Demissie Aida A, VanderLaan Donald, Islam Md S, Emelianov Stanislav, Dickson Robert M
School of Chemistry & Biochemistry, Georgia Institute of Technology, Atlanta, GA 30332, USA.
School of Electrical & Computer Engineering, Georgia Institute of Technology, Atlanta, GA 30332, USA.
Photoacoustics. 2020 Jul 1;20:100198. doi: 10.1016/j.pacs.2020.100198. eCollection 2020 Dec.
In molecular and cellular photoacoustic imaging with exogenous contrast agents, image contrast is plagued by background resulting from endogenous absorbers in tissue. By using optically modulatable nanoparticles, we develop ultra-sensitive photoacoustic imaging by rejecting endogenous background signals and drastically improving signal contrast through time-delayed pump-probe pulsed laser illumination. Gated by prior pump excitation, modulatable photoacoustic (mPA) signals are recovered from unmodulatable background through simple, real-time image processing to yield background-free photoacoustic signal recovery within tissue mimicking phantoms and from ex-vivo tissues. Inherently multimodal, the fluorescence and mPA sensitivity improvements demonstrate the promise of Synchronously Amplified Photoacoustic Image Recovery (SAPhIRe) for PA imaging in diagnosis and therapy.
在外源性造影剂的分子与细胞光声成像中,组织内源性吸收体产生的背景会影响图像对比度。通过使用光学可调制纳米颗粒,我们开发了一种超灵敏光声成像方法,通过抑制内源性背景信号,并利用延时泵浦 - 探测脉冲激光照明大幅提高信号对比度。在先前泵浦激发的门控下,通过简单的实时图像处理,从未调制的背景中恢复可调制光声(mPA)信号,从而在仿组织体模和离体组织中实现无背景光声信号恢复。具有内在的多模态特性,荧光和mPA灵敏度的提高证明了同步放大光声图像恢复(SAPhIRe)在诊断和治疗中的光声成像前景。