Early growth phase and caffeine content response to recent and projected increases in atmospheric carbon dioxide in coffee (Coffea arabica and C. canephora).


Journal

Scientific reports
ISSN: 2045-2322
Titre abrégé: Sci Rep
Pays: England
ID NLM: 101563288

Informations de publication

Date de publication:
03 04 2020
Historique:
received: 06 09 2019
accepted: 16 03 2020
entrez: 5 4 2020
pubmed: 5 4 2020
medline: 26 11 2020
Statut: epublish

Résumé

While [CO

Identifiants

pubmed: 32246092
doi: 10.1038/s41598-020-62818-x
pii: 10.1038/s41598-020-62818-x
pmc: PMC7125137
doi:

Substances chimiques

Carbon Dioxide 142M471B3J
Caffeine 3G6A5W338E

Types de publication

Journal Article

Langues

eng

Sous-ensembles de citation

IM

Pagination

5875

Subventions

Organisme : NIEHS NIH HHS
ID : P30 ES009089
Pays : United States

Références

Burton, D. A. 2020. Sea-Level information. https://www.sealevel.info/co2_and_ch4.html .
Cure, J. D. & Acock, B. Crop responses to carbon dioxide doubling: a literature survey. Agric. For. Meteorol. 38, 127–145 (1986).
doi: 10.1016/0168-1923(86)90054-7
Kimball, B. A., Kobayashi, K. & Bindi, M. Responses of agricultural crops to free-air CO
doi: 10.1016/S0065-2113(02)77017-X
Loladze, I. Hidden shift of the ionome of plants exposed to elevated CO
doi: 10.7554/eLife.02245 pubmed: 4034684 pmcid: 4034684
Gamage, D. et al. New insights into the cellular mechanisms of plant growth at elevated atmospheric carbon dioxide concentrations. Plant, Cell Environ. 41, 1233–1246 (2018).
doi: 10.1111/pce.13206
Bertolino, L. T., Caine, R. S. & Gray, J. E. Impact of stomatal density and morphology on water-use efficiency in a changing world. Front. Plant Sci. 10, 225 (2019).
doi: 10.3389/fpls.2019.00225 pubmed: 6414756 pmcid: 6414756
Ahmed, F. E., Hall, A. E. & Madore, M. A. Interactive effects of high temperature and elevated carbon dioxide concentration on cowpea (Vigna unguiculata (L.) Walp.). Plant, Cell Environ. 16, 835–842 (1993).
doi: 10.1111/j.1365-3040.1993.tb00505.x
Bunce, J. A. Contrasting responses of seed yield to elevated carbon dioxide under field conditions within Phaseolus vulgaris. Agric., Ecosyst. Environ. 128, 219–224 (2008).
doi: 10.1016/j.agee.2008.06.003
Shimono, H. et al. Genotypic variation in rice yield enhancement by elevated CO
doi: 10.1093/jxb/ern288 pubmed: 2651455 pmcid: 2651455
Hasegawa, T. et al. Rice cultivar responses to elevated CO
doi: 10.1071/FP12357
Wang, D. R. et al. Evidence for divergence of response in Indica, Japonica, and wild rice to high CO
doi: 10.1111/gcb.13279
Ziska, L. H., Morris, C. F. & Goins, E. W. Quantitative and qualitative evaluation of selected wheat varieties released since 1903 to increasing atmospheric carbon dioxide: can yield sensitivity to carbon dioxide be a factor in wheat performance? Global Change Biol. 10, 1810–1819 (2004).
doi: 10.1111/j.1365-2486.2004.00840.x
Bunce, J. Using FACE systems to screen wheat cultivars for yield increases at elevated CO
doi: 10.3390/agronomy7010020
Li, Y. et al. Soybean intraspecific genetic variation in response to elevated CO
doi: 10.1080/03650340.2019.1575958
Osorio, N. The global coffee crisis: a threat to sustainable development. International Coffee Organization, London, http://dev.ico.org/documents/globalcrisise.pdf (2002).
Davis, A. P., Chadburn, H., Moat, J., O’Sullivan, R. & Hargreaves, S. E. Nic Lughadha, High extinction risk for wild coffee species and implications for coffee sector sustainability. Sci. Adv. 5, eaav3473 (2019).
doi: 10.1126/sciadv.aav3473 pubmed: 6357749 pmcid: 6357749
