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Hacisuleyman, E.

Publications and source records attributed to Hacisuleyman, E..

3 recordsLinked to original sources

Local translation couples synaptic activity to mitochondrial adaptation in dendrites

Neurons rely on localized protein synthesis to rapidly adapt synaptic function to activity, yet how dendritic translation regulates mitochondrial remodeling during synaptic plasticity remains poorly understood. Here, we show that neuronal activity engages a spatially restricted translational program that couples local protein synthesis to mitochondrial function through the non-canonical translation initiation factor eIF4G2. Using proximity labeling to profile the dendritic RNA interactome, translatome, and proteome, we identify a cohort of nuclear-encoded mitochondrial mRNAs that are selectively recruited for translation following depolarization and mGluR activation. This program drives activity-dependent increases in mitochondrial membrane potential, mitochondrial abundance, and oxygen consumption. Loss of eIF4G2 abolishes these responses, whereas dendrite-specific, but not soma-restricted, rescue restores mitochondrial remodeling, demonstrating that eIF4G2 functions locally at postsynaptic sites. Mechanistically, eIF4G2 binds the 5 prime or minute untranslated regions of activity-responsive mitochondrial transcripts and promotes translation of both upstream open reading frames (uORFs) and downstream coding sequences. Using a dendritically targeted split-GFP reporter, we further show that neuronal activity induces local uORF translation to generate previously unannotated micropeptides. Together, our findings identify eIF4G2-dependent local translation as a mechanism that establishes mitochondrial competence during synaptic activity by coordinating the production of mitochondrial proteins and uORF-encoded micropeptides.

neuroscience↗

Mutant p53 binds RNA to drive mitochondrial dysfunction

Tumor suppressor protein 53 (p53) is a transcription factor that is deregulated in 50% of cancers. Often termed the guardian of the genome, p53 is responsible for maintenance of genomic stability, cell cycle arrest, DNA repair, senescence, and apoptosis. In cancer cells, deregulation of p53 often occurs through mutations in the DNA binding domain which lead to a loss of the transcriptional activity. While 100s of somatic mutations in the DNA binding domain are known, a small number of mutants are enriched in cancer, suggesting a gain-of-function role. Here we deploy an intein-based approach to localize {micro}Map photoproximity labeling to p53 to define novel interactions contributing to the loss and gain of function roles of 5 separate hotspot mutants. These data revealed that G245S and R273H binds to RNA through its C-terminal domain. We show through CLIP experiments that mutant p53 has an RNA binding motif that conserved across mutants and is enriched in 3UTRs, promoting ribosomal localization and labeling of proteins at the mitochondrial surface. We further demonstrate that the RNA binding ability of mutant p53 promotes altered miRNA processing and mitochondrial dysfunction providing mechanistic rationale for historically reported but poorly understood phenotypes.

molecular biology↗

Aging-dependent dysregulation of EXOSC2 is maintained in cancer as a dependency

Reprogramming of aged donor tissue cells into induced pluripotent stem cells (A-iPSC) preserved the epigenetic memory of aged-donor tissue, defined as genomic instability and poor tissue differentiation in our previous study. The unbalanced expression of RNA exosome subunits affects the RNA degradation complex function and is associated with geriatric diseases including premature aging and cancer progression. We hypothesized that the age-dependent progressive subtle dysregulation of EXOSC2 (exosome component 2) causes the aging traits (abnormal cell cycle and poor tissue differentiation). We used embryonic stem cells as a tool to study EXOSC2 function as the aging trait epigenetic memory determined in A-iPSC because these aging traits could not be studied in senesced aged cells or immortalized cancer cells. We found that the regulatory subunit of PP2A phosphatase, PPP2R5E, is a key target of EXOSC2 and this regulation is preserved in stem cells and cancer.

cell biology↗