
Shoot branching patterns result from the spatio-temporal regulation of axillary bud outgrowth. Numerous endogenous, developmental and environmental factors are integrated at the bud and plant levels to determine numbers of growing shoots. Multiple pathways that converge to common integrators are most probably involved. We propose several pathways involving not only the classical hormones auxin, cytokinins and strigolactones, but also other signals with a strong influence on shoot branching such as gibberellins, sugars or molecular actors of plant phase transition. We also deal with recent findings about the molecular mechanisms and the pathway involved in the response to shade as an example of an environmental signal controlling branching. We propose the TEOSINTE BRANCHED1, CYCLOIDEA, PCF transcription factor TB1/BRC1 and the polar auxin transport stream in the stem as possible integrators of these pathways. We finally discuss how modeling can help to represent this highly dynamic system by articulating knowledges and hypothesis and calculating the phenotype properties they imply.
axillary bud outgrowth, 570, flowering, Cytokinins, polar auxin transport, Plant culture, modeling, axillary bud outgrowth;apical dominance;polar auxin transport;strigolactone;cytokinins;shade avoudance;flowering;modeling, Plant Science, SB1-1110, apical dominance, cytokinins, [SDV.BV]Life Sciences [q-bio]/Vegetal Biology, [SDV.BV] Life Sciences [q-bio]/Vegetal Biology, strigolactone, shade avoidance
axillary bud outgrowth, 570, flowering, Cytokinins, polar auxin transport, Plant culture, modeling, axillary bud outgrowth;apical dominance;polar auxin transport;strigolactone;cytokinins;shade avoudance;flowering;modeling, Plant Science, SB1-1110, apical dominance, cytokinins, [SDV.BV]Life Sciences [q-bio]/Vegetal Biology, [SDV.BV] Life Sciences [q-bio]/Vegetal Biology, strigolactone, shade avoidance
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