Plant water status and genotype affect fruit respiration in grapevines.


Journal

Physiologia plantarum
ISSN: 1399-3054
Titre abrégé: Physiol Plant
Pays: Denmark
ID NLM: 1256322

Informations de publication

Date de publication:
Aug 2020
Historique:
received: 08 09 2019
revised: 09 02 2020
accepted: 10 02 2020
pubmed: 19 3 2020
medline: 25 9 2020
entrez: 19 3 2020
Statut: ppublish

Résumé

An understanding of fruit gas exchange is necessary to determine the carbon balance in grapevines, but little attention has been paid to the relationships among fruit respiration, plant water status and genetic variability. The effect of plant water status and genotype on cluster respiration was studied over two seasons (2013 and 2014) under field conditions using a whole cluster respiration chamber. Whole cluster CO

Identifiants

pubmed: 32187689
doi: 10.1111/ppl.13093
doi:

Substances chimiques

Water 059QF0KO0R
Carbon 7440-44-0

Types de publication

Journal Article

Langues

eng

Sous-ensembles de citation

IM

Pagination

544-554

Subventions

Organisme : Ministerio de Ciencia y Tecnología
ID : AGL-2014-54201-C4-1R
Organisme : Ministerio de Economía y Competitividad
ID : AGL-2011-30408-C04-01
Organisme : Spanish Ministry of Science and Technology
Organisme : Ministry of Economy

Informations de copyright

© 2020 Scandinavian Plant Physiology Society.

