Category: Economics

  • Using Ancient Apples to Improve the Future of Apple Breeding

    Dr. Timothy Artlip, a Plant Physiologist with the USDA-ARS Appalachian Fruit Research Station in Kearneysville, WV, was recently interviewed in the USDA-ARS Under the Microscope publication regarding the future of apple breeding. His work encapsulates efforts to improve the breeding and cultivating of apples through genomics research, and he is bullish about the future.  Read the following Q&As from the Under the Microscope (UM):

    UM — What are ancient apples and how do they differ from wild apples?

    TA — Ancient apples are really just old or antique apple varieties that are no longer grown commercially. Sometimes, these older apples fell out of favor because newer varieties held more appeal to consumers due to appearance, taste, sweet/tart balance or mealiness.

    Wild apples, as we define them, are really different species of apples, some of which are actually the ancestor(s) of modern varieties.

    UM — Where did the idea of looking into wild apple genes come from?

    TA — Plant breeders often look to wild or ancestor species or locally cultivated plants as sources of resistance to diseases or harsh environmental conditions that modern varieties don’t have. In many cases, the genes for such resistance was bred out as a consequence of favoring desirable traits such as flavor, appearance, or some other trait. Potato is a great example. Wild potatoes found in the Andes are usually small and bitter; the bitterness is a sign that insects won’t eat them or of disease resistance. Now potato breeders are trying to reintroduce those types of qualities into modern varieties because of evolving insect and disease pressures.

    Modern apples (top row) vs. wild apple species (bottom rows). Wild apples are generally too small for commercial consumption but can still be valuable for apple breeders. (Photo courtesy of Dr. Timothy Artlip)

    UM — What are the differences between ancient or wild apples and the commercial apples we find in grocery stores?

    TA — Wild apples tend to have small fruits on the order of crab apples, so they’re generally not suitable for consumers. They may not have the appearance or flavor qualities that consumers prefer. A similar situation exists for many old or antique apple varieties that have fallen out of favor. They may be small. They may look “ugly” even under the best growing conditions. They may not keep well in common storage or their flavors and mouthfeel (mealiness) may not be suitable either.

    UM — Are there certain types of wild apples that breeders look for and use?

    TA — Yes! The main ancestor of modern apples grows throughout central Asia in countries like Kazakhstan in a variety of local conditions, ranging from rather arid to high altitude to having high disease pressure. Other apple species have specific disease resistance or traits that modern apples generally lack

    UM — Are ancient or wild apples good for picking and eating, or just breeding?

    TA — It depends. Some of the wild apples have fruit that approach commercial size and are edible. Many of the old or antique varieties are very tasty. For example, “Ashmead’s Kernel” was a dessert variety that George Washington would have served to his guests at Mount Vernon. There are also old or antique varieties that were specially bred for cider making that are inedible. With the resurgence in hard cider production, these varieties are especially prized for making a beverage as complex as a quality wine.

    UM — What traits do apple researchers and growers specifically breed for?

    TA — Besides all the fruit qualities that I’ve mentioned, resistance to diseases, insect pests, and harsh environmental conditions (high/low temperature, too much/too little water) are very important. Growers also look for “friendly” trees that bear fruit within 2 or 3 years after planting, are productive, aren’t biennial (more bloom and fruit on alternate years) or self-thin (too many apples end up being too small, so growers have to chemically or mechanically reduce bloom or very young fruit), growth habit (branching, height) and how well the trees take to modern growing practices.

    Forests of wild Malus sierversii in the mountains of Kazakhstan. (Photo courtesy of Dr. Gayle Volk)

    UM — How have advancements in technology and genetic sequencing helped apple breeders?

    TA — Genetic sequencing has given us a fairly complete accounting of the genome (“instruction manual”) for apples. Moreover, this knowledge along with standard breeding techniques allows us to know what genes are responsible for fruit quality traits such as skin color, sweet/tart balance, and mealiness. Now, breeders can make crosses, isolate DNA from young leaves of offspring, and quickly know whether the seedling will have some/most/all of the desirable traits.

