THE EFFECT OF SPECIFIC POISONS UPON THE PHOTO-REDUCTION WITH HYDROGEN IN GREEN ALGAE

H Gaffron1

  • 1Department of Chemistry, The University of Chicago, Chicago.

Insights

This study investigated how poisons like cyanide affect algal photoreduction. Results show poisons differentially impact established photoreduction versus adaptation phases, with cyanide strongly inhibiting adaptation.

Area of Science:

  • Biochemistry
  • Photosynthesis Research
  • Algal Metabolism

Background:

  • Algae can perform photoreduction with hydrogen, a process distinct from photosynthesis.
  • Understanding the metabolic regulation of photoreduction is crucial for comprehending algal physiology.
  • Specific enzymatic reactions in algae are known targets for various inhibitory substances.

Purpose of the Study:

  • To investigate the effects of specific poisons on photoreduction in Scenedesmus and similar algae.
  • To differentiate the impact of inhibitors on the steady-state photoreduction versus adaptation and reversal phases.
  • To elucidate the mechanisms by which cyanide, hydroxylamine, dinitrophenol, and carbon monoxide affect algal hydrogen metabolism.

Main Methods:

  • Studied the effects of cyanide, hydroxylamine, dinitrophenol, and carbon monoxide on algal photoreduction.
  • Distinguished between effects on established photoreduction and transition phenomena (adaptation and turnback).
  • Analyzed inhibition rates under aerobic and anaerobic conditions, and varying light intensities.

Main Results:

  • Cyanide inhibits photoreduction more than photosynthesis, suggesting oxygen evolution is less sensitive.
  • Hydroxylamine inhibits photosynthesis by affecting oxygen evolution; it weakly inhibits photoreduction at higher concentrations.
  • Dinitrophenol inhibits carbon dioxide reduction, while carbon monoxide specifically inhibits the hydrogenase system.

Conclusions:

  • Algal adaptation to hydrogen metabolism is highly sensitive to cyanide, more so than steady-state photoreduction.
  • Hydroxylamine affects adaptation similarly to photosynthesis and can protect against the reversal of photoreduction.
  • Poisons exhibit differential effects, highlighting distinct mechanisms in algal photoreduction, adaptation, and photosynthesis.

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