Showing posts with label pathogens. Show all posts
Showing posts with label pathogens. Show all posts

Monday, 16 September 2019

Antibiotic resistance rising among dolphins, study reveals

Research in Florida finds 88% of samples have pathogen that resists at least one antibiotic

Gregory Robinson

Sun 15 Sep 2019 16.00 BST Last modified on Sun 15 Sep 2019 19.50 BST

Antibiotic resistance is rising in dolphins, researchers have said, mirroring the trend seen in humans.

Scientists examined disease-causing organisms, or pathogens, found in samples from the blowholes, gastric fluid and faeces of bottlenose dolphins from the Indian River Lagoon in Florida. The samples were collected between 2003 and 2015.

The area has a large human population on the coast and significant environmental problems. “They include septic tanks, runoff from the land, freshwater discharge from canals, to name a few,” said Adam Schaefer of Florida Atlantic University, the study’s lead author.

Of the 733 samples from 171 dolphins analysed, 88% contained a pathogen resistant to at least one antibiotic. The antibiotic to which the pathogens were most commonly resistant was erythromycin, which is commonly used to treat chest infections, acne and sexually transmitted infections including chlamydia and syphilis.

Resistance to the antibiotic ciprofloxacin among E coli pathogens more than doubled over the period studied, mirroring trends in human infections.

Monday, 20 August 2018

Scientists get new tool to track new pathogen killing frogs - via Herp Digest



August 14, 2018 Source: University of Central Florida

An undergraduate researcher has developed a method to screen frogs for an infectious disease that has been linked to mass die-offs of frogs around the world. Thanks to her method, scientists will be able to track the disease and try to figure out why it is triggering the deaths.

Emily Karwacki, who recently earned her biology degree from the University of Central Florida, didn't set out to track the deadly pathogen Perkinsea, but after landing a research spot in Assistant Professor Anna Savage's lab, she was set with the task of trying to test for the disease. Frogs, which are indicators of environmental changes, have been dying off in mass quantities. They are also an important part of the food chain. Without frogs, many other species would die, Savage said.

Scientists have narrowed down what's most affecting frogs to three pathogens, including Perkinsea.

"Not a lot of people have studied Perkinsea because it has only recently been identified," Karwacki said. "It's different from other diseases because of the way it attacks the host.”

The pathogen enters the frog through the skin or may be ingested through its mouth. Scientists know it goes straight to the liver, embedding itself, before moving onto the rest of the tissue. It spreads and then the frog dies.

Karwacki, along with Savage and doctoral student Matt Atkinson, suspected that Perkinsea was killing frogs in Central Florida, but the researchers needed a way to test for it first. Karwacki was tasked with creating the molecular test. The method is called qPCR, but because Perkinsea was newly discovered, there wasn't enough genetic data to make a specific test. Karwacki had to create what's called a primer pair, and match it with a DNA sequence of Perkinsea, to get the qPCR test to work.

"The test amplifies the DNA so you know if your pathogen is there or not," Emily said. "I had to align a bunch of DNA sequences from our samples with others from around the word to create my primer set. It was four or five months before we had both the primers and the probe to create a successful test.”

Karwacki was the first to do this for Perkinsea and her work was recently published in the journal Diseases of Aquatic Organisms.

Using Karwacki's qPCR assay, the team of researchers found that 25 percent of the frogs they sampled tested positive for the pathogen. They sampled three sites in Florida: Gold Head Branch State Park in Keystone Heights, the UCF Arboretum in Orlando, and the Archbold Biological Station in Venus. The area they found with the most prevalent infection was Gold Head Branch, which is the farthest north. Archbold, the farthest south, had no infection at all. "There are only three papers on this disease that identify it specifically," Karwacki said. "It has greatly been affecting amphibians in the southeastern United States and should be studied more. It's most likely at least a co-factor in these extinction events we are seeing.”

Karwacki's method will now allow researchers all over the world to test for the disease. After graduating this summer, she is working on a new study, swabbing frog tissue samples at the Florida Museum of Natural History in Gainesville. She's swabbed more than 900 samples, and has found that Perkinsea dates back to 1922. This proves the disease has been in frog populations before, and scientists are trying to figure out why it's only now killing off large numbers of frogs. "Now with my qPCR, people can test areas where they are trying to release frogs to rebound populations," Karwacki said. "Scientists can test water and soil to see if Perkinsea is there so we don't send frogs out to die.”

