Bunch microclimate influence amino acids and phenolic profiles of Pinot noir grape berries
The increase of temperature due to climate change at different phenological stages of grapevine has already been demonstrated to affect accumulation of primary and secondary metabolites in grape berries. This has a significant implication for Pinot noir especially in New Zealand context as these com...
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Published in | Frontiers in plant science Vol. 14; p. 1162062 |
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Language | English |
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Abstract | The increase of temperature due to climate change at different phenological stages of grapevine has already been demonstrated to affect accumulation of primary and secondary metabolites in grape berries. This has a significant implication for Pinot noir especially in New Zealand context as these compounds can have direct and indirect effects on wine quality.
This study investigates how varying bunch microclimate through changes in temperature applied at veraison stage can affect: fresh weight, total soluble solids, the accumulation of anthocyanins, total phenolics and amino acids of the grape berries. This was studied over two growing seasons (2018/19 and 2019/20) with Pinot noir vines being grown at two different temperatures in controlled environment (CE) chambers. The vines were exposed to 800 µmol/m2/s irradiance with diurnal changes in day (22°C or 30°C) and night (15°C) temperatures. This experimental set up enabled us to determine the accumulation of these metabolite at harvest (both seasons) and throughout berry development (second season).
The results showed that berry weight was not influenced by temperature increase. The total soluble solids (TSS) were significantly increased at 30°C, however, this was not at the expense of berry weight (i.e., water loss). Anthocyanin content was reduced at higher temperature in the first season but there was no change in phenolic content in response to temperature treatments in either season. The concentrations of total amino acids at harvest increased in response to the higher temperature in the second season only. In addition, in the time course analysis of the second season, the accumulation of amino acids was increased at mid-ripening and ripening stage with the increased temperature. Significant qualitative changes in amino acid composition specifically the α-ketoglutarate family (i.e., glutamine, arginine, and proline) were found between the two temperatures.
This study is the first to provide detailed analysis and quantification of individual amino acids and phenolics in Pinot noir in response to changes in temperature applied at veraison which could aid to develop adaptation strategies for viticulture in the future. |
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AbstractList | The increase of temperature due to climate change at different phenological stages of grapevine has already been demonstrated to affect accumulation of primary and secondary metabolites in grape berries. This has a significant implication for Pinot noir especially in New Zealand context as these compounds can have direct and indirect effects on wine quality.
This study investigates how varying bunch microclimate through changes in temperature applied at veraison stage can affect: fresh weight, total soluble solids, the accumulation of anthocyanins, total phenolics and amino acids of the grape berries. This was studied over two growing seasons (2018/19 and 2019/20) with Pinot noir vines being grown at two different temperatures in controlled environment (CE) chambers. The vines were exposed to 800 µmol/m2/s irradiance with diurnal changes in day (22°C or 30°C) and night (15°C) temperatures. This experimental set up enabled us to determine the accumulation of these metabolite at harvest (both seasons) and throughout berry development (second season).
The results showed that berry weight was not influenced by temperature increase. The total soluble solids (TSS) were significantly increased at 30°C, however, this was not at the expense of berry weight (i.e., water loss). Anthocyanin content was reduced at higher temperature in the first season but there was no change in phenolic content in response to temperature treatments in either season. The concentrations of total amino acids at harvest increased in response to the higher temperature in the second season only. In addition, in the time course analysis of the second season, the accumulation of amino acids was increased at mid-ripening and ripening stage with the increased temperature. Significant qualitative changes in amino acid composition specifically the α-ketoglutarate family (i.e., glutamine, arginine, and proline) were found between the two temperatures.
