Category: Non-Video

  • Automated Delivery System for Therapeutic Materials to Treat HLB Infected Citrus

    Why is this research needed?

    In 2005, a disease called Huanglongbing (HLB, citrus greening, was identified in Florida’s commercial citrus groves. The disease is caused by a bacterium that affects all citrus cultivars by disrupting the flow of nutrients from the source of production, to the site of use, causing tree decline. HLB weakens the root system, increases early fruit and leaf drop, lowers tree productivity and fruit quality and ultimately kills the tree. The disease has spread to all the major production regions in Florida. Economic losses have exceeded more than $4 billion dollars. Currently, more than 95% of Florida’s trees are infected. There is currently no cure for the disease.

    Efforts to control HLB have been unsuccessful as the bacterium cannot be cultured, literally grown, in a petri dish, and once in the plant it proliferates within the citrus phloem. Phloem is the system that transports sugars from their site of production, the leaves, to plant parts that use sugars, the roots or flowers.Phloem transport is generally downward but can be upward as well.

    Once the HLB bacterium is in a tree’s phloem it has the potential to infect the entire tree. It is exceedingly difficult to introduce any control agent into the phloem with the conventional control methods of foliar spraying or soil drenching.

    Thus far, no treatment preventing HLB infection, or controlling the bacterium once within the tree, has been developed. Potential chemicals are being investigated, but in order to test them, direct or indirect phloem delivery, where the bacterium proliferates, is needed. Therefore, an effective method of delivering an effective volume of theraputics into the phloem is needed to evaluate potential treatments.

    What is the focus of this project?

    Our project focuses on developing a method of delivering therapeutic liquid materials, bactericides, microbial metabolites, RNAi, or biologicals, into the citrus vascular tissues, both the xylem which conducts water and nutrients upward from the roots and the phloem, which conducts sugars and other metabolic products downward from the leaves. We are investigating diffusion, trunk punctures with a surrounding liquid reservoir for passive uptake and infusion, low pressure active injections. We are focusing on these methods as foliar sprays and root drenches have not been successful phloem delivery methods.

    Who will be doing the research?

    The project is led by plant pathologist Dr. Ozgur Batuman with colleagues at the Southwest Florida Research and Education Center (SWFREC) at University of Florida in Immokalee. This four-year project will also study the citrus vascular system with a multidisciplinary research team including UF Plant Pathologists Drs. Nabil Killiny and Amit Levy at Lake Alfred, SWFREC UF Plant Physiologist Ute Albrecht, Citrus Horticulturist Fernando Alferez, Precision Ag. Engineer Yiannis Ampatzidis, Agricultural and Natural Resources Economist Tara Wade, University of California-Davis Extension Specialist Louise Ferguson and Texas A&M-Kingsville Citrus Center Plant Pathologist Veronica Ancona as well as number of graduate students, postdocs, and Florida, Texas and California citrus industry members.

    How will this research be done?

    Our earlier research involving comparisons of delivery methods including foliar sprays, soil drenching and trunk injection determined Needle-Assisted Trunk Infusion (NATI) was the best potential delivery method (Figure.1). In initial experiments, using NATI, 1 ml of rhodamine (1%) dye was injected into the trunks of one-year-old citrus seedlings. A visible red color, indicative of rhodamine uptake and movement, was detected in the upper-most leaves within 30-60 min and an increase in color intensity was observed within 24 hours. Similar results were observed in two-year-old grafted Valencia plants within 48 hours. If the NATI delivery method can be automated, large numbers of trees could be treated quickly. Once the delivery method has been developed, implementation will be tested with potential treatments developed within other research projects.

    Our proposed automated delivery would consist of a robotic arm with several modules at the end of the arm, installed on an ATV or tractor. One module with needles would grip and puncture the trunk, a second module would wrap a reservoir around the trunk below the punctures and third module would fill the reservoir. (Figure 2). Hopefully, a robotic arm plus automated system will be inexpensive enough for growers to purchase and simple enough to use.

    Another approach is disease prevention; application pf prophylactic chemicals that prevent infection. In this scenario our system would be used treat healthy young trees with bactericides or boost their immune system. When infected by the ACP the bacterium would either be killed or suppressed, perhaps below the level that harms tree growth and productivity. This option is analogous to the vaccinations that prevent diseases in humans and animals.

    What are the greatest challenges and opportunities?

    The greatest challenge is successful phloem delivery. The greatest opportunity is that, if successful, we will have developed a method that will allow much more precise deliver of theraputics to citrus trees. For example, if an effective phloem delivery method is developed, it could be used to control insects that feed on citrus plant parts. Or, it could be used to deliver growth regulators, perhaps nutrients and carbohydrates, to roots and fruits to increase growth, development and fruit quality; much like an intravenous injection functions in an animal.