Karwacki is entering the nonprofit business management master's program at UCF before pursuing graduate school. She will continue her work as a research associate in Savage's lab.

Story Source:
Materials provided by University of Central Florida. Note: Content may be edited for style and length.

Journal Reference:
EE Karwacki, MS Atkinson, RJ Ossiboff, AE Savage. Novel quantitative PCR assay specific for the emerging Perkinsea amphibian pathogen reveals seasonal infection dynamics. Diseases of Aquatic Organisms, 2018; 129 (2): 85 DOI: 10.3354/dao03239

Monday, 23 June 2014

Single tick bite can pack double pathogen punch

Date:
June 20, 2014

Source:
Cary Institute of Ecosystem Studies

Summary:
People who get bitten by a blacklegged tick have a higher-than-expected chance of being exposed to more than one pathogen at the same time. "We found that ticks are almost twice as likely to be infected with two pathogens -- the bacterium that causes Lyme disease and the protozoan that causes babesiosis -- than we would have expected," said a professor of biology involved in a recent study.


Friday, 20 June 2014

Testing biological treatment for pathogens that are killing honeybees and bats

Date:
June 19, 2014

Source:
Georgia State University

Summary:
A researcher is studying a new, biological treatment for bacterial and fungal pathogens that are killing honeybees and bats in record numbers. He is testing how effective Rhodococcus rhodochrous, a species of bacteria, is in fighting pathogens affecting honeybees and bats.


Tuesday, 25 March 2014

Mice give ticks a free lunch

Date:
March 24, 2014

Source:
Cary Institute of Ecosystem Studies

Summary:
Mice are effective at transferring disease-causing pathogens to feeding ticks. And, according to a new paper, these 'super hosts' appear indifferent to larval tick infestations. Drawing on 16 years of field research performed at the Cary Institute of Ecosystem Studies in Millbrook, New York, the paper found that white-footed mice with hundreds of larval ticks survived just as long as those with only a few ticks. Even more surprising, male mice with large tick loads were more likely to survive during a given season.


Thursday, 16 January 2014

Ants Protect Acacia Plants Against Pathogens

Jan. 15, 2014 — The biological term "symbiosis" refers to what economists and politicians usually call a win-win situation: a relationship between two partners which is beneficial to both. The mutualistic association between acacia plants and the ants that live on them is an excellent example: The plants provide food and accommodation in the form of food bodies and nectar as well as hollow thorns which can be used as nests. The ants return this favor by protecting the plants against herbivores. Researchers at the Max Planck Institute for Chemical Ecology in Jena, Germany, have now found that ants also keep harmful leaf pathogens in check. The presence of ants greatly reduces bacterial abundance on surfaces of leaves and has a visibly positive effect on plant health. Study results indicate that symbiotic bacteria colonizing the ants inhibit pathogen growth on the leaves.


Tuesday, 12 February 2013

Can You Predict How a Disease Will Spread in a Population?


Feb. 5, 2013 — How, when and where a pathogen is transmitted between two individuals in a population is crucial in understanding and predicting how a disease will spread. New research has laid the foundation for a new generation of zoonotic disease spreading models, which could allow for more targeted prevention strategies.

By using novel complexity sciences tools the study, published in Physical Review Letters, outlines a predictive model of a spatial epidemic spread in a population of territorial animals.

By quantifying the instances of transmission events, the research team, Dr Luca Giuggioli, Senior Lecturer in Complexity Sciences in the Department of Engineering Mathematics and the School of Biological Sciences at the University of Bristol, and Dr David Sanders and Master's student, Sebastian Pérez-Becker, from UNAM, Mexico, have determined the propagation speed of a pathogen based on the knowledge of the demography of a species, the way animals wander and the degree of contagiousness of the disease.

As a large percentage of new and remerging human infectious diseases are of animal origin, models that track how pathogens hop from one animal host to another will help develop more effective control measures that are capable of identifying specific individuals or class of individuals rather than ineffective and costly widespread culling procedures of an entire population.

