Ll. Cheng et al., The relationship between photosystem II efficiency and quantum yield for CO2 assimilation is not affected by nitrogen content in apple leaves, J EXP BOT, 52(362), 2001, pp. 1865-1872
Bench-grafted Fuji/M.26 apple (Malus domestica Borkh.) trees were fertigate
d with different concentrations of nitrogen by using a modified Hoagland's
solution for 45 d. CO2 assimilation and photosystem II (PSII) quantum effic
iency in response to incident photon flux density (PFD) were measured simul
taneously in recent fully expanded leaves under low O-2 (2%) and saturated
CO2 (1300 mu mol mol(-1)) conditions. A single curvilinear relationship was
found between true quantum yield for CO2 assimilation and PSII quantum eff
iciency for leaves with a wide range of leaf N content. The relationship wa
s linear up to a quantum yield of approximately 0.05 mol CO2 mol-1 quanta.
It then became curvilinear with a further rise in quantum yield in response
to decreasing PFD. This relationship was subsequently used as a calibratio
n curve to assess the rate of non-cyclic electron transport associated with
Rubisco and the partitioning of electron flow between CO2 assimilation and
photorespiration in different N leaves in response to intercellular CO2 co
ncentration (C-i) under normal O-2 conditions. Both the rate of non-cyclic
electron flow and the rate of electron flow to CO2 or O-2 increased with in
creasing leaf N at any given C-i. The percentage of non-cyclic electron flo
w to CO2 assimilation, however, remained the same regardless of leaf N cont
ent. As C-i increased, the percentage of non-cyclic electron flow to CO2 as
similation increased. In conclusion, the relationship between PSII quantum
efficiency and quantum yield for CO2 assimilation and the partitioning of e
lectron flow between CO2 assimilation and photorespiration are not affected
by N content in apple leaves.