Suppr超能文献

用于量化海洋颗粒大小和浓度的全息显微镜评估。

Assessment of holographic microscopy for quantifying marine particle size and concentration.

作者信息

Walcutt Noah L, Knörlein Benjamin, Cetinić Ivona, Ljubesic Zrinka, Bosak Suncica, Sgouros Tom, Montalbano Amanda L, Neeley Aimee, Menden-Deuer Susanne, Omand Melissa M

机构信息

University of Rhode Island, Graduate School of Oceanography Narragansett Rhode Island USA.

Brown University, Center for Computation and Visualization Providence Rhode Island USA.

出版信息

Limnol Oceanogr Methods. 2020 Sep;18(9):516-530. doi: 10.1002/lom3.10379. Epub 2020 Aug 5.

Abstract

Holographic microscopy has emerged as a tool for in situ imaging of microscopic organisms and other particles in the marine environment: appealing because of the relatively larger sampling volume and simpler optical configuration compared to other imaging systems. However, its quantitative capabilities have so far remained uncertain, in part because hologram reconstruction and image recognition have required manual operation. Here, we assess the quantitative skill of our automated hologram processing pipeline (CCV Pipeline), to evaluate the size and concentration measurements of environmental and cultured assemblages of marine plankton particles, and microspheres. Over 1 million particles, ranging from 10 to 200 m in equivalent spherical diameter, imaged by the 4-Deep HoloSea digital inline holographic microscope (DIHM) are analyzed. These measurements were collected in parallel with a FlowCam (FC), Imaging FlowCytobot (IFCB), and manual microscope identification. Once corrections for particle location and nonuniform illumination were developed and applied, the DIHM showed an underestimate in ESD of about 3% to 10%, but successfully reproduced the size spectral slope from environmental samples, and the size distribution of cultures (, , and ) and microspheres. DIHM concentrations (order 1 to 1000 particles ml) showed a linear agreement ( = 0.73) with the other instruments, but individual comparisons at times had large uncertainty. Overall, we found the DIHM and the CCV Pipeline required extensive manual correction, but once corrected, provided concentration and size estimates comparable to the other imaging systems assessed in this study. Holographic cameras are mechanically simple, autonomous, can operate at very high pressures, and provide a larger sampling volume than comparable lens-based tools. Thus, we anticipate that these characterization efforts will be rewarded with novel discovery in new oceanic environments.

摘要

全息显微镜已成为一种用于对海洋环境中的微生物和其他颗粒进行原位成像的工具

由于与其他成像系统相比,其采样体积相对较大且光学配置更简单,因而颇具吸引力。然而,其定量能力至今仍不明确,部分原因是全息图重建和图像识别需要人工操作。在此,我们评估了我们的自动全息图处理流程(CCV流程)的定量技能,以评估海洋浮游生物颗粒、微球的环境样本和培养样本的大小及浓度测量结果。我们分析了由4-Deep HoloSea数字同轴全息显微镜(DIHM)成像的超过100万个等效球形直径在10至200微米之间的颗粒。这些测量结果是与FlowCam(FC)、成像流式细胞仪(IFCB)以及手动显微镜识别并行收集的。一旦针对颗粒位置和非均匀照明的校正方法得以开发并应用,DIHM显示出等效球形直径低估了约3%至10%,但成功再现了环境样本的大小谱斜率以及培养物(、和)和微球的大小分布。DIHM浓度(每毫升1至1000个颗粒)与其他仪器呈现出线性一致性(= 0.73),但个别比较有时存在较大不确定性。总体而言,我们发现DIHM和CCV流程需要大量人工校正,但校正后可提供与本研究中评估的其他成像系统相当的浓度和大小估计值。全息相机机械结构简单、可自主运行、能在极高压力下工作,并且比类似的基于透镜的工具提供更大的采样体积。因此,我们预计这些表征工作将在新的海洋环境中带来新的发现。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/28b0/7540046/e0f34d8024ba/LOM3-18-516-g001.jpg

文献检索

告别复杂PubMed语法,用中文像聊天一样搜索,搜遍4000万医学文献。AI智能推荐,让科研检索更轻松。

立即免费搜索

文件翻译

保留排版,准确专业,支持PDF/Word/PPT等文件格式,支持 12+语言互译。

免费翻译文档

深度研究

AI帮你快速写综述,25分钟生成高质量综述,智能提取关键信息,辅助科研写作。

立即免费体验