    Among the questions we hope to investigate are:

    • When, what kind of, and what amount of therapeutics can be applied by NATI?
    • At what frequency?
    • What type of citrus tree: cultivar, age, infected, healthy is the best for treatment by NATI?
    • Can we kill the bacterium? How and when to assess a change in bacteria titer after treatment?
    • When will become available and be economically feasible for growers?
     — By Ozgur Batuman, Southwest Florida Research and Education Center, University of Florida; and Louise Ferguson, Department of Plant Sciences, University of California Davis
    Figure 1. Distribution of rhodamine (red dye; 1%) applied by NATI in various tissues (left) of grafted and non-grafted young citrus plants grown in the greenhouse (right). Photos taken 2 weeks after the treatments. Treatments and tissues observed are indicated. Yo = year-old.
    Figure 2. Projected automated delivery system (ADS); an ATV with extendable arm with NATI and the cover placement systems on the arm guided onto the tree trunk.
  • Dry Root Rot of Lemon

    The calls have come in.  We’ve gone from cool to hot and Dry Root Rot of Lemon has struck,  It’s shocking how fast the trees go down.

    Dry Root Rot has menaced growers in Ventura County for many years. In the ‘50’s and ‘60’s it seemed most prevalent on older orange trees. A few years after the wet winter of 1968-69, dry root rot became an increasing problem among citrus trees of all ages. At that time, most of the damaged trees were on sweet rootstock (susceptible to Phytophthora), and growing in fine-textured soils or soils with poor drainage. A few years after another wet winter/spring (of 1983), dry root rot again reared its ugly head, but this time predominately on young lemons.

    The disease is caused by the fungus, Fusarium solani. This fungus is most likely present in all citrus soils in California. It is a weak pathogen in that by itself it will not attack a healthy tree. However, experiments conducted in the early 1980’s by Dr. Gary Bender, showed that when seedlings were girdled, root invasion occurred. In the field, the fungus can infect trees once gophers have girdled the roots or crown. A Phytophthora infection will also predispose trees to Fusarium, as will asphyxiation. Therefore, the mere presence of the fungus in the orchard soil will not lead to the disease.

    Description

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    Fusarium is a soil borne fungus that invades the root system. Once infected, the entire root will turn reddish-purple to grayish-black. This is in contrast to a Phytophthora infection which, in many cases, will attack only the feeder roots, but when larger roots are infected, only the inner bark is decayed and it does not discolor the wood. In addition, when observing the cross section of a dry root rot infected trunk, a grayishbrown discoloration in the wood tissue can be observed.

    Dry root rot is a root disease, but symptoms of the root decline are seen above ground. They are similar to any of the root and crown disorders such as Phytophthora root rot, oak root rot fungus (Armillaria) and gophers. The trees lack vigor, leaves begin to turn yellow and eventually drop (especially in hot weather) causing twig dieback. Finally, the foliage will become so sparse that one will be able to see through the canopy of the tree. A period of two to three years may pass from the time of invasion until noticeable wilt. Many times, the tree will collapse in the summer, after a period of prolonged heat. In the case of dry root rot, the collapse is so rapid that the tree dies with all the leaves still on the tree. When looking for symptoms of dry root rot, keep an eye out for symptoms of other maladies as well — Phytophthora, oak root rot fungus and gophers being the most prevalent.

    As mentioned previously, in order for Fusarium to infect a tree, there must be a predisposing factor such as girdling from gopher feeding. However, since many trees collapse from dry root rot without any apparent predisposing factor, there are obviously other factors which we have yet to identify. Therefore, in 1998, a grower survey was developed, along with intensive soil and leaf sampling, to attempt to identify as many new predisposing factors as possible. They might be elements in the soil, either deficiencies or excesses, or specific cultural practices such as irrigation patterns or fertilizer practices. Twenty orchards were identified from which 20 soil and 20 leaf samples were taken in diseased areas and another 20 soil and 20 leaf samples were taken from adjacent healthy areas. The owners or managers of the properties were given a questionnaire to complete regarding a variety of cultural operations. The objective was to identify those factors that would correlate well to trees becoming infected with dry root rot.

    Survey Results

    Soil analysis – The following laboratory procedures were conducted to see if there was any correlation between the disease and either deficiencies or toxicities of these elements or
    conditions: sodium, boron, salt level, pH and soil type (sand, loam, clay). For these elements or conditions, no correlation was found. It would appear that for our sampling sites, these conditions, whether favorable or not (toxic or deficient), did not play a major role in predisposing the tree to dry root rot.

    Leaf analysis – The following elements were analyzed for their concentration within the leaf: nitrogen, potassium, phosphate, manganese, magnesium and zinc. Of these, three correlations were found. Zinc and manganese levels were substantially higher in diseased trees. The third correlation showed a potassium deficiency in diseased trees. However, we do not believe that dry root rot is caused by elevated levels of zinc or manganese, or by potassium deficiency, but rather are a result of the disease. Unfortunately, it seems that we have still not identified any elements in leaf analysis that truly correlates and points to a predisposing factor for disease development.

    Control Measures – What Works & What Does Not
    Early experiments conducted by Menge, Ohr and Sakovich showed that the following circumstances or operations do not influence the incidence of this disease: fungicidal treatments, wounding the tap root at time of planting, sandy versus clay textured soils, spring versus fall planting and soil mounding.

