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Calhau, A.

Publications and source records attributed to Calhau, A..

2 recordsLinked to original sources

Imaging Double Fertilization in Maize

Sexual reproduction in flowering plants relies on double fertilization, a process marked by two fusion events between the male and female gametes that lead to seed formation. Because this process unfolds within the embryo sac embedded deep inside the ovule, direct observation remains technically demanding, especially in maize, where the large size of female reproductive organs presents additional obstacles. The described method enables high-resolution visualization of cellular events unfolding during maize double fertilization. The approach integrates optimized fixation, clearing and confocal imaging of embryo sacs from ears pollinated with fluorescent pollen marker lines. Precise timing of embryo sac fixation is critical, allowing capture of key events such as pollen peri-germ cell membrane break-down or gamete karyogamy. The protocol provides detailed guidance for ovule dissection, fixation, preparation and renewal of the clearing solution and confocal imaging of embryo sacs. This method offers unprecedented access to the cellular events of double fertilization in maize, establishing a robust framework for studying reproductive processes and supporting future discoveries in plant reproduction.

Plant Biology↗

In planta haploid induction in maize and tomato through disruption of KOKOPELLI

Haploid induction is a key component of doubled haploid technology and an increasingly valuable tool for plant breeding, genome editing, and clonal seed production. While in planta haploid induction through haploid inducer lines offers significant advantages over in vitro approaches, its application remains limited in many crop species. Previously, disruption of the sperm cell-expressed KOKOPELLI (KPL) gene was shown to induce maternal haploids in Arabidopsis thaliana. Here, we report the creation of novel haploid inducer lines in two globally important crops, maize (Zea mays), a major staple food crop, and tomato (Solanum lycopersicum), a widely cultivated vegetable crop. Using targeted genome editing, we generated mutations in KPL orthologs and demonstrated that loss of KPL function confers haploid induction capacity, enabling the production of haploid seedlings in both species. These findings establish KPL as a conserved target to trigger haploid induction and expand the genetic toolbox available for haploid inducer development in crop species.

Plant Biology↗