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Loureiro, J. R.

Publications and source records attributed to Loureiro, J. R..

3 recordsLinked to original sources

The AUUUC repeat RNA aggregates sequester RNA-binding proteins like NOVA2 and lead to iron dyshomeostasis in spinocerebellar ataxia type 37

Transcribed nucleotide repeat expansions can contribute to disease by altering RNA structure and function. Spinocerebellar ataxia type 37 (SCA37) is a neurodegenerative disorder caused by a pathogenic ATTTC repeat insertion within a non-pathogenic ATTTT repeat in the 5 untranslated region of DAB1. We have shown that the AUUUC repeat RNA forms aberrant nuclear aggregates in cells, subsequently confirmed by others in neurons from subjects with familial adult myoclonic epilepsy carrying a similar ATTTC repeat insertion. However, the mechanism by which these RNA aggregates cause neuropathology remains unknown. Here, we show that overexpression of the ATTTC repeat in human neural stem cells leads to the formation of abnormal nuclear RNA aggregates, supporting an AUUUC repeat-mediated mechanism of pathology through the sequestration of RNA-binding proteins (RBP). We identified 12 AUUUC repeat-interacting RBPs with specific neuronal functions, including NOVA2, which we demonstrate to colocalize with the AUUUC repeat aggregates. Moreover, we further investigated the accumulation of iron in these aggregates and observed a significant colocalization of iron and NOVA2 hotspots in ATTTC repeat-expressing cells, a pattern absent in control cells. Together, these findings uncover a novel RNA-mediated mechanism of pathology involving both RBPs and iron, expanding the current understanding of RNA repeat toxicity.

cell biology↗

Embryonic Spinocerebellar Ataxia Type 37 AUUUC Repeat RNA Causes Neurodevelopmental Defects in Zebrafish

Onset of many neurodegenerative and neuromuscular diseases usually starts in adulthood; however, recent advances point toward neurodevelopmental changes as drivers of late neurodegeneration. How early neuropathological features occur in these conditions remains unclear, which is critical for timely therapeutic intervention. Here, we provide evidence that neurodevelopmental axonal defects initiate a motor phenotype in a zebrafish model of spinocerebellar ataxia type 37 (SCA37), a degenerative hereditary condition caused by an ATTTC repeat in the DAB1 gene. We investigated neuronal defects triggered by the embryonic AUUUC repeat RNA and their effects later in life by transiently expressing this RNA in embryos and analyzing innervation and motor function. We found abnormalities in motor neuron axonal outgrowth and muscle innervation. We also discovered disrupted embryonic motor activity and reduced locomotor distance and velocity in late adult zebrafish, demonstrating motor impairment. Moreover, we showed that NOVA2 expression rescues axonal defects, indicating dysfunction of NOVA2-regulated neurodevelopmental processes. Overall, our results establish embryonic expression of the AUUUC repeat RNA as a driver of axonal and synaptic abnormalities, interfering with neuronal circuits and culminating in adult motor dysfunction.

neuroscience↗

The Insertion of an ATTTC Repeat in an Alu Element Hyperactivates a Primate-Specific Neurodevelopmental Enhancer in Spinocerebellar Ataxia Type 37

Alu are evolutionarily very old primate-specific interspersed repeat elements that constitute [~]11% of the human genome. They are a source of short tandem repeats (STRs), which often expand in size and originate inherited neuromuscular and neurodegenerative disorders. How expanded STR insertion mutations within Alu STRs culminate in disease remains unknown. Here we report an Alu STR located in an intron of DAB1 that functions as a neurodevelopmental enhancer. We demonstrated that an ATTTC repeat insertion in this DAB1 Alu STR, known to cause spinocerebellar ataxia type 37 (SCA37), hyperactivates a neurodevelopmental DAB1 enhancer. Importantly, we showed that neurons derived from SCA37 subjects have higher levels of DAB1 expression and DAB1 overexpression causes abnormal axonal pathfinding in vivo. Overall, these results establish that neuronal dysregulation of a developmental DAB1 Alu STR enhancer contributes to SCA37 pathogenesis, an unexplored mechanism likely acting in many Alu STR diseases, potentially reshaping the therapeutic landscape.

genetics↗