1985PLANT PHYSIOLOGYOpen access

Reversibility of Photosynthetic Inhibition in Cotton after Long-Term Exposure to Elevated CO2 Concentrations

Thomas W. Sasek, Evan H. DeLucia, Boyd R. Strain

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Abstract

Cotton (Gossypium hirsutum L. cv Stoneville 213) was grown at 350 and 1000 microliters per liter CO(2). The plants grown at elevated CO(2) concentrations contained large starch pools and showed initial symptoms of visible physical damage. Photosynthetic rates were lower than expected based on instantaneous exposure to high CO(2).A group of plants grown at 1000 microliters per liter CO(2) was switched to 350 microliters per liter CO(2). Starch pools and photosynthetic rates were monitored in the switched plants and in the two unswitched control groups. Photosynthetic rates per unit leaf area recovered to the level of the 350 microliters per liter CO(2) grown control group within four to five days. To assess only nonstomatal limitations to photosynthesis, a measure of photosynthetic efficiencies was calculated (moles CO(2) fixed per square meter per second per mole intercellular CO(2)). Photosynthetic efficiency also recovered to the levels of the 350 microliters per liter CO(2) grown controls within three to four days.Recovery was correlated to a rapid depletion of the starch pool, indicating that the inhibition of photosynthesis is primarily a result of feedback inhibition. However, complete recovery may involve the repair of damage to the chloroplasts caused by excessive starch accumulation. The rapid and complete reversal of photosynthetic inhibition suggests that the appearance of large, strong sinks at certain developmental stages could result in reduction of the large starch accumulations and that photosynthetic rates could recover to near the theoretical capacity during periods of high photosynthate demand.

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Cotton (Gossypium hirsutum L. cv Stoneville 213) was grown at 350 and 1000 microliters per liter CO(2). The plants grown at elevated CO(2) concentrations contained large starch pools and showed initial symptoms of visible physical damage. Photosynthetic rates were lower than expected based on instantaneous exposure to high CO(2).A group of plants grown at 1000 microliters per liter CO(2) was switched to 350 microliters per liter CO(2). Starch pools and photosynthetic rates were monitored in the switched plants and in the two unswitched control groups. Photosynthetic rates per unit leaf area recovered to the level of the 350 microliters per liter CO(2) grown control group within four to five days. To assess only nonstomatal limitations to photosynthesis, a measure of photosynthetic efficiencies was calculated (moles CO(2) fixed per square meter per second per mole intercellular CO(2)). Photosynthetic efficiency also recovered to the levels of the 350 microliters per liter CO(2) grown controls within three to four days.Recovery was correlated to a rapid depletion of the starch pool, indicating that the inhibition of photosynthesis is primarily a result of feedback inhibition. However, complete recovery may involve the repair of damage to the chloroplasts caused by excessive starch accumulation. The rapid and complete reversal of photosynthetic inhibition suggests that the appearance of large, strong sinks at certain developmental stages could result in reduction of the large starch accumulations and that photosynthetic rates could recover to near the theoretical capacity during periods of high photosynthate demand.

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Available abstract

Cotton (Gossypium hirsutum L. cv Stoneville 213) was grown at 350 and 1000 microliters per liter CO(2). The plants grown at elevated CO(2) concentrations contained large starch pools and showed initial symptoms of visible physical damage. Photosynthetic rates were lower than expected based on instantaneous exposure to high CO(2).A group of plants grown at 1000 microliters per liter CO(2) was switched to 350 microliters per liter CO(2). Starch pools and photosynthetic rates were monitored in the switched plants and in the two unswitched control groups. Photosynthetic rates per unit leaf area recovered to the level of the 350 microliters per liter CO(2) grown control group within four to five days. To assess only nonstomatal limitations to photosynthesis, a measure of photosynthetic efficiencies was calculated (moles CO(2) fixed per square meter per second per mole intercellular CO(2)). Photosynthetic efficiency also recovered to the levels of the 350 microliters per liter CO(2) grown controls within three to four days.Recovery was correlated to a rapid depletion of the starch pool, indicating that the inhibition of photosynthesis is primarily a result of feedback inhibition. However, complete recovery may involve the repair of damage to the chloroplasts caused by excessive starch accumulation. The rapid and complete reversal of photosynthetic inhibition suggests that the appearance of large, strong sinks at certain developmental stages could result in reduction of the large starch accumulations and that photosynthetic rates could recover to near the theoretical capacity during periods of high photosynthate demand.

Key concepts: Photosynthesis, Starch, Liter, Animal science, Chemistry, Horticulture, Photosynthetic capacity, Botany

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