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Transcriptomic landscape of Marchantia polymorpha sexual organs at single-nucleus resolution

doi: 10.1016/j.jgg.2025.11.002
Funds:

This study was supported by the 10KP project (https://db.cngb.org/10kp/) and China National GeneBank (CNGB

https://www.cngb.org/). This research was funded by the Scientific Foundation of the Urban Management Bureau of Shenzhen (202403).

  • Received Date: 2025-05-28
  • Accepted Date: 2025-11-05
  • Rev Recd Date: 2025-11-04
  • Available Online: 2025-11-08
  • Marchantia polymorpha, a model liverwort, provides a valuable system for investigating the evolution of plant sexual reproduction. To explore the cellular landscape of its reproductive structures, we generate a single-nucleus transcriptomic atlas of the antheridiophore, archegoniophore, and sporophyte. Using single-nucleus RNA sequencing (snRNA-seq), we capture over 30,000 high-quality nuclei and identify distinct cell populations. In the male organ, we characterize stages of spermatogenesis from early antheridium cells to mature sperm, revealing dynamic transcriptional programs including cell cycle regulation, chromatin remodelling, and calcium signalling. In the female organ, we define cell types including archegonial layers and secondary central cells. Sporophyte clusters are annotated as spores, elaters, capsule wall, foot, and seta cells, with transcriptional signatures related to structural support, stress response, and reproductive functions. Cross-species analysis indicates that capsule wall cells in liverworts are similar to tapetum cells. Notably, foot cells exhibit high expression of genes involved in sporopollenin biosynthesis and signaling pathways, serving as a central hub that mediates communication between the maternal gametophyte and the developing sporophyte. This study provides a comprehensive cellular and molecular map of M. polymorpha reproductive organs and sporophyte, establishing a framework for investigating the development and evolution of sexual reproduction in early land plants.

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