    This genomic knowledge has been coupled with “rapid cycle breeding,” where we use a modified variety that blooms within a year after planting and continues to bloom throughout the year in a greenhouse. The cycle can be repeated, reducing the time for creating a consumer and grower desired variety from 15 or 20 years down to 5. This also allows us to respond more quickly to evolving disease, insect, and environmental pressures by breeding better adapted varieties that have the fruit qualities that consumers want.

    UM — What challenges are there to using wild apples to cultivate new ones?

    TA — As I mentioned with the potato examples, they may have desirable traits, but undesirable traits frequently end up in offspring as well. This requires multiple rounds of breeding to keep what is wanted and discard the rejects.

    Years and years of breeding coupled with many acres and the expense of maintaining the trees is not a good economic model. By combining the genetic sequencing and “rapid cycle breeding,” we can introduce those traits we want into commercial varieties much more quickly, with reduced time, land, and inputs.

    These wild apples are tough enough to survive erratic conditions like spring snows. This makes them valuable for breeding. (Photo courtesy of Dr. Gayle Volk)

    UM — How will breeding traits from wild apples into new apple cultivars benefit growers and consumers?

    TA — Consumers have shown a preference for fewer inputs, such as pesticides. Wild apples may have resistance to diseases and pests, thus reducing the need for pesticides. Our group, along with national and international collaborators, recently was able to introduce resistance from wild apples to a disease called Blue Mold that afflicts apples after harvesting. This should reduce fruit losses that can frustrate growers, grocery stores, and consumers. Such efforts are underway with resistance to other diseases as well.

    UM — You have mentioned that you and your team have studied how apple trees respond to low temperatures in spring and winter. Is it possible for us to develop an apple variety that will have increased resilience against stresses brought about by climate change?

    TA — I firmly believe this. Two climate related problems have emerged. First, protracted warm autumn temperatures followed by sharp temperature drops, may lead to trees unprepared for snow or freezing temperatures. This can lead to broken limbs, freezing damage, or tree death.

    Secondly, we frequently see warm spells in late winter or early spring that fool trees into breaking bud or blooming, followed by frosts or visits by the polar vortex. This can result in dead flowers, thus reducing yield or even killing trees. By having the apple genome, scientists across the globe are gaining a better understanding of the interplay of genes involved in stress resistance and dormancy.

    UM — What do you predict as the next step in apple breeding?

    TA — I think the new genome editing tools, coupled with “rapid cycle breeding,” will gain more acceptance and allow us to more quickly respond to changes or even anticipate them. It really is an exciting time in not only apples but plant breeding in general.

  • Blueberry Councils Appoint Two New Hires

    Beginning September 28, 2020, the U.S. Highbush Blueberry Council (USHBC) and North American Blueberry Council (NABC) appointed Jennifer Sparks, a longtime marketing professional for the floral industry, as vice president, marketing and communications.

    Jennifer Sparks

    In her new role as part of the USHBC/NABC executive team, Sparks will manage various advertising agencies and marketing partners, and oversee all aspects of the marketing strategic plan, including branding, merchandising, promotions, advertising, public/media relations, market research and consumer affairs to spotlight the health benefits of blueberries and increase consumption. She will lead the implementation of brand-driven internal and external communications across a range of categories: consumer, retailer, food service and industry relations. She will work with a diverse group of industry stakeholders – growers, handlers, importers and retailers – across two continents.

    Sparks brings more than two decades of association management and industry promotion experience, most notably 17 years as vice president of marketing for the Society of American Florists (SAF). There, she spearheaded the floral industry’s public education and media relations campaigns, experiential marketing initiatives, influencer programs, digital content and collateral materials. The SAF program developed strategies, messaging and key tactics inspired by consumer insights and groundbreaking university research to promote the emotional health and well-being benefits of flowers. Sparks also served as the industry spokesperson and trained others in media relations best practices.

