Search bioRxiv⌕ Search

Biology subjects

Atzmon, A.

Publications and source records attributed to Atzmon, A..

2 recordsLinked to original sources

Repurposed hnRNPC binds mature mRNAs and safeguards the mitotic transcriptome

Upon entry to mitosis, RNA metabolism is broadly suppressed. While mechanistic understanding is limited, the mitotic transcriptome is known to be generally preserved to allow the daughter cells an economical and efficient start. We used highly effective cell cycle synchronization to specifically characterize mitotic hnRNPC, an abundant nuclear RNA-binding protein known for intron binding and splicing regulation during interphase. Two density-distinct hnRNPC-RNP populations (low-and high-density; LD and HD) were identified in mitotic cells. RNA-seq analysis combined with fluorescent Cross Linking and Immuno-Precipitation (fCLIP) revealed hnRNPC binding to 17.1% and 8.7% of expressed genes in LD- and HD-complexes, respectively, with most sites mapping to protein-coding genes (77% and 68%, respectively). Mediated by its known cooperative interaction with U-rich motifs, mitotic hnRNPC acquired prevalent interactions with exons, predominantly within the 3 untranslated region of mature mRNAs. Mitotic hnRNPC also retained intron interactions, predominantly in LD-hnRNPC RNPs, which comigrated with both the spliceosome and mono-ribosomes through a density gradient. Interestingly, LD-hnRNPC also interacted with mature mRNAs characterized by short coding sequences, in agreement with mono-ribosome loading. Conversely, HD-hnRNPC, which co-migrated with poly-ribosomes, predominantly interacted with mature mRNA complexes. Downregulation of hnRNPC elicited a global negative effect on the abundance of its mitotic targets. The data points to the global role of mitotic hnRNPC as a stabilizer of pre-mRNA and mRNA. Future studies should provide additional insights related to its multifunctional roles during mitosis.

cell biology↗

The Translational Landscape of Reactive Astrocytes Reveals the Impact of eIF2B-mediated Dysregulation in VWM Disease

A devastating genetic recessive neurodegenerative disorder, Vanishing White Matter Disease (VWMD), stems from mutations in eIF2B--a master regulator of mRNA translation initiation and mediator of cellular stress response. While astrocytes, the brains essential support cells, are known to be central to VWMD pathology, the molecular mechanisms underlying their dysfunction remain poorly understood. Our study reveals that even a mild mutation in eIF2B5 profoundly disrupts astrocyte mRNA translation regulation upon cytokine-mediated activation, affecting nearly one-third of all expressed genes. Through innovative integration of RNA-seq and Ribo-seq analyses using primary cell cultures of astrocytes isolated from eIF2B5R132H/R132H mice, we discovered attempts to compensate for impaired protein production by increasing mRNA levels. However, this compensation proves insufficient to maintain critical cellular functions. Our comprehensive analysis uncovered significant disruptions in cellular energy production and protein synthesis machinery. We also predicted previously unknown defects in cholesterol biosynthesis within mutant astrocytes. Moreover, a meta-analysis of translation initiation scores pinpointed, for the first time, a short list of specific effector gene candidates that may drive disease progression. This powerful combination of transcriptome and translatome illuminates the complex pathophysiology of VWMD and identifies promising new biomarkers and therapeutic target opportunities.

molecular biology↗