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Schliebs, W.

Publications and source records attributed to Schliebs, W..

4 recordsLinked to original sources

Peroxisomal ATPase ATAD1 acts in quality control of the protein import machinery

ATAD1 is an AAA-ATPase which shows a dual localization at mitochondria and peroxisomes. While its peroxisomal function is not known, in mitochondria ATAD1 is part of a quality control mechanism extracting mislocalised tail-anchored and accumulated precursor proteins from the outer membrane. Here, we studied the peroxisomal interactome of ATAD1 and could show that human ATAD1 interacts with PEX5, a cytosolic receptor for peroxisomal matrix proteins which transiently inserts into peroxisomal membranes. Upon cargo-release, mono-ubiquitinated PEX5 is recycled into the cytosol by the AAA-peroxins PEX1 and PEX6. The accumulation of ubiquitinated PEX5 is known to trigger degradation of whole organelles called pexophagy. Here, we used ATAD1-, PEX1- and ATAD1/PEX1-CRISPR-Knockout cell lines to investigate the physiological role of an ATAD1-PEX5 interaction. We could show an influence of ATAD1 on the stability of accumulated PEX5 and hypothesize a role in a peroxisomal quality control mechanism enabling clearance of ubiquitinated receptor from the membrane.

biochemistry↗

Determining the targeting specificity of the selective peroxisomal targeting factor Pex9

Targeting proteins to their correct cellular location is a fundamental process that allows them to carry out their cellular functions. Peroxisomes utilize two paralog targeting factors, Pex5 and Pex9, for proteins with a Peroxisomal Targeting Signal 1 (PTS1). However, in spite of their similarity, Pex9 targets only a subset of Pex5 cargo proteins. Here, we studied the properties that facilitate the targeting specificity of Pex9, both by unbiased screens and by site-directed mutagenesis of the PTS1 motifs of either binders or non-binders. We find that the binding specificity of Pex9 is largely determined by the hydrophobic nature of the amino acid preceding the PTS1 tripeptide of its cargos. This is in line with structural modeling of the PTS1-binding cavity of the two factors, showing that while Pex5 has large negative electrostatic patches at the area surrounding the PTS1 binding cavity, Pex9 is mostly hydrophobic. Our work outlines the mechanism by which targeting specificity is achieved, enabling dynamic rewiring of the peroxisomal proteome in changing metabolic needs.

cell biology↗

Diffusion and interaction dynamics of the cytosolic peroxisomal import receptor PEX5

Measuring diffusion dynamics in living cells is essential for the understanding of molecular interactions. While various techniques have been used to explore such characteristics in the plasma membrane, this is less developed for measurements inside the cytosol. An example of cytosolic action is the import of proteins into peroxisomes, via the peroxisomal import receptor PEX5. Here, we combined advanced microscopy and spectroscopy techniques such as fluorescence correlation spectroscopy (FCS) and super-resolution STED microscopy to present a detailed characterization of the diffusion and interaction dynamics of PEX5. Among other features, we disclose a slow diffusion of PEX5, independent of aggregation or target binding, but associated with cytosolic interaction partners via its N-terminal domain. This sheds new light on the functionality of the receptor in the cytosol. Besides specific insights, our study highlights the potential of using complementary microscopy tools to decipher molecular interactions in the cytosol via studying their diffusion dynamics. SummaryThe peroxisomal import receptor PEX5 transports newly synthesized proteins from the cytosol to the peroxisomal matrix. Here the cytosolic diffusion and interaction dynamics of PEX5 are characterized by advanced microscopic spectroscopy methods, revealing a so far unknown interaction partner.

biophysics↗

Competitive Microtubule Binding of PEX14 Coordinates Peroxisomal Protein Import and Motility

PEX14 functions as peroxisomal docking protein for the import receptor PEX5. For docking, the conserved N-terminal domain of PEX14 (PEX14-NTD) binds amphipathic alpha-helical ligands, typically comprising one or two aromatic residues, of which human PEX5 possesses eight. Here, we show that the PEX14-NTD also binds to microtubular filaments in vitro with a dissociation constant in nanomolar range. PEX14 interacts with two motifs in the C-terminal region of human {beta}-tubulin. At least one of the binding motifs is in spatial proximity to the binding site of microtubules (MT) for kinesin. Both PEX14 and kinesin can bind to MT simultaneously. Notably, binding of PEX14 to tubulin can be prevented by its association with PEX5. The data suggest that PEX5 competes peroxisome anchoring to MT by occupying the {beta}-tubulin-binding site of PEX14. The competitive correlation of matrix protein import and motility may facilitate the homogeneous dispersion of peroxisomes in mammalian cells.

biochemistry↗