» Articles » PMID: 16659982

Oxygen Inhibition of Photosynthesis: II. Kinetic Characteristics As Affected by Temperature

Overview
Journal Plant Physiol
Specialty Physiology
Date 1977 May 1
PMID 16659982
Citations 30
Authors
Affiliations
Soon will be listed here.
Abstract

The response of whole leaf photosynthesis of wheat (Triticum aestivum L.) in relation to soluble CO(2) available to the mesophyll cells, under low (1.5%) O(2) at 25, 30, and 35 C, followed Michaelis-Menten kinetics up to saturating CO(2) but deviated at high CO(2) levels where the experimental V(max) is considerably less than the calculated V(max). The affinity of the leaves for CO(2) during photosynthesis was similar from 25 to 35 C with Km (CO(2)) values of approximately 3.5 to 5 muM.In considering the effect of O(2) on photosynthesis at 25, 30, and 35 C where O(2) and CO(2) are expressed on a solubility basis: (a) the effect of O(2) on carboxylation efficiency was similar at the three temperature; (b) increasing temperature caused only a slight increase in kinetic constants Ki(O(2)) and Km(CO(2)), while the ratio of Ki(O(2))/Km(CO(2)) was similar at the three temperatures; and (c) the reciprocal plots of apparent rate of photosynthesis versus (CO(2) - Gamma) at various O(2) levels showed O(2) to be a competitive inhibitor of photosynthesis.A model for separating O(2) inhibition of photosynthesis into two components, direct competitive inhibition and inhibition due to photorespiration, was presented from both simulated and experimental data of photosynthetic response curves to varying CO(2) concentrations at low O(2)versus 21% O(2). The photorespiratory part of O(2) inhibition is considered as a major component at Gamma and increases with increasing temperature and with increase in O(2)/CO(2) solubility ratio. The competitive component of O(2) inhibition is considered as a major component of O(2) inhibition under atmospheric CO(2) levels and is relatively independent of temperature at a given O(2)/CO(2) ratio.

Citing Articles

Understanding the photosynthesis in relation to climate change in grapevines.

Somkuwar R, Dhole A Theory Biosci. 2025; .

PMID: 39953364 DOI: 10.1007/s12064-025-00435-w.


From source to sink: mechanistic insight of photoassimilates synthesis and partitioning under high temperature and elevated [CO].

Lal M, Sharma N, Adavi S, Sharma E, Altaf M, Tiwari R Plant Mol Biol. 2022; 110(4-5):305-324.

PMID: 35610527 DOI: 10.1007/s11103-022-01274-9.


Climate Change Impacts on Sunflower ( L.) Plants.

Aguera E, de la Haba P Plants (Basel). 2021; 10(12).

PMID: 34961117 PMC: 8705722. DOI: 10.3390/plants10122646.


Photosynthetic Metabolism under Stressful Growth Conditions as a Bases for Crop Breeding and Yield Improvement.

Morales F, Ancin M, Fakhet D, Gonzalez-Torralba J, Gamez A, Seminario A Plants (Basel). 2020; 9(1).

PMID: 31936732 PMC: 7020424. DOI: 10.3390/plants9010088.


Structure of Rubisco from Arabidopsis thaliana in complex with 2-carboxyarabinitol-1,5-bisphosphate.

Valegard K, Hasse D, Andersson I, Gunn L Acta Crystallogr D Struct Biol. 2018; 74(Pt 1):1-9.

PMID: 29372894 PMC: 5786004. DOI: 10.1107/S2059798317017132.


References
1.
Akita S, Moss D . The Effect of an Oxygen-free Atmosphere on Net Photosynthesis and Transpiration of Barley (Hordeum vulgare L.) and Wheat (Triticum aestivum L.) Leaves. Plant Physiol. 1973; 52(6):601-3. PMC: 366554. DOI: 10.1104/pp.52.6.601. View

2.
Lilley R, Walker D . Carbon dioxide assimilation by leaves, isolated chloroplasts, and ribulose bisphosphate carboxylase from spinach. Plant Physiol. 1975; 55(6):1087-92. PMC: 541772. DOI: 10.1104/pp.55.6.1087. View

3.
Jones H, Slatyer R . Estimation of the transport and carboxylation components of the intracellular limitation to leaf photosynthesis. Plant Physiol. 1972; 50(2):283-8. PMC: 366125. DOI: 10.1104/pp.50.2.283. View

4.
Ludwig L, Canvin D . The Rate of Photorespiration during Photosynthesis and the Relationship of the Substrate of Light Respiration to the Products of Photosynthesis in Sunflower Leaves. Plant Physiol. 1971; 48(6):712-9. PMC: 396934. DOI: 10.1104/pp.48.6.712. View

5.
Forrester M, Krotkov G, Nelson C . Effect of oxygen on photosynthesis, photorespiration and respiration in detached leaves. I. Soybean. Plant Physiol. 1966; 41(3):422-7. PMC: 1086359. DOI: 10.1104/pp.41.3.422. View