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Plant stem cell research is uncovering the secrets of longevity and persistent growth
Authors:Masaaki Umeda  Momoko Ikeuchi  Masaki Ishikawa  Toshiro Ito  Ryuichi Nishihama  Junko Kyozuka  Keiko U. Torii  Akiko Satake  Gohta Goshima  Hitoshi Sakakibara
Affiliation:1. Graduate School of Science and Technology, Nara Institute of Science and Technology, Ikoma, 630-0192 Japan;2. Department of Biology, Faculty of Science, Niigata University, Niigata, 950-2181 Japan;3. National Institute for Basic Biology, Okazaki, 444-8585 Japan;4. Graduate School of Biostudies, Kyoto University, Kyoto, 606-8502 Japan;5. Graduate School of Life Sciences, Tohoku University, Sendai, 980-8577 Japan;6. Howard Hughes Medical Institute and Department of Molecular Biosciences, The University of Texas at Austin, Austin, TX, 78712 USA

Institute of Transformative Biomolecules (WPI-ITbM), Nagoya University, Nagoya, 464-8601 Japan;7. Department of Biology, Faculty of Science, Kyushu University, Fukuoka, 819-0395 Japan;8. Division of Biological Science, Graduate School of Science, Nagoya University, Nagoya, 464-8602 Japan

Sugashima Marine Biological Laboratory, Graduate School of Science, Nagoya University, Toba, 517-0004 Japan;9. Graduate School of Bioagricultural Sciences, Nagoya University, Nagoya, 464-8601 Japan

Abstract:Plant stem cells have several extraordinary features: they are generated de novo during development and regeneration, maintain their pluripotency, and produce another stem cell niche in an orderly manner. This enables plants to survive for an extended period and to continuously make new organs, representing a clear difference in their developmental program from animals. To uncover regulatory principles governing plant stem cell characteristics, our research project ‘Principles of pluripotent stem cells underlying plant vitality’ was launched in 2017, supported by a Grant-in-Aid for Scientific Research on Innovative Areas from the Japanese government. Through a collaboration involving 28 research groups, we aim to identify key factors that trigger epigenetic reprogramming and global changes in gene networks, and thereby contribute to stem cell generation. Pluripotent stem cells in the shoot apical meristem are controlled by cytokinin and auxin, which also play a crucial role in terminating stem cell activity in the floral meristem; therefore, we are focusing on biosynthesis, metabolism, transport, perception, and signaling of these hormones. Besides, we are uncovering the mechanisms of asymmetric cell division and of stem cell death and replenishment under DNA stress, which will illuminate plant-specific features in preserving stemness. Our technology support groups expand single-cell omics to describe stem cell behavior in a spatiotemporal context, and provide correlative light and electron microscopic technology to enable live imaging of cell and subcellular dynamics at high spatiotemporal resolution. In this perspective, we discuss future directions of our ongoing projects and related research fields.
Keywords:stem cell  pluripotency  reprogramming  meristem  asymmetric cell division  genome stability
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