This study is the first to provide detailed analysis and quantification of individual amino acids and phenolics in Pinot noir in response to changes in temperature applied at veraison which could aid to develop adaptation strategies for viticulture in the future. IntroductionThe increase of temperature due to climate change at different phenological stages of grapevine has already been demonstrated to affect accumulation of primary and secondary metabolites in grape berries. This has a significant implication for Pinot noir especially in New Zealand context as these compounds can have direct and indirect effects on wine quality. MethodsThis study investigates how varying bunch microclimate through changes in temperature applied at veraison stage can affect: fresh weight, total soluble solids, the accumulation of anthocyanins, total phenolics and amino acids of the grape berries. This was studied over two growing seasons (2018/19 and 2019/20) with Pinot noir vines being grown at two different temperatures in controlled environment (CE) chambers. The vines were exposed to 800 µmol/m2/s irradiance with diurnal changes in day (22°C or 30°C) and night (15°C) temperatures. This experimental set up enabled us to determine the accumulation of these metabolite at harvest (both seasons) and throughout berry development (second season). Results and discussionThe results showed that berry weight was not influenced by temperature increase. The total soluble solids (TSS) were significantly increased at 30°C, however, this was not at the expense of berry weight (i.e., water loss). Anthocyanin content was reduced at higher temperature in the first season but there was no change in phenolic content in response to temperature treatments in either season. The concentrations of total amino acids at harvest increased in response to the higher temperature in the second season only. In addition, in the time course analysis of the second season, the accumulation of amino acids was increased at mid-ripening and ripening stage with the increased temperature. Significant qualitative changes in amino acid composition specifically the α-ketoglutarate family (i.e., glutamine, arginine, and proline) were found between the two temperatures. SignificanceThis study is the first to provide detailed analysis and quantification of individual amino acids and phenolics in Pinot noir in response to changes in temperature applied at veraison which could aid to develop adaptation strategies for viticulture in the future. The increase of temperature due to climate change at different phenological stages of grapevine has already been demonstrated to affect accumulation of primary and secondary metabolites in grape berries. This has a significant implication for Pinot noir especially in New Zealand context as these compounds can have direct and indirect effects on wine quality.IntroductionThe increase of temperature due to climate change at different phenological stages of grapevine has already been demonstrated to affect accumulation of primary and secondary metabolites in grape berries. This has a significant implication for Pinot noir especially in New Zealand context as these compounds can have direct and indirect effects on wine quality.This study investigates how varying bunch microclimate through changes in temperature applied at veraison stage can affect: fresh weight, total soluble solids, the accumulation of anthocyanins, total phenolics and amino acids of the grape berries. This was studied over two growing seasons (2018/19 and 2019/20) with Pinot noir vines being grown at two different temperatures in controlled environment (CE) chambers. The vines were exposed to 800 µmol/m2/s irradiance with diurnal changes in day (22°C or 30°C) and night (15°C) temperatures. This experimental set up enabled us to determine the accumulation of these metabolite at harvest (both seasons) and throughout berry development (second season).MethodsThis study investigates how varying bunch microclimate through changes in temperature applied at veraison stage can affect: fresh weight, total soluble solids, the accumulation of anthocyanins, total phenolics and amino acids of the grape berries. This was studied over two growing seasons (2018/19 and 2019/20) with Pinot noir vines being grown at two different temperatures in controlled environment (CE) chambers. The vines were exposed to 800 µmol/m2/s irradiance with diurnal changes in day (22°C or 30°C) and night (15°C) temperatures. This experimental set up enabled us to determine the accumulation of these metabolite at harvest (both seasons) and throughout berry development (second season).The results showed that berry weight was not influenced by temperature increase. The total soluble solids (TSS) were significantly increased at 30°C, however, this was not at the expense of berry weight (i.e., water loss). Anthocyanin content was reduced at higher temperature in the first season but there was no change in phenolic content in response to temperature treatments in either season. The concentrations of total amino acids at harvest increased in response to the higher temperature in the second season only. In addition, in the time course analysis of