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Samo, N.

Publications and source records attributed to Samo, N..

2 recordsLinked to original sources

Rapid evolution and functional divergence of the monkeyflower Mimulus lewisii telomerase

Telomeres are nucleoprotein structures that protect chromosome ends and are maintained by the Telomerase Reverse Transcriptase (TERT) protein that uses a noncoding Telomerase RNA (TR) as a template. In monkeyflowers, Mimulus lewisii had an ancient TR gene duplication, synthesizing an evolutionarily atypical sequence heterogeneous telomere. How TERT interacts with both TR paralogs during telomere maintenance is unknown and answers can shed novel insights underlying telomere function. Using new genome assemblies we discovered TERT is rapidly evolving in lineages sharing the TR duplication. We investigated the functional consequences arising from the rapid evolution, first by using yeast three-hybrid and testing the physical binding between conspecific and heterospecific TERT-TR combinations. Results showed TERT binds both ancestral (TR1) and derived (TR2) TR paralogs in M. lewisii, but not in species without a functioning TR2. We located the region of TR binding to amino acids near the KRxR motif. We then combined next-generation sequencing with Telomeric Repeat Amplification Protocol and discovered M. lewisii had high telomerase activity. Comparative transcriptomics indicated no strong evidence of expression divergence in telomere maintenance genes for M. lewisii, suggesting rapid evolution shaped TERT protein sequence. In vivo activity of M. lewisii telomerase was investigated by analyzing F1 telomeres generated by crossing M. lewisii and M. verbenaceus, which doesnt have a functioning TR2. Results showed M. verbenaceus chromosome ends in the F1 had converted into M. lewisii telomeres, suggesting dominance of the M. lewisii telomerase. We demonstrate TERT-TR coevolution can have significant consequences on the evolution of plant telomeres. Significance statementTelomeres protect chromosome ends and are maintained by the telomerase complex. We discovered the catalytic component of the telomerase (TERT) was rapidly evolving in monkeyflowers (Mimulus) and studied the molecular consequences. In M. lewisii, TERT evolved lineage-specific amino acids to bind two sequence divergent telomerase RNA paralogs. Telomerase activity assay showed M. lewisii synthesized more telomere repeats compared to its sister species without the TR duplication, and transcriptomics indicated this was not due to a change in telomere maintenance gene expression. Genetic experiments in interspecies hybrids showed M. lewisii telomerase could convert chromosome ends in sister species into M. lewisii-like telomeres suggesting functional dominance. We show rapid evolution of the telomerase can have significant effects on telomere evolution.

evolutionary biology↗

PRC2 facilitates the transition from heterotrophy to photoautotrophy during seedling emergence

Seed-to-seedling transition represents a key developmental and metabolic switch in plants. Catabolism of seed storage reserves fuels germination and early seedling emergence until photosynthesis is established. The developmental transition is controlled by Polycomb repressive complex 2 (PRC2). However, the coordination of PRC2 activity and its contribution to transcriptional reprogramming during seedling establishment is unknown. By analysing the re-distribution of H3K27me3 and changes in gene transcription in shoot and root tissues of heterotrophic and photoautotrophic seedlings, we reveal two phases of PRC2-mediated gene repression. The first phase is independent of light and photosynthesis and results in irreversible repression of the embryo maturation programme, marked by heterotrophy and biosynthesis of reserve storage molecules. The second phase is associated with the repression of metabolic pathways related to germination and early seedling emergence, and H3K27me3 deposition in this phase is sensitive to photosynthesis inhibition. We show that preventing transcription of the PRC2-repressed glyoxylate cycle gene ISOCITRATE LYASE is sufficient to drive the vegetative phase transition in PRC2-depleted plants. This underscores a key role of PRC2 repression in the coordinated metabolic and developmental switches during seedling emergence and emphasizes the close connection between metabolic and developmental identities.

plant biology↗