    1. In choosing your nursery tree, the choice of rootstock is not important in that, as far as we know, all rootstocks are susceptible to this disease. However, since Phytophthora is a major component in dry root rot development, choosing a rootstock like sweet orange would certainly put those trees in a high risk category. We recommend that growers use Phytophthora resistant rootstocks like C35 or Citrumelo.

    Phytophthora. Publications written in the 1970’s, and again noted by our survey, showed that Phytophthora is a major culprit in the dry root rot complex. To control dry root rot, it is essential that the Phytophthora, when present, be controlled. This can be accomplished by fungicidal treatments, and by the proper application and timing of irrigation water. Overwatering creates a favorable environment for the multiplication of the Phytophthora fungus.

    Gophers. It is well known that gopher damage provides entry points for Fusarium. Controlling gophers is an important factor in reducing the potential of infection by Fusarium.

    Control

    We presently have no direct control for dry root rot. To control the disease, we must control the predisposing factors such as gophers, Phytophthora, poor drainage and over-watering. If the predisposing factor(s) cannot be identified for a given diseased orchard, it will indeed be difficult to control the disease. Two things are certain though: 1.) There are no chemicals to date which will control this disease; and 2.) Presently, there are no rootstocks resistant to the disease. — By Ben Faber, UC Cooperative Extension

    Listen to Akif Eskalen tell the Dry Root Rot story

    https://www.youtube.com/watch?v=K2fyBcC1HXk&feature=youtu.be

  • PPE in Short Supply for Farm Work During the COVID-19 Crisis

    While most Californians are staying home to slow the spread of the novel coronavirus, California farmers, farmworkers and other agricultural professionals are out in the fields and packing houses working to produce food. With increased demand for personal protective equipment, or PPE, to protect against COVID-19, these essential workers are facing shortages. Agricultural commissioners in 28 counties are hearing from farmers who are having trouble getting PPE for their employees and farmers in another 11 counties who are worried about running out of PPE in the next month or two, according to a California Department of Pesticide Regulation survey.

    Gloves, N95 respirators, coveralls and other gear that workers wear to protect themselves from COVID-19, pesticides, dust and other health hazards are in short supply as priority is given to health care workers during the pandemic.

    To reduce the spread of COVID-19, workers may wear homemade face coverings, but for applying pesticides, they must wear respirators specified on the pesticide product label, said Whitney Brim-DeForest, UC Cooperative Extension rice advisor.

    Pesticide applicators may use gear that is more protective than required by the product label and regulations. 

    “Although this could change in the days ahead, half-mask and full-mask respirators are more available than disposable N95 respirators for now,” said Lisa Blecker, coordinator for the UC Pesticide Safety Education Program.

    Before the pandemic, 10% of N95 respirators from 3M went to health care, but that number is now 90%, the company said in a letter to distributors. This has led to significant backorders of PPE supplies for distributors.

    Carl Atwell, president of Gempler’s, an online distributor of worker supplies, said that before the crisis, normal lead times for PPE was up to 10 days. He estimated disposable respirators will become available in the fall and other PPE supplies in August.

    In the meantime, there is alternative PPE that agricultural professionals can use during the shortage.

    Atwell suggests looking for lesser known brands of PPE as opposed to the first tier of choice: “It’s sort of like searching for Purell hand sanitizer. Purell brand might be out of stock, but can you find a different disinfectant?”

    On Gempler’s website, the more recognizable Tyvek coverall from Dupont is sold out, however disposable protective clothing is available from other brands. Reusable chemical-resistant clothing is also available as opposed to their disposable counterparts. Supplies in high demand are reusable and disposable nitrile gloves, protective clothing, disposable respirators and certain protective eyewear, such as goggles and face shields.

    For workers who will be applying pesticides, Blecker and Brim-DeForest offered some guidelines on how to meet PPE requirements as the shortage continues.

    General PPE requirements: “Remember, the label is the law,” said Brim-DeForest. “PPE requirements for agriculture are not being loosened.” The UCCE advisor recommends purchasing only what you need for the season and choosing reusable PPE whenever possible. Growers who have excess supplies of PPE can coordinate with their county agricultural commissioner or UCCE advisor to help other producers in their area.

    Respirators: If you can’t find the respirator required on the label, Blecker said, “Use an alternative, more-protective respirator. For example, if an N95 is required, you can use a half-mask with N95 particulate filters; these can be stand-alone filters or ones that attach to an organic vapor cartridge. You could also use a different pesticide that doesn’t require a respirator. Consult with your PCA (pest control adviser) for options.”

    Gloves: Chemical-resistant gloves, usually 14 mil or more in thickness are required for most California pesticide applications and should be worn by mixers, handlers and applicators. If nitrile gloves are not available, viton and laminate gloves are universal chemical-resistant materials for most pesticide labels. If the glove material is specified on the label, that instruction must be followed.

    “Disposable gloves less than 14 mil can be worn, but not for more than 15 minutes at a time,” Blecker said. “Farmers should also note that thinner gloves cannot be layered on top of one another.”