    Sparks holds a master’s degree in public relations/corporate communications with a specialty in crisis management from Boston University, and a bachelor’s degree in journalism from Radford University in Virginia.

    “We’re thrilled to have Jennifer on board to help direct our marketing and demand-driving efforts,” shared NABC/USHBC President Kasey Cronquist. “She brings a depth of experience and leadership that gives me great confidence in where our blueberry industry can go from here.”

    A self-proclaimed blueberry enthusiast since childhood, Sparks says, “I am grateful for the opportunity to join such a dynamic team to help build brand recognition, enhance thought leadership, amplify the value proposition and promote the amazing benefits of blueberries.”

    Sparks shared more of her experience and thoughts on the new direction for 2021 in a recent episode of USHBC’s “The Business of Blueberries” podcast.

    Adam Winland Joins NABC and USHBC as Financial Controller

    Adam Winland has been hired as the financial controller for the North American Blueberry Council (NABC) and the U.S. Highbush Blueberry Council (USHBC), a newly created position that will oversee the councils’ day-to-day accounting and provide strategic financial direction.

    Adam Winland

    Winland brings 15 years of financial management experience to the councils. He most recently spent four years as controller for Ideal Dental Management Partners based in West Sacramento, California. He managed the finances of multiple dental offices and was involved in the acquisitions and sales of dental practices.

    He previously spent two years as assistant controller for Easter Seals Bay Area based in Pleasant Hill, California, and six years as vice president of accounting and finance for TKG International, a real estate investment firm based in Livermore, California. At TKG, he was involved in the management of the company’s 100-acre vineyard and helped it transition to organic growing practices and become certified by California Certified Organic Farmers.

    He is a native of Michigan and a 2004 graduate of Eastern Michigan University with a master’s degree in accounting and a bachelor’s degree in accounting information systems, with a minor in economics.

    Winland will be part of the councils’ executive team and manage an annual budget exceeding $13 million. He will oversee accounting, investments, cash flow management, and short- and long-range financial projections. He will also ensure the accuracy of NABC/USHBC accounting data and financial records, produce annual budgets and financial reports, and oversee financial and regulatory audits. He’ll head up administrative services, which includes human resources, benefits, policies and procedures, and operations.

    “We’re excited to have Adam bring his knowledge and expertise to the team,” said Kasey Cronquist, president of NABC and USHBC. “His prior experience in ag and finance make him a perfect fit as we look to grow our program alongside the growing demand for blueberries.”

    “I’m thrilled to be part of these organizations and I look forward to helping NABC and USHBC achieve their respective visions,” Winland said. “Coming back to my ag roots is an absolute pleasure, and I’m happy to contribute to the success and sustainability of the councils.”

    About the U.S. Highbush Blueberry Council
    Established in 2000, The U.S. Highbush Blueberry Council (USHBC) is a federal agriculture research and promotion program with independent oversight from the United States Department of Agriculture (USDA). USHBC represents blueberry growers and packers in North and South America who market their blueberries in the United States and overseas, and works to promote the growth and well-being of the entire blueberry industry. USHBC was established by blueberry growers and currently has 2,500 growers, packers and importers. USHBC is committed to providing blueberries that are grown, harvested, packed and shipped in clean, safe environments. Learn more at ushbc.org.

    About the North American Blueberry Council
    Since 1965, the North American Blueberry Council (NABC) has been the voice of the blueberry industry in the U.S. and Canada. NABC’s members represent approximately 70% of the North American highbush blueberry crop. NABC was instrumental in the establishment of the U.S. Highbush Blueberry Council (USHABC), a federal agriculture research and promotion program with independent oversight from the United States Department of Agriculture (USDA). Learn more at nabcblues.org.

  • CDFA Prune Handlers Annual Report

    California Department of Food & Agriculture — Prunes produced by handlers in 2019 totaled 9,791 tons, down from the 10,728 tons reported in 2018. This figure does NOT include prunes purchased from other handlers or producers.

