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Biology subjects

Lukens, L.

Publications and source records attributed to Lukens, L..

2 recordsLinked to original sources

Multimodal single cell analysis reveals a link between flowering and leaf initiation

Zea mays (maize) flowering time is genetically determined and a critical yield determinant. Yet mechanistic understanding of maize flowering remains poor. Indeterminate1 (Id1), a zinc-finger transcription factor (TF), is a monocot-conserved master regulator of maize flowering. Epistasis between Id1 and the ZeaCentroradialis-Delayed Flowering1 (Zcn-Dlf1) inductive pathway partly explains ID1 floral control; however, the strong mutant id1- floral delay is not explained by this pathway alone. To better characterize Id1 actions, we performed single-cell assay for transposase-accessible chromatin and single nucleus RNA sequencing (scATAC-seq and snRNA-seq) comparing Id1+ and id1- developing leaves. These analyses reveal id1- chromatin remodeling via TEOSINTE BRANCHED1 CYCLOIDEA PROLIFERATING CELL FACTOR (TCP) and APETALA2/ETHYLENE RESPONSEFACTOR (AP2/ERF) transcription factors and provide candidate direct targets that include AP2/ERF genes. These candidate direct targets include the family of {beta}-glucosidase genes that lose expression in id1-. Unexpectedly, CRISPR/Cas9 {beta}-glucosidase edits produced plants that phenocopied terminal ear1- (te1-) mutants. This phenocopy prompted an investigation into the genetic relationship between id1-, te1- and flowering. Surprisingly, id1- te1- plants exhibited a synergistic floral delay, producing ~90 leaves before inflorescence production. Beyond highlighting hitherto unappreciated Te1 autonomous flowering roles, this genetic synergy raises the hypothesis that meristem leaf primordia cessation underpins maize flowering.

plant biology↗

Positive selection on hotspot and reinforcing regulatory alleles contributed to hexaploid bread wheat improvement.

BackgroundGenetic variation of regulatory alleles plays a key role in evolution and breeding. In polyploids, regulatory differences may preferentially affect genes on homoeologous chromosomes or sub-genomes. Selection in plant breeding may act upon total transcript dosage across homoeologous genes and on alleles that have strong effects on the transcriptome. ResultsTo investigate these questions, we identified regulatory polymorphisms between an old and a recent hexaploid bread wheat cultivar (Triticum aestivum, 2n=6x=42, AABBDD). The recent cultivar was the product of decades of selection for grain yield and quality. Regulatory allele polymorphisms preferentially affected genes on homoeologous chromosomes but rarely affected genes on specific sub-genomes. The chromosomal distributions of regulatory alleles indicated that past selection had acted upon them, and the effect of selection differed between alleles targeting environmental response genes and genes involved in other processes. Modern cultivar alleles that affected many genes transcripts corresponded to known selection targets and improved field crop performance. Modern cultivar alleles also had significant effects on homoeologous genes, and these alleles also improved crop performance. ConclusionsPolyploid breeding across many species has been and will continue to be the key factor in plant improvement. By enhancing the favorability of strong regulatory alleles and by expanding the range of gene transcript abundances, genome duplications enable breeding progress.

genomics↗