Cell volume homeostasis: Ionic and nonionic mechanisms - The sodium pump in the emergence of animal cells

Wilfred D. Stein*

*Corresponding author for this work

Research output: Contribution to journalArticlepeer-review

40 Scopus citations

Abstract

Plant cells and bacterial cells are surrounded by a massive polysaccharide wall, which constrains their high internal osmotic pressure (tens of atmospheres). Animal cells, in contrast, are in osmotic equilibrium with their environment, have no restraining surround, and can take on a variety of shapes and can change these from moment to moment. This osmotic balance is achieved, in the first place, by the action of the energy-consuming sodium pump, one of the P-type ATPase transport protein family, members of which are found also in bacteria. The pump's action brings about a transmembranal electrochemical gradient of sodium ions, harnessed in a range of transport systems which couple the dissipation of this gradient to establishing a gradient of the coupled substrate. These transport systems include many which are responsible for short-term regulation of the cell's volume in response to acute changes of their osmotic balance. Thus, the primary role of the sodium pump as a regulator of cell volume has been built upon to provide the basis for an enormous variety of physiological functions.

Original languageEnglish
Pages (from-to)231-258
Number of pages28
JournalInternational Review of Cytology
Volume215
DOIs
StatePublished - 2002

Keywords

  • Comparative physiology
  • Evolution
  • Sodium pump
  • Volume regulation
  • Water balance

Fingerprint

Dive into the research topics of 'Cell volume homeostasis: Ionic and nonionic mechanisms - The sodium pump in the emergence of animal cells'. Together they form a unique fingerprint.

Cite this