ISOPRENE EMISSION FROM PLANTS
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- 1 June 2001
- journal article
- Published by Annual Reviews in Annual Review of Plant Biology
- Vol. 52 (1) , 407-436
- https://doi.org/10.1146/annurev.arplant.52.1.407
Abstract
▪ Abstract Very large amounts of isoprene are emitted from vegetation, especially from mosses, ferns, and trees. This hydrocarbon flux to the atmosphere, roughly equal to the flux of methane, has a large effect on the oxidizing potential of the atmosphere. Isoprene emission results from de novo synthesis by the deoxyxylulose phosphate/methyl erythritol 4-phosphate pathway in plastids. Dimethylallyl pyrophosphate made by this pathway is converted to isoprene by isoprene synthase. Isoprene synthase activity in plants has a high pH optimum and requirement for Mg2+ that is consistent with its location inside chloroplasts. Isoprene emission costs the plant significant amounts of carbon, ATP, and reducing power. Researchers hypothesize that plants benefit from isoprene emission because it helps photosynthesis recover from short high-temperature episodes. The evolution of isoprene emission may have been important in allowing plants to survive the rapid temperature changes that can occur in air because of the very low heat capacity of isoprene relative to water.Keywords
This publication has 160 references indexed in Scilit:
- Analysis of O3 formation during a stagnation episode in central Tennessee in summer 1995Journal of Geophysical Research: Atmospheres, 2000
- Canopy fluxes of 2‐methyl‐3‐buten‐2‐ol over a ponderosa pine forest by relaxed eddy accumulation: Field data and model comparisonJournal of Geophysical Research: Atmospheres, 1999
- Isoprene in the marine boundary layer (southeast Asian Sea, eastern Indian Ocean, and Southern Ocean): Comparison with dimethyl sulfide and bromoformJournal of Geophysical Research: Atmospheres, 1999
- Defoliation effects on isoprene emission from Populus deltoidesOecologia, 1999
- Ecological and evolutionary aspects of isoprene emission from plantsOecologia, 1999
- C 4 photosynthesis, atmospheric CO 2 , and climateOecologia, 1997
- Biosynthesis of isoprenoids in higher plant chloroplasts proceeds via a mevalonate‐independent pathwayFEBS Letters, 1997
- A global model of natural volatile organic compound emissionsJournal of Geophysical Research: Atmospheres, 1995
- Emissions of volatile organic compounds from vegetation and the implications for atmospheric chemistryGlobal Biogeochemical Cycles, 1992
- What Do the Hydrocarbons from Trees Contribute to Air Pollution?Journal of the Air Pollution Control Association, 1972