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Enoki, Winter Mushroom · 1998 · Comparative Study

Low relevance

Comparing plant and fungal gravitropism using imitational models based on reiterative computation.

Flammulina velutipes

Immune support
SpeciesEnoki, Winter Mushroom
JournalAdvances in space research: the official journal of the Committee on Space Research (COSPAR)
Year1998

Key points

  • Mathematical models which imitate plant gravitropic responses were used to compare plant and fungal gravitropism with kinetic data from the agarics Coprinus cinereus and Flammulina velutipes
  • Similarities were: bending depends on differential growth; growth of the organ is most intensive just behind the apex; gravitropisms exhibit a substantial time delay
  • Differences were: the agaric stem apex always returns to the vertical (some plant organs show stable plagiogravitropic growth); curvature compensation occurred in C. cinereus; C. cinereus stems rarely overshot or oscillated around the vertical although data for F. velutipes showed a single overshoot and oscillation
  • The work focused attention on the need for data on detection-level thresholds, angle-response and acceleration-response relationships in fungi, and the need for detailed observations of gravitropism kinetics in a larger number and wider range of fungi

Metadata-grounded summary

Citation abstract

Mathematical models which imitate plant gravitropic responses were used to compare plant and fungal gravitropism with kinetic data from the agarics Coprinus cinereus and Flammulina velutipes. Similarities were: bending depends on differential growth; growth of the organ is most intensive just behind the apex; gravitropisms exhibit a substantial time delay. Differences were: the agaric stem apex always returns to the vertical (some plant organs show stable plagiogravitropic growth); curvature compensation occurred in C. cinereus; C. cinereus stems rarely overshot or oscillated around the vertical although data for F. velutipes showed a single overshoot and oscillation. The work focused attention on the need for data on detection-level thresholds, angle-response and acceleration-response relationships in fungi, and the need for detailed observations of gravitropism kinetics in a larger number and wider range of fungi.

Citation

Moore D, Stockus A (1998). Comparing plant and fungal gravitropism using imitational models based on reiterative computation. Advances in space research: the official journal of the Committee on Space Research (COSPAR) https://doi.org/10.1016/s0273-1177(97)00632-7 PMID: 11541369

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