2026/07/01 by Thomas Greb, Jan U. Lohmann · 1 voice
Agricultural and Biological Sciences · #Arabidopsis #Cambium #Cell fate determination #Meristem #Plant Molecular Biology Research #Plant and Biological Electrophysiology Studies #Polysaccharides and Plant Cell Walls #Redundancy (engineering) #Robustness (evolution) #Stem cell
paper · doi:10.1016/j.devcel.2026.06.005
published in Developmental Cell 61(7), 1431-1445 (Elsevier BV)
openalex publication_date 2026/07/01 · openalex created_date 2026/07/09 · openalex updated_date 2026/07/10
Plants maintain active stem cell populations throughout their lives, yet these systems are remarkably resilient to genetic, environmental, and mechanical perturbations. Synthesizing evidence from the shoot apical meristem, root apical meristem, and vascular cambium of Arabidopsis thaliana, we argue that this robustness is not primarily a consequence of genetic redundancy but an emergent property of distributed regulatory architectures. Multiple mechanisms contribute distinct buffering layers to plant stem cell systems, including negative feedback loops, mobile transcription factors, antagonistic hormonal fields, mechanical constraints, chromatin-level noise filtering, and regenerative self-organization. Across all three major plant stem cell systems, cell identity is imposed by position rather than lineage, and fast environmental responses are temporally decoupled from slow patterning dynamics. We propose that these recurring design principles underlying plant stem cell systems constitute a conserved and evolvable toolkit that enables indeterminate plant growth.