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Niepielko, M. G.

Publications and source records attributed to Niepielko, M. G..

2 recordsLinked to original sources

Evolutionary changes in germ granule mRNA content are driven by multiple mechanisms in Drosophila

The co-packaging of mRNAs into biomolecular condensates called germ granules is a conserved strategy to post-transcriptionally regulate mRNAs that function in germline development and maintenance. In D. melanogaster, mRNAs accumulate in germ granules by forming homotypic clusters, aggregates that contain multiple transcripts from a specific gene. Nucleated by Oskar (Osk), homotypic clusters in D. melanogaster are generated through a stochastic seeding and self-recruitment process that requires the 3 UTR of germ granule mRNAs. Interestingly, the 3 UTR belonging to germ granule mRNAs, such as nanos (nos), have considerable sequence variations among Drosophila species. Thus, we hypothesized that evolutionary changes in the 3 UTR influences germ granule development. To test our hypothesis, we investigated the homotypic clustering of nos and polar granule component (pgc) in four Drosophila species and concluded that homotypic clustering is a conserved developmental process used to enrich germ granule mRNAs. Additionally, we discovered that the number of transcripts found in nos and/or pgc clusters could vary significantly among species. By integrating biological data with computational modeling, we determined that multiple mechanisms underlie naturally occurring germ granule diversity, including changes in nos, pgc, osk levels, and/or homotypic clustering efficacy. Finally, we found that the nos 3 UTR from different species can alter the efficacy of nos homotypic clustering, resulting in germ granules with reduced nos accumulation. Our findings highlight the impact that evolution has on the development of germ granules and may provide insight into processes that modify the content of other classes of biomolecular condensates.

evolutionary biology↗

An In Vivo Analysis of the Functional Motifs of DEAD-box RNA Helicase Me31B in Drosophila Fertility and Germline Development

In Drosophila germline, Me31B is a putative ATP-dependent, RNA helicase that plays role in post-transcriptional RNA regulation to ensure the correct spatial and temporal expression of the mRNAs, a process crucial for proper germline development and fertility. However, Me31Bs in vivo working mechanism remains unclear. In this study, we aim to analyze the functions of Me31Bs key domains/motifs to understand how these domains/motifs operate to fulfill the proteins overall activities. We generated Drosophila strains mutant for six important motifs including three ATPase/helicase motifs (DEAD-box, DVLARAK, and HRIGR), the N-terminal domain (N-ter), the C-terminal domain (C-ter), and a protein-binding motif (FDF motif-binding motif). In characterizing these mutants, we observed that the three ATPase/helicase motif mutations cause dominant female sterility which is associated with developmental defects in oogenesis and embryogenesis. Follow-up examination of the DVLARAK motif mutant revealed its abnormalities in germline mRNA localization and transcript level. The Me31B N-ter domain (deletion of C-ter), C-ter domain (deletion of N-ter), and mutation of FDF motif-binding motif led to a decrease in female fertility and abnormal subcellular Me31B localizations in the egg chambers. Moreover, deletion of Me31B N-ter or C-ter motif results in a decrease of Me31B protein levels in the ovaries. This study indicates that these six motifs of Me31B play different roles to contribute to Me31Bs whole-protein functions like ATPase, RNA helicase, protein stability, protein localization, and partner protein binding, which are crucial for germline development and fertility. Considering Me31B protein familys conserved presence in both Drosophila germline and soma (for example, neurons) and in other organisms such as yeast, worm, mouse, and human, the results from this study could expand our understanding of Me31B helicase familys general working mechanisms in different cell types and species.

developmental biology↗