the second season, the accumulation of amino acids was increased at mid-ripening and ripening stage with the increased temperature. Significant qualitative changes in amino acid composition specifically the α-ketoglutarate family (i.e., glutamine, arginine, and proline) were found between the two temperatures.Results and discussionThe results showed that berry weight was not influenced by temperature increase. The total soluble solids (TSS) were significantly increased at 30°C, however, this was not at the expense of berry weight (i.e., water loss). Anthocyanin content was reduced at higher temperature in the first season but there was no change in phenolic content in response to temperature treatments in either season. The concentrations of total amino acids at harvest increased in response to the higher temperature in the second season only. In addition, in the time course analysis of the second season, the accumulation of amino acids was increased at mid-ripening and ripening stage with the increased temperature. Significant qualitative changes in amino acid composition specifically the α-ketoglutarate family (i.e., glutamine, arginine, and proline) were found between the two temperatures.This study is the first to provide detailed analysis and quantification of individual amino acids and phenolics in Pinot noir in response to changes in temperature applied at veraison which could aid to develop adaptation strategies for viticulture in the future.SignificanceThis study is the first to provide detailed analysis and quantification of individual amino acids and phenolics in Pinot noir in response to changes in temperature applied at veraison which could aid to develop adaptation strategies for viticulture in the future. |
Author | Gregan, Scott M. Schelezki, Olaf J. Jordan, Brian Parker, Amber K. Moukarzel, Romy |
AuthorAffiliation | 2 Ministry of Primary Industries , Christchurch , New Zealand 1 Department of Wine, Food and Molecular Biosciences, Lincoln University , Lincoln , New Zealand |
AuthorAffiliation_xml | – name: 2 Ministry of Primary Industries , Christchurch , New Zealand – name: 1 Department of Wine, Food and Molecular Biosciences, Lincoln University , Lincoln , New Zealand |
Author_xml | – sequence: 1 givenname: Romy surname: Moukarzel fullname: Moukarzel, Romy – sequence: 2 givenname: Amber K. surname: Parker fullname: Parker, Amber K. – sequence: 3 givenname: Olaf J. surname: Schelezki fullname: Schelezki, Olaf J. – sequence: 4 givenname: Scott M. surname: Gregan fullname: Gregan, Scott M. – sequence: 5 givenname: Brian surname: Jordan fullname: Jordan, Brian |
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Cites_doi | 10.1016/j.foodres.2017.01.008 10.1111/j.1755-0238.2000.tb00174.x 10.1111/ajgw.12007 10.1007/s11027-015-9698-0 10.1111/j.1755-0238.2012.00192.x 10.20870/IVES-TR.2021.4615 10.1016/j.foodchem.2010.05.112 10.1080/10408398.2017.1355776 10.5344/ajev.1971.22.2.71 10.1007/s00484-016-1133-z 10.5344/ajev.1989.40.2.135 10.1016/j.foodchem.2014.09.150 10.1016/j.foodchem.2016.05.164 10.3389/fpls.2017.00929 10.3389/fpls.2021.717223 10.21548/40-1-3060 10.1079/9781780648590.0144 10.1016/j.scienta.2005.01.032 10.1016/j.foodchem.2013.02.022 10.5344/ajev.1981.32.1.35 10.3390/plants11070926 10.3389/fpls.2017.00053 10.1111/j.1755-0238.2009.00074.x 10.5344/ajev.2004.55.3.207 10.3389/fpls.2013.00491 10.1016/j.scienta.2015.06.042 10.3354/cr01314 10.5194/cp-15-1485-2019 10.1093/jexbot/53.369.757 10.20870/oeno-one.2017.51.2.1868 10.1016/j.agrformet.2020.107902 10.1016/j.jfca.2017.05.001 10.1007/s00217-011-1425-9 10.1093/jxb/erm055 10.1016/j.foodchem.2009.06.045 10.3390/molecules15129057 10.1016/j.scienta.2017.12.035 10.1104/pp.120.3.923 10.1007/s00425-012-1650-x 10.1016/j.envexpbot.2019.103866 10.17660/ActaHortic.2000.512.8 10.5344/ajev.2006.57.3.257 10.5344/ajev.2017.16066 10.1186/1471-2164-8-429 10.20870/oeno-one.2016.0.0.1622ff.ffhal01626522f 10.3354/cr00918 10.3390/molecules25092110 10.3390/agronomy9090514 10.1021/jf011395o 10.1038/nclimate1417 10.1016/j.plaphy.2016.03.015 10.1111/j.1755-0238.2005.tb00028.x 10.20870/oeno-one.2017.51.2.1647 10.1071/FP09209 10.3390/plants9121754 10.1007/s00726-010-0505-7 10.1016/j.foodres.2010.05.001 10.20870/oeno-one.2022.56.1.4459 10.1016/j.aca.2007.11.029 10.5344/ajev.2002.53.3.171 10.5344/ajev.2006.57.1.54 10.3389/fpls.2014.00283 10.3390/app10093092 10.1017/jwe.2015.21 10.1016/j.plaphy.2020.10.024 10.2503/jjshs1.78.169 10.5344/ajev.2002.53.4.325 10.3390/fermentation8120686 10.1093/jxb/eru343 10.1080/15538362.2010.510426 10.5344/ajev.1972.23.2.71 10.1007/s00018-012-1091-5 10.20870/oeno-one.2022.56.1.4843 10.1021/jf062820m 10.1104/pp.112.1.281 10.1111/j.1755-0238.2008.00005.x 10.5344/ajev.2008.59.3.235 10.3389/fpls.2020.603687 10.1073/pnas.1210127110 10.1007/s13593-018-0544-0 10.1038/nclimate2960 10.1111/pce.12349 10.20870/oeno-one.2019.53.2.2434 10.5344/ajev.2012.12064 10.20870/oeno-one.2019.53.2.2424 |
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Keywords | phenolic compounds temperature Pinot noir anthocyanins grapevine amino acids |
