A spatiotemporal single-cell transcriptomic atlas reveals fertilization-induced auxin signaling driving strawberry fruit set and development
In the authors' words
Fertilization-triggered fruit set and morphogenesis constitute a complex developmental program involving diverse cell populations within fruit tissues. However, the cellular heterogeneity of this process has long obscured the precise contributions of distinct cell types. Here, by using woodland strawberry (Fragaria vesca) as a model, we integrated spatial transcriptomics, single-nucleus RNA sequencing (snRNA-seq), and spatial metabolomics to construct a comprehensive and high-resolution single-cell atlas of strawberry fruit, spanning post-fertilization, fruit set, and fruit enlargement stages. Pseudotime trajectories of the three main cell types revealed substantial developmental state transitions, with specific expression patterns observed for auxin signaling components. Integration of spatial metabolomics and the ProDR5::RUBY stable reporter line reveals an auxin distribution asymmetry that shapes fruit morphogenesis. This distribution asymmetry is jointly correlated with auxin transport components FvePIN1 and FvePIN5, with distinct temporal specificity in the receptacle. In response to auxin, FveARF6 acts as a key positive regulator of fruit development, as demonstrated by stable transgenic lines: FveARF6-RNAi, FveARF6-CRISPR knockout, and FveARF6-overexpression. Together, this work provides a spatiotemporal framework for understanding the cellular and molecular mechanisms underlying fertilization-induced fruit development and morphogenesis. Fertilization-triggered fruit set and morphogenesis is a complex process involving multiple cell types. Here the authors use spatial transcriptomics and single nucleus RNA-seq to map fertilization induced changes in woodland strawberry.
Appeared: Friday, September 25. Nature Communications. Peer-reviewed journal.