Morphological Innovation Drives Sperm Release in Bryophytes

Xinxin Zhang,Ang Bian, Junbo Yang, Ye Liang, Zhe Zhang,Meng Yan, Siqi Yuan,Qun Zhang

ADVANCED SCIENCE(2024)

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Abstract
Plant movements for survival are nontrivial. Antheridia in the moss Physcomitrium patens (P. patens) use motion to eject sperm in the presence of water. However, the biological and mechanical mechanisms that actuate the process are unknown. Here, the burst of the antheridium of P. patens, triggered by water, results from elastic instability and is determined by an asymmetric change in cell geometry. The tension generated in jacket cell walls of antheridium arises from turgor pressure, and is further promoted when the inner walls of apex burst in hydration, causing water and cellular contents of apex quickly influx into sperm chamber. The outer walls of the jacket cells are strengthened by NAC transcription factor VNS4 and serve as key morphomechanical innovations to store hydrostatic energy in a confined space in P. patens. However, the antheridium in liverwort Marchantia polymorpha (M. polymorpha) adopts a different strategy for sperm release; like jacket cell outer walls of P. patens, the cells surrounding the antheridium of M. polymorpha appear to play a similar role in the storage of energy. Collectively, the work shows that plants have evolved different ingenious devices for sperm discharge and that morphological innovations can differ. The biomechanics of antheridium burst in moss Physcomitrium patens depend on a single layer of jacket cells that store hydrostatic energy, which results from elastic instability and asymmetric changes in cell geometry. By contrast, the antheridium in liverwort Marchantia polymorpha adopts a different strategy for sperm release, and the cells surrounding the antheridium appear to play a dominant role. image
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Key words
antheridium burst,cell geometry,cell wall mechanics,hydrostatic pressure,Marchantia polymorpha,Physcomitrium patens,sperm release
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