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References | Venios (B89) 2020; 9 Deloire (B14) 2021 Garde-Cerdán (B22) 2011; 124 Treeby (B83) 2000; 512 Huang (B37) 1989; 40 Watrelot (B90) 2020; 25 Jordan (B42) 2017 Guan (B30) 2017; 98 van Leeuwen (B88) 2004; 55 Garcia de Cortazar-Atauri (B21) 2017; 51 Poni (B65) 2018; 234 Petrie (B64) 2008; 14 Cohen (B11) 2008; 621 Downey (B18) 2006; 57 Ryu (B70) 2020; 157 Avice (B3) 1996; 112 de Rosas (B16) 2022; 11 Gregan (B29) 2012; 18 Gump (B31) 2002; 53 Joshi (B43) 2010; 39 Almaraz (B1) 2015; 64 Drappier (B19) 2019; 59 Gómez-Alonso (B24) 2007; 55 Yamane (B95) 2006; 57 Bernardo (B6) 2018; 38 Rienth (B69) 2021; 12 Tsai (B84) 2022; 8 Greer (B27) 2010; 37 Torres (B82) 2017; 62 Deluc (B15) 2007; 8 Ford (B20) 2015 Bell (B5) 2005; 11 Stines (B79) 1999; 120 Iland (B38) 2004 Hernandez-Orte (B35) 2002; 50 Azuma (B4) 2012; 236 Hornedo-Ortega (B36) 2021 Buttrose (B10) 1971; 22 Gouot (B25) 2019; 168 Malheiro (B52) 2010; 43 Hannah (B33) 2013; 110 Lee (B48) 2010; 119 Nandorfy (B58) 2022 Kliewer (B44) 1972; 23 Gaudillère (B23) 2002; 53 Mori (B55) 2007; 58 Labbé (B46) 2019; 65 Jones (B41) 2006 Degu (B13) 2016; 212 Wu (B92) 2019; 53 Luchaire (B51) 2017; 68 Meehl (B53) 2007 Poudel (B67) 2009; 78 Pastore (B62) 2017; 8 Koshita (B45) 2015; 54 Pons (B66) 2017; 51 Neethling (B59) 2017; 22 Parker (B61) 2020; 54 Obata (B60) 2012; 69 Blancquaert (B7) 2019; 40 Liu (B50) 2015; 38 Brandt (B9) 2019; 53 Greer (B26) 2013; 4 Blank (B8) 2022; 56 Pellegrino (B63) 2014; 5 Tarara (B81) 2008; 59 Rapp (B68) 1996; 51 Sadras (B71) 2013; 19 Gregan (B28) 2019 Spayd (B77) 2002; 53 Santos (B72) 2020; 10 Sweetman (B80) 2014; 65 Mira de Orduña (B54) 2010; 43 Dimitrovska (B17) 2011; 232 Hall (B32) 2016; 60 He (B34) 2010; 15 van Leeuwen (B86) 2016; 11 Cook (B12) 2016; 6 Masson-Delmotte (B39) 2018 Schreiner (B73) 2013; 64 Webb (B91) 2012; 21 Song (B76) 2015; 173 Xi (B93) 2016; 104 Stines (B78) 2000; 6 van Leeuwen (B87) 2019; 9 Arrizabalaga-Arriazu (B2) 2020; 11 Shinomiya (B75) 2015; 193 Lecourieux (B47) 2017; 8 Mullins (B57) 1980; 32 Schultz (B74) 2010; 16 Xyrafis (B94) 2022 Lee (B49) 2013; 139 Jogaiah (B40) 2010; 10 Mori (B56) 2005; 105 van Leeuwen (B85) 2017; 51 |
References_xml | – volume: 98 start-page: 2 year: 2017 ident: B30 article-title: Cluster shading modifies amino acids in grape (Vitis vinifera l.) berries in a genotype- and tissue-dependent manner publication-title: Food Res. Int. doi: 10.1016/j.foodres.2017.01.008 – volume: 6 start-page: 150 year: 2000 ident: B78 article-title: Proline and arginine accumulation in developing berries of Vitis vinifera l. @ in australian vineyards: Influence of vine cultivar, berry maturity and tissue type publication-title: Aust. J. Grape Wine Res. doi: 10.1111/j.1755-0238.2000.tb00174.x – start-page: 247 volume-title: Fine wine and terroir - the geoscience perspective year: 2006 ident: B41 article-title: Climate and terroir: impacts of climate variability and change on win – volume: 51 start-page: 193 year: 1996 ident: B68 article-title: Influence of nitrogen compounds in grapes on aroma compounds of wines wein-wissenschaft publication-title: Die Wein-Wissenschaft Viticultural and Enological Sciences – volume: 19 start-page: 95106 year: 2013 ident: B71 article-title: Effects of elevated temperature in grapevine. I berry sensory traits: temperature effects on berry traits publication-title: Aust. J. Grape Wine Res. doi: 10.1111/ajgw.12007 – volume: 22 start-page: 777 year: 2017 ident: B59 article-title: Assessing local climate vulnerability and winegrowers’ adaptive processes in the context of climate change publication-title: Mitig. Adapt. Strateg. Glob. Change doi: 10.1007/s11027-015-9698-0 – volume: 18 start-page: 227 year: 2012 ident: B29 article-title: Effects of solar ultraviolet radiation and canopy manipulation on the biochemical composition of sauvignon blanc grapes publication-title: Aust. J. Grape Wine Res. doi: 10.1111/j.1755-0238.2012.00192.x – year: 2021 ident: B14 article-title: Grapevine berry shrivelling, water loss and cell death: an increasing challenge for growers in the context of climate change publication-title: IVES Tech. Reviews Vine Wine doi: 10.20870/IVES-TR.2021.4615 – volume: 124 start-page: 106 year: 2011 ident: B22 article-title: Implications of nitrogen compounds during alcoholic fermentation from some grape varieties at different maturation stages and cultivation systems publication-title: Food Chem. doi: 10.1016/j.foodchem.2010.05.112 – volume: 59 start-page: 14 year: 2019 ident: B19 article-title: Relationship between wine composition and temperature: impact on Bordeaux wine typicity in the context of global warming publication-title: Crit. Rev. Food Sci. Nutr. doi: 10.1080/10408398.2017.1355776 – volume: 22 start-page: 71 year: 1971 ident: B10 article-title: ). effect of temperature on the composition of ‘Cabernet sauvignon’ berries publication-title: Am. J. Enol. Vitic. doi: 10.5344/ajev.1971.22.2.71 – volume: 60 start-page: 1405 year: 2016 ident: B32 