Photosynthesis and photoprotection in coffee leaves is affected by nitrogen and light availabilities in winter conditions

J Plant Physiol. 2010 Sep 1;167(13):1052-60. doi: 10.1016/j.jplph.2010.03.001. Epub 2010 Apr 8.

Abstract

Coffee is native to shady environments but often grows better and produces higher yields without shade, though at the expense of high fertilization inputs, particularly nitrogen (N). Potted plants were grown under full sunlight and shade (50%) conditions and were fertilized with nutrient solutions containing either 0 or 23 mM N. Measurements were made in southeastern Brazil during winter conditions, when relatively low night temperatures and high diurnal insolation are common. Overall, the net carbon assimilation rate was quite low, which was associated with diffusive, rather than biochemical, constraints. N deficiency led to decreases in the concentrations of chlorophylls (Chl) and total carotenoids as well as in the Chl/N ratio. These conditions also led to qualitative changes in the carotenoid composition, e.g., increased antheraxanthin (A) and zeaxanthin (Z) pools on a Chl basis, particularly at high light, which was linked to increased thermal dissipation of absorbed light. The variable-to-maximum fluorescence ratio at predawn decreased with increasing A+Z pools and decreased linearly with decreasing N. We showed that this ratio was inadequate for assessing photoinhibition under N limitation. Expressed per unit mass, the activities of superoxide dismutase and glutathione reductase were not altered with the treatments. In contrast, ascorbate peroxidase activity was lower in low N plants, particularly under shade, whereas catalase activity was lower in shaded plants than in sun-grown plants, regardless of the N level. Glutamine synthetase activity was greater in sun-grown plants than in shaded individuals at a given N level and decreased with decreasing N application. Our results suggest that the photoprotective and antioxidant capacity per amount of photons absorbed was up-regulated by a low N supply; nevertheless, this capacity, regardless of the light conditions, was not enough to prevent oxidative damage, as judged from the increases in the H(2)O(2) and malondialdehyde concentrations and electrolyte leakage. We demonstrated that N fertilization could adequately protect the coffee plants against photodamage independently of the anticipated positive effects of N on the photosynthetic capacity.

Publication types

  • Research Support, Non-U.S. Gov't

MeSH terms

  • Brazil
  • Carbon / metabolism
  • Chlorophyll / metabolism
  • Coffee / drug effects
  • Coffee / enzymology
  • Coffee / radiation effects
  • Fluorescence
  • Hydrogen Peroxide / metabolism
  • Light*
  • Malondialdehyde / metabolism
  • Nitrogen / pharmacology*
  • Photosynthesis / drug effects*
  • Photosynthesis / radiation effects*
  • Plant Leaves / drug effects*
  • Plant Leaves / enzymology
  • Plant Leaves / radiation effects*
  • Seasons*
  • Temperature
  • Time Factors

Substances

  • Coffee
  • Chlorophyll
  • Malondialdehyde
  • Carbon
  • Hydrogen Peroxide
  • Nitrogen