Tuesday, 1 January 2013

Crayfish Harbor Fungus That's Wiping Out Amphibians – via Herp Digest


Freshwater crustaceans could be the key to understanding how the chytrid fungus persists in the ecosystem long after the last amphibian is gone.

Helen Fields
Published December 17, 2012
Scientists have found a new culprit in spreading the disease that's been driving the world's frogs to the brink of extinction: crayfish.

In the last few decades, the disease caused by the chytrid fungus has been a disaster for frogs and other amphibians. More than 300 species are nearly extinct because of it. Many probably have gone extinct, but it can be difficult to know for sure when a tiny, rare species disappears from the face of the Earth. (Related photos: "Ten Most Wanted 'Extinct' Amphibians.")

"This pathogen is bad news. It's worse news than any other pathogen in the history of life on Earth as far as we know it," says Vance Vredenburg, a conservation biologist at San Francisco State University who studies frogs but did not work on the new study.

The chytrid fungus was only discovered in the late 1990s. Since then, scientists have been scrambling to figure out how it spreads and how it works.

One of the biggest mysteries is how chytrid can persist in a frogless pond. Researchers saw it happen many times and were perplexed: If all of a pond's amphibians were wiped out, and a few frogs or salamanders came back and recolonized the pond, they would also die—even though there were no amphibians in the pond to harbor the disease. (Learn about vanishing amphibians.)

One possible reason is that chytrid infects other animals. For a study published today in Proceedings of the National Academy of SciencesTaegan McMahon, a graduate student in ecology at the University of South Florida in Tampa, looked at some possible suspects and focused on crayfish, those lobsterlike crustaceans living in freshwater. They seemed like a good possibility because they're widespread and because their bodies have a lot of keratin, a protein the fungus attacks.

In the lab, McMahon exposed crayfish to the disease and they got sick. More than a third died within seven weeks, and most of the survivors were carrying the fungus. She also put infected crayfish in the water with tadpoles—separated by mesh, so the crustaceans wouldn't eat the baby frogs—and the tadpoles got infected. When McMahon and her colleagues checked out wetlands in Louisiana and Colorado, they also found infected crayfish.

That means crayfish can probably act as a reservoir for the disease. The fungus seems to be able to dine on crayfish then leap back to amphibians when it gets a chance. No one knows for sure where the fungus originally came from or why it's been such a problem in recent decades, but this research suggests one way that it could have been spread. Crayfish are sometimes moved from pond to pond as fish bait and are sold around the world as food and aquarium pets. (Related photos: "New Giant 'Bearded' Crayfish Species.")

The study doesn't answer every last question about the disease. For one thing, crayfish are common, but they aren't everywhere; there are no crayfish in some of the places where frogs have been hardest hit, Vredenburg says. But, he says, the new research shows that "we need to start looking a little more broadly at other potential hosts."


Friday, 13 July 2012

Mysterious Cambodia Illness Explained


Medical doctors with the World Health Organization (WHO) and the Cambodian Ministry of Health found that a combination of pathogens is to blame for the illness.
The pathogens found include entrovirus 71, according to the CNN report, which is known to cause streptococcus suis, a neurological disease.
CNN said the WHO is expected to advise health care workers to refrain from using steroids in patients with symptoms, because the inappropriate use of steroids can suppress the immune system and worsen the condition of the patients.
The report said the WHO sources did not want to be identified yet because the results of the health organization’s investigation have not been made public.
“I’m very confident for the reason of the epidemic,” Dr. Phillipe Buchy, chief of virology at the Institute Pasteur in Cambodia and one of the doctors who cracked the case, told CNN.
Doctors at Kantha Bopha Children’s Hospitals in Phnom Penh have been facing the mysterious syndrome for the past four months. It has killed children so fast that nearly all of those infected die within a day or two of being admitted into the hospital.
Dr. Beat Richner, head of the children’s hospitals, told CNN that no new cases of the illness had been confirmed since Saturday.
He said that in the last hours of their life, the children experienced a total destruction of the alveola in the lungs, which are air sacs where oxygen enters the bloodstream.
Lab tests linked enterovirus 71 (EV71) to some of the cases, but the tests did not solve the whole puzzle, according to CNN.
It said that the link to the pathogen does not particularly help in the treatment of the illness, and there is no effective antiviral treatment for severe EV71 infections.
“It looks like (EV71) has emerged strongly, probably because it hadn’t circulated with the same intensity in the past years,” Tarantola told CNN.

