Shemonski Nathan D, South Fredrick A, Liu Yuan-Zhi, Adie Steven G, Carney P Scott, Boppart Stephen A
Beckman Institute for Advanced Science and Technology, University of Illinois at Urbana-Champaign, 405 North Mathews Avenue, Urbana, Illinois 61801, USA; Department of Electrical and Computer Engineering, University of Illinois at Urbana-Champaign, 306 N. Wright Street, Urbana, Illinois 61801, USA.
Department of Biomedical Engineering, Cornell University, Ithaca, New York 14853, USA.
Nat Photonics. 2015;9:440-443. doi: 10.1038/NPHOTON.2015.102.
High-resolution imaging is of great importance for the fields of biology and medicine. The introduction of hardware-based adaptive optics (HAO) has pushed the limits of optical imaging, enabling high-resolution near diffraction-limited imaging of previously unresolvable structures. In ophthalmology, when combined with optical coherence tomography, HAO has enabled a detailed three-dimensional visualization of photoreceptor distributions and individual nerve fibre bundles in the living human retina. However, the introduction of HAO hardware and supporting software adds considerable complexity and cost to an imaging system, limiting the number of researchers and medical professionals who could benefit from the technology. Here we demonstrate a fully automated computational approach that enables high-resolution ophthalmic imaging without the need for HAO. The results demonstrate that computational methods in coherent microscopy are applicable in highly dynamic living systems.
高分辨率成像对于生物学和医学领域极为重要。基于硬件的自适应光学(HAO)的引入突破了光学成像的极限,实现了对以前无法分辨的结构进行高分辨率的近衍射极限成像。在眼科领域,当与光学相干断层扫描相结合时,HAO能够对活体人类视网膜中的光感受器分布和单个神经纤维束进行详细的三维可视化。然而,HAO硬件和支持软件的引入给成像系统增加了相当大的复杂性和成本,限制了能够从该技术中受益的研究人员和医学专业人员的数量。在此,我们展示了一种无需HAO即可实现高分辨率眼科成像的全自动计算方法。结果表明,相干显微镜中的计算方法适用于高度动态的活体系统。