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Biology subjects

Kubickova, M.

Publications and source records attributed to Kubickova, M..

2 recordsLinked to original sources

La protein binding to telomerase RNA supports an evolutionary relationship between plant and ciliate telomerase pathways

The Arabidopsis thaliana La1 (AtLa1) protein is a member of the genuine La family of RNA biogenesis proteins, which are structurally similar to the La-resembling protein 7 (LARP7) family. LARP7 proteins participate in the biogenesis of the telomerase ribonucleoprotein complex in model systems, but are absent in plants. We show that AtLa1 binds to telomerase RNA in a manner reminiscent of the Tetrahymena LARP7 protein p65. Classical in vitro methods and microscale thermophoresis (MST) were used to specify the molecular structures involved in this multi-surface interaction. AtLa1 also enhances the binding of TR to the telomerase reverse transcriptase RNA binding domain. We therefore propose that biogenesis of telomerase RNA in plants and ciliates is achieved by a similar pathway, differing in the employment of genuine La or LARP7-like proteins, respectively. We also report that the domain of unknown function (DUF3223, DeCL) found in the AtLa1 protein binding partner, Domino, is an RNA binding domain with modest TR-binding capacity. This domain is also found in plant and ciliate proteins, including plant polymerases IV/V and the Tetrahymena La protein Mlp1. Together, these suggest that RNA biogenesis pathways in plants and ciliates have a conserved evolutionary relationship, with parallels between their La proteins.

biophysics↗

Spatial positioning of preimplantation mouse embryo blastomeres is regulated by mTORC1 and 7mG-cap dependent translation at the 8- to 16-cell transition.

Preimplantation stages of mouse embryo development involve temporal and spatial specification and segregation of three late blastocyst cell lineages; trophectoderm (TE), primitive endoderm (PrE) and epiblast (EPI). Spatial separation of the outer TE lineage from the two inner cell mass (ICM) lineages (PrE and EPI) starts with the 8- to 16-cell transition and concludes following transit through the 16- to 32-cell stages. This results in an early blastocyst ICM derived from descendants of primary founding inner cells and a secondarily contributed population, of which subsequent relative EPI versus PrE potencies are subject to debate. Here, we report generation of primary but not the secondary ICM populations is highly dependent on temporally discreet activation of the mammalian target of Rapamycin (mTOR - specifically mTORC1) during M-phase entry at the 8-cell stage. This role is mediated via regulation of the 7-methylguanosine-(7mG) cap binding initiation complex (EIF4F), linked to translation of a subset of key mRNAs containing 5 UTR terminal oligopyrimidine (TOP-) or TOP-like sequence motifs; as knockdown of identified TOP-like motif containing transcripts also impairs generation of 16-cell stage primary ICM founders. However, mTOR inhibition induced ICM cell number deficits at the early blastocyst stage can be compensated by the late blastocyst stage, in the absence of inhibition. This compensation is likely initiated at the 32-cell stage when supernumerary outer cells in mTOR-inhibited embryos exhibit molecular characteristics of inner cells. Collectively, the data identify a novel mechanism specifically governing initial spatial segregation of blastomeres in the mouse embryo, that is distinct from those directing subsequent inner cell formation and contributes to germane segregation of late blastocyst lineages.

developmental biology↗