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Biology subjects

Kovacik, M.

Publications and source records attributed to Kovacik, M..

3 recordsLinked to original sources

Imprinted regulatory networks reveal the molecular cross-talk between paternal and maternal genomes in the endosperm of Arabidopsis arenosa

Summary paragraphImprinted genes do not act alone to shape seed development, but as a complex network -- just like any other gene. Yet, the molecular context in which they are embedded, i.e. their gene network, remains largely understudied. To address this knowledge gap, we characterized the imprintome of Arabidopsis arenosa at the species-level and used gene regulatory network analyses. We show that genomic imprinting preferentially affects only a few pathways, offering candidates for dosage sensitive processes and the molecular arena of parental conflict. In these pathways, some imprinted genes act as hub genes, among which NRPE1, highlighting the importance of epigenetics in endosperm development. The interaction between parental genomes was rather one-sided: paternally expressed regulators preferentially targeted PEGs, while maternally expressed regulators targeted both PEGs and MEGs indiscriminately. This aligns with a self-promoting paternal influence and a maternal buffer under a parental conflict scenario. Shared paternal and maternal regulation of downstream targets was nevertheless common, and we reveal novel molecular interactions between imprinted regulators. Overall, our work shows how genomic imprinting may act as a molecular means for parental conflict, but also highlights the importance of parental molecular coordination in endosperm development.

plant biology↗

Transcriptomic insights into triploid seed failure in Arabidopsis arenosa natural populations

O_LIPolyploidy is a key evolutionary force in plants; among its many consequences, hybridization between diploids and polyploids is restricted due to the "triploid block". While the molecular mechanisms of this postzygotic barrier are extensively studied in the model species Arabidopsis thaliana, our understanding of the triploid block in natural systems remains limited. C_LIO_LIHere, we investigated the transcriptome of failing triploid seeds in Arabidopsis arenosa, a close relative of A. thaliana with diploid and autotetraploid populations meeting in nature. We also identified A. arenosa imprinted genes. C_LIO_LITriploid seeds showed preferential misregulation of imprinted genes, which parallels the parent-of-origin features of the triploid block. Tissue-specific transcriptomic analyses revealed pathogen defense-like response being recurrently affected in the endosperm and seed coat. This pathway is commonly misregulated in all species with triploid seed transcriptomes studied to date. The associated genes however are likely more involved in cell-cell signaling rather than pathogen defense per se. C_LIO_LIAltogether, this study depicts a thorough molecular landscape of the triploid block for the first time in natural systems. Combining data on the understudied maternal excess transcriptome, a new imprintome, a tissue-specific focus, and a cross-species comparison, this study also advances our understanding of the triploid block and seed development. C_LI

evolutionary biology↗

The transcriptome landscape of developing barley seeds reveals H3K27me3 dynamics in endosperm tissues

Cereal grains are an important food and feed. To provide comprehensive spatiotemporal information about biological processes in developing seeds of cultivated barley, we performed a transcriptomic study of the embryo, endosperm, and seed maternal tissues collected from 4 to 32 days after pollination. Weighted gene co-expression network and motif enrichment analyses pointed out specific groups of genes and transcription factors with possible impacts on regulating barley seed tissue development. We defined a set of tissue-specific marker genes and families of transcription factors for functional studies of the pathways controlling barley grain development. Assessment of selected groups of chromatin regulators revealed that epigenetic processes are highly dynamic and likely to play a major role during barley endosperm development. Repressive modification H3K27me3 is globally reduced in endosperm tissues and at specific developmental and storage compound genes. Altogether, this atlas uncovers the complexity of the developmental regulation of gene expression in barley grains. TeaserSpatiotemporal profiling of developing barley seeds revealed loss of H3K27me3 and changes in gene expression in endosperm.

plant biology↗