Saturday, 14 April 2012

“Robotic cat” illness mystifies vets

Sci­en­tists are on the hunt for a path­o­gen they say may be caus­ing a mys­tery con­di­tion af­flict­ing cats: they are start­ing to walk like robots.

Felines in Scot­land and pos­sibly north­ern Eu­rope have been af­fect­ed.

Walk­ing with an odd gait with stiff, ex­tend­ed tails, the an­i­mals – dubbed robotic cats due to their move­ments – are a vet­er­i­nary odd­ity un­seen be­fore, sci­en­tists say. Cats with a slightly dif­fer­ent but pos­sibly re­lat­ed con­di­tion have been spot­ted in Swe­den and Aus­tria, where it has been re­ferred to as “stag­ger­ing dis­ease.” 



Vet­eri­nar­i­ans have pub­lished a re­port on the phe­nom­e­non, cen­ter­ing on 21 cats seen from 2001 to 2010 at Strath­bo­gie Vet­er­i­nary Cen­tre, Huntly, and Mor­ven Vet­er­i­nary prac­tice, Al­ford, both in north­east­ern Scot­land. The re­port ap­peared Jan. 11 in the ad­vance on­line is­sue of the Jour­nal of Fe­line Med­i­cine and Sur­gery.

The cats seemed to have a slowly-pro­g­ress­ing neu­ro­lo­g­i­cal dis­ease, and to have de­vel­oped it start­ing at a late age, the re­search­ers said. The ill­ness did­n’t kill any of the fe­lines, they added, but over time ap­peared to make their lives so mis­er­a­ble that some own­ers de­cid­ed to have them put down.



Continued with video:  http://www.world-science.net/othernews/120412_robotcat.htm

Sunday, 8 April 2012

How Social Contact With Sick Ants Protects Their Nestmates

ScienceDaily (Apr. 4, 2012) — The research team of Prof. Sylvia Cremer at the Institute of Science and Technology Austria (IST Austria) have shown how micro-infections promote social vaccination in ant societies. Like crowded megacities, ant colonies face a high risk of disease outbreaks. These are kept in check by the ants' "social immune system" -- a set of collective hygienic behaviors and adaptive changes in interaction frequencies that acts in conjunction with the physiological, innate immune system of colony members. Prof. Cremer and colleagues now unravel how taking care of sick ants promotes disease protection in their group members.


Ants do not avoid sick colony members, but lick them to remove the pathogen from the exposed ant's body. This social grooming behavior drastically increases the survival chances of exposed individuals, but bares the risk that helper ants contract the disease. By applying fluorescence-labelled fungal spores to some ants and allowing them to interact with healthy colony members, the researchers showed that the labelled spores spread throughout the colony. Interestingly, however, spore transfer occurs at very low levels, causing only sub-lethal micro-infections in the previously healthy colony members. The authors determined that these low-level infections induce the expression of a specific set of immune genes and increase the ants' capacity to fight the fungal pathogen. 


Additional mathematical modelling suggests that such social immunisation enables colonies to recover more rapidly from an infection.


Read on : http://www.sciencedaily.com/releases/2012/04/120404102303.htm

Thursday, 15 March 2012

Increased Honey Bee Diversity Means Fewer Pathogens, More Helpful Bacteria

ScienceDaily (Mar. 12, 2012) — A novel study of honey bee genetic diversity co-authored by an Indiana University biologist has for the first time found that greater diversity in worker bees leads to colonies with fewer pathogens and more abundant helpful bacteria like probiotic species. 


Led by IU Bloomington assistant professor Irene L.G. Newton and Wellesley College assistant professor Heather Mattila, and co-authors from Wellesley College and the Netherlands Organisation for Applied Scientific Research, the new work describes the communities of active bacteria harbored by honey bee colonies. The study, which was conducted at Wellesley College in 2010, is also the first to identify four important microbes in bee colonies that have previously been associated with fermentation in humans and other animals: Succinivibrio (associated with cow rumens), Oenococcus (wine fermentation), Paralactobacillus (food fermentation) and Bifidobacterium (yogurt). Newton, who joined the IU College of Arts and Sciences' Department of Biology last year, said the research suggests honey bees may take advantage of these beneficial symbiotic bacteria to convert indigestible material into nutritious food and to enhance protection from pathogens. 


