Rhizoids and protonemata of characean algae: model cells for research on polarized growth and plant gravity sensing

Protoplasma. 2006 Dec;229(2-4):133-42. doi: 10.1007/s00709-006-0208-9. Epub 2006 Dec 16.

Abstract

Gravitropically tip-growing rhizoids and protonemata of characean algae are well-established unicellular plant model systems for research on gravitropism. In recent years, considerable progress has been made in the understanding of the cellular and molecular mechanisms underlying gravity sensing and gravity-oriented growth. While in higher-plant statocytes the role of cytoskeletal elements, especially the actin cytoskeleton, in the mechanisms of gravity sensing is still enigmatic, there is clear evidence that in the characean cells actin is intimately involved in polarized growth, gravity sensing, and the gravitropic response mechanisms. The multiple functions of actin are orchestrated by a variety of actin-binding proteins which control actin polymerisation, regulate the dynamic remodelling of the actin filament architecture, and mediate the transport of vesicles and organelles. Actin and a steep gradient of cytoplasmic free calcium are crucial components of a feedback mechanism that controls polarized growth. Experiments performed in microgravity provided evidence that actomyosin is a key player for gravity sensing: it coordinates the position of statoliths and, upon a change in the cell's orientation, directs sedimenting statoliths to specific areas of the plasma membrane, where contact with membrane-bound gravisensor molecules elicits short gravitropic pathways. In rhizoids, gravitropic signalling leads to a local reduction of cytoplasmic free calcium and results in differential growth of the opposite subapical cell flanks. The negative gravitropic response of protonemata involves actin-dependent relocation of the calcium gradient and displacement of the centre of maximal growth towards the upper flank. On the basis of the results obtained from the gravitropic model cells, a similar fine-tuning function of the actomyosin system is discussed for the early steps of gravity sensing in higher-plant statocytes.

Publication types

  • Research Support, Non-U.S. Gov't
  • Review

MeSH terms

  • Actomyosin / metabolism
  • Calcium / metabolism
  • Cell Membrane / metabolism
  • Cell Polarity*
  • Characeae / growth & development*
  • Characeae / metabolism
  • Characeae / physiology
  • Cytoskeleton / metabolism
  • Gravitation*
  • Gravitropism*
  • Gravity Sensing*
  • Mechanotransduction, Cellular*
  • Weightlessness

Substances

  • Actomyosin
  • Calcium