Showing posts with label anthelmintic resistance. Show all posts
Showing posts with label anthelmintic resistance. Show all posts

Saturday, February 07, 2026

Gastrointestinal parasites in Slovak horses

© Jozef Mikat | Dreamstime.com
Gastrointestinal parasitism remains a significant health concern in equine populations worldwide. Horses commonly host a wide range of intestinal helminths (parasitic worms), some of which can cause serious disease, reduced performance, and compromised welfare.

In recent years, growing resistance to anthelmintic (deworming) medications has become a major challenge for effective parasite control. This resistance has largely developed due to management practices such as frequent blanket deworming, incorrect dosing, and repeated use of the same drug classes. As a result, current parasite control strategies are shifting toward evidence-based approaches that rely on monitoring infection levels and targeting treatment appropriately.

Slovakia has a well-established horse breeding industry, with over 22,500 horses representing approximately 40 breeds.

To support improved management strategies, recent research conducted by Kuzmina and colleagues aimed to evaluate the distribution and prevalence of gastrointestinal helminths in horses in eastern Slovakia, while also examining management factors that may influence infection levels.

The study involved analysis of 392 faecal samples collected from horses across 24 farms, representing a range of ages, breeds, and management systems. Coprological diagnostic techniques were used to identify parasite eggs. The McMaster method, with a sensitivity of 50 eggs per gram (EPG), was employed to detect nematode infections, while a double-centrifugation sedimentation-flotation method was used to identify tapeworm (Anoplocephala spp.) eggs. Additional information regarding horse age, breed, stocking density, and parasite control practices was collected to allow assessment of risk factors associated with infection.

Results indicated that strongylid nematodes were the most prevalent parasites identified, with 65.6% of horses testing positive. Egg counts ranged widely from 50 to 2800 EPG, demonstrating substantial variation in parasite burdens between individual animals. Notably, approximately 29.8% of horses were responsible for 80% of the total strongylid egg output, supporting previous evidence that parasite burdens are typically unevenly distributed within equine populations. This finding reinforces the principle behind targeted selective treatment, where only horses with higher egg counts are treated to reduce drug resistance and maintain refugia (untreated parasite populations).

Parascaris spp., which primarily affect younger horses, were detected in 4.5% of samples. Tapeworm infections caused by Anoplocephala spp. were relatively uncommon, being detected in only 0.3% of horses, and no additional helminth species were identified. These results confirm that strongylids and Parascaris spp. remain the dominant equine gastrointestinal parasites in Slovakia.

Statistical analysis revealed that horse age and stocking density were significant predictors of strongylid infection levels. Younger horses and animals kept at higher stocking densities were more likely to exhibit higher parasite burdens. In contrast, infection with Parascaris spp. was influenced solely by horse age, with younger horses demonstrating greater susceptibility due to their developing immune systems.

Overall, this study provides valuable insight into the current epidemiology of equine gastrointestinal parasites in Slovakia. The findings highlight the importance of regular faecal egg count monitoring and demonstrate that parasite burdens vary significantly between individuals. Incorporating targeted selective treatment strategies, alongside improved pasture management and reduced stocking density, may help slow the progression of anthelmintic resistance.

 

For more details, see:

Tetiana A. Kuzmina, Alžbeta Königová, Ludmila Burcáková, Yaroslav Syrota, Michal Babják, Marián Várady,

Gastrointestinal parasite occurrence in Slovak horses and factors affecting Strongylidae and Parascaris spp. egg shedding,

Veterinary Parasitology: Regional Studies and Reports,(2025)  Vol 64, 101328,

ISSN 2405-9390,

https://doi.org/10.1016/j.vprsr.2025.101328


Friday, November 14, 2025

Study on Deworming Practices

exmoor pony grazing (c) M Andrews
 The University of Connecticut Equine Extension Program has announced a study to better understand how horse owners and equine professionals manage deworming. Through a brief 10-minute survey, the team aims to gather real-world insight into current parasite-control practices and the industry’s overall awareness of effective deworming strategies.

Participation is voluntary, and all responses will remain confidential and used solely for educational purposes. The survey asks for basic information about respondents’ horses and their deworming experiences. Once started, answers cannot be revisited, and participants may stop at any time.