Read on:  http://www.sciencedaily.com/releases/2012/03/120312192756.htm

Friday, 24 February 2012

Iconic Marine Mammals Are 'Swimming in Sick Seas' of Terrestrial Pathogens

ScienceDaily (Feb. 21, 2012) — Parasites and pathogens infecting humans, pets and farm animals are increasingly being detected in marine mammals such as sea otters, porpoises, harbour seals and killer whales along the Pacific coast of the U.S. and Canada, and better surveillance is required to monitor public health implications, according to a panel of scientific experts from Canada and the United States.



UBC scientists Stephen Raverty, Michael Grigg and Andrew Trites and Melissa Miller from the California Department of Fish and Game, presented their research Feb 21 at the Annual Meeting of the American Association for the Advancement of Science (AAAS) in Vancouver, Canada.
They called for stronger collaboration among public health, coastal water policy and marine mammal health research sectors to reduce land-sea transfer of pathogens and toxins. These terrestrial sourced pollutants are killing coastal marine mammals and likely pose risks to human health.

Wednesday, 8 December 2010

A new threat to Hawaiian monk seals: Cat parasite carried by runoff, sewage

On the beaches of the Hawaiian islands, monk seals are dying from a pathogen in cat feces that is carried to the ocean in polluted runoff and sewage. Experts worry that the disease, toxoplasmosis, will derail efforts to restore the endangered species. With only about 1,100 Hawaiian monk seals left in the wild, the deaths are “very concerning and put toxo as one of our primary concerns” for the species, says NOAA scientist Charles Littnan. Throughout most of Hawai`i, surface water quality ranges from “slightly impaired to severely impaired,” according to a state assessment. In particular, runoff from densely populated watersheds on Maui and O`ahu likely contains pathogens that infect the seals.


Hoku endured some rough days before he died last spring. Three dogs chased him off one of his resting beaches, and he battled a minor tsunami that left him wedged between a pair of boulders in a lava field far from shore.


Observers noticed him looking thin in the few months before fishermen found him dead on a beach near the east Kaua`i town of Kapa`a.

In the end, disease took him.

Nicknamed "Star" in Hawaiian for the small white spot on his forehead, Hoku was a large, 10-year-old Hawaiian monk seal, an endangered species.

Hoku may likely have been the second Hawaiian monk seal to die this year from Toxoplasmosa gondii, a parasite transmitted primarily through cat feces and carried to the ocean in polluted runoff and sewage.

The first suspected toxoplasmosis case of the year came in January. While conducting his weekly seal search along the coastline of Moloka`i's Kalaupapa National Historical Park, marine ecologist Eric Brown discovered a stillborn pup in a tide pool. His mother, apparently in good health, lay nearby.

David Schofield, marine mammal response coordinator for the National Oceanic and Atmospheric Administration’s Pacific Islands Regional Office, believes the pup may have been the first Hawaiian monk seal to die from a toxoplasmosis infection transmitted in the womb.

With only about 1,100 monk seals left in the wild, the deaths are "very concerning and put toxo as one of our primary concerns" for the species, says Charles Littnan, lead scientist for NOAA’s monk seal research program.

The overall population of monk seals is declining at a rate of about 4.5 percent a year. The good news is that in recent years, their numbers have been growing in the main Hawaiian islands. Now resource managers worry that in the midst of so many humans, interactions will likely increase, as will the seals' chances of encountering diseases and contaminants.

No studies have been done in Hawai`i on how and where toxoplasmosis reaches the ocean and there are few efforts to control it. In California, however, researchers have found that it infects sea otters mainly through runoff from urban areas.


Flushing cat litter down the toilet is one pathway, since sewage treatment does not always kill the parasite's hardy eggs, called oocysts. Studies have found that oocysts can live for at least two years in sea water.

Over the past ten years, the cat parasite has killed at least four monk seals in the main Hawaiian islands – two from Kaua`i, one from O`ahu, and one from Moloka`i – and perhaps six, experts estimate.

Those deaths "should be considered an absolute minimum since there are dead seals we never know about and ones we sample but are unable to determine a cause of death for," Littnan said.