    Coveralls: Coveralls should be worn when required by the pesticide label or when the signal word is “WARNING” or “DANGER,” or when applying by backpack or airblast. “Coveralls can be made out of high-density polyethylene fibers (Tyvek and other brands), which are disposable, or cotton, which are reusable,” Brim-DeForest said. “If reusable coveralls are worn, the employer must ensure employees are provided clean coveralls.”

    Goggles/face shields: Face shields are required for mixing and loading pesticides only if it’s stated on the label. “If a face shield is unavailable, a full-face respirator can be used,” Blecker said. “Goggles or protective eyewear should always be worn in California when handling pesticides, regardless of what the label says. The face shield, goggles or safety glasses must provide front, side and brow protection and meet the American National Standards Institute Z87.1 standard for impact resistance.

    The UC Integrated Pest Management Program also covers these topics in their pesticide safety webinar series at http://ipm.ucanr.edu/IPMPROJECT/workshops.html.

    For more information about PPE, contact your county agricultural commissioner or see the California Department of Pesticide Regulation’s posters at https://www.cdpr.ca.gov/docs/whs/pdf/gloves_for_pesticide_handling.pdfand https://www.cdpr.ca.gov/docs/whs/pdf/n95_alternatives_for_pesticide_handling.pdf. — By Katrina Hunter, UC Integrated Pest Management Program pesticide safety writer

  • PPE in Short Supply for Farm Work During the COVID-19 Crisis

    While most Californians are staying home to slow the spread of the novel coronavirus, California farmers, farmworkers and other agricultural professionals are out in the fields and packing houses working to produce food. With increased demand for personal protective equipment, or PPE, to protect against COVID-19, these essential workers are facing shortages. Agricultural commissioners in 28 counties are hearing from farmers who are having trouble getting PPE for their employees and farmers in another 11 counties who are worried about running out of PPE in the next month or two, according to a California Department of Pesticide Regulation survey.

    Gloves, N95 respirators, coveralls and other gear that workers wear to protect themselves from COVID-19, pesticides, dust and other health hazards are in short supply as priority is given to health care workers during the pandemic.

    To reduce the spread of COVID-19, workers may wear homemade face coverings, but for applying pesticides, they must wear respirators specified on the pesticide product label, said Whitney Brim-DeForest, UC Cooperative Extension rice advisor.

    Pesticide applicators may use gear that is more protective than required by the product label and regulations. 

    “Although this could change in the days ahead, half-mask and full-mask respirators are more available than disposable N95 respirators for now,” said Lisa Blecker, coordinator for the UC Pesticide Safety Education Program.

    Before the pandemic, 10% of N95 respirators from 3M went to health care, but that number is now 90%, the company said in a letter to distributors. This has led to significant backorders of PPE supplies for distributors.

    Carl Atwell, president of Gempler’s, an online distributor of worker supplies, said that before the crisis, normal lead times for PPE was up to 10 days. He estimated disposable respirators will become available in the fall and other PPE supplies in August.

    In the meantime, there is alternative PPE that agricultural professionals can use during the shortage.

    Atwell suggests looking for lesser known brands of PPE as opposed to the first tier of choice: “It’s sort of like searching for Purell hand sanitizer. Purell brand might be out of stock, but can you find a different disinfectant?”

    On Gempler’s website, the more recognizable Tyvek coverall from Dupont is sold out, however disposable protective clothing is available from other brands. Reusable chemical-resistant clothing is also available as opposed to their disposable counterparts. Supplies in high demand are reusable and disposable nitrile gloves, protective clothing, disposable respirators and certain protective eyewear, such as goggles and face shields.

    For workers who will be applying pesticides, Blecker and Brim-DeForest offered some guidelines on how to meet PPE requirements as the shortage continues.

    General PPE requirements: “Remember, the label is the law,” said Brim-DeForest. “PPE requirements for agriculture are not being loosened.” The UCCE advisor recommends purchasing only what you need for the season and choosing reusable PPE whenever possible. Growers who have excess supplies of PPE can coordinate with their county agricultural commissioner or UCCE advisor to help other producers in their area.

    Respirators: If you can’t find the respirator required on the label, Blecker said, “Use an alternative, more-protective respirator. For example, if an N95 is required, you can use a half-mask with N95 particulate filters; these can be stand-alone filters or ones that attach to an organic vapor cartridge. You could also use a different pesticide that doesn’t require a respirator. Consult with your PCA (pest control adviser) for options.”

    Gloves: Chemical-resistant gloves, usually 14 mil or more in thickness are required for most California pesticide applications and should be worn by mixers, handlers and applicators. If nitrile gloves are not available, viton and laminate gloves are universal chemical-resistant materials for most pesticide labels. If the glove material is specified on the label, that instruction must be followed.

    “Disposable gloves less than 14 mil can be worn, but not for more than 15 minutes at a time,” Blecker said. “Farmers should also note that thinner gloves cannot be layered on top of one another.”

    Coveralls: Coveralls should be worn when required by the pesticide label or when the signal word is “WARNING” or “DANGER,” or when applying by backpack or airblast. “Coveralls can be made out of high-density polyethylene fibers (Tyvek and other brands), which are disposable, or cotton, which are reusable,” Brim-DeForest said. “If reusable coveralls are worn, the employer must ensure employees are provided clean coveralls.”

