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Elcavage, L. E.

Publications and source records attributed to Elcavage, L. E..

2 recordsLinked to original sources

mRNA 3' UTRs direct microRNA degradation to participate in imprinted gene networks and regulate growth

MicroRNAs direct downregulation of target mRNAs. Sometimes, however, this regulatory paradigm inverts, and a target RNA triggers the degradation of a microRNA. This target-directed microRNA degradation (TDMD) requires ZSWIM8. Zswim8-/- mice exhibit reduced growth and perinatal lethality, accompanied by stabilization of dozens of microRNAs. Nonetheless, studies of TDMD function in mammals have been limited because only two TDMD-triggering RNAs have been identified in mice. Here, we computationally identify and validate five new TDMD-triggering sites in mouse models. One site in Atp6v1g1 and two in Lpar4 direct degradation of miR-335-3p, which shows that in mammals, two sites in the same transcript, and multiple sites in different transcripts, can collaborate to destabilize a microRNA. Moreover, sites in Plagl1 and Lrrc58 direct degradation of miR-322 and miR-503, respectively. Mice lacking the Plagl1 and Lrrc58 sites exhibit reduced growth, demonstrating that target-directed degradation of miR-503 and miR-322 promotes mammalian growth. Both miR-335-3p and Plagl1 are maternally imprinted, implying that they participate in parental conflict, but their corresponding triggers or target microRNA partner are not imprinted. Thus, 3' UTRs directly participate in parental conflict by engaging TDMD to access an additional layer of regulation within a network of imprinted and biallelic genes.

molecular biology↗

Derepression of a single microRNA target causes female infertility in mice

The miR-200a and miR-200b families control mouse ovulation and are essential for female fertility. The ZEB1 transcription factor is a conserved target of both families and has been implicated as a key player in female fertility at multiple levels. Using gene-edited mice that express a miR-200a/b-resistant form of Zeb1, we found that derepression of Zeb1 in the female pituitary caused decreased production of luteinizing hormone and anovulatory infertility. These phenotypes were accompanied by widespread changes in pituitary gene expression characterized by decreased levels of ZEB1 targets, which include the miR-200a/b miRNAs, as expected from the miR-200a/b-ZEB1 double-negative feedback loop. Also observed were increased levels of mesenchymal genes, neuronal genes, and miR-200a/b targets. These results show that a double-negative feedback loop centered on the miRNA regulation of a single transcription factor can significantly influence the expression of thousands of genes and have dramatic phenotypic consequences.

molecular biology↗