article-title: Potential effect of atmospheric warming on graepvine phenology and post-harvest heat accumulation across a range of climates publication-title: Int. J. Biometeorol. doi: 10.1007/s00484-016-1133-z – volume: 40 start-page: 135 year: 1989 ident: B37 article-title: Effect of vineyard locations, varieties, and rootstocks on the juice amino acid composition of several cultivars publication-title: Am. J. Enol. Vitic. doi: 10.5344/ajev.1989.40.2.135 – volume: 173 start-page: 424 year: 2015 ident: B76 article-title: Effect of grape bunch sunlight exposure and UV radiation on phenolics and volatile composition of vitis vinifera l. cv. pinot noir wine publication-title: Food Chem. doi: 10.1016/j.foodchem.2014.09.150 – volume: 212 start-page: 828 year: 2016 ident: B13 article-title: Polyphenolic responses of grapevine berries to light, temperature, oxidative stress, abscisic acid and jasmonic acid show specific developmental-dependent degrees of metabolic resilience to perturbation publication-title: Food Chem. doi: 10.1016/j.foodchem.2016.05.164 – volume: 8 year: 2017 ident: B62 article-title: Whole plant temperature manipulation affects flavonoid metabolism and the transcriptome of grapevine berries publication-title: Front. Plant Sci. doi: 10.3389/fpls.2017.00929 – volume: 12 start-page: 717223 year: 2021 ident: B69 article-title: Modifications of grapevine berry composition induced by main viral and fungal pathogens in a climate change scenario publication-title: Front. Plant Sci. doi: 10.3389/fpls.2021.717223 – volume: 40 start-page: 1 year: 2019 ident: B7 article-title: Effects of abiotic factors on phenolic compounds in the grape berry–a review publication-title: S. Afr. J. Enol. Vitic. doi: 10.21548/40-1-3060 – start-page: 144 volume-title: UV-B radiation and plant life: molecular biology to enology year: 2017 ident: B42 article-title: Effects of ultraviolet b on vitis vinifera-how important is UV-b for grape biochemical composition doi: 10.1079/9781780648590.0144 – volume: 105 start-page: 319 year: 2005 ident: B56 article-title: Decreased anthocyanin biosynthesis in grape berries grown under elevated night temperature condition publication-title: Scientia Hortic. doi: 10.1016/j.scienta.2005.01.032 – volume: 139 start-page: 893 year: 2013 ident: B49 article-title: Oregon “Pinot noir” grape anthocyanin enhancement by early leaf removal publication-title: Food Chem. doi: 10.1016/j.foodchem.2013.02.022 – volume: 32 start-page: 35 year: 1980 ident: B57 article-title: Fruiting cuttings: revised method for producing test plants of grapevine cultivars publication-title: Am. J. Enol. Viti. doi: 10.5344/ajev.1981.32.1.35 – volume: 11 start-page: 926 year: 2022 ident: B16 article-title: High temperature alters anthocyanin concentration and composition in grape berries of Malbec, merlot, and pinot noir in a cultivar-dependent manner publication-title: Plants (Basel Switzerland) doi: 10.3390/plants11070926 – volume: 8 year: 2017 ident: B47 article-title: Dissecting the biochemical and transcriptomic 175 effects of a locally applied heat treatment on developing Cabernet sauvignon grape berries publication-title: Front. Plant Sci. doi: 10.3389/fpls.2017.00053 – volume: 16 start-page: 4 year: 2010 ident: B74 article-title: Some critical issues in environmental physiology of grapevines: Future challenges and current limitations publication-title: Aust. J. Grape Wine Res. doi: 10.1111/j.1755-0238.2009.00074.x – volume: 55 start-page: 207 year: 2004 ident: B88 article-title: Influence of climate, soil and cultivar on terroir publication-title: Am. J. Enol. Viti. doi: 10.5344/ajev.2004.55.3.207 – volume: 4 start-page: 491 year: 2013 ident: B26 article-title: The impact of high temperatures on Vitis vinifera cv. semillon grapevine performance and berry ripening publication-title: Front. Plant Sci. doi: 10.3389/fpls.2013.00491 – volume: 193 start-page: 77 year: 2015 ident: B75 article-title: Impact of temperature and sunlight on the skin coloration of the ‘Kyoho’ table grape publication-title: Sci. Hortic. doi: 10.1016/j.scienta.2015.06.042 – volume: 64 start-page: 187 year: 2015 ident: B1 article-title: Bordeaux Wine quality and climate fluctuations during the last century: changing temperatures and changing industry publication-title: Climate Res. doi: 10.3354/cr01314 – volume: 65 start-page: 1485 year: 2019 ident: B46 article-title: The longest homogenous series of grape harvest dates, beaune 1354-2018, and its significance for the understanding of past and present climate publication-title: Clim. Past doi: 10.5194/cp-15-1485-2019 – volume: 53 start-page: 757 year: 2002 ident: B23 article-title: Carbon isotope composition of sugars in grapevine, an integrated indicator of vineyard water status publication-title: J. Exp. Bot. doi: 10.1093/jexbot/53.369.757 – volume-title: Global warming of 1.5°C. an IPCC special report on the impacts of global warming of 1.5°C above pre-industrial levels and related global greenhouse gas emission pathways, in the context of strengthening