    Goggles/face shields: Face shields are required for mixing and loading pesticides only if it’s stated on the label. “If a face shield is unavailable, a full-face respirator can be used,” Blecker said. “Goggles or protective eyewear should always be worn in California when handling pesticides, regardless of what the label says. The face shield, goggles or safety glasses must provide front, side and brow protection and meet the American National Standards Institute Z87.1 standard for impact resistance.

    The UC Integrated Pest Management Program also covers these topics in their pesticide safety webinar series at http://ipm.ucanr.edu/IPMPROJECT/workshops.html.

    For more information about PPE, contact your county agricultural commissioner or see the California Department of Pesticide Regulation’s posters at https://www.cdpr.ca.gov/docs/whs/pdf/gloves_for_pesticide_handling.pdfand https://www.cdpr.ca.gov/docs/whs/pdf/n95_alternatives_for_pesticide_handling.pdf. — By Katrina Hunter, UC Integrated Pest Management Program pesticide safety writer

  • When to Incorporate Wild Nature & the Bigger Picture of Healthy People/Ecosystems

    Guiding Principles

    At the heart of our work, we believe that farming within natural systems nurtures healthy people and flourishing ecosystems. Farming is dependent on ecological interactions among many kinds of species. Farms can be safer and more resilient because diversity encourages a wide array of beneficial organisms and processes. Farms are more cost effective with reduced outside inputs, and more climate-friendly because diverse habitats store carbon and buffer farms from storms and droughts. Farming with nature also gives room and rights for our nonhuman brethren to co-exist and prosper.

    At the same time that we promote incorporating and accommodating nature on farms and ranches, we advocate leaving wild nature intact, as much as possible. We also support local and regional food systems that respond to people’s needs and that adhere to conservation ethics. These guiding principles can help prevent the spread of pandemic viruses like COVID-19.

    Diseases and Climate Change

    Ecosystem disruption and decline are causing more disease outbreaks and more impacts to the climate. “Many of these emerging diseases arise from changing environmental conditions — including from deforestation, habitat and biodiversity loss, wildlife exploitation, the bushmeat and traditional medicine trade, confined animal agriculture, and antibiotic misuse,” according to Dr. Jonathan Foley, Executive Director of Project Drawdown.

    People keep crowding nature, and with that comes unintended consequences for which we are currently paying the price. The next pandemic could come from cutting down intact forests to produce food, whether it’s to grow crops or graze livestock. The pathogens carried by species in these forests have co-evolved for thousands of years and have come to a kind of equilibrium, in which pathogens may have killed some of its members in years past, and now co-exist with the rest. When animals are crowded, the propensity and rate of disease transmission increase among them. We intrude into a wild area and capture species that have the potential to infect us. And we fragment the habitat, making it easier for rodents, squirrels, monkeys, chimpanzees and bats to come in contact with us or our domestic animals, that then may amplify and share those pathogens with us. We insert ourselves into the mix at great risk without the same immunities.

    The interconnections of our planet dictate that when we cut down forests, we increase the release of greenhouse gases and thereby our climatic risk. Not only has the demise of these trees and many others in the world made them unable to absorb existing CO2, but their loss has contributed to the increasing CO2 load in our atmosphere. It’s not getting better. Between 2015-2018, average annual CO2 emissions were 63 percent higher than in the preceding 14 years.

    People’s internal biomes are yet another interconnection with nature’s ecosystems and are dependent on our food system. As society strives for sterile human environments and compels many to eat nutritionally vapid, cheaply processed food due to the inequitable distribution of wealth, immune systems are compromised. It’s the people with the lowest immunity that are at the highest risk of dying from the coronavirus. Even if they survive this one, there will always be another virus on the way.

    This current pandemic is thought to come from the wet markets, where live, wild animals, extracted from their natural habitats, mixed with people and domestic animals, give rise to pathogens that had never before had access to such hosts. As author David Quammen states about pathogens like COVID-19, “It’s won the sweepstakes.”

    A ban on the sale of all wild animals, especially those that move across international lines, is needed. As human numbers increase, and poor people struggle to feed themselves, it is understandable that some go into adjacent forests for desperately needed animal protein. If we were to help to alleviate that poverty, the rest of humanity and wild nature would benefit.

    Farming with Nature Versus Despoiling Native Habitats

    There is a difference between supporting native species that we have lived with for generations and that have been part of the farm ecology and surrounding landscape, and interacting with other species that have been largely secluded, albeit with indigenous people, for eons in native ecosystems. We have a low risk of catching diseases from the former, and high disease risk from the latter.

    We have learned a lot over the past decade about foodborne pathogens. Removing semi-natural vegetation around the farm is not good for food safety and may actually cause more risk, according to a Proceedings of the National Academy of Sciences study that used fine-scale land use maps with three datasets comprising ∼250,000 pathogen tests to quantify foodborne pathogen prevalence. Another study showed that when there is a diversity of habitat, there will be a diversity of rodents that don’t share or increase foodborne pathogens. With little natural habitat, one species can multiply, share food and roost sites and escalate the proliferation of pathogens.

