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Biology subjects

Estevez, A. M.

Publications and source records attributed to Estevez, A. M..

2 recordsLinked to original sources

Control of retrotransposon-driven activation of the interferon response by the double-stranded RNA binding protein DGCR8

The type I interferon (IFN) response is the main innate immune pathway against viruses in mammals. This pathway must be tightly regulated to prevent viral spread while avoiding excessive immune responses. Here, we show that inactivation of the double-stranded RNA (dsRNA)-binding protein DGCR8 unleashes the IFN response in human cells. We demonstrate that DGCR8 restricts the accumulation of endogenous dsRNA originating from protein-coding mRNAs that harbour transposable elements (TEs), primarily Alu. We propose that DGCR8 binding to TE-rich mRNAs is essential to resolve dsRNA structures, and in its absence, accumulated dsRNA signals through the RIG-I-like signalling pathway triggering the IFN response. This mechanism is relevant to conditions where DGCR8 expression levels are altered, including the 22q11.2 deletion syndrome (22qDS). Supporting this, we show that 22qDS-derived cells exhibit an exacerbated type I IFN response which inversely correlated with DGCR8 levels. All these together demonstrate the importance of suppressing endogenous TE-dsRNA accumulation to prevent unwanted immune activation and associated disease pathogenesis.

molecular biology↗

BMAL1 represses transposable elements independently of CLOCK in pluripotent cells

Circadian oscillations of gene transcripts rely on a negative feedback loop executed by the activating BMAL1-CLOCK heterodimer and its negative regulators PER and CRY. Although circadian rhythms and CLOCK protein are mostly absent during embryogenesis, the lack of BMAL1 during prenatal development causes an early aging phenotype during adulthood, suggesting that BMAL1 carries out an unknown non-circadian function during organism development that is fundamental for healthy adult life. Here, we show that BMAL1 interacts with TRIM28 and represses transcription of totipotency-associated MERVL retrotransposons in mouse pluripotent cells. Deletion of Bmal1 leads to genome-wide upregulation of MERVLs, changes in the three-dimensional organization of the genome, and acquisition of totipotency-associated features. Overall, we demonstrate that in pluripotent cells BMAL1 is redeployed as a transcriptional repressor of transposable elements (TEs) in a CLOCK-independent way. We propose that BMAL1-TRIM28 activity during prenatal life is essential for optimal health and life span in mammals.

molecular biology↗