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Correlative Super-resolution Optical and Electron Microscopic Imaging of Intracellular Ribosomal RNA by a Terpyridine Iridium(III) Complex. | LitMetric

Correlative Super-resolution Optical and Electron Microscopic Imaging of Intracellular Ribosomal RNA by a Terpyridine Iridium(III) Complex.

ACS Sens

Functional and Molecular Imaging Key Laboratory of Sichuan Province, Department of Radiology, Huaxi MR Research Centre (HMRRC), West China Hospital of Sichuan University, Chengdu 610000, P. R. China.

Published: June 2024

AI Article Synopsis

  • Ribosomal RNA (rRNA) is crucial for linking amino acids together, determining protein structure, but there is a lack of effective tools for visualizing it in live cells.
  • Researchers developed terpyridine ammonium iridium(III) complexes that can selectively label rRNA in live cells, allowing for super-resolution imaging of rRNA on the rough endoplasmic reticulum at approximately 40 nm resolution.
  • This new tool not only visualizes rRNA dynamics in living cells but also enhances protein synthesis, advancing our understanding of rRNA's role in biological processes.

Article Abstract

Ribosomal RNA (rRNA) plays a vital role in binding amino acids together, which dictates the primary structure of a protein. Visualization of its intracellular distribution and dynamics during protein synthesis enables a better understanding of the correlated biological essence. However, appropriate tools targeting live cell rRNA that are capable of multimodal imaging at the nanoscale are still lacking. Here, we rationally designed a series of terpyridine ammonium iridium(III) complexes, one of which is capable of selectively labeling rRNA in living cells. Its metal core and photostable nature allow further super-resolution STED imaging of rRNA found on the rough endoplasmic reticulum at a ∼40 nm resolution that is well correlated under correlative light and electron microscopy (CLEM). Interestingly, the Ir(III) complex demonstrated rRNA dynamics in living cells while boosting protein synthesis at the nanoscale. Our work offers a versatile tool to visualize rRNA synchronously under optical and electron microscopy, which provides a better understanding of rRNA evolution in living systems.

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Source
http://dx.doi.org/10.1021/acssensors.4c00232DOI Listing

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