Visualization of cristae and mtDNA interactions via STED nanoscopy using a low saturation power probe.

IF 19.4 1区 物理与天体物理 Q1 Physics and Astronomy Light, science & applications Pub Date : 2024-05-24 DOI:10.1038/s41377-024-01463-9
Wei Ren, Xichuan Ge, Meiqi Li, Jing Sun, Shiyi Li, Shu Gao, Chunyan Shan, Baoxiang Gao, Peng Xi
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Abstract

Mitochondria are crucial organelles closely associated with cellular metabolism and function. Mitochondrial DNA (mtDNA) encodes a variety of transcripts and proteins essential for cellular function. However, the interaction between the inner membrane (IM) and mtDNA remains elusive due to the limitations in spatiotemporal resolution offered by conventional microscopy and the absence of suitable in vivo probes specifically targeting the IM. Here, we have developed a novel fluorescence probe called HBmito Crimson, characterized by exceptional photostability, fluorogenicity within lipid membranes, and low saturation power. We successfully achieved over 500 frames of low-power stimulated emission depletion microscopy (STED) imaging to visualize the IM dynamics, with a spatial resolution of 40 nm. By utilizing dual-color imaging of the IM and mtDNA, it has been uncovered that mtDNA tends to habitat at mitochondrial tips or branch points, exhibiting an overall spatially uniform distribution. Notably, the dynamics of mitochondria are intricately associated with the positioning of mtDNA, and fusion consistently occurs in close proximity to mtDNA to minimize pressure during cristae remodeling. In healthy cells, >66% of the mitochondria are Class III (i.e., mitochondria >5 μm or with >12 cristae), while it dropped to <18% in ferroptosis. Mitochondrial dynamics, orchestrated by cristae remodeling, foster the even distribution of mtDNA. Conversely, in conditions of apoptosis and ferroptosis where the cristae structure is compromised, mtDNA distribution becomes irregular. These findings, achieved with unprecedented spatiotemporal resolution, reveal the intricate interplay between cristae and mtDNA and provide insights into the driving forces behind mtDNA distribution.

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使用低饱和功率探针,通过 STED 纳米透镜观察嵴和 mtDNA 的相互作用。
线粒体是与细胞新陈代谢和功能密切相关的重要细胞器。线粒体 DNA(mtDNA)编码多种对细胞功能至关重要的转录本和蛋白质。然而,由于传统显微镜在时空分辨率上的局限性,以及缺乏专门针对线粒体内膜的合适体内探针,线粒体内膜(IM)和 mtDNA 之间的相互作用仍然难以捉摸。在这里,我们开发了一种名为 HBmito Crimson 的新型荧光探针,它具有优异的光稳定性、脂膜内的荧光性和低饱和功率。我们成功实现了超过 500 帧的低功率受激发射耗尽显微镜(STED)成像,以 40 纳米的空间分辨率观察到了 IM 的动态变化。通过对 IM 和 mtDNA 进行双色成像,发现 mtDNA 往往栖息在线粒体顶端或分支点,呈现整体空间均匀分布。值得注意的是,线粒体的动态与 mtDNA 的定位密切相关,融合始终发生在靠近 mtDNA 的地方,以尽量减少嵴重塑过程中的压力。在健康细胞中,大于 66% 的线粒体为 III 类(即线粒体大于 5 μm 或嵴大于 12 个),而健康细胞中的线粒体则下降至
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来源期刊
CiteScore
27.00
自引率
2.60%
发文量
331
审稿时长
20 weeks
期刊介绍: Light: Science & Applications is an open-access, fully peer-reviewed publication.It publishes high-quality optics and photonics research globally, covering fundamental research and important issues in engineering and applied sciences related to optics and photonics.
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