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Matassa, D. S.

Publications and source records attributed to Matassa, D. S..

3 recordsLinked to original sources

The RNA binding protein LIN28A mediates chromatin dynamics during neuronal differentiation

The transition of embryonic stem cells (ESCs) from pluripotency to lineage commitment is regulated by multiple mechanisms, including chromatin dynamics and both transcriptional and post-transcriptional processes. Recent advances have highlighted that these mechanisms often interact, forming intricate multi-layered regulatory networks that require detailed characterization. In this study, we demonstrate that the RNA-binding protein LIN28A plays a pivotal role in neuronal differentiation by mediating RNA-dependent interactions with the Polycomb repressive complex 2 (PRC2). This interaction facilitates the eviction of PRC2 from chromatin, thereby activating a neuronal lineage-specific transcriptional program. Proteomic analyses revealed that the LIN28A interactome undergoes substantial remodeling during differentiation, corresponding to changes in LIN28A localization. In ESCs, LIN28A is predominantly nuclear and interacts with several components of the PRC2 complex in an RNA-dependent manner, assisting in chromatin dynamics. Our findings show that in the absence of LIN28A, PRC2 remains associated with chromatin, impairing the expression of genes critical for neuronal differentiation in ESCs. Chromatin immunoprecipitation sequencing (ChIP-seq) further confirmed that loss of LIN28A results in preferential PRC2 occupancy at the promoters of differentiation-associated genes. This study uncovers a novel role for LIN28A in epigenetic remodeling, which is essential for the proper differentiation of ESCs into the neuronal lineage.

molecular biology↗

ZZZ3 protects human embryonic stem cells from nucleolar stress by boosting mTOR/ribosome pathway.

Embryonic stem cells (ESCs) are defined as stem cells with self-renewing and differentiation capabilities. These unique properties are tightly regulated and controlled by complex genetic and molecular mechanisms whose understanding is essential for both basic and translational research. A large number of studies have mostly focused on understanding the molecular mechanisms governing pluripotency and differentiation of ESCs, while the regulation of proliferation has received comparably less attention. In mouse ESCs, pluripotency and proliferation can be independent processes meaning that it is possible for mouse ESCs to maintain their pluripotent state without actively proliferating. Here, we investigate the role of ZZZ3 (Zinc Finger ZZ-Type Containing 3) function in human ESCs homeostasis. We found that knockdown of ZZZ3 strongly decreases ribosome biogenesis, translation, and mTOR signaling leading to nucleolar stress and significant reduction of cell proliferation. This process occurs without affecting pluripotency, suggesting that ZZZ3-depleted ESCs enter a dormant-like state and that proliferation and pluripotency can be uncoupled also in human ESCs.

molecular biology↗

Cytosolic and mitochondrial translation elongation are coordinated through the molecular chaperone TRAP1 for the synthesis and import of mitochondrial proteins

A complex interplay between mRNA translation and cellular respiration has been recently unveiled, but its regulation in humans is poorly characterized in either health or disease. Cancer cells radically reshape both biosynthetic and bioenergetic pathways to sustain their aberrant growth rates. In this regard, we have shown that the molecular chaperone TRAP1 not only regulates the activity of respiratory complexes, behaving alternatively as an oncogene or a tumor suppressor, but also plays a concomitant moonlighting function in mRNA translation regulation. Herein we identify the molecular mechanisms involved, demonstrating that TRAP1: i) binds both mitochondrial and cytosolic ribosomes as well as translation elongation factors, ii) slows down translation elongation rate, and iii) favors localized translation in the proximity of mitochondria. We also provide evidence that TRAP1 is coexpressed in human tissues with the mitochondrial translational machinery, which is responsible for the synthesis of respiratory complex proteins. Altogether, our results show an unprecedented level of complexity in the regulation of cancer cell metabolism, strongly suggesting the existence of a tight feedback loop between protein synthesis and energy metabolism, based on the demonstration that a single molecular chaperone plays a role in both mitochondrial and cytosolic translation, as well as in mitochondrial respiration.

biochemistry↗