Related Experiment Video
Updated: Sep 8, 2025

The Terroir Concept Interpreted through Grape Berry Metabolomics and Transcriptomics
Published on: October 5, 2016
Climate Change Effects on Grapevine Physiology and Biochemistry: Benefits and Challenges of High Altitude as an
Leonardo A Arias1, Federico Berli1, Ariel Fontana1
1Grupo de Bioquímica Vegetal, Instituto de Biología Agrícola de Mendoza, CONICET, Chacras de Coria, Argentina.
Abstract:
Grapevine berry quality for winemaking depends on complex and dynamic relationships between the plant and the environment. Winemakers around the world are demanding a better understanding of the factors that influence berry growth and development. In the last decades, an increment in air temperature, CO2 concentration and dryness occurred in wine-producing regions, affecting the physiology and the biochemistry of grapevines, and by consequence the berry quality. The scientific community mostly agrees in a further raise as a result of climate change during the rest of the century. As a consequence, areas most suitable for viticulture are likely to shift into higher altitudes where mean temperatures are suitable for grape cultivation. High altitude can be defined as the minimum altitude at which the grapevine growth and development are differentially affected. At these high altitudes, the environments are characterized by high thermal amplitudes and great solar radiations, especially ultraviolet-B (UV-B). This review summarizes the environmental contribution of global high altitude-related climatic variables to the grapevine physiology and wine composition, for a better evaluation of the possible establishment of vineyards at high altitude in climate change scenarios.
More Related Videos
10:40Comprehensive Workflow for the Genome-wide Identification and Expression Meta-analysis of the ATL E3 Ubiquitin Ligase Gene Family in Grapevine
Published on: December 22, 2017
07:34Author Spotlight: Exploring the Fermentation Microbiome Through Next-Generation Sequencing
Published on: December 1, 2023
Related Concept Videos
Responses to Heat and Cold Stress
Adaptations that Reduce Water Loss
Responses to Salt Stress
Regulation of Transpiration by Stomata
Responses to Drought and Flooding
Factors Affecting Respiration