    Integrated farms with crops and livestock have more organic matter in their soil, and that organic matter supports greater microbial diversity, which reduces the incidence of E. coli pathogens. Livestock manure from non-medicated animals draws dung beetles, which reduce the presence of E. coli pathogens. In a wide-ranging study about birds, little evidence was found linking birds to E. coli, Salmonella or Campylobacter outbreaks. Another study of birds specifically in strawberries showed that fecal contamination is extremely rare (0.01%). Farmers in the US are taking precautions with our food, making sure not to harvest freshly eaten crops like strawberries that have been contaminated by wildlife, livestock or manure.

    Industrial management of livestock, where animals in high density are given antibiotics to pre-empt disease and fatten them up quickly, is stimulating the evolution of superbugs that are antibiotic resistant. Wildlife that encounter these operations inadvertently pick up diseases and may spread them into the landscape. These diseases can contaminate our food or infect us.

    There are other zoonotic diseases – germs that spread between animals and people – that we have to take precautions for in the US. Farmers may get Brucellosis from infected livestock or hunters may get it from infected game; care must be taken with handling live animals and their carcasses. Rabies is spread to people mainly from infected dogs but also other wildlife; vaccinating pets and keeping a respectable distance from wildlife reduces risk. We can get Lyme disease through tick bites, the Plague and Hanta virus through rodent fleas, and West Nile virus through mosquitoes; wearing long sleeves and long pants and taking many other measures decrease the chance of infection. As the planet warms, ticks’ and mosquitoes’ latitudinal ranges within which they live may alter, making these vectors present more often. Studies suggests that the diversity of animals in landscapes can reduce the incidence of several diseases, including Lyme disease, Hanta virus, and West Nile virus. In these situations, when biodiversity is lost, the species that remain tend to be the most competent reservoirs. With Lyme disease, Hanta virus and West Nile virus, the White-footed Mouse, the Deer-mouse and the American Robin respectively can be high reservoirs when they and very few other species are present, but carry much less when there is a diversity of species around. In biodiverse landscapes, there are also more predators to keep these species in check.

    Even progressive agriculture needs to set limits. Our work in helping the organic community protect native ecosystems from being converted overnight to certified crop production will ensure that forests and other vital landscapes function in their climate-resilient capacity here in the states. It will also reduce agriculture’s intrusions into really wild areas of the world.

    What We Can Do & Our Hopes for the Future

    If we have learned anything about pathogens, it is that management decisions should be based on science, not fear, and certainly not on the fast buck which doesn’t account for the full costs of our actions. The world is realizing that to lessen our exposure to pathogens we need to stop these deep intrusions into natural environments. By doing so, we conserve ecosystems for the climate resiliency benefits and a vast magnitude of biodiversity. We need to reorient our focus on our security and finances to include the health of native species and the ecosystems in which we all live.

    We need to expand our support of beneficial birds, insects and other wildlife that provide pest control and pollination services with little risk to ourselves. We need to put livestock out on pastures, decrease their antibiotic use, and reduce the amount of meat we eat. We need programs to reduce poverty near wild areas to lessen encroachments, and in big cities to increase nutrition. We need to decrease or eliminate the wild animal trade. We can cut down the impact and destruction on wild animals and their ecosystems by eating food grown closer to home. We all need to support more local and regional farmers, and get our states to do the same.

    We have an opportunity and a moral mandate to make big changes for ourselves and other species with whom we share this planet. As Jane Goodall says, “We have to realize we are part of the natural world, we depend on it, and as we destroy it we are actually stealing the future from our children.”

  • Minimum Hourly Ag Wage Rates are Highest in Washington & Oregon

    The H-2A Temporary Agricultural Program provides a legal means to bring in foreign-born workers into the United States on a short-term basis. Workers employed on an H-2A visa may remain in the U.S. for up to 10 months at a time. Employers must demonstrate and the U.S. Department of Labor must certify that efforts to recruit U.S. workers were not successful. Employers must also pay a State-specific minimum wage, known as the Adverse Effect Wage Rate (AEWR). The rate is set at the region’s average farm wage to prevent H-2A employment from negatively affecting domestic farmworkers by lowering their wages. For fiscal 2019, this minimum hourly wage was highest in Oregon and Washington at $15.03, followed by Hawaii at $14.73. The wage rate was also high in the Dakotas, Nebraska, and Kansas at $14.38. By comparison, Alabama, Georgia, and South Carolina had the lowest minimum wages at $11.13. This chart appears in the Economic Research Service topic page for Farm Labor, updated January 2020.

  • Berry People Expands to Support Steady Growth

    Berry People (www.berrypeople.com), a year-round, full-line shipper of branded organic and conventional strawberries, raspberries, blueberries, blackberries, and avocados has created new positions within its organization, added team members, and moved operations to a larger central CA office to accommodate the growth, with team members temporarily working from home until the mitigation of COVID-19 matters.