Références

Aschan G, Pfanz H (2003) Non-foliar photosynthesis - a strategy of additional carbon acquisition. Flora 198: 81-97
Bota J, Flexas J, Medrano H (2001) Genetic variability of photosynthesis and water use in Balearic grapevine cultivars. Ann Appl Biol 138: 353-361
Bota J, Tomás M, Flexas J, Medrano H, Escalona JM (2016) Differences among grapevine cultivars in their stomatal behavior and water use efficiency under progressive water stress. Agric Water Manag 164: 91-99
Brazel AJ, Ó'Maoiléidigh DS (2019) Photosynthetic activity of reproductive organs. J Exp Bot 70: 1737-1754. https://doi.org/10.1093/jxb/erz033
Breia R, Vieira S, Da Silva JM, Gerós H, Cunha A (2013) Mapping grape berry photosynthesis by chlorophyll fluorescence imaging: the effect of saturating pulse intensity in different tissues. Photochem Photobiol 89: 579-585
Carrara S, Pardossi A, Soldatini GF, Tognoni F, Guidi L (2001) Photosynthetic activity of ripening tomato fruit. Photosynthetica 39: 75-78
Dokoozlian NK, Kliewer WM (1996) Influence of light on grape berry growth and composition varies during fruit development. J Am Soc Hort Sci 121: 869-874
Douthe C, Medrano H, Tortosa I, Escalona JM, Hernández-Montes E, Pou A (2018) Whole-plant water use in field grown grapevine: seasonal and environmental effects on water and carbon balance. Front Plant Sci 9: 1540
Escalona JM, Flexas J, Bota J, Medrano H (2003) Distribution of leaf photosynthesis and transpiration within grapevine canopies under different drought conditions. Vitis 42: 57-64
Flexas J, Galmés J, Gallé A, Gulías J, Pou A, Ribas-Carbo M, Tomàs M, Medrano H (2010) Improving water use efficiency in grapevines: potential physiological targets for biotechnological improvement. Aust J Grape Wine R 16: 106-121
Giacosa S, Torchio F, Segade SR, Gaiotti F, Tomasi D, Lovat L, Vincenzi S, Rolle L (2012) Physico-mechanical evaluation of the aptitude of berries of red wine grape varieties to resist the compression in carbonic maceration vinification. Int J Food Sci Technol 2013: 817-825
Gomez-del-Campo M, Ruiz C, Lissarrague JR (2002) Effect of water stress on leaf area development, photosynthesis, and productivity in chardonnay and Airen grapevines. Am J Enol Viticult 53: 138-143
Harris JM (1971) Grape berry respiration: effects of metabolic inhibitors. Vitis 9: 291-298
Hernández-Montes E, Escalona JM, Tomás M, Medrano H (2017) Influence of water availability and grapevine phenological stage on the spatial variation in soil respiration. Aust J Grape Wine R 23: 273-279
Hernández-Montes E (2017) Respiratory processes and carbon balance in grapevines: environmental and genotype effects. PhD Thesis. Balearic Islands University, Palma de Mallorca.
Ho QT, Verboven P, Verlinden BE, Lammertyn J, Vandewalle S, Nicolaï BM (2008) A continuum model for metabolic gas exchange in pear fruit. PLoS Comput Biol 4: e1000023. https://doi.org/10.1371/journal.pcbi.1000023
Keller M (2015) The Science of Grapevines: Anatomy and Physiology, 2nd Edn. Elsevier Academic Press, Burlington, MA
Navarra A, Tubiana L (2013) Regional Assessment of Climate Change in the Mediterranean. Air, Sea and Precipitation and Water, Vol. 1. Springer Science and Business Media, Dordrecht
Ollat N, Gaudillère JP (2000) Carbon balance in developing grapevine berries. Acta Hortic 526: 345-350
Palliotti A, Cartechini A (2001) Developmental changes in gas exchange activity in flowers, berries and tendrils of field-grown cabernet sauvignon. Am J Enol Vitic 52: 317-323
Palliotti A, Cartechini A (2005) Respiration activity in different above-ground organs of Vitis vinifera L. in response to temperature and developmental stage. Acta Hortic 689: 159-166
Poni S, Bernizzoni F, Civardi S, Gatti M, Porro D, Camin F (2009) Performance and water-use efficiency (single-leaf vs. whole-canopy) of well-watered and half-stressed split-root Lambrusco grapevines grown in Po Valley (Italy). Agric Ecosyst Environ 129: 97-106
Porro D, Ramponi M, Tomasi T, Rolle L (2010) Nutritional implications of water stress in grapevine and modifications of mechanical properties of berries. Acta Hortic 868: 73-80
Tarara JM, Peña JEP, Keller M, Schreiner RP, Smithyman RP (2011) Net carbon exchange in grapevine canopies responds rapidly to timing and extent of regulated deficit irrigation. Funct Plant Biol 38: 386-400
Zhang Y, Keller M (2015) Grape berry transpiration is determined by vapor pressure deficit, cuticular conductance, and berry size. Am J Enol Vitic 66: 454-462

Auteurs

Esther Hernández-Montes (E)

Research Group in Plant Biology under Mediterranean Conditions, Biology Department, Balearic Island University (UIB), 07122, Palma de Mallorca, Spain.
Irrigated Agriculture Research and Extension Center, Washington State University, 24106 N. Bunn Road, Prosser, WA, 99350, USA.

José Mariano Escalona (JM)

Research Group in Plant Biology under Mediterranean Conditions, Biology Department, Balearic Island University (UIB), 07122, Palma de Mallorca, Spain.

Magdalena Tomàs (M)

Research Group in Plant Biology under Mediterranean Conditions, Biology Department, Balearic Island University (UIB), 07122, Palma de Mallorca, Spain.

Hipólito Medrano (H)

Research Group in Plant Biology under Mediterranean Conditions, Biology Department, Balearic Island University (UIB), 07122, Palma de Mallorca, Spain.

Articles similaires

Populus Soil Microbiology Soil Microbiota Fungi

Perceptions of the neighbourhood food environment and food insecurity of families with children during the Covid-19 pandemic.

Irene Carolina Sousa Justiniano, Matheus Santos Cordeiro, Hillary Nascimento Coletro et al.
1.00
Humans COVID-19 Food Insecurity Cross-Sectional Studies Female
Animals Dietary Fiber Dextran Sulfate Mice Disease Models, Animal
Fragaria Light Plant Leaves Osmosis Stress, Physiological

Classifications MeSH