Mitochondrial RNA granules are fluid condensates positioned by membrane dynamics.

Nat Cell Biol

Laboratory of Experimental Biophysics, École Polytechnique Fédérale de Lausanne (EPFL), Lausanne, Switzerland.

Published: October 2020

AI Article Synopsis

  • Mitochondria have their own genetic information and machinery to produce key proteins for energy production, and they contain structures known as mitochondrial RNA granules (MRGs) that play a role in gene expression.
  • Research using advanced microscopy techniques showed that MRGs have a compact structure made of RNA surrounded by proteins and can quickly exchange components or fuse together like fluid droplets.
  • The study found that MRGs are associated with the inner mitochondrial membrane and their fusion is linked to changes in the mitochondria's shape, while problems with mitochondrial fission or fusion can lead to the abnormal clustering of MRGs.

Article Abstract

Mitochondria contain the genetic information and expression machinery to produce essential respiratory chain proteins. Within the mitochondrial matrix, newly synthesized RNA, RNA processing proteins and mitoribosome assembly factors form punctate sub-compartments referred to as mitochondrial RNA granules (MRGs). Despite their proposed importance in regulating gene expression, the structural and dynamic properties of MRGs remain largely unknown. We investigated the internal architecture of MRGs using fluorescence super-resolution localization microscopy and correlative electron microscopy, and found that the MRG ultrastructure consists of compacted RNA embedded within a protein cloud. Using live-cell super-resolution structured illumination microscopy and fluorescence recovery after photobleaching, we reveal that MRGs rapidly exchange components and can undergo fusion, characteristic properties of fluid condensates. Furthermore, MRGs associate with the inner mitochondrial membrane and their fusion coincides with mitochondrial remodelling. Inhibition of mitochondrial fission or fusion leads to an aberrant accumulation of MRGs into concentrated pockets, where they remain as distinct individual units despite their close apposition. Together, our findings reveal that MRGs are nanoscale fluid compartments, which are dispersed along mitochondria via membrane dynamics.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC7610405PMC
http://dx.doi.org/10.1038/s41556-020-00584-8DOI Listing

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