the global response to the threat of climate change, sustainable development, and efforts to eradicate poverty year: 2018 ident: B39 – volume: 51 start-page: 141 year: 2017 ident: B66 article-title: What is the expected impact of climate change on wine aroma compounds and their precursors in grape publication-title: OENO One doi: 10.20870/oeno-one.2017.51.2.1868 – volume: 54 start-page: 107902 year: 2020 ident: B61 article-title: Temperature-based grapevine sugar ripeness modelling for a wide range of Vitis vinifera l. cultivars publication-title: Agric. For. Meteorol. doi: 10.1016/j.agrformet.2020.107902 – volume: 62 start-page: 51 year: 2017 ident: B82 article-title: Flavonoid and amino acid profiling on Vitis vinifera l. cv tempranillo subjected to deficit irrigation under elevated temperatures publication-title: J. Food Composit. Analy doi: 10.1016/j.jfca.2017.05.001 – volume-title: Wine Stabilization and Aging year: 2021 ident: B36 article-title: Chemistry and Biochemistry of Winemaking – volume: 232 start-page: 591 year: 2011 ident: B17 article-title: Anthocyanin composition of vranec, Cabernet sauvignon, merlot and pinot noir grapes as indicator of their varietal differentiation publication-title: Eur. Food. Res. Technol. doi: 10.1007/s00217-011-1425-9 – volume: 58 start-page: 1935 year: 2007 ident: B55 article-title: Loss of anthocyanins in red-wine grape under high temperature publication-title: J. Exp. Bot. doi: 10.1093/jxb/erm055 – volume: 119 start-page: 484 year: 2010 ident: B48 article-title: Free amino acid profiles from ‘Pinot noir’ grapes are influenced by vine n-status and sample preparation method publication-title: Food Chem. doi: 10.1016/j.foodchem.2009.06.045 – volume: 15 start-page: 9057 year: 2010 ident: B34 article-title: Biosynthesis of anthocyanins and their regulation in coloured grapes publication-title: Molecules (Basel Switzerland) doi: 10.3390/molecules15129057 – volume: 234 start-page: 445 year: 2018 ident: B65 article-title: Grapevine quality: a multiple-choice issue publication-title: Sci. Hortic. doi: 10.1016/j.scienta.2017.12.035 – volume: 120 start-page: 923 year: 1999 ident: B79 article-title: Proline accumulation in developing grapevine fruit occurs independently of changes in the levels of Δ1-pyrroline-5-carboxylate synthetase mRNA or protein publication-title: Plant Physiol. doi: 10.1104/pp.120.3.923 – volume: 236 start-page: 1067 year: 2012 ident: B4 article-title: Flavonoid biosynthesis-related genes in grape skin are differentially regulated by temperature and light conditions publication-title: Planta doi: 10.1007/s00425-012-1650-x – volume: 168 start-page: 103866 year: 2019 ident: B25 article-title: Impact of short temperature exposure of Vitis vinifera l. cv. Shiraz grapevine bunches on berry development, primary metabolism, and tannin accumulation publication-title: Environ. Exp. Bot. doi: 10.1016/j.envexpbot.2019.103866 – volume: 512 start-page: 77 year: 2000 ident: B83 article-title: Vineyard nitrogen supply and Shiraz grape and wine quality publication-title: Acta Hortic. doi: 10.17660/ActaHortic.2000.512.8 – volume: 57 start-page: 257 year: 2006 ident: B18 article-title: Cultural practice and environmental impacts on the flavonoid composition of grapes and wine: a review of recent research publication-title: Am. J. Enol. Vitic. doi: 10.5344/ajev.2006.57.3.257 – volume: 68 start-page: 283292 year: 2017 ident: B51 article-title: Microvine: a new model to study grapevine growth and developmental patterns and their responses to elevated temperature publication-title: Am. J. Enology Viticulture doi: 10.5344/ajev.2017.16066 – volume: 8 start-page: 429 year: 2007 ident: B15 article-title: Transcriptomic and metabolite analyses of cabernet-sauvignon grape berry development publication-title: BMC Genomics doi: 10.1186/1471-2164-8-429 – volume: 51 start-page: 115 year: 2017 ident: B21 article-title: Grapevine phenology in France : from past observations to future evolutions in the context of climate change publication-title: OENO One doi: 10.20870/oeno-one.2016.0.0.1622ff.ffhal01626522f – volume: 43 start-page: 163 year: 2010 ident: B52 article-title: Climate change scenarios applied to viticultural zoning in europe publication-title: Clim. Res. doi: 10.3354/cr00918 – volume: 25 start-page: (9) year: 2020 ident: B90 article-title: Chemistry and reactivity of tannins in vitis spp.: A review publication-title: Molecules (Basel Switzerland) doi: 10.3390/molecules25092110 – volume: 9 start-page: 514 year: 2019 ident: B87 article-title: An update on the impact of climate change in viticulture and potential adaptations publication-title: Agronomy doi: 10.3390/agronomy9090514 – volume: 50 start-page: 2891 year: 2002 ident: B35 article-title: Relationship between varietal amino acid profile of grapes and wine aromatic composition. experiments with model solutions and chemometric study publication-title: J. Agric. Food Chem. doi: 10.1021/jf011395o – volume: 54 start-page: 169 year: 2015 ident: B45 article-title: Effects of