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Mousavi, S.

Publications and source records attributed to Mousavi, S..

2 recordsLinked to original sources

Molecular underpinnings of hornwort carbon concentrating mechanisms: subcellular localization of putative key molecular components in the model hornwort Anthoceros agrestis.

O_LIBiophysical carbon concentrating mechanisms (CCMs) operating at the single-cell level have evolved independently in eukaryotic algae and a single land plant lineage, hornworts. An essential component for an efficient eukaryotic CCM is a pyrenoid whose biology is well-characterized in the unicellular green alga, Chlamydomonas reinhardtii. By contrast, pyrenoids and CCM are little understood in hornworts. C_LIO_LIHere, we investigate the molecular underpinnings and dynamics of hornwort pyrenoids. We do so by studying the subcellular localization of candidate proteins homologous to essential CCM genes in C. reinhardtii and assessing their mobility kinetics in the hornwort model Anthoceros agrestis. C_LIO_LIWe provide evidence that an EPYC1 analog and the RuBisCO co-localize in the pyrenoid but pyrenoids seem less dynamic in A. agrestis than in C. reinhardtii. We further found that a carbon anhydrase homolog (CAH3) localizes to the pyrenoid, while an LCIB-like homolog is less intimately linked to the pyrenoid than in C. reinhardtii. C_LIO_LIOur results imply that the pyrenoid-based CCM of hornworts is characterized by a mixture of Chlamydomonas-like as well as hornwort-specific features which is in line with its independent evolutionary origin. Using these observations, we provide a first mechanistic model of hornwort CCM. C_LI

plant biology↗

The diallelic self-incompatibility system in Oleaceae is controlled by a hemizygous genomic region expressing a gibberellin pathway gene

Sexual reproduction in flowering plants is commonly controlled by self-incompatibility (SI) systems that are either homomorphic (and typically governed by large numbers of distinct allelic specificities), or heteromorphic (and then typically governed by only two allelic specificities). The SI system of the Oleaceae family is a striking exception to this rule and represents an evolutionary conundrum, with the long-term maintenance of only two allelic specificities, but often in the complete absence of morphological differentiation between them. To elucidate the genomic architecture and molecular bases of this highly unusual SI system, we obtained chromosome-scale genome assemblies of Phillyrea angustifolia individuals belonging to the two SI specificities and connected them to a genetic map. Comparison of the S-locus region revealed a segregating 543-kb indel specific to one of the two specificities, suggesting a hemizygous genetic architecture. Only one of the predicted genes in this indel is conserved with the olive tree Olea europaea, where we also confirmed the existence of a segregating hemizygous indel. We demonstrated full association between presence/absence of this gene and the SI groups phenotypically assessed across six distantly related Oleaceae species. This gene is predicted to be involved in catabolism of the Gibberellic Acid (GA) hormone, and experimental manipulation of GA levels in developing buds modified the male and female SI responses in an S-allele-specific manner. Thus, our results provide a unique example of a reproductive system where a single conserved gibberellin-related gene in a 500-700kb hemizygous indel underlies the long-term maintenance of two groups of reproductive compatibility.

evolutionary biology↗