From genotype to phenotype: decoding mutations in blasts by holo-tomographic flow cytometry

IF 20.6 Q1 OPTICS
Daniele Pirone, Concetta Di Natale, Maria Di Summa, Nicola Mosca, Giusy Giugliano, Michela Schiavo, Daniele Florio, Daniela Marasco, Pier Luca Maffettone, Lisa Miccio, Pasquale Memmolo, Pietro Ferraro
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引用次数: 0

Abstract

Cup-like nuclear morphological alterations in acute myeloid leukemia (AML) blasts have been widely correlated with Nucleophosmin 1 (NPM1) mutations. NPM1-mutated AML has earned recognition as a distinct entity among myeloid tumors, but the absence of a thoroughly established tool for its morphological analysis remains a notable gap. Holographic tomography (HT) can offer a label-free solution for quantitatively assessing the 3D shape of the nucleus based on the volumetric variations of its refractive indices (RIs). However, traditional HT methods analyze adherent cells in a 2D layer, leading to non-isotropic reconstructions due to missing cone artifacts. Here we show for the first time that holo-tomographic flow cytometry (HTFC) achieves quantitative specificity and precise capture of the nucleus volumetric shape in AML cells in suspension. To retrieve nucleus specificity in label-free RI tomograms of flowing AML cells, we conceive and demonstrate in a real-world clinical case a novel strategy for segmenting 3D concave nuclei. This method implies that the correlation between the “phenotype” and “genotype” of nuclei is demonstrated through HTFC by creating a challenging link not yet explored between the aberrant morphological features of AML nuclei and NPM1 mutations. We conduct an ensemble-level statistical characterization of NPM1-wild type and NPM1-mutated blasts to discern their complex morphological and biophysical variances. Our findings suggest that characterizing cup-like nuclei in NPM1-related AML cells by HTFC may enhance the diagnostic approach for these tumors. Furthermore, we integrate virtual reality to provide an immersive fruition of morphological changes in AML cells within a true 3D environment.

Abstract Image

从基因型到表型:用全息层析流式细胞术解码突变
急性髓性白血病(AML)原细胞的杯状核形态改变与核磷蛋白1 (NPM1)突变广泛相关。npm1突变的AML已经被认为是髓系肿瘤中一个独特的实体,但是缺乏一个完全建立的形态学分析工具仍然是一个显著的差距。基于折射率(RIs)的体积变化,全息断层扫描(HT)可以为定量评估核的三维形状提供一种无标记的解决方案。然而,传统的HT方法在二维层中分析贴壁细胞,由于缺少锥体伪影,导致非各向同性重建。在这里,我们首次展示了全息层析流式细胞术(HTFC)实现了悬浮AML细胞核体积形状的定量特异性和精确捕获。为了在流动的AML细胞的无标记RI断层扫描中检索细胞核特异性,我们构思并在现实世界的临床病例中证明了一种分割3D凹核的新策略。该方法表明,细胞核的“表型”和“基因型”之间的相关性通过HTFC被证明,通过在AML细胞核的异常形态特征和NPM1突变之间建立了一个尚未被探索的具有挑战性的联系。我们对npm1野生型和npm1突变型胚进行了整体水平的统计表征,以辨别它们复杂的形态和生物物理差异。我们的研究结果表明,通过HTFC表征npm1相关AML细胞中的杯状核可能增强对这些肿瘤的诊断方法。此外,我们整合了虚拟现实,在真实的3D环境中提供AML细胞形态变化的沉浸式成果。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Light-Science & Applications
Light-Science & Applications 数理科学, 物理学I, 光学, 凝聚态物性 II :电子结构、电学、磁学和光学性质, 无机非金属材料, 无机非金属类光电信息与功能材料, 工程与材料, 信息科学, 光学和光电子学, 光学和光电子材料, 非线性光学与量子光学
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803
审稿时长
2.1 months
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