USDA-FAS, Coffee: world markets and trade. United States Department of Agriculture, Foreign Agricultural Service https://downloads.usda.library.cornell.edu/usda-esmis/files/m900nt40f/xk81jw68v/kp78gs60d/coffee.pdf (June 2019).
DaMatta, F. M. et al. Sustained enhancement of photosynthesis in coffee trees grown under free-air CO
doi: 10.1093/jxb/erv463
Ramalho, J. C. et al. Sustained photosynthetic performance of Coffea spp. under long-term enhanced [CO
doi: 10.1371/journal.pone.0082712 pubmed: 3855777 pmcid: 3855777
Ramalho, J. C. et al. Can elevated air [CO
doi: 10.3389/fpls.2018.00287 pubmed: 5845708 pmcid: 5845708
Martins, L. D., Tomaz, M. A., Lidon, F. C., DaMatta, F. M. & Ramalho, J. C. Combined effects of elevated [CO
doi: 10.1007/s10584-014-1236-7
Rodrigues, W. P. et al. Long-term elevated air [CO
doi: 10.1111/gcb.13088
Sakai, H., Hasegawa, T. & Kobayashi, K. Enhancement of rice canopy carbon gain by elevated CO
doi: 10.1111/j.1469-8137.2006.01688.x
Cotrufo, M. F., Ineson, P. & Scott, A. Elevated CO
doi: 10.1046/j.1365-2486.1998.00101.x
Pleijel, H., Broberg, M. C., Högy, P. & J. Uddling, P. Nitrogen application is required to realize wheat yield stimulation by elevated CO
doi: 10.1111/gcb.14586
Zhu, C. et al. Carbon dioxide (CO
doi: 10.1126/sciadv.aaq1012 pubmed: 5966189 pmcid: 5966189
Levinson, H. Z. The defensive role of alkaloids in insects and plants. Experientia 32, 408–411 (1976).
doi: 10.1007/BF01920763
Nathanson, J. A. Caffeine and related methylxanthines: possible naturally occurring pesticides. Science 226, 184–187 (1984).
doi: 10.1126/science.6207592
Vega, F. E., Blackburn, M. B., Kurtzman, C. P. & Dowd, P. F. Identification of a coffee berry borer-associated yeast: does it break down caffeine? Entomol. Exp. Appl. 107, 19–24 (2003).
doi: 10.1046/j.1570-7458.2003.00034.x
Araque, P., Casanova, H., Ortiz, C., Henao, B. & Peláez, C. Insecticidal activity of caffeine aqueous solutions and caffeine oleate emulsions against Drosophila melanogaster and Hypothenemus hampei. J. Agric. Food Chem. 55, 6918–6922 (2007).
doi: 10.1021/jf071052b
Davis, A. P., Gole, T. W., Baena, S. & Moat, J. The impact of climate change on natural populations of Arabica coffee: predicting future trends and identifying priorities. PLoS ONE 7, e47981 (2012).
doi: 10.1371/journal.pone.0047981 pubmed: 23144840 pmcid: 23144840
Curtis, P. S., Snow, A. A. & Miller, A. S. Genotype-specific effects of elevated CO
doi: 10.1007/BF00317913
Ziska, L. H. et al. Food security and climate change: on the potential to adapt global crop production by active selection to rising atmospheric carbon dioxide. Proc. Roy. Soc. London, Ser. B 279, 4097–4105 (2012).
doi: 10.1098/rspb.2012.1005
Ainsworth, E. A. & Long, S. P. What have we learned from 15 years of free-air CO
doi: 10.1111/j.1469-8137.2004.01224.x
Resco de Dios, V., Mereed, T. E., Ferrio, J. P., Tissue, D. T. & Voltas, J. Intraspecific variation in juvenile tree growth under elevated CO
doi: 10.1093/treephys/tpw026 pubmed: 27083522 pmcid: 27083522
Ainsworth, E. A. The importance of intraspecific variation in tree responses to elevated [CO2]: breeding and management of future forests. Tree Physiol. 36, 679–681 (2016).
doi: 10.1093/treephys/tpw039
Aspinwall, M. J. et al. Tissue, photosynthesis and carbon allocation are both important predictors of genotype productivity responses to elevated CO
doi: 10.1093/treephys/tpy045
Ziska, L. H. et al. Climate change, carbon dioxide, and pest biology, managing the future: coffee as a case study. Agronomy 8, 152 (2018).
doi: 10.3390/agronomy8080152
Shimono, H. et al. Prescreening in large populations as a tool for identifying elevated CO
doi: 10.1071/FP18087