    The total 2019 prune crop purchased from producers, for whom pricing had been finalized, reached 38,336 tons at an average price of $1,456 per ton, down significantly from the $1,715/ton average of 2018. This price is rounded to the nearest dollar per ton and includes all bonuses and allowances.

    Purchases from producers, for whom pricing was NOT finalized, totaled 39,828 tons. The average “good faith” estimate of the final weighted average price for this tonnage was $2,133 per ton.

    The quantity of all prunes purchased from producers was 78,164 tons for the 2019 crop. This figure does not include prunes produced by the handler or purchased from other handlers. The weighted average size count of tons purchased from producers was 57 for the French varieties and 58 for the Non-French varieties.

    The tonnage produced by the handler plus tonnage purchased from producers for the 2019 prune crop was 86,879 tons of French prunes and 1,077 tons of Non-French prunes for a total of 87,956 tons.

    Information contained in this report was supplied by prune handlers to fulfill reporting requirements of Sections 55601.7 and 55601.8 of the Food and Agricultural Code. The report includes all tonnages of prunes that were either produced by the handler or purchased from producers. The final weighted average price, including bonuses and allowances, has been reported for all contracts which were finalized.

    All 2019 crop transactions completed through the close of business on August 31, 2020 are included in this report. A “good faith” estimate of final weighted average price was reported for those contracts which were not final on the same date. The data are shown by major varieties at the State level only.

    DEFINITIONS

    Producer: A person or operator who is responsible for the prunes in the unprocessed state. A dehydrator operator is considered the producer of prunes if they grew or purchased fresh prunes and dehydrated them.

    Handler: Firm that processes and markets prunes.

    Finalized Purchases: Tonnage purchased from producers, for which a pricing contract has been completed.

    Non-Finalized Purchases: Contracted tonnage, for which a final price has not yet been determined.

    Free Tonnage: Tonnage received by a handler, for which the only Federal marketing order regulation is a minimum quality or size standard. Reserve tonnage is the tonnage set aside as authorized by a Federal marketing order.

    Weighted Average Price: Weighted average price reflects prices or “good faith” estimates of prices as reported by handlers and include any bonuses or allowances. 

  • USDA Study Reveals Airborne Fungus Can Trigger Plant Growth

    The U.S. Department of Agriculture’s (USDA) Agricultural Research Service (ARS) recently announced that a harmless airborne fungus, Cladosporium sphaerospermum strain TC09 (TC09), can dramatically accelerate plant growth if a germinating plant is near the fungus as it emits volatiles or gases.

    Scientists used tobacco and pepper plants as models to study the conditions for accelerated plant growth once exposed to TC09. Following a relatively short duration of exposure at the seedling stage, the plants began to sense the fungi’s volatiles and gases. USDA scientists were then able to stimulate extremely rapid plant growth, earlier flowering and fruit yield increases.

    “This is a game-changer for agriculture and for research that seeks innovative ways to accelerate plant growth,” said USDA Scientist Dr. Chris Dardick. “Its implications are far-reaching and will help ARS’ commitment to deliver cutting-edge scientific advances for American farmers and producers.”

    The effects of TC09 were largely correlated with the duration of exposure. Visual observation indicated that plants with TC09 exposure for 10 days exhibited substantially more vigorous growth, thicker stems, larger leaves, and a more robust root system relative to plants without fungal exposure. Results also showed that treated plants flowered 20 days sooner and pepper plants yielded up to 213 percent more fruit that was ready for harvest three weeks earlier than untreated controls. More recent studies have shown similar research results for numerous other crops such as lettuce, arugula, kale, basil, and other leafy greens.

    This species of fungus is commonly found in indoor environments and is not known to cause disease in plants or any ailments in humans or animals. Also, unlike other microbial species that have been tested, the researchers showed that TC09 does not induce defense or stress responses in exposed plants. Scientists hope to identify the specific volatiles and gases that stimulate plant growth in future research.

