of increased MB stiffness and decreased oscillation. In this proof-of-concept study, we used a reversible pH-sensitive cross-linker to establish and validate this targeted and activatable pH-sensitive MB (pH-MB) platform. Conjugation of HA to MBs and targeting of pH-MBs to CD44-positive cells were validated. Harmonic signal loss due to stiffening of pH-MBs' shell was confirmed using a clinical ultrasound scanner equipped with Cadence contrast pulse sequencing. pH-MBs imaged before and after acidification increased harmonic signal fivefold. Because the cleavage of the cross-linker we used is reversible, harmonic signal was silenced again when the acidic suspension was neutralized, confirming that harmonic signal is dependent on the cross-linked HA. The rate of rise and the magnitude of harmonic signal increase could be manipulated by varying the phospholipid composition and the number of HA cross-linkers, indicating that the platform can be tuned to the desired response needed. In this study, we established the feasibility of using targeted and activatable MBs and plan to apply this platform to aid in the diagnosis and management of patients with DVT and potentially other conditions.
微泡(MBs)是最佳的超声对比剂,因为它们独特的声学响应可以实现极高的灵敏度。这种独特的响应源于 MBs 的弹性,使它们能够以不同于周围组织的方式振荡。虽然 MBs 在临床上的主要用途是用于心脏和灌注成像,但赋予 MBs 生物响应特性将扩大其应用范围,以检测病理生理变化。这可以通过阻尼 MBs 的振荡来沉默其信号,并在遇到感兴趣的生物标志物时恢复信号,从而提高对深静脉血栓形成(DVT)等疾病的检测和特异性。在这里,我们证明,通过将全氟丁烷填充的 MBs 与透明质酸(HA)缀合并用可生物降解的连接子交联 HA,可以消除由于 MBs 刚性增加和振荡减少而导致的谐波信号。在这项概念验证研究中,我们使用可逆 pH 敏感交联剂来建立和验证这种靶向和可激活的 pH 敏感 MB(pH-MB)平台。验证了 HA 与 MBs 的缀合以及 pH-MB 对 CD44 阳性细胞的靶向作用。使用配备 Cadence 对比脉冲序列的临床超声扫描仪确认了由于 pH-MB 壳变硬而导致的谐波信号丢失。酸化前后 pH-MB 的成像增加了五倍的谐波信号。由于我们使用的交联剂的裂解是可逆的,因此当酸性悬浮液被中和时,再次沉默了谐波信号,这证实了谐波信号取决于交联的 HA。通过改变磷脂组成和 HA 交联剂的数量,可以操纵谐波信号的上升速率和幅度增加,表明可以根据所需的响应来调整平台。在这项研究中,我们确立了使用靶向和可激活的 MBs 的可行性,并计划将该平台应用于辅助 DVT 患者和可能的其他病症的诊断和管理。