Birtasu Alexandra N, Ermel Utz H, Rahm Johanna V, Seybert Anja, Flottmann Benjamin, Heilemann Mike, Grahammer Florian, Frangakis Achilleas S
Buchmann Institute for Molecular Life Sciences and Institute of Biophysics, Goethe University Frankfurt, Max-von-Laue Str. 15, 60438 Frankfurt, Germany.
Institute of Physical and Theoretical Chemistry, Goethe University Frankfurt, Max-von-Laue-Str. 7, 60438 Frankfurt, Germany.
J Struct Biol X. 2024 Oct 21;10:100114. doi: 10.1016/j.yjsbx.2024.100114. eCollection 2024 Dec.
The functioning of vertebrate life relies on renal filtration of surplus fluid and elimination of low-molecular-weight waste products, while keeping serum proteins in the blood. In disease, however, there is leak of serum proteins and tracing them to identify the leaking position within tissue with a nanometer resolution poses a significant challenge. Correlative microscopy integrates the specificity of fluorescent protein labeling into high-resolution electron micrographs. Using chemical tagging of albumin with synthetic fluorophores we achieve protein-specific labeling that preserve their post-embedding fluorescence after high-pressure freezing and freeze-substitution of murine kidney tissue. Using advanced registration techniques for super-resolution correlative light and electron microscopy, we can localize the labeled albumin with a high precision in the x-y plane of electron micrographs and cartograph its distribution. Thereby we can quantify the albumin concentration and measure a linear reduction gradient across the kidney filtration barrier. Our study shows the feasibility of combining different microscopy contrasts for tracing fluorescently labeled protein markers with super resolution in various tissue samples and opens new perspectives for correlative imaging in volume electron microscopy.
脊椎动物的生命活动依赖于肾脏对多余液体的滤过以及低分子量代谢废物的清除,同时将血清蛋白保留在血液中。然而,在疾病状态下,血清蛋白会发生泄漏,要在纳米分辨率下追踪它们以确定组织内的泄漏位置是一项重大挑战。相关显微镜技术将荧光蛋白标记的特异性整合到高分辨率电子显微镜图像中。通过用合成荧光团对白蛋白进行化学标记,我们实现了蛋白质特异性标记,在对小鼠肾脏组织进行高压冷冻和冷冻置换后,这些标记物在包埋后仍能保持荧光。利用先进的超分辨率相关光电子显微镜配准技术,我们可以在电子显微镜的x-y平面上高精度定位标记的白蛋白,并绘制其分布图。由此我们可以量化白蛋白浓度,并测量肾脏滤过屏障上的线性降低梯度。我们的研究表明,在各种组织样本中结合不同显微镜对比度以超分辨率追踪荧光标记蛋白标志物是可行的,并为体积电子显微镜中的相关成像开辟了新的前景。