Otto, S. P. The evolutionary consequences of polyploidy. Cell 131, 452–462 (2007).
doi: 10.1016/j.cell.2007.10.022
Krug, C. A. & Mendes, A. J. T. Cytological observations in Coffea IV. J. Genet. 39, 189–203 (1940).
doi: 10.1007/BF02982835
Krug, C. A., Carvalho, A. The genetics of Coffea. Adv. Genet. 4, 127–158 (1951).
Franco, C. M. Relation between chromosome number and stomata in Coffea. Bot. Gaz. 100, 817–827 (1939).
doi: 10.1086/334832
Mishra, M. K. Stomatal characteristics at different ploidy levels in Coffea L. Ann. Bot. 80, 689–692 (1997).
doi: 10.1006/anbo.1997.0491
Osabe, K. et al. Multiple mechanisms and challenges for the application of allopolyploidy in plants. Int. J. Mol. Sci. 13, 8696–8721 (2012).
doi: 10.3390/ijms13078696 pubmed: 22942729 pmcid: 22942729
Comai, L. The advantages and disadvantages of being polyploid. Nat. Rev. Genet. 6, 836–846 (2005).
doi: 10.1038/nrg1711
Okamoto, S. et al. Self-compatibility in Brassica napus is caused by independent mutations in S-locus genes. Plant J. 50, 391–400 (2007).
doi: 10.1111/j.1365-313X.2007.03058.x pubmed: 17425715 pmcid: 17425715
Wright, S. I., Kalisz, S. & Slotte, T. Evolutionary consequences of self-fertilization in plants. Proc. R. Soc. B 280, 20130133 (2013).
doi: 10.1098/rspb.2013.0133
Anthony, F. et al. The origin of cultivated Coffea arabica L. varieties revealed by AFLP and SSR markers. Theor. Appl. Genet. 104, 894–900 (2002).
doi: 10.1007/s00122-001-0798-8 pubmed: 12582651 pmcid: 12582651
Moat, J. et al. Resilience potential of the Ethiopian coffee sector under climate change. Nat. Plants 3, 17081 (2017).
doi: 10.1038/nplants.2017.81
Farooq, M., Wahid, A., Kobayashi, N., Fujita, D. & Basra, S. M. A. Plant drought stress: effects, mechanisms and management. Agron. Sust. Develop. 29, 185–212 (2009).
doi: 10.1051/agro:2008021
van der Vossen, H. A. M. Coffee selection and breeding, in Coffee. Botany, Biochemistry and Production of Beans and Beverage, Clifford, M. N., Willson, K. C., Eds., pp. 48–96 (Croom Helm, 1985).
Wrigley, G. Coffee (Longman Scientific & Technical, 1988).
Wellman, F. L. Coffee: Botany, Cultivation, and Utilization (Leonard Hill [Books] Ltd., 1961).
Vega, F. E. The rise of coffee. Am. Sci. 96, 138–145 (2008).
doi: 10.1511/2008.70.3640
Ashihara, H. & Suzuki, T. Distribution and biosynthesis of caffeine in plants. Front. Biosci. 9, 1864–1876 (2004).
doi: 10.2741/1367
Davis, A. P., Govaerts, R., Bridson, D. M. & Stoffelen, P. An annotated taxonomic conspectus of the genus Coffea (Rubiaceae). Bot. J. Linn. Soc. 152, 465–512 (2006).
doi: 10.1111/j.1095-8339.2006.00584.x
Davis, A. P. et al. Coffee Atlas of Ethiopia. Royal Botanic Gardens, Kew (2018).
Robinson, J. M. Photosynthetic carbon metabolism in leaves and isolated chloroplasts from spinach plants grown under short and intermediate photosynthetic periods. Plant Physiol. 75, 397–409 (1984).
doi: 10.1104/pp.75.2.397 pubmed: 1066920 pmcid: 1066920
National Oceanic and Atmospheric Administration (NOAA). Earth System Research Laboratory, Global Monitoring Division. http://www.esrl.noaa.gov/gmd/ccgg/trends/ .
Dias Chaves, J. C., Miyazawa, M., de, M., Mesarina Bloch, F. & Yamakami, J. K. Estimativa do teor de cafeína nas sementas de café baseada na sua concentração nas folhas de mudas e de plantas adultas. Acta Scientiarum. Agronomy 26, 287–292 (2004).
De Moraes, B. F. X. et al. Correlação entre teor de cafeína em folhas e grãos de café. XIX Congresso de Pos-Graduacao da UFLA, 27 de setembro a 01 de outubro de 2010, 5 pp. (2010).
Mazzafera, P. & Magalhães, A. C. Cafeína em folhas e sementes de Coffea e Paracoffea. Rev. Bras. Bot. 14, 157–160 (1991).