    Research on microbial biostimulants that enhance plant growth has recently intensified because they provide an eco-friendly, cost-effective and sustainable strategy to benefit agriculture. USDA scientists will continue to study TC09 and seek practical strategies to apply it during commercial crop production, particularly for urban and indoor agricultural systems. They are awaiting approval of a patent and commercial evaluation license and partnered with NASA to apply this research technology to spaceflight conditions. This research was supported in part by grants from USDA-ARS, ARS’ Appalachian Fruit Research Lab, and the Oak Ridge Institute for Science and Education.

    The Agricultural Research Service is the U.S. Department of Agriculture’s chief scientific in-house research agency. Daily, ARS focuses on solutions to agricultural problems affecting America. Each dollar invested in agricultural research results in $20 of economic impact.

  • Turkey Increases Stone Fruit Production, Strengthens Position Among Top Exporters

    The total cherry production forecast in Turkey in Marketing Year (MY) 2020/21 is 918,000 metric tons (MT), which is 72,000 MT more than MY 2019/20. The peach and nectarine production forecast for MY 2020/21 is 870,000 MT, 40,000 MT more than MY 2019/20. Stone fruit exports are increasing due to abundant production and strong demand from the Russian and EU markets. Turkey aims to improve its exports of fresh sweet cherries to China. Read the full report from the USDA Foreign Agricultural Service, covering cherries, peaches, and nectarines, HERE.

  • Heat Damaged Groves MAY BE Eligible for Tree Assistance Program Funding

    California Avocado Commission— In early September much of California experienced excessive heat, including many avocado growing regions. A few growing areas reported sustained temperatures of around 120 degrees. Understandably, due to this extreme heat some trees are experiencing severe damage. The California Avocado Commission immediately contacted the United States Department of Agriculture’s Farm Service Agency (FSA) to pursue possible funding for growers under the Tree Assistance Program (TAP).

    Under the TAP, “To be considered an eligible loss: Eligible trees, bushes, or vines must have suffered more than a 15 percent mortality loss in a stand (adjusted for normal mortality) due to an eligible natural disaster.” Here is a TAP Fact Sheet.

    However, FSA has ruled “heat” is not an eligible event under the TAP program. In 2016, when a similar heat event occurred resulting in California avocado tree damage, the Commission was successful in getting FSA to include heat-related damage. Considering that FSA currently lists “freeze” (an extreme low temperature event) as a TAP-eligible event, there seems to be no basis to exclude extreme high temperature events.

    The Commission is once again strongly advocating with FSA for the inclusion of “heat” as an eligible natural disaster and therefore inclusion in the TAP. As the Commission continues to pursue eligibility for the recent heat event, FSA is asking growers to submit their TAP application if they believe they have suffered the minimum threshold of damage. At this point, pending the FSA final determination, the applications will be rejected. Growers must then ask for an appeal.

    While submitting a TAP application now —knowing it will initially be rejected — is not ideal, there is a 90-day timeline that must be adhered to for any future ruling on eligibility. According to TAP growers must apply “within 90 calendar days of the disaster event; or the date when the loss is apparent to the producer.” Thus, in order to ensure growers meet the 90-day rule, they should apply for TAP now while the Commission continues to advocate for the inclusion of “heat” as an eligible event. If growers do not apply within the prescribed 90 days of the heat event or appearance of loss, they will not be eligible for TAP in the event FSA rules in our favor.

    If you believe your grove may meet the 15% mortality loss, you are encouraged to apply. The Commission will continue to work with FSA and keep you posted as additional information becomes available. 

    Applications can be submitted to your local FSA office as follows:

    Ventura, Santa Barbara, and San Luis Obispo Counties:
    Santa Barbara County Farm Service Agency
    Brenda Estrada, County Executive Director
    920 E Stowell Rd., Santa Maria, CA 93454-7008
    (805) 928-9269; (844) 206-7010 Fax
    Brenda.Estrada@ca.usda.gov

    Riverside, San Diego Counties:
    Riverside County Farm Service Agency
    81077 Indio Blvd. Ste. A, Indio, CA 92201
    (760) 347-3675; (844) 206-6978 Fax
    Desiree.Garza@usda.gov