"We are only just beginning to understand the prevalence of the disease in the population and determine ways to mitigate the impact."

Hunted to near extinction in the late 19th century, the Hawaiian monk seal was federally listed as endangered in 1976, after populations plummeted during the 1960s and 1970s, largely due to military disturbance.

Today, it is considered the most endangered pinniped in the United States. With a potential peak population of about 3,000 seals, NOAA predicts numbers will drop below 1,000 in the next few years.

The population’s core has long been in the remote, largely uninhabited Northwest Hawaiian Islands, but more and more, conditions there are killing them. Low juvenile survival due to starvation is by far the biggest problem facing monk seals. Some researchers speculate that overfishing may have caused a shift in predator dominance that is now making it nearly impossible for young seals to compete for food.

But diseased cats also are among the seals' worst enemies, since their feces flow into the ocean via runoff and sewage.


The state Division of Forestry and Wildlife estimates that 300,000 to 400,000 free-ranging cats live on Maui alone. That’s roughly two cats per resident.

"Cats are all over the place in Hawai`i," explains Thierry Work, a wildlife disease specialist with the Geological Survey’s Honolulu field station who studied toxoplasmosis in Hawaiian crows, known as `alala, about a decade ago. "Wherever there are cats, there’s the potential for toxoplasmosis."

Although domestic cats are considered the main source, feral cats in remote areas also transmit the disease. Nearly 40 percent of 67 cats captured from the slopes of Mauna Kea, on the island of Hawai`i, tested positive for toxoplasmosis, according to a 2007 article in the Journal of Wildlife Diseases.

In the past decade or so, toxoplasmosis has been regularly found in a wide range of marine mammals, including whales, dolphins and sea lions. In Hawa`i, it also has killed seabirds and endangered Hawaiian crow and geese.

Perhaps most famously, southern sea otters in California began dying off in alarming numbers in the 1990s. Toxoplasmosis was found in 52 percent of fresh, beach-cast otter carcasses and 38 percent of live otters sampled along the California coast, according to a 2005 International Journal of Parasitology article.

In Hawa`i, it also has killed seabirds and endangered Hawaiian crow and geese. Whether the increased diagnoses indicate improved testing techniques or a rise in disease prevalence is difficult to determine.


"Probably both things are at play and it's going to be awfully hard to tease those out," says Scott Wright of the U.S. Geological Survey’s National Wildlife Health Center.

Sometimes a pathogen is discovered in a species and it's unclear what it means in terms of the disease moving through a population, he says. "In some cases, circumstances change and the disease takes hold and causes a problem and other times it doesn’t," he says.

For some seals, determining a cause of death is impossible since they are often highly decomposed when discovered.

"If we’re not there within 24 to 48 hours, the insides of the seal are soup," Littnan says.

But even when his team confirms the presence of T. gondii, that doesn’t necessarily indicate an infection, let alone a fatal one. So, in addition to hunting for the pathogen, his team looks for signs, such as swelling of the brain, lymph nodes, or lungs, that are typical of toxoplasmosis.

Hoku, an up-and-coming dominant male, died of "severe meningoencephalitis caused by a protozoan," Littnan says. Although toxoplasmosis is suspected, it has not yet been confirmed as the culprit. He notes that only Hoku’s brain was inflamed but not other organs that toxoplasmosis has a predilection for. This suggests that the parasite was "inactive for a long period," he says, "but some event, such as immune suppression, may have led to activation. At this point, the findings are speculative until all the results come back."


Hoku visited an area known as Salt Ponds four times in the six months before he died. There are well-known, and well-fed, feral cat populations there and at Kalaupapa National Historic Park. But Littnan says seals "move across a pretty large range. It's hard to trace it back to where they were likely exposed."

Throughout most of Hawai`I, water quality in surface waters ranges from "slightly impaired to severely impaired" by pathogens and pollutants, according to a state assessment. In particular, runoff from densely populated watersheds on Maui and O`ahu likely contains pathogens, according to the state's polluted runoff control implementation plan.

Sewage is also a significant source of pathogens as tropical storms overwhelm aging transmission pipes and inadequate treatment systems. What’s more, injection wells on Maui have created giant wastewater plumes at some popular beaches.

Cat feces also contaminate livestock. A study of pig farms on O`ahu found that nearly half of more than 500 pigs tested positive for toxoplasmosis. Most rivers that flow to the ocean traverse through an agricultural site, according to a 2006 EcoHealth article by Littnan and researchers from NOAA and the Hubbs-SeaWorld Research Institute.

Although the state doesn’t test for toxoplasmosis, the Natural Resources Defense Council's Testing the Waters 2010 report provides some insight into the role runoff plays in pathogen transmission in Hawai`i. Storm water was responsible for 99 percent of beach closures/advisories in 2009. Sewage spills accounted for the remaining one percent. Kaua`i beaches exceeded daily maximum bacterial standards most often.


According to the EcoHealth article, nearly 30 million gallons of sewage were spilled between 2000 and 2004. That number was exceeded in a matter of days in 2005, when a broken main caused the city of Honolulu to divert 48 million gallons of raw sewage into Waikiki's Ala Wai canal.

In addition to toxoplasmosis, other pathogens have infected monk seals.

A few years ago, Littnan, NOAA contract veterinarian Robert Braun, and Brent Stewart and Pamela Yochem of the Hubbs-SeaWorld Research Institute tested seals for pathogens while trying to assess the disease threat. Their results, published in EcoHealth, suggest that seals encounter a variety of pathogens, including Sarcocystis neurona and Neospora caninum, as well as T. gondii. S. neurona causes equine protozoal myeloencephalitis, which creates lesions on the spinal cord and brain stem. Neosporosis can cause abortions in cattle and neuromuscular degeneration in dogs.

Leptospirosis is among the biggest concerns. Suspected in the death of two pups born near a stream mouth on the island of Hawai`I, it is mainly transmitted through contact with surface water contaminated with infected rodent or mongoose urine.


Although there is limited data on leptospirosis prevalence in Hawai`i, it's considered ubiquitous. The reported incidence rate among people in Hawai`i (1.29 cases per 100,000 persons) is about 30 times the national rate, with the highest rates on Kaua`i and Hawai`i islands.

In another effort to gauge threats, Hawai`i Pacific University graduate student Jessica Lopez is evaluating 77 industrial chemicals and pesticides found in about 60 monk seals over the past decade.

Some of the chemicals have been shown to depress the immune systems of marine mammals, making them more vulnerable to diseases.

"We don't know anything about what levels can cause an effect in monk seals, whether lethal or sub-lethal, so it will be difficult to speak to whether the levels measured are 'safe' or not," she says.

Lopez also plans to evaluate seal movements and locations of sewage outflows and agricultural and industrial complexes to determine high risk areas that may factor into decisions on managing the seals.

For Littnan, filling data gaps is his top priority, such as tracking the mother of January's stillborn pup to see if she has signs of infection.

"It would be very interesting to learn more about seals that [test positive for toxoplasmosis] but are not showing any clinical signs," he said.

If the mother tests positive, drugs might be available for treatment. NOAA is partnering with California’s Marine Mammal Center to build a monk seal hospital in Kona.

To raise public awareness about toxoplasmosis and cat feces, NOAA has begun talking with the Hawai`i Humane Society, various interest groups and the health department.


But given his experience with Hawaiian birds, Work of the U.S. Geological Survey says generating the political will to control cats is "very difficult."

"The `alala is a classic case in point," Work says. Ten years ago, toxoplasmosis was identified as a threat at a national wildlife refuge in Kona that was created for the birds. Yet today, the cats remain at the refuge, while the `alala have been extirpated from the area.

Scientists are concerned about the role the disease may play in the seals' recovery.

Under NOAA's recovery plan, the population must grow from the current 1,100 to a minimum of 2,900 before it can be downlisted to threatened. In a recent article, NOAA scientists stated that "fishery interactions, direct killing, and disease could rapidly undo the current fragile positive trend" on the main islands.

"The greatest need for seals right now is fostering the co-existence of seals and people. That's the most immediate threat to population growth in the main Hawaiian islands," Littnan says. Compounding the threat, "toxo and lepto will be there and will probably continue to operate in a background level."

By Teresa Dawson

Environmental Health News

http://www.environmentalhealthnews.org/ehs/news/hawaiian-monk-seals
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