1] Optical Bioimaging Lab, Department of Bioengineering, National University of Singapore, 7 Engineering Drive 1, Singapore 117576 [2].
1] NUS Graduate School for Integrative Sciences and Engineering, National University of Singapore, 28 Medical Drive, Singapore 117456 [2].
Sci Rep. 2014 May 15;4:4979. doi: 10.1038/srep04979.
Optical coherence tomography (OCT) is a widely used structural imaging method. However, it has limited use in molecular imaging due to the lack of an effective contrast mechanism. Gold nanoparticles have been widely used as molecular probes for optical microcopy based on Surface Plasmon Resonance (SPR). Unfortunately, the SPR enhanced backscattering from nanoparticles is still relatively weak compared with the background signal from microscopic structures in biological tissues when imaged with OCT. Consequently, it is extremely challenging to perform OCT imaging of conventional nanoparticles in thick tissues with sensitivity comparable to that of fluorescence imaging. We have discovered and demonstrated a novel approach towards remarkable contrast enhancement, which is achieved by the use of a circular-polarization optical coherence microscopy system and 3-dimensional chiral nanostructures as contrast agents. By detecting the circular intensity differential depolarization (CIDD), we successfully acquired high quality images of single chiral nanoparticles underneath a 1-mm-thick tissue -mimicking phantom.
光学相干断层扫描(OCT)是一种广泛使用的结构成像方法。然而,由于缺乏有效的对比机制,它在分子成像中的应用有限。金纳米粒子已被广泛用作基于表面等离子体共振(SPR)的光学显微镜的分子探针。不幸的是,与生物组织中微观结构的背景信号相比,OCT 成像时纳米粒子的 SPR 增强背散射仍然相对较弱。因此,用传统纳米粒子在厚组织中进行与荧光成像相当的灵敏度的 OCT 成像极具挑战性。我们已经发现并证明了一种新的显著对比度增强方法,该方法使用圆偏振光相干显微镜系统和 3D 手性纳米结构作为对比剂。通过检测圆强度差分去偏振(CIDD),我们成功地在 1mm 厚的组织模拟体下方获取了单个手性纳米粒子的高质量图像。