  • To all San Joaquin Valley Citrus Growers

    The ACP/HLB San Joaquin Valley Task Force called a meeting on October 8, 2020 due to the increased number of ACP trap finds in the southern part of Kern County. In the last month (September and into October), there

    have been a total of 35 ACP trap finds in the areas of the south part of Bakersfield, Arvin, Lamont, Mettler, and Maricopa. There were 15 residential and 20 commercial citrus sticky trap finds. While there have been finds in

    some of these areas in the past, the amount of detections in this last 30-day period is alarming. The Asian citrus psyllid, as a reminder, transmits Huanglongbing; the best way to avoid HLB is to control ACP which the valley has been successfully doing. 2020 has been a suspiciously quiet year for ACP finds but now, it is time to act.

    We are now in the late part of the season where most spray programs have already been executed. A coordinated spray is not recommended at this time. Kern County growers are encouraged to use an ACP effective material if they have not done so in the last six weeks. It is prudent for all growers to use ACP effective materials when treating other pests. Regarding the residential finds, CDFA is at various stages of treating them. Prior to these finds, CDFA had released Tamarixia radiata in certain residential areas of Kern County. Future Tamarixia releases are scheduled.

    The task force wants to convey the seriousness of what is being seen and what it means to our industry. Unfortunately, the suspicion is that these finds in commercial citrus are spilling over from residential properties. It is up to the citrus industry to deal with this threat. San Joaquin Valley citrus growers have done a good job using ACP effective materials when treating. The cooperation shown by growers during coordinated treatments reflects their commitment to keeping ACP suppressed. Nevertheless, task force members wished to highlight what should be done to help control the Asian citrus psyllid here in the valley.

    It is even more imperative to control the psyllid due to the find of a CLas positive ACP in commercial citrus down in the Riverside area. That was a wake-up call. We cannot, as an industry and in good conscience, dismiss that find. Growers and Pest Control Advisors need to be diligent. The following best practices must be a part of the regime tending to citrus groves.

    What do Growers and Pest Control Advisors need to do? It is easy to say, “follow the best practices”, but there are key elements that the task force believes is important. All the guidelines should be adhered to, but these are the key elements:

    A. Know When and Where Asian citrus psyllids might be present.
    – flush is what attracts the psyllid. Nice, tender leaves and stems. Like candy to an ACP.
    – citrus varieties matter. Lemons flush constantly. Grapefruit, oranges, and mandarins will have fewer flush cycles.
    – know when flushes occur. Spring, late summer for established trees. Younger trees have extensive, prolonged flush. Topping and hedging will produce flush. Spraying with kaolin stimulates flush also.

    – temperature determines how long a flush will last. Hot temps lead to quick hardening of the plant growth. Cooler temps prolong flush.

    1. Scout for Asian citrus psyllids (Yellow sticky traps are a passive method to determine presence of ACP).

      – use both visual and tap surveying.
      – survey along the borders, psyllids tend to not go deeper into groves unless the population is high (they do not like each other very much). If very wide plantings or very wide wind machine rows exist, then check along them too. Younger trees and shorter trees will allow the psyllids to travel farther into the grove.
      – do more frequent surveys during flush. Monthly surveys work when the vegetation is hardened off, unless the trees are close to a find, then sampling frequency should increase.

    2. Be aware of inadvertently transporting ACP.
      – clean equipment used before moving to the next property. Applies to anyone working in a grove; especially picking crews, trimming crews, irrigators, Pest Control Advisors, and the growers themselves.
      – check clothing and vehicles for insect hitchhikers. Shake out hats, bags, clothing. Sweep down vehicles.
      – do not park vehicles in the rows, park outside of the grove.

    3. If possible, use ACP effective materials when treating other pests, following label instructions.

    4. Follow the requirements when moving bulk harvested citrus.

    5. Be aware of developments!
      – receive newsletters from San Joaquin Valley Grower Liaisons.

    Fresno County Northern Tulare County Southern Tulare County Kern County

    – subscribe to industry publications.

