Search bioRxiv⌕ Search

Biology subjects

Corey, R.

Publications and source records attributed to Corey, R..

2 recordsLinked to original sources

Alternative Import-Channels And Destinations Of Mitochondrial PINK1 Controlled By Trans-Membrane-Domain Structural Plasticity

Entry of the PINK1-kinase into the mitochondrial inner-membrane results in cleavage by the rhomboid-protease PARL, followed by retro-translocation back to the outer-membrane and proteasomal-degradation. Failure of this process, in compromised mitochondria, leads to kinase activation at the surface, and ultimately mitophagy. Analysis of PINK1-import within intact cells reveals an alternative pathway into the matrix. Structural modelling predicts that PINK1s trans-membrane-domain (TMD) forms either an -helix or /{beta}-hybrid at the interface between Tim17, of the TIM23-core-complex, and, respectively, either Romo1 or PARL. These mutually exclusive interactions both encapsulate a hydrated protein-channel. The -helical-TMD form adopts a pose suggestive of translocation through the Romo1/Tim17-channel, while the /{beta}-hybrid-TMD is retracted into PARLs active-site for cleavage, presumably after import through the adjacent rhomboid/Tim17-channel. We propose structural plasticity of the PINK1-TMD underlies alternative destinies for full-length matrix-import or cleavage/retro-translocation. The results reveal new insights of PINK1s role in mitochondrial function, quality-control and early-onset Parkinsons disease.

biochemistry↗

LptM promotes oxidative maturation of the lipopolysaccharide translocon by substrate binding mimicry.

Insertion of lipopolysaccharide (LPS) into the outer membrane (OM) of Gram-negative bacteria is mediated by a druggable OM translocon consisting of a {beta}-barrel membrane protein, LptD, and a lipoprotein, LptE. The {beta}-barrel assembly machinery (BAM) assembles LptD together with LptE to form a plug-and-barrel structure. In the enterobacterium Escherichia coli, formation of two native disulfide bonds in LptD controls LPS translocon activation. Here we report the discovery of LptM (formerly YifL), a conserved lipoprotein that assembles together with LptD and LptE at the BAM complex. We demonstrate that LptM stabilizes a conformation of LptD that can efficiently acquire native disulfide bonds and be released as mature LPS translocon by the BAM complex. Inactivation of LptM causes the accumulation of non-natively oxidized LptD, making disulfide bond isomerization by DsbC become essential for viability. Our structural prediction and biochemical analyses indicate that LptM binds to sites in both LptD and LptE that are proposed to coordinate LPS insertion into the OM. These results suggest that LptM facilitates oxidative maturation of LptD by mimicking LPS binding, thereby activating the LPS translocon.

microbiology↗