    Jerald Downs – President

    “We are thankful to be an essential part of the nation’s food supply chain, allowing us to support the people in our Berry People community, including our growers, employees, customers and consumers,” said Jerald Downs, president, speaking of the worldwide effects of COVID-19. “We’re assessing the short and long-term effects of the pandemic, and taking measures to manage business risk, while also ensuring the safety of our field labor, consumers, and everyone in between. Our cloud-based and mobile work environment allow us to continue the quality of service that our buyers and growers expect, and we are effectively managing our supply-chain to support the market’s demands.”

    These business moves are consistent with the company’s long-term strategic plan for continual expansion since launching in 2017. Recent key hires include the addition of an ERP-process analyst, financial controller and regional supply managers. “These specialized roles improve functional efficiency, optimize deployment of resources, tighten risk management, and deepen relationships with growers and suppliers,” said Michael Osumi, VP Supply-Operations.

    “Strong core values and a clear company vision support our intentional organization and job design, so our valued team members convey a unified brand promise to our service providers and customers,” said Downs. “These characteristics support our ‘unity in diversity’ philosophy, leaning into each other’s strengths towards a common goal. Our growth and building balance sheet also enable us to increase our investment activity in technology, genetics, and packaging innovation, which supports our long-term growth and profitability.”

    Damon Barkdull – Sr. Commodity-Sales Manager

    “As we approach our third full year in business, our customers can increasingly rely on us for substantially increased volume coverage, and improved continuity across the entire berry and avocado categories, materially reducing the seasonal gaps that are common with young companies like ours,” added Damon Barkdull, senior commodity-sales manager. ”

    With strong business results and overwhelmingly positive customer feedback to date, we never stop looking for better ways to anticipate needs and shorten response times.”Berry People and its alliance partners have operations in California, Mexico, Chile, and Peru. The company offers year-round availability of organic and conventional strawberries, raspberries, blueberries, blackberries and avocados through the Berry People and Avo People brands.”As we build financial strength, we plan to build our ‘social balance sheet’ as well, increasing our position in and commitment to both the marketplace, and to the communities we work in,” said Downs. “We look forward to giving back to the stakeholders that have embraced our organization, appreciating the fact that we’re a company whose growth is driven fundamentally by trust.”

    Michael Osumi – VP Supply-Operations

    Berry People’s short-term plans include the significant expansion of its summer organic strawberry program and a substantially increased position in the Peruvian avocado and blueberry industries.

    About Berry People:

    Berry People is a year-round, full-line shipper of branded organic and conventional strawberries, blueberries, raspberries, blackberries and avocados, and owner of the Berry People and Avo People brands. Headquartered in Hollister, California, the company’s ownership and key alliance partners hold important production assets in California, Mexico, Chile and Peru. All product is graded and allocated by pallet, and all growers are fully compliant with USDA and FDA regulations on food safety and organic practices. Berry People operates with a strong company ethos along its entire supply chain that emphasizes complementarity, stewardship and empathy. For more information, visit www.berrypeople.com, or www.avopeople.com.

  • COVID-19 Impacts on Food Supply Chain (May 12 Zoom Call)

    Why is milk being dumped and produce left to rot in fieldswhile grocery store shelves go empty during the COVID-19 pandemic? Why are grocery stores running out of meat, and eggs becoming so expensive?

    The head of California’s Department of Food and Agriculture, researchers from the University of California, Davis, and food purveyors will tackle these and other questions in an online panel discussion at 5 p.m. Tuesday, May 12.

    UC Davis invites the public to attend “Food Shortages in a Pandemic” over the web through Zoom conferencing. To do so, register online at least 48 hours in advance.

    The 90-minute event, which will include a question-and-answer period with the Zoom audience, will feature:

    • Karen Ross, secretary of the California Department of Food and Agriculture since 2011
    • Dan Sumner, director of the UC Agricultural Issues Center, professor of agricultural and resource economics at UC Davis, and former assistant secretary for economics at the U.S. Department of Agriculture
    • Bu Nygrens, co-owner and director of purchasing at Veritable Vegetable of San Francisco, which distributes organic produce from more than 200 small and mid-size growers to restaurants, markets and co-ops across five states
    • Chelsea Minor, corporate director of public affairs for Raley’s Supermarkets of West Sacramento, a regional grocery chain in Northern California and Nevada

    Moderating the event will be Catherine Brinkley, who, as an assistant professor in the Department of Human Ecology at UC Davis, studies the architecture of food supply networks. 

    The panel will discuss how the food supply chain works, why the COVID-19 pandemic has been so disruptive, how distributors and supply chains are adapting to serve restaurants and grocery stores, and whether changes can or should be made to make food systems more resilient.

    The lecture is the third in the Savor series, which explores some of the biggest food and beverage topics being studied today at UC Davis — a world leader in the study of agriculture. The series is presented by the Robert Mondavi Institute for Wine and Food Science and the UC Davis Library.

    – By Jessica Nusbaum and Julia Ann Easley, UC Davis

  • Berry People Expands to Support Steady Growth

    Berry People (www.berrypeople.com), a year-round, full-line shipper of branded organic and conventional strawberries, raspberries, blueberries, blackberries, and avocados has created new positions within its organization, added team members, and moved operations to a larger central CA office to accommodate the growth, with team members temporarily working from home until the mitigation of COVID-19 matters.

