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Maya-Romero, A.

Publications and source records attributed to Maya-Romero, A..

3 recordsLinked to original sources

Djp1 is a multifunctional Hsp40 cochaperone for mitochondrial phospholipid metabolism

Mitochondria are cellular energy hubs best known for ATP production via oxidative phosphorylation; however, they also serve as biosynthetic centers for phospholipids. Mitochondrial phospholipids are critical for various cellular processes, and their loss underlies myriad mitochondrial diseases. The critical enzymes underlying these biosynthetic cascades are encoded in the nucleus, translated in the cytosol, and imported into mitochondria. Understanding of mechanisms and factors that ensure precise targeting of proteins to mitochondria has been long overlooked but remains critical. Recently, the J-protein/Hsp40 cochaperone Djp1 has emerged as a key player in mitochondrial protein targeting by promoting the transfer of precursors from the endoplasmic reticulum (ER) surface to mitochondria in a pathway termed ER-SURF. Molecular details regarding how Djp1 recognizes clients and more broadly supports mitochondrial function remain unknown. Using biochemical approaches, proteomics, and thin layer chromatography, we demonstrate that Djp1 is a regulator of Phosphatidylserine decarboxylase 1 (Psd1), an inner mitochondrial membrane resident responsible for mitochondrial phosphatidylethanolamine (PE) production. This regulation of Psd1 biogenesis is dependent on its mitochondrial targeting signal and is specific to Djp1 compared to other members of the Hsp40 family or ER targeting factors. Intriguingly, the combined loss of Djp1 and Psd1 results in a synthetic sick phenotype that unexpectedly reflects a role(s) for Djp1 in proper mitochondrial phospholipid metabolism independent of Psd1. Taken together, these findings expand our understanding of Djp1-dependent mitochondrial protein regulation and unveil Djp1 as important for mitochondrial phospholipid metabolism by multiple mechanisms.

cell biology↗

Autophagosomes coordinate an AKAP11-dependent regulatory checkpoint that shapes neuronal PKA signaling

Protein Kinase A (PKA) is regulated spatially and temporally via scaffolding of its catalytic (C/{beta}) and regulatory (RI/RII) subunits by the A-kinase-anchoring proteins (AKAP). PKA engages in poorly understood interactions with autophagy, a key degradation pathway for neuronal cell homeostasis, partly via its AKAP11 scaffold. Mutations in AKAP11 drive schizophrenia and bipolar disorders (SZ-BP) through unknown mechanisms. Through proteomic-based analysis of immunopurified lysosomes, we identify the C-RI-AKAP11 holocomplex as a prominent autophagy-associated protein kinase complex. AKAP11 scaffolds C-RI to the autophagic machinery via its LC3-interacting region (LIR), enabling both PKA regulation by upstream signals, and its autophagy-dependent degradation. We identify Ser83 on the RI linker-hinge region as an AKAP11-dependent phospho-residue that modulates RI-C binding and cAMP-induced PKA activation. Decoupling AKAP11-PKA from autophagy alters Ser83 phosphorylation, supporting an autophagy-dependent checkpoint for PKA signaling. Ablating AKAP11 in induced pluripotent stem cell-derived neurons reveals dysregulation of multiple pathways for neuronal homeostasis. Thus, the autophagosome is a novel platform that modulate PKA signaling, providing a possible mechanistic link to SZ/BP pathophysiology.

cell biology↗

Tau fibrils induce nanoscale membrane damage and nucleate cytosolic tau at lysosomes

The prion-like spread of protein aggregates is a leading hypothesis for the propagation of neurofibrillary lesions in the brain, including the spread of tau inclusions associated with Alzheimers disease. The mechanisms of cellular uptake of tau seeds and subsequent nucleated polymerization of cytosolic tau are major questions in the field, and the potential for coupling between the entry and nucleation mechanisms has been little explored. We found that in primary astrocytes, endocytosis of tau seeds leads to their accumulation in lysosomes. This in turn leads to lysosomal swelling, deacidification and recruitment of ESCRT proteins, but not Galectin-3, to the lysosomal membrane. These observations are consistent with nanoscale damage of the lysosomal membrane. Using live cell and STORM, imaging, nucleation of cytosolic tau occurs primarily at the lysosome membrane under these conditions. These data suggest that tau seeds escape from lysosomes via nanoscale damage rather than wholesale rupture, and that nucleation of cytosolic tau commences as soon as tau fibril ends emerge from the lysosomal membrane.

cell biology↗