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Shirley, N. J.

Publications and source records attributed to Shirley, N. J..

2 recordsLinked to original sources

MADS31 supports female germline development by repressing the post-fertilization program in cereal ovules

The female germline of flowering plants develops within a niche of somatic ovule cells, also referred to as the nucellus. How niche cells maintain their own somatic developmental program, yet support the development of adjoining germline cells, remains largely unknown. Here we report that MADS31, a conserved MADS-box transcription factor from the B-sister subclass, is a potent regulator of niche cell identity in barley. MADS31 is preferentially expressed in nucellar cells directly adjoining the germline, and loss-of-function mads31 mutants exhibit deformed and disorganized nucellar cells, leading to impaired germline development and partial female sterility. Molecular assays indicate that MADS31 encodes a potent transcriptional repressor, repressing genes in the ovule that are normally active in the seed. One prominent target of MADS31 is NRPD4b, a seed-expressed component of RNA polymerase IV/V that is involved in gene silencing via RNA directed DNA methylation. NRPD4b is directly repressed by MADS31 in vivo and is de-repressed in mads31 ovules, while overexpression of NRPD4b recapitulates the mads31 ovule phenotype. This coincides with specific changes in histone methylation and is consistent with NRPD4b being directly repressed by MADS31 to maintain ovule niche functionality. Our findings reveal a new mechanism by which somatic ovule tissues maintain their own identity before transitioning to the post-fertilization program.

plant biology↗

HvSL1 and HvMADS16 promote stamen identity to restrict multiple ovary formation in barley

Correct floral development is a consequence of a sophisticated balance between environmental and molecular cues. Floral mutants provide insight into the main genetic determinants that integrate these cues, as well as providing opportunities to assess functional conservation across species. In this study, we characterize the barley (Hordeum vulgare) multiovary mutants mov2.g and mov1 and propose causative gene sequences: a C2H2 zinc-finger HvSL1 and a B-class gene HvMADS16, respectively. In the absence of HvSL1, flowers lack stamens but exhibit functional supernumerary carpels resulting in multiple seeds per floret when artificially pollinated. Deletion of HvMADS16 in mov1 causes homeotic conversion of lodicules and stamens into bract-like organs and carpels that contain non-functional ovules. Based on developmental, genetic, and molecular data we propose a model by which stamen specification in barley is defined by HvSL1 acting upstream of barley B-class genes, specifically the transcriptional up-regulation of HvMADS16. The present work identifies strong conservation of stamen formation pathways with rice, but also reveals intriguing species-specific differences. The findings lay the foundation for a better understanding of floral architecture in Triticeae, a key target for crop improvement. HighlightAnalysis of the barley multiovary mov1 and mov2 loci indicates that HvSL1 and HvMADS16 exhibit both unique and conserved roles in the specification and development of cereal flowers.

developmental biology↗