    Sylvie Robillard Teri Blaser Jessica Leslie Judy Zaninovich

    These were felt to be the most important points of the voluntary best practices. The ACP/HLB San Joaquin Valley Tack Force felt it was important to write this letter to all the valley citrus growers because as of this moment, the valley has not discovered a CLas positive Asian citrus psyllid or a CLas positive tree. The members of the task force believe that the industry must operate under the assumption that there are positive psyllids and trees in the valley; they just have not been found yet. If the industry relaxes its vigilance that is when Huanglongbing will become established and cause havoc. Thank you for taking the time to read this and may each and all stay safe and well.

    Sincerely,

    The ACP/HLB San Joaquin Valley Task Force 

  • National Project Tackles Virus Threats to Potato Industry

    A University of Idaho-led team will tackle a pair of viruses that cause major losses to the potato industry.

    U of I researcher and potato virus expert Alex Karasev will lead the project funded by a $5.8 million grant from the U.S. Department of Agriculture National Institute for Food and Agriculture.

    The team of two dozen scientists will target potato virus Y (PVY) and potato mop top virus (PMTV) in seed potatoes, the first level of commercial potato production, and in potatoes grown for market.

    The project involves seed improvement organizations nationally that certify seed potatoes are disease free.

    Long known as a serious problem for growers, PVY damages plants and reduces yields and the size of the potatoes, making the crop less valuable. An earlier U of I study estimated losses from PVY cost Idaho’s potato industry $34 million a year and reduced potential yields by 10 to 50%.

    PMVT presents the potato industry with a new problem. Six states have found the virus in their seed potato crops. An estimated 5% of Maine’s seed potatoes carry PMTV. The virus is transmitted by protists, microbes that have qualities of fungi and algae.

    The project includes university researchers in 10 potato-growing states, including Idaho, Colorado, New York and Oregon, and USDA Agricultural Research Service scientists based in Prosser, Washington, and Aberdeen, Idaho. U of I researchers in Idaho Falls, Kimberly and Moscow will work on the project.

    The new four-year project continues work Karasev participated in that was originally led by a New York-based researcher who retired earlier this year.

    “Because of its position as the nation’s top potato-producing state, it is fitting that Idaho is leading the project,” Karasev said.

    The most immediate goal is to give potato growers tools to control the viruses with better ways to test plants and fields. A key medium-range goal focuses on strategies to control pests that spread the viruses and to educate growers. A long-range priority is identifying genes that can provide resistance to the viruses and their vectors. Those genes can help potato breeding programs to develop new varieties.

    Developing better testing can help seed potato producers to limit the spread of the viruses and prevent losses in the field and storage.

    Researchers will study the economic impacts of the viruses and develop ways to communicate with and educate growers about the best strategies to reduce the viruses’ impacts.

    Karasev won a mid-career award from U of I in 2013 partly for his work on PVY, which became an issue for Idaho growers in the early 2000s. He recently turned his attention to PMTV as its threat to the potato industry increased.

    This project, titled “Development of Sustainable System-based Management Strategies for Two Vector-borne, Tuber Necrotic Viruses in Potato,” is funded under the U.S. Department of Agriculture National Institute of Food and Agriculture grant No. 2020-51181-32136. The total project funding is $5,756,299 of which 100% is the federal share.

  • New California Mandarin Objective Measurement Survey

    USDA’s National Agricultural Statistics Service, Pacific Regional Field Office conducted the Mandarin Objective Measurement Survey for the first time this year. A sample of 271 Tango, W. Murcott Afourer, and White Murcott Mandarin varieties were randomly selected proportional to county and variety bearing acreage. Initial results show an average fruit set of 945 fruit per tree and an average fruit size of 1.49 inches in diameter for these varieties. Because this is a new survey, a production forecast will be not be made for at least three years.

    Fruit counts were made from two trees per orchard, and fruit diameter measurements were taken on the right quadrant of four trees surrounding the two sampled trees.

