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Biology subjects

Lu, T.-W.

Publications and source records attributed to Lu, T.-W..

2 recordsLinked to original sources

IRE1 drives a homeostatic response to reduced protein influx into the endoplasmic reticulum

IRE1, alongside ATF6 and PERK, orchestrates the Unfolded Protein Response, a network of signaling pathways that maintains endoplasmic reticulum (ER) homeostasis. Two modes of IRE1 activation are known: i) in response to an accumulation of unfolded proteins in the ER lumen and ii) in response to compositional changes to the ER membrane that alter its physical properties. Here we identify a third, independent mode of IRE1 activation: ER co-translational translocation deficits activate IRE1 through a mechanism that relies on the release of IRE1 molecules from unoccupied translocons. We define this mechanism as TRES for "TRanslocon Engagement Surveillance". TRES leads to spontaneous activation of IRE1 and bypasses its unfolded protein- and ER membrane composition-sensing functions. Inhibiting translation initiation similarly activates IRE1 by TRES, as it leads to a decline in ER protein import, thus linking the Integrated Stress Response to IRE1 signaling. TRES drives IRE1 activation without activating ATF6 or PERK, resulting in a distinct gene expression program that feeds back by boosting the co-translational translocation machinery to rebalance the ER protein load. Our findings thus demonstrate that monitoring and adjusting the rates of protein translocation are critical for maintaining ER homeostasis.

cell biology↗

Structures of the PKA RIα holoenzyme with the FLHCC driver J-PKAcα or wild type PKAcα

Fibrolamellar hepatocellular carcinoma (FLHCC) is driven by J-PKAc, a kinase fusion chimera of the J-domain of DnaJB1 with PKAc, the catalytic subunit of Protein Kinase A (PKA). Here we report the crystal structures of the chimeric fusion RI2:J-PKAc2 holoenzyme formed by J-PKAc and the PKA regulatory (R) subunit RI, and the wild type (wt) RI2:PKAc2 holoenzyme. The chimeric and wt RI holoenzymes have quaternary structures different from the previously solved wt RI{beta} and RII{beta} holoenzymes. The chimeric holoenzyme shows an isoform-specific interface dominated by antiparallel interactions between the N3A-N3A motifs of RI that serves as an anchor for RI structural rearrangements during cAMP activation. The wt RI holoenzyme showed the same configuration as well as a distinct second conformation. In the structure of the chimeric fusion RI2:J-PKAc2 holoenzyme, the presence of the J-domain does not prevent formation of the holoenzymes, and is positioned away from the symmetrical interface between the two RI:J-PKAc heterodimers in the holoenzyme. The J-domains have significantly higher temperature factors than the rest of the holoenzyme, implying a large degree of conformational flexibility. Furthermore molecular dynamics simulations were applied to analyze the conformational states of chimeric fusion and wt RI holoenzymes, and showed an ensemble of conformations in the majority of which the J-domain was dynamic and rotated away from the R:J-PKAc interface. Thus, rather than affecting the interactions with the regulatory subunits, the fusion of the J-domain to the PKAc alters the conformational landscape of the chimeric fusion holoenzymes and potentially, as result, the interactions with other molecules. The structural and dynamic features of these holoenzymes enhance our understanding of the fusion chimera protein J-PKAc that drives FLHCC as well as the isoform specificity of PKA.

biochemistry↗