short-term temperature treatment to clusters on anthocyanin and abscisic acid content in the peel of ‘Aki queen’ grape publication-title: Vitis – volume: 21 start-page: 259 year: 2012 ident: B91 article-title: Earlier wine-grape ripening driven by climate warming and drying and management practices publication-title: Nat. Clim. Chang doi: 10.1038/nclimate1417 – volume: 104 start-page: 180 year: 2016 ident: B93 article-title: Impact of cluster thinning on transcriptional regulation of anthocyanin biosynthesis-related genes in ‘Summer black’ grapes publication-title: Plant Physiol. Biochem. doi: 10.1016/j.plaphy.2016.03.015 – volume: 11 start-page: 242 year: 2005 ident: B5 article-title: Implications of nitrogen nutrition for grapes, fermentation, and wine publication-title: Aust. J. Grape Wine Res. doi: 10.1111/j.1755-0238.2005.tb00028.x – volume: 51 start-page: 147 year: 2017 ident: B85 article-title: Modified grape composition under climate change conditions requires adaptations in the vineyard publication-title: OENO One doi: 10.20870/oeno-one.2017.51.2.1647 – volume: 37 start-page: 206 year: 2010 ident: B27 article-title: Heat stress affects flowering, berry growth, sugar accumulation and photosynthesis of Vitis vinifera cv. semillon grapevines grown in a controlled environment publication-title: Funct. Plant Biol. doi: 10.1071/FP09209 – volume: 9 start-page: 1754 year: 2020 ident: B89 article-title: Grapevine responses to heat stress and global warming publication-title: Plants doi: 10.3390/plants9121754 – volume: 39 start-page: 933 year: 2010 ident: B43 article-title: Interdependence of threonine, methionine, and isoleucine metabolism in plants: accumulation and transcriptional regulation under abiotic stress publication-title: Amino Acids doi: 10.1007/s00726-010-0505-7 – volume: 43 start-page: 1844 year: 2010 ident: B54 article-title: Climate change associated effects on grape and wine quality and production publication-title: Food Res. Int. doi: 10.1016/j.foodres.2010.05.001 – volume-title: A study of amino acid metabolism in grape berries (Vitis vinifera l. sauvignon blanc) year: 2019 ident: B28 – volume-title: Final report to Australian grape and wine authority, the University of Adalaide year: 2015 ident: B20 article-title: Organic acid metabolism and the control of grape berry acidity in a warming climate – volume: 56 start-page: 133 year: 2022 ident: B8 article-title: Grapevine rootstock genotypes influences berry and wine phenolic composition (Vitis vinifera l. cv. pinot noir) publication-title: OENO One doi: 10.20870/oeno-one.2022.56.1.4459 – volume: 621 start-page: 57 year: 2008 ident: B11 article-title: Assessing the impact of temperature on grape phenolic metabolism publication-title: Anal. Chim. Acta doi: 10.1016/j.aca.2007.11.029 – volume: 53 start-page: 171 year: 2002 ident: B77 article-title: Separation of sunlight and temperature effects on the composition of Vitis vinifera cv. merlot berries publication-title: Am. J. Enol. Viticult. doi: 10.5344/ajev.2002.53.3.171 – volume: 57 start-page: 54 year: 2006 ident: B95 article-title: Effects of temperature on anthocyanin biosynthesis in grape berry skins publication-title: Am. J. @ Enol. Vitic doi: 10.5344/ajev.2006.57.1.54 – volume: 5 year: 2014 ident: B63 article-title: Management practices impact vine carbohydrate status to a greater extent than vine productivity publication-title: Front. Plant Sci. doi: 10.3389/fpls.2014.00283 – volume: 10 start-page: 3092 year: 2020 ident: B72 article-title: A review of the potential climate change impacts and adaptation options for European viticulture publication-title: Appl. Sci. doi: 10.3390/app10093092 – year: 2022 ident: B58 article-title: Using a scientific approach to the art of wine blending- a case study to optimise warm inland Cabernet Sauvignon – volume: 11 start-page: 150 year: 2016 ident: B86 article-title: The impact of climate change on viticulture and wine quality publication-title: J. Wine Econ. doi: 10.1017/jwe.2015.21 – volume: 157 start-page: 219 year: 2020 ident: B70 article-title: High temperature at veraison inhibits anthocyanin biosynthesis in berry skins during ripening in ‘Kyoho’ grapevines publication-title: Plant Physiol. Biochem. doi: 10.1016/j.plaphy.2020.10.024 – volume: 78 start-page: 169 year: 2009 ident: B67 article-title: Infuence of temperature on berry composition of interspecifc hybrid wine grape ‘Kadainou r-1’ (Vitis fcifolia var. ganebu × v. vinifera ‘Muscat of alexandria’) publication-title: J. Jap. Soc Hortic. Sci. doi: 10.2503/jjshs1.78.169 – start-page: 44 volume-title: Chemical analysis of grapes and wine: techniques and concepts year: 2004 ident: B38 – volume: 53 start-page: 325 year: 2002 ident: B31 article-title: Comparison of analytical methods for prediction of prefermentation nutritional status of grape juice publication-title: Am. J. Enol. Vitic. doi: 10.5344/ajev.2002.53.4.325 – volume: 8 start-page: 686 year: 2022 ident: B84 article-title: Varietal aromas of sauvignon blanc: impact of oxidation and antioxidants