    California Mandarin Objective Measurement Survey Results, October 1, 2020
    County Number of samples Average set per tree Average diameter (inches)
    Fresno 31 1,378 1.57
    Kern 66 1,005 1.52
    Madera 34 694 1.34
    Tulare 132 912 1.48
    Other1 8 367 1.57
    State Survey Avg. 271 945 1.49

    1Other includes Imperial, Riverside, and Ventura counties.

    This and all NASS Pacific Regional reports are available at www.nass.usda.gov/ca. For more information, contact the NASS Pacific Regional Field Office at 1-800-851-1127.

  • Grafting Watermelon Prevents Disease, WSU Study Shows

    A new study from Washington State University’s Department of Horticulture found that splice grafting helps watermelons resist disease.

    For more than 10 years, watermelon growers in Washington’s Columbia Basin have been struggling with a disease called Verticillium wilt, caused by the fungus Verticillium dahliae.

    The findings were recently published in the American Society for Horticulture Science.

    For decades, methyl bromide, a fumigant used to control pests in agriculture, was used to control plant diseases like Verticillium wilt. The colorless, odorless gas was used for protecting crops, and shipments, but methyl bromide was phased out in 2005 due to one of its side effects: depleting the ozone layer.

    Successful watermelon grafts growing at WSU Mount Vernon NWREC.

    “When methyl bromide was disallowed, farmers no longer had access to it, which meant they had less control over disease spread,” said Carol Miles, interim director of the Northwestern Washington Research and Extension Center in Mount Vernon, Wash., who led the study.

    Miles started searching for answers. She looked to other countries who had given up the use of methyl bromide a decade before the United States, wondering how they were dealing with this issue.

    “What many of the growers worldwide were doing was grafting,” she said. This horticulture technique joins parts from two plants together so they grow as a single plant, with the upper part, or scion, of one plant growing on the root system, or rootstock, of a different plant.

    “Grafting watermelon has been used on a commercial scale in Japan for almost 100 years,” Miles said. “This is not a new concept – it’s just new to us.”

    As a professor in the Department of Horticulture, Miles and her team experimented with grafted and non-grafted watermelon plants. The healthy rootstocks, resistant to the pathogen, are squash plants.

    “The study revealed that we can produce grafted watermelon crop yields that are better than non-grafted plants when there is disease pressure,” she said.

    Non-grafted plants died during the study, but the grafted plants survived due to their healthy rootstocks.

    “The fruit from the grafted watermelon is as good, and in some cases better than non-grafted fruit,” she said.
    Miles said the study bodes well not just for watermelon survival, but for agriculture.

    “Having the grafting industry here in western Washington would be a great benefit,” said Miles, who pointed out that purchasing rootstocks from countries abroad isn’t always convenient.

    Splice-grafted watermelon where both cotyledons (embryonic leaves in seed bearing plants) are removed from the rootstock.

    Due to Washington’s relatively low energy costs, the Pacific Northwest is the prime location for grafted transplant production, Miles said.

    “There is the potential for a greenhouse industry we don’t currently have,” said Miles, who is hopeful that transplant production takes off on Washington’s west side where the climate is moderate, year-round.

    “Right now, transplants are expensive, due in part to the grafting methods that are commonly used for this crop,“ said Pinki Devi, a graduate research assistant for the Department of Horticulture. “Our recent research found that grafting watermelon using the splice grafting method could significantly decrease costs of grafting.”

    Watermelons continue to surprise Miles, and she and her team plan to continue studies on melons.
    “I’ve said for a long time that watermelon was my ‘fun crop,’ because it was just delicious,” Miles said.

    She was pleasantly surprised by a recent study by the USDA which found the amount of a compound called lycopene in watermelon is greater than the lycopene in a tomato.

    Lycopene is often heralded as an antioxidant for the prevention of cancer, so that sweet slice of summer fruit packs a healthy punch.

    “Watermelon is actually a very healthy crop,“ Miles said. —By Lauren Paterson

    WSU College of Agricultural, Human & Natural Resource Sciences