Auteurs

Fernando E Vega (FE)

Sustainable Perennial Crops Laboratory, U. S. Department of Agriculture, Agricultural Research Service, Beltsville, MD, 20705, USA. Fernando.Vega@ars.usda.gov.

Lewis H Ziska (LH)

Adaptive Cropping Systems Laboratory, U. S. Department of Agriculture, Agricultural Research Service, Beltsville, MD, 20705, USA.
Environmental Health Sciences, Mailman School of Public Health, Columbia University, New York, NY, 10032, USA.

Ann Simpkins (A)

Sustainable Perennial Crops Laboratory, U. S. Department of Agriculture, Agricultural Research Service, Beltsville, MD, 20705, USA.

Francisco Infante (F)

El Colegio de la Frontera Sur (ECOSUR), Tapachula, Chiapas, Mexico.

Aaron P Davis (AP)

Royal Botanic Gardens, Kew, Richmond, Surrey, UK.

Joseph A Rivera (JA)

Coffee Intelligence, LLC, Pasadena, CA, 91105, USA.

Jinyoung Y Barnaby (JY)

Dale Bumpers National Rice Research Center, U. S. Department of Agriculture, Agricultural Research Service, Stuttgart, AR, 72160, USA.

Julie Wolf (J)

Adaptive Cropping Systems Laboratory, U. S. Department of Agriculture, Agricultural Research Service, Beltsville, MD, 20705, USA.

Articles similaires

Photosynthesis Ribulose-Bisphosphate Carboxylase Carbon Dioxide Molecular Dynamics Simulation Cyanobacteria
Genome, Viral Ralstonia Composting Solanum lycopersicum Bacteriophages
Semiconductors Photosynthesis Polymers Carbon Dioxide Bacteria
Fragaria Light Plant Leaves Osmosis Stress, Physiological

Classifications MeSH