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Montero-Bulacio, E.

Publications and source records attributed to Montero-Bulacio, E..

2 recordsLinked to original sources

Introgression of the sunflower HaHB4 gene in modern wheat: An advancement in resilience to deal with climate change

Breeding for improved tolerance to water deficit is critical to mitigate climate change impact on wheat yield. In 2020, Argentina approved the first wheat transformed with the sunflower HaHB4 gene (INDOO412-7), which increased yield by 16% compared to the non-transformed parental Cadenza under drought conditions. Previous studies may have overestimated HaHB4 benefits, as Cadenza is a long cycle for the Pampas region. Quantifying the yield advantage of HaHB4 in modern, well-adapted cultivars and elucidating the physiological processes involved, is crucial for identifying optimal environments for this technology. In a broad network of experiments (one greenhouse and 29 field environments), an HaHB4-introgressed line of Algarrobo was compared with the conventional cultivar. Under water deficit during the reproductive phase, the yield advantage of HaHB4 was 15% in the greenhouse and 13% in the field. HaHB4 improved the relative yield by 0.06 to 0.08 % per mm of water deficit. The enhanced water use and water use efficiency conferred by HaHB4, allowed maintaining growth and yield under water deficit. HaHB4 showed the highest benefit with moderate heat stress ({sum}Tmax > 30 {degrees}C [~]40-60 {degrees}Cd). In areas prone to drought combined with heat stress, HaHB4 would enhance yield stability by improving water-limited yield. HighlightsHaHB4-introgressed wheat enhanced water-limited yield by maintaining the crop growth under moderate to severe water deficit combined with mild heat stress through increasing water use and water use efficiency.

plant biology↗

Field-tested HaHB11 and HaHB4 soybean exhibit increased grain number and heat tolerance at the reproductive stage

Soybean is one of the primary sources of vegetable oil and protein worldwide. However, its yield improvement has lagged behind the other major crops. This study explored the potential of the sunflower transcription factor HaHB11 to enhance soybean yield and heat stress tolerance. We generated transgenic soybean plants expressing HaHB11 and evaluated their performance across four field trials. The HaHB11 plants showed a significant increase in grain number per plant compared to controls, which can be related to an increased number of nodes and pods per plant. Flowering dynamics analysis revealed delayed blooming and an increased number of flowers per node, leading to a higher pod set, particularly between nodes four and six. Principal component analysis across field trials identified temperature as a crucial factor influencing grain number, enhancing the differences exhibited by HaHB11 plants. The pollen from transgenic plants germinated better, and tubes were longer than controls under heat stress. Carbohydrate distribution analyses indicated differential allocation of nutrients, supporting the increased pod and grain set in HaHB11 plants. Additionally, vegetation indices can distinguish HaHB11 plants from controls in several developmental stages. These results indicated that HaHB11 enhances soybean yield under heat stress, becoming a promising technology for soybean improvement. HighlightSoybean transformed with the sunflower gene HaHB11 was tested in the field for four campaigns, showing differential allocation of nutrients, increased number of nodes, pods, grains, and heat tolerance.

plant biology↗