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Preparation of Small RNA Libraries for Sequencing from Early Mouse Embryos
Published on: October 9, 2020
Sperm-borne microRNA-34c regulates maternal mRNA degradation and preimplantation embryonic development in mice
Long Cui1, Li Fang1, Lili Zhuang2
1Department of Reproductive Endocrinology, Women's Hospital, Zhejiang University School of Medicine, Hangzhou, 310006, China.
Background:
Studies have shown that sperm-borne microRNAs (miRNAs) are involved in mammalian preimplantation embryonic development. In humans, spermatozoan miR-34c levels are correlated with in vitro fertilization outcomes, such as embryo quality and the clinical pregnancy and live birth rates. In rabbits and cows, miR-34c improves the developmental competence of embryos generated by somatic cell nuclear transfer. However, the mechanisms underlying the regulation of embryonic development by miR-34c remain unknown.
Methods:
Female C57BL/6 mice (6-8 weeks old) were superovulated, and pronucleated zygotes were collected and microinjected with an miR-34c inhibitor or a negative-control RNA. The embryonic development of the microinjected zygotes was evaluated, and the messenger RNA (mRNA) expression profiles of the embryos at the two-cell, four-cell and blastocyst stages (five embryos per group) were determined by RNA sequencing analysis. Gene expression levels were verified by reverse transcription-quantitative polymerase chain reaction. Cluster analysis and heat map visualization were performed to detect differentially expressed mRNAs. Pathway and process enrichment analyses were performed using ontology resources. Differentially expressed mRNAs were systematically analyzed using the Search Tool for the Retrieval of Interacting Genes/Proteins database to determine their biological functions.
Results:
Embryonic developmental potential was significantly reduced in zygotes microinjected with the miR-34c inhibitor compared with those microinjected with a negative-control RNA. Two-cell stage embryos microinjected with an miR-34c inhibitor presented altered transcriptomic profiles, with upregulated expression of maternal miR-34c target mRNAs and classical maternal mRNAs. Differentially expressed transcripts were mainly of genes associated with lipid metabolism and cellular membrane function at the two-cell stage, with cell-cycle phase transition and energy metabolism at the four-cell stage; and with vesicle organization, lipid biosynthetic process and endomembrane system organization at the blastocyst stage. We also showed that genes related to preimplantation embryonic development, including Alkbh4, Sp1, Mapk14, Sin3a, Sdc1 and Laptm4b, were significantly downregulated after microinjection of an miR-34c inhibitor.
Conclusions:
Sperm-borne miR-34c may regulate preimplantation embryonic development by affecting multiple biological processes, such as maternal mRNA degradation, cellular metabolism, cell proliferation and blastocyst implantation. Our data demonstrate the importance of sperm-derived miRNAs in the development of preimplantation embryos.
Insights
Sperm-borne microRNA-34c (miR-34c) is crucial for early embryonic development. Inhibiting miR-34c in mouse zygotes reduced developmental potential and altered gene expression, highlighting its role in maternal mRNA regulation and cellular processes.
Area of Science:
- Reproductive Biology
- Developmental Biology
- Molecular Biology
Background:
- Sperm-borne microRNAs (miRNAs) influence mammalian embryonic development.
- Spermatozoan miR-34c levels correlate with human in vitro fertilization success.
- miR-34c enhances embryo development in rabbits and cows but its regulatory mechanisms are unclear.
Purpose of the Study:
- To investigate the role and regulatory mechanisms of sperm-borne miR-34c in preimplantation embryonic development.
- To identify specific biological processes and genes regulated by miR-34c during early embryogenesis.
Main Methods:
- Microinjection of miR-34c inhibitor or control RNA into mouse zygotes.
- Evaluation of embryonic development and RNA sequencing of mRNA expression profiles at different embryonic stages.
- Analysis of differentially expressed genes using bioinformatics tools for pathway and functional enrichment.
Main Results:
- miR-34c inhibition significantly reduced zygote developmental potential and altered transcriptomic profiles.
- Upregulation of maternal miR-34c target mRNAs and classical maternal mRNAs observed.
- Key genes involved in lipid metabolism, cell cycle, and vesicle organization were differentially expressed.
Conclusions:
- Sperm-borne miR-34c regulates preimplantation embryonic development via maternal mRNA degradation, cellular metabolism, and cell proliferation.
- This study underscores the critical role of sperm-derived miRNAs in early embryonic development.
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