bioRxiv Science⌕ Search

Biology subjects

Stehlik, T.

Publications and source records attributed to Stehlik, T..

2 recordsLinked to original sources

Selective accumulation of matrix proteins inside of peroxisomal subdomains

Formation of specialized reaction spaces prevents interference between distinct cellular pathways. Peroxisomes are cellular compartments involved in a large diversity of metabolic processes. How peroxisomes differentiate into subpopulations and by which mechanism intraorganellar domains are formed remains largely elusive. Here, we report on enzymes from the fungus Ustilago maydis, which accumulate inside of peroxisomal subdomains. We describe a short peptide motif (Thr-Ile-Ile-Val) sufficient to trigger focal localization. Mining for proteins with similar motifs uncovered several peroxisomal matrix proteins that accumulate in intraorganellar foci. These foci are enriched in the enzyme urate oxidase - a typical constituent of the paracrystalline core of peroxisomes. Upon peroxisome proliferation uneven distribution of focal structures results in the formation of peroxisome subpopulations with different protein content. The underlying principle of subdomain formation is evolutionary conserved in mammalian peroxisomes and formation of similar foci was also observed inside of mitochondria. We propose that peroxisomal proteins show an individual propensity to self-assemble. This formation of protein aggregates appears to be a ubiquitous driving force to spatially organize the peroxisomal proteome.

cell biology↗

Dually targeted proteins regulate proximity between peroxisomes and partner organelles

Peroxisomes play a central role in fatty acid metabolism. To correctly target to peroxisomes, proteins require specialized targeting signals. One mystery in the field is sorting of proteins that carry both a targeting signal for peroxisomes as well as for other organelles such as mitochondria or the endoplasmic reticulum (ER). Exploring several of these dually localized proteins in Saccharomyces cerevisiae, we observed that they can act as dynamic tethers bridging organelles together through an affinity for organelle-destined targeting factors. We show that this mode of tethering involves the peroxisome import machinery, the ER- mitochondria encounter structure (ERMES) in the case of mitochondria and the GET complex in the case of the ER. Depletion of each of the targeting factors resulted in the accumulation of smaller peroxisomes. We propose that dual targeting of proteins occurs at contact sites and that protein import per se contributes to the maintenance of these membrane proximities. This introduces a previously unexplored concept of how targeting of dual affinity proteins can support organelle attachment, growth and communication.

cell biology↗