Aug 2026· Genetics and Molecular Research· 0 citations· 31 references
Abstract
Global surface temperatures have risen significantly over the past several decades, leading to an increased frequency of extreme heat events that threaten global food security and crop physiological stability. While macroclimatic data provide broad environmental trends, the health and productivity of crops are more directly governed by the microclimate, especially environmental conditions including temperature, humidity, and radiation within the cropping systems. This review explores the importance of microclimate modification as a resilient approach to mitigate the combined impacts of elevated temperatures and biotic stressors. Higher temperatures directly impair critical reproductive processes, such as pollen viability and grain filling, while simultaneously accelerating the metabolic rates and reproductive cycles of insect pests and enhancing the virulence of various pathogens. We categorize microclimate management into two primary strategies: protected cultivation and vegetative modification. Protected structures, such as greenhouses and shade nets, offer high-precision control over thermal and moisture variables while providing physical barriers against pests. Nature based vegetative interventions, including intercropping, agroforestry, and shelterbelts, utilize shading and transpiration cooling to buffer thermal extremes and enhance biodiversity. By modulating canopy temperature, humidity, and airflow, these modifications reduce the risk of pest proliferation and disease outbreaks while optimizing water-use efficiency. Integrating microclimate management with resistant crop varieties and sustainable pest control is essential for developing resilient agricultural systems capable of sustaining productivity in an increasingly unpredictable or extreme climate.
Climate change is fundamentally altering the distribution, prevalence, and severity of plant pests and pathogens, posing an unprecedented challenge to global food security. Rising global temperatures, shifting precipitation patterns, and the increased frequency of extreme weather events are accelerating biological cycl...
Research Author· European Journal of Food, Fa...· 0 citations
This review synthesizes current knowledge on the effects of major climate-related factors, including temperature, water availability, and elevated CO 2 , on the physiology, phenology, pollination, and productivity of fruit trees to provide a framework for enhancing the resilience and sustainability of fruit production...
H. Soufi, M. Jabbari, Yazgan Tunç et al.· Biological Research· 0 citations
Climate change has emerged as one of the most significant challenges affecting agricultural production systems worldwide. Rising temperatures, altered precipitation patterns, increasing atmospheric carbon dioxide concentrations, and the growing frequency of extreme weather events are substantially influencing the biolo...
E. Aslan· Osmaniye Korkut Ata Üniversi...· 0 citations
Climate change is exerting profound and multidimensional pressures on global wheat (
Triticum aestivum
L.) production. Rising temperatures, higher vapor pressure deficit, and more frequent heatwaves reduce yields through strong, phenology‐dependent effects, with flowering and grain filling identified as the most...
Daniel Manore, Biruk Tagesse, Markos Makiso et al.· Agrosystems, Geosciences &am...· 1 citation
Wheat (Triticum aestivum L.) is a cornerstone of global food security, yet its productivity is increasingly constrained by the interacting pressures of climate change, soil degradation, and imbalanced nutrient management. This review synthesizes current knowledge on how rising temperatures, erratic precipitation, and e...
S. Yadav, Abdul Mazeed, Faria Fatima et al.· Ecology, environment & conse...· 0 citations
Climate change is reducing the stability of crop production through more frequent drought, heat, salinity and combined stresses, while rising atmospheric carbon dioxide threatens the nutritional quality of staple crops. Plant biostimulants, defined by their capacity to improve nutrient use efficiency, abiotic stress to...
J. Singh, K. Harika· International Journal of Env...· 0 citations
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