used in winemaking publication-title: Fermentation doi: 10.3390/fermentation8120686 – volume: 65 start-page: 5975 year: 2014 ident: B80 article-title: Metabolic effects of elevated temperature on organic acid degradation in ripening vitis vinifera fruit publication-title: J. Exp. Bot. doi: 10.1093/jxb/eru343 – volume: 10 start-page: 323 year: 2010 ident: B40 article-title: Amino acid profile of ‘Thompson seedless’ grapes grafted on different rootstocks at various stages of berry development publication-title: Int. J. Fruit Sci. doi: 10.1080/15538362.2010.510426 – volume: 23 start-page: 71 year: 1972 ident: B44 article-title: Effect of controlled day and night temperatures on grape coloration publication-title: Am. J. Enol. Vitic. doi: 10.5344/ajev.1972.23.2.71 – volume: 69 start-page: 3225 year: 2012 ident: B60 article-title: The use of metabolomics to dissect plant responses to abiotic stresses publication-title: Cell. Mol. Life Sci. doi: 10.1007/s00018-012-1091-5 – start-page: 259 year: 2022 ident: B94 article-title: A study on the effects of climate change on viticulture on santorini island publication-title: OENO One doi: 10.20870/oeno-one.2022.56.1.4843 – volume: 55 start-page: 608 year: 2007 ident: B24 article-title: Simultaneous HPLC analysis of biogenic amines, amino acids, and ammonium ion as aminoenone derivatives in wine and beer samples publication-title: J. Agric. Food Chem. doi: 10.1021/jf062820m – volume: 112 start-page: 281 year: 1996 ident: B3 article-title: Nitrogen and carbon flows estimated by 15N and 13C pulse-chase labeling during regrowth of alfalfa publication-title: Plant Physiol. doi: 10.1104/pp.112.1.281 – volume: 14 start-page: 33 year: 2008 ident: B64 article-title: Advancement of grapevine maturity in australia between 1993 and 2006: putative causes, magnitude of trends and viticultural consequences publication-title: Aust. J. Grape Wine Res. doi: 10.1111/j.1755-0238.2008.00005.x – volume: 59 start-page: 235 year: 2008 ident: B81 article-title: Berry temperature and solar radiation alter acylation proportion, and concentration of anthocyanin in merlot grapes publication-title: Am. J. Enol. Vitic. doi: 10.5344/ajev.2008.59.3.235 – volume: 11 year: 2020 ident: B2 article-title: High temperature and elevated carbon dioxide modify berry composition of different clones of grapevine (Vitis vinifera l.) cv. tempranillo publication-title: Front. Plant Sci. doi: 10.3389/fpls.2020.603687 – volume: 110 start-page: 6907 year: 2013 ident: B33 article-title: Climate change, wine, and conservation publication-title: Proc. Natl. Acad. Sciences U.S.A. doi: 10.1073/pnas.1210127110 – start-page: 747 volume-title: Contribution of working group i to the fourth assessment report of the intergovernmental panel on climate change year: 2007 ident: B53 article-title: Global climate projections, in climate change 2007: The physical science basis – volume: 38 start-page: 66 year: 2018 ident: B6 article-title: Grapevine abiotic stress assessment and search for sustainable adaptation strategies in Mediterranean-like climates publication-title: A review. Agron. Sustain. doi: 10.1007/s13593-018-0544-0 – volume: 6 start-page: 715 year: 2016 ident: B12 article-title: Climate change decouples drought from early wine grape harvests in france publication-title: Nat. Clim. Change doi: 10.1038/nclimate2960 – volume: 38 start-page: 905 year: 2015 ident: B50 article-title: From UVR8 to flavonol synthase: UV-B559 induced gene expression in sauvignon blanc grape berry publication-title: Plant Cell Environ. doi: 10.1111/pce.12349 – volume: 53 start-page: 321 year: 2019 ident: B92 article-title: The effects of a moderate grape temperature increase on berry secondary metabolites publication-title: OENO One doi: 10.20870/oeno-one.2019.53.2.2434 – volume: 64 start-page: 26 year: 2013 ident: B73 article-title: N, P, and K supply to pinot noir grapevines: Impact on vine nutrient status, growth, physiology, and yield publication-title: Am. J. Enol. Viti. doi: 10.5344/ajev.2012.12064 – volume: 53 start-page: 261 year: 2019 ident: B9 article-title: The influence of temperature and solar radiation on phenols in berry skin and maturity parameters of Vitis vinifera L. cv. riesling publication-title: Oeno One doi: 10.20870/oeno-one.2019.53.2.2424 |
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Snippet | The increase of temperature due to climate change at different phenological stages of grapevine has already been demonstrated to affect accumulation of primary... IntroductionThe increase of temperature due to climate change at different phenological stages of grapevine has already been demonstrated to affect... |
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SubjectTerms | amino acids anthocyanins grapevine phenolic compounds Pinot noir Plant Science temperature |
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Title | Bunch microclimate influence amino acids and phenolic profiles of Pinot noir grape berries |
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