    Damon Barkdull – Sr. Commodity-Sales Manager

    “We are thankful to be an essential part of the nation’s food supply chain, allowing us to support the people in our Berry People community, including our growers, employees, customers and consumers,” said Jerald Downs, president, speaking of the worldwide effects of COVID-19. “We’re assessing the short and long-term effects of the pandemic, and taking measures to manage business risk, while also ensuring the safety of our field labor, consumers, and everyone in between. Our cloud-based and mobile work environment allow us to continue the quality of service that our buyers and growers expect, and we are effectively managing our supply-chain to support the market’s demands.”

    These business moves are consistent with the company’s long-term strategic plan for continual expansion since launching in 2017. Recent key hires include the addition of an ERP-process analyst, financial controller and regional supply managers. “These specialized roles improve functional efficiency, optimize deployment of resources, tighten risk management, and deepen relationships with growers and suppliers,” said Michael Osumi, VP Supply-Operations.

    “Strong core values and a clear company vision support our intentional organization and job design, so our valued team members convey a unified brand promise to our service providers and customers,” said Downs. “These characteristics support our ‘unity in diversity’ philosophy, leaning into each other’s strengths towards a common goal. Our growth and building balance sheet also enable us to increase our investment activity in technology, genetics, and packaging innovation, which supports our long-term growth and profitability.”

    Michael Osumi – VP Supply-Operations

    “As we approach our third full year in business, our customers can increasingly rely on us for substantially increased volume coverage, and improved continuity across the entire berry and avocado categories, materially reducing the seasonal gaps that are common with young companies like ours,” added Damon Barkdull, senior commodity-sales manager. “With strong business results and overwhelmingly positive customer feedback to date, we never stop looking for better ways to anticipate needs and shorten response times.”

    Berry People and its alliance partners have operations in California, Mexico, Chile, and Peru. The company offers year-round availability of organic and conventional strawberries, raspberries, blueberries, blackberries and avocados through the Berry People and Avo People brands.

    “As we build financial strength, we plan to build our ‘social balance sheet’ as well, increasing our position in and commitment to both the marketplace, and to the communities we work in,” said Downs. “We look forward to giving back to the stakeholders that have embraced our organization, appreciating the fact that

    Jerald Downs – President

    we’re a company whose growth is driven fundamentally by trust.”

    Berry People’s short-term plans include the significant expansion of its summer organic strawberry program and a substantially increased position in the Peruvian avocado and blueberry industries.

    About Berry People:
    Berry People is a year-round, full-line shipper of branded organic and conventional strawberries, blueberries, raspberries, blackberries and avocados, and owner of the Berry People and Avo People brands. Headquartered in Hollister, California, the company’s ownership and key alliance partners hold important production assets in California, Mexico, Chile and Peru. All product is graded and allocated by pallet, and all growers are fully compliant with USDA and FDA regulations on food safety and organic practices. Berry People operates with a strong company ethos along its entire supply chain that emphasizes complementarity, stewardship and empathy. For more information, visit www.berrypeople.com, or www.avopeople.com.

  • COVID-19 Impacts on Food Supply Chain (May 12 Zoom Call)

    Why is milk being dumped and produce left to rot in fields while grocery store shelves go empty during the COVID-19 pandemic? Why are grocery stores running out of meat, and eggs becoming so expensive?

    The head of California’s Department of Food and Agriculture, researchers from the University of California, Davis, and food purveyors will tackle these and other questions in an online panel discussion at 5 p.m. Tuesday, May 12.

    UC Davis invites the public to attend “Food Shortages in a Pandemic” over the web through Zoom conferencing. To do so, register online at least 48 hours in advance.

    The 90-minute event, which will include a question-and-answer period with the Zoom audience, will feature:

    • Karen Ross, secretary of the California Department of Food and Agriculture since 2011
    • Dan Sumner, director of the UC Agricultural Issues Center, professor of agricultural and resource economics at UC Davis, and former assistant secretary for economics at the U.S. Department of Agriculture
    • Bu Nygrens, co-owner and director of purchasing at Veritable Vegetable of San Francisco, which distributes organic produce from more than 200 small and mid-size growers to restaurants, markets and co-ops across five states
    • Chelsea Minor, corporate director of public affairs for Raley’s Supermarkets of West Sacramento, a regional grocery chain in Northern California and Nevada

    Moderating the event will be Catherine Brinkley, who, as an assistant professor in the Department of Human Ecology at UC Davis, studies the architecture of food supply networks. 

    The panel will discuss how the food supply chain works, why the COVID-19 pandemic has been so disruptive, how distributors and supply chains are adapting to serve restaurants and grocery stores, and whether changes can or should be made to make food systems more resilient.

    The lecture is the third in the Savor series, which explores some of the biggest food and beverage topics being studied today at UC Davis — a world leader in the study of agriculture. The series is presented by the Robert Mondavi Institute for Wine and Food Science and the UC Davis Library.

    – By Jessica Nusbaum and Julia Ann Easley, UC Davis