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Buccheri, V.

Publications and source records attributed to Buccheri, V..

3 recordsLinked to original sources

Activated RNAi does not rescue piRNA pathway deficiency in testes

RNA interference (RNAi) and PIWI-associated RNAs (piRNA) pathways use small RNAs as sequence-specific guides to repress transposable elements. In mice, the loss of Mili, an essential piRNA pathway factor, causes male sterility associated with mobilization of LINE L1 retrotransposons while female mutants remain fertile. At the same time, mouse oocytes have exceptionally active RNAi thanks to an oocyte-specific variant of RNase III Dicer, which efficiently makes small RNAs from long dsRNA substrates. In oocytes of mice lacking functional MILI and the oocyte-specific Dicer variant, we previously observed that L1 retrotransposons are redundantly targeted by both, RNAi and piRNA pathways. To test whether enhanced RNAi may reduce the Mili mutant phenotype in testes, we used transgenic mice ectopically expressing the oocyte-specific Dicer variant during spermatogenesis. We report here that this genetic modification increases siRNA biogenesis and supports RNAi but is not sufficient to reduce spermatogenic defects caused by the loss of Mili.

molecular biology↗

Genetic activation of canonical RNA interference in mice

Canonical RNA interference (RNAi) is sequence-specific mRNA degradation guided by small interfering RNAs (siRNAs) made from double-stranded RNA (dsRNA) by RNase III Dicer. RNAi has different roles including gene regulation, antiviral immunity or defense against transposable elements. In mammals, RNAi is constrained by Dicer, which is adapted to produce microRNAs, another class of small RNAs. However, RNAi exists in mouse oocytes, which employs a truncated Dicer variant. A homozygous mutation to express only the truncated variant ({Delta}HEL1) causes dysregulation of microRNAs and perinatal lethality in mice. Here, we report the phenotype and RNAi activity in Dicer{Delta}HEL1/wtmice, which are viable, show minimal miRNome changes but their endogenous siRNA levels are increased by an order of magnitude. We show that siRNA abundance is limited by available dsRNA but not by PKR, a dsRNA sensor of innate immunity. Expressing dsRNA from a transgene, functional RNAi in vivo was induced in heart. Dicer{Delta}HEL1/wt mice thus represent a new model for researching mammalian canonical RNAi in vivo and offer an unprecedented platform for addressing claims about its biological roles.

molecular biology↗

Molecular basis of indispensable accuracy of mammalian miRNA biogenesis

Mammalian Dicer is the gatekeeper into the essential gene-regulating miRNA pathway. What is committing mammalian Dicer to the miRNA pathway remains unknown. We report that Dicers highly conserved DExD/H helicase domain is the key structural element supporting accurate miRNA biogenesis. While ATPase activity of the domain is non-essential, its loss is lethal in mice. It is required during canonical miRNA biogenesis for efficient recognition, high-fidelity cleavage, and strand selection. Structure of Dicer-miRNA precursor complexes showed that the DExD/H domain acquired helicase-unrelated function defining Dicer conformations, which affect substrate loading and facilitate pre-selection of miRNA precursors. Dicer lacking the DExD/H domain favors conformations enabling reduced substrate selectivity and supporting RNA interference, a different small RNA pathway. Therefore, Dicers DExD/H domain ensures indispensable high-fidelity precursor processing of mammalian miRNAs, which constitutes a structural "mold" for adaptive miRNA evolution.

molecular biology↗