Tag: Pistachio Genetics

  • Scientists Offer Breakage Insights with Potential Benefits for Crops

    When pistachio hulls split before the nuts are harvested, insects and fungi can get inside, damaging the nut, costing farmers money and contaminating the nuts. About 4% of the overall crop experiences hull split, but some cultivars can split as much as 40% under certain conditions.

    For the first time, scientists at the University of California, Davis, are seeking solutions for California’s $2-billion-a-year pistachio industry. New research reveals how the hull is built and how cell walls in certain layers break down, along with the genes and corresponding mechanisms that spark and control those changes.

    Pectin, a component of cell walls, makes fruit skin strong in part by keeping cells hitched to each other. In pistachio hulls, the composition of pectin changes as the hull ripens, causing the cells to come unhitched. This leads to cracks and tears in the hull.

    In the Journal of Experimental Botany, recent Ph.D. graduate Shuxiao “Susan” Zhang, a student in the lab of Department of Plant Sciences Professor Georgia Drakakaki, identified genes that control how cell walls change as the fruit ripens, leading to the hull breaking down. The research will help breeders select for traits that will make the hulls less vulnerable to tearing and cracking.

    “This is the first time anyone has studied the pistachio hull at the anatomical and cellular level while also looking at gene expression and physiological data,” Drakakaki said. “Susan really got into the details of how the hull is built with different layers and how the cells in those layers are of different sizes. The layers respond differently to changes in pectin, and that causes the hull to split in different ways.”

    Zhang built on the work of two more scientists in the department and their teams. Grey Monroe, an assistant professor, and Barbara Blanco-Ulate, an associate professor, assembled a reference genome of Pistacia vera ‘Kerman,’ the leading female pistachio cultivar in California. They also defined the stages of the nut’s growth and the characteristics at each stage. Their work was published last year.

    A Model for Fruit Split in a Variety of Crops

    Over three years, the team took samples of pistachio hulls from trees in a commercial orchard near Fresno and at the Wolfskill Experimental Orchard, operated by UC Davis near Winters, Calif. They worked with the most common varieties grown in the state, including Kerman, Golden Hills and Lost Hills. They took samples from trees at different points late in the hulls’ development, stretching over several months.

    Using special imaging tools and techniques, Zhang and her team measured hull thickness and cell size, and they counted hulls that were intact, tattered, cracked or both. They also measured how well cells in the hull were sticking to each other, and in each sample counted the cells that had come unhitched.

    Then, the team pulled out RNA from the samples to learn which genes were being expressed at different stages as the hull develops and breaks down. They found that key genes express differently as that process unfolds.

    Since all hulls were intact at 91 days after flowering, Zhang and team reasoned that fruit ripening may be linked with hull split. So, the team also examined the genes — including those involved in pectin modification — that change the cell wall as the fruit ripens. Researchers discovered that cells in the interior layer of the hull expand, while cells in the exterior layer tend to stay the same size. This, in combination with changes in the cell wall, led to different types of hull breakdown.

    “This is one of the major novelty factors for our paper,” Zhang said. “Loads of people have looked at pectin in all kinds of fruits, but not many people have observed that, depending on which cell layer you’re in, the pectin, cell size and so on will change differently during ripening.”

    The physics of forces operating within the cell layers and humidity also influence degradation of the hull, Zhang found.

    Because pistachio hulls are the fruit of the tree, even though we eat the seed, the research has applications for many non-berry fruit crops, Zhang concluded.

    The California Pistachio Board funded most of this research, with additional support from the United States Department of Agriculture’s National Institute of Food and Agriculture, the James Monroe McDonald Endowment and the University of California Agricultural and Natural Resources. — By Trina Kleist, UC Davis Department of Plant Sciences

  • New Map to Crack the Code of Pistachio Genetics

    California produces 99% of the nation’s pistachios, generating nearly $3 billion in economic value in the state. But pistachios have been slightly understudied in part because of the lack of a high-quality map of their DNA. University of California, Davis, researchers have now generated the most comprehensive genome sequence of the pistachio, allowing plant breeders to create better — perhaps more nutritious — varieties. They’ve also detailed how pistachio nuts develop, which will help farmers manage their crop more sustainably.

    New Phytologist published the study on March 20th.

    Scientists have sequenced the DNA of pistachios before, but co-corresponding author J. Grey Monroe, an assistant professor with the Department of Plant Sciences, said this new genetic map is vastly more detailed and accurate.

    “The improvement in accuracy of the new reference genome is like going from a hand-drawn map of a landscape to a satellite image from Google Earth,” he said.

    Monroe and the research team sequenced the genome of the Kerman cultivar, the most common pistachio variety grown in California.

    Climate change challenges pistachio yields

    Pistachio trees are resilient to drought and salinity, but they require cold winters to flower properly. As climate change brings warmer winters, growers need new pistachio varieties that can thrive in higher temperatures. Warm winters, combined with the dissipation of fogs that cool California’s Central Valley, have caused significant losses for pistachio growers.

    Given that establishing a pistachio tree requires a commitment of up to 50 years, researchers said California growers are understandably concerned about the impacts of climate change on their crops.

    A nutty development

    The study also identifies four key stages of nut growth from flower to harvest, providing a complete physiological assessment, including shell hardening and kernel growth.

    “Knowing how the nut changes through development will help farmers make better decisions, like when to water their trees, leading to more sustainable pistachio production,” said co-corresponding author Bárbara Blanco-Ulate, an associate professor with the Department of Plant Sciences.

    A more accurate assessment of its development could also help provide growers better strategies for harvest and avoid issues such as insect damage and fungal infections.

    Blanco-Ulate said it was important to also detail not just the physical changes of the pistachios, but also the genetic and molecular drivers of those characteristics. The genomic sequence includes precedent-setting information on how different genes behave in nuts over the growing season.

    Nutritious nut

    Pistachios have always been a nutritious food, but researchers have now discovered the genes and pathways that influence their nutritional value. This includes insights into how protein and unsaturated fatty acids accumulate, which is crucial for both their shelf life and dietary benefits.

    “We’re getting information about how all these nutritional characteristics are gained in pistachios and how we can improve that from a management perspective,” said Blanco-Ulate.

    This understanding could help scientists breed more nutritional pistachios in the future.

    The first authors of the paper are Jaclyn Adaskaveg and Chaehee Lee of UC Davis. Other UC Davis authors include Yiduo Wei, Fangyi Wang, Saskia D. Mesquida-Pesci, Matthew Davis, Louis Ferguson, Giulia Marino, Patrick J. Brown, Georgia Drakakaki, Selina Wang and Filipa S. Grilo.

    Research was funded by the California Pistachio Research Board, the U.S. Department of Agriculture’s National Institute of Food and Agriculture and the Foundation for Food and Agricultural Research. — By Amy Quinton, UC Davis