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Single-frame 3D fluorescence microscopy with ultraminiature lensless FlatScope

机译:具有超小型无透镜FlatScope的单帧3D荧光显微镜

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摘要

Modern biology increasingly relies on fluorescence microscopy, which is driving demand for smaller, lighter, and cheaper microscopes. However, traditional microscope architectures suffer from a fundamental trade-off: As lenses become smaller, they must either collect less light or image a smaller field of view. To break this fundamental trade-off between device size and performance, we present a new concept for three-dimensional (3D) fluorescence imaging that replaces lenses with an optimized amplitude mask placed a few hundred micrometers above the sensor and an efficient algorithm that can convert a single frame of captured sensor data into high-resolution 3D images. The result is FlatScope: perhaps the world’s tiniest and lightest microscope. FlatScope is a lensless microscope that is scarcely larger than an image sensor (roughly 0.2 g in weight and less than 1 mm thick) and yet able to produce micrometer-resolution, high–frame rate, 3D fluorescence movies covering a total volume of several cubic millimeters. The ability of FlatScope to reconstruct full 3D images from a single frame of captured sensor data allows us to image 3D volumes roughly 40,000 times faster than a laser scanning confocal microscope while providing comparable resolution. We envision that this new flat fluorescence microscopy paradigm will lead to implantable endoscopes that minimize tissue damage, arrays of imagers that cover large areas, and bendable, flexible microscopes that conform to complex topographies.
机译:现代生物学越来越依赖荧光显微镜,这推动了对更小,更轻和更便宜的显微镜的需求。但是,传统的显微镜架构需要进行基本的权衡取舍:随着镜头变小,它们必须收集更少的光或成像更小的视野。为了打破设备尺寸和性能之间的基本权衡,我们提出了三维(3D)荧光成像的新概念,该传感器用位于传感器上方几百微米的优化振幅掩模和可转换的高效算法代替了透镜将捕获的传感器数据的单个帧转换为高分辨率3D图像。结果就是FlatScope:也许是世界上最小,最轻的显微镜。 FlatScope是一款无透镜显微镜,几乎不比图像传感器大(重量约0.2 g,厚度小于1 mm),并且能够产生微米级分辨率,高帧率的3D荧光胶片,其总体积为几立方米毫米。 FlatScope从捕获的传感器数据的单个帧中重建完整3D图像的能力使我们能够对3D体积成像比激光扫描共聚焦显微镜快约40,000倍,同时提供可比的分辨率。我们设想,这种新的平面荧光显微镜范式将导致可植入的内窥镜,该内窥镜最大程度地减少组织损伤,覆盖大面积图像的阵列以及符合复杂形貌的可弯曲,灵活的显微镜。

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