Those interested in contributing to this research can complete the survey at: https://s.uconn.edu/deworming-survey

Sunday, December 15, 2024

New tool to aid worm control

  

A free online tool to help horse owners evaluate the risk of worm infection has been launched. 

 

This simple, user-friendly resource, titled ‘What’s Your Worm Risk?’, has been developed by Austin Davis Biologics in collaboration with equine industry.

 

Anthelmintic resistance poses a significant threat to equine health and welfare, with cases now reported in all common horse worms. Effective worm control begins with assessing a horse’s risk of infection, providing essential information for decisions regarding management, testing, and treatment.

 

The tool uses widely accepted principles of equine worm control to classify each horse's risk of infection as low, moderate, or high, based on details provided by the owner. It also accounts for the potential impact of grazing companions, where applicable.

 

Jacqui Matthews, a specialist in parasitology and director of veterinary science at Austin Davis Biologics, explains: “The tool is designed to support horse owners in assessing their horse’s risk of infection, helping them make informed decisions about testing and treatment.”

 

To reduce the risk of wormer resistance, experts recommend combining excellent pasture management—reducing worm transmission from paddocks—with regular testing to guide treatment decisions.

  • Faecal worm egg count (FEC) tests provide an insight into worm egg shedding levels in manure.
  • Antibody tests reveal the horse’s exposure to worm infections.

 

This approach minimizes the need for blanket wormer treatments, which are known to promote resistance and reduce the effectiveness of essential drugs.

 

The ‘What’s Your Worm Risk?’ tool has been optimised for use on smartphones, laptops, and desktop computers and is tailored specifically to UK conditions.

 

By integrating testing and evidence-based treatments into worm control plans, horse owners can protect their animals while reducing the risk of drug resistance in the equine population.

 

For more details, see: 

 

https://www.whatsyourwormrisk.com

Saturday, December 14, 2024

New reporting initiative for clinical redworm disease in the UK

 Equine Infectious Disease Surveillance (EIDS) has launched RedWatch, a new initiative designed for vets to report cases of redworm disease in horses.

 

Based at Cambridge University, EIDS collects and analyses national disease data from diagnostic laboratories and veterinary practices across the UK. Their work provides valuable insights into the prevalence of equine infectious diseases. In addition to operating various surveillance programs, EIDS offers disease control advice and shares critical disease information through platforms like the International Collating Centre (ICC), EquiFluNet, and the Equine Quarterly Disease Surveillance Report, a collaborative effort with BEVA, Defra, and APHA.

 

Historically, large redworm infections—most notably caused by Strongylus vulgaris—have been significantly reduced in the UK due to the widespread use of anthelmintics. However, the overuse of these treatments has led to growing resistance, especially in small redworms (cyathostomes). As a result, there has been a shift towards reducing anthelmintic use and focusing on management-based strategies to control parasitic diseases.

 

Concerns remain, however, that reduced anthelmintic use could unintentionally alter the patterns of parasite-associated diseases. To address this, EIDS has introduced RedWatch, a targeted surveillance initiative.

 

RedWatch will collect and disseminate case data on diseases caused by small and large strongyles, including cyathostominosis and Strongylus vulgaris. Veterinary surgeons are encouraged to submit information via an online form, recording:

·       Vet and practice details

·       Case-specific information

·       Diagnostic methods

·       Clinical signs observed

·       Data about the premises and equine population

·       Potential risk factors

All submitted data will be securely stored and anonymised for public reporting. This will support education, awareness, and ongoing research into equine parasitology.

 

Large strongyles are often only detected during post-mortem examinations (PME) and are likely to be captured mainly through the Equine Quarterly Disease Surveillance report’s post-mortem surveillance section.  However, RedWatch will allow veterinary surgeons to report large strongyle cases that have not undergone an official PME.

 

"RedWatch is an exciting step in equine parasitology surveillance," said Fleur Whitlock, veterinary surgeon and epidemiologist at EIDS. "This initiative relies on veterinary surgeons sharing data and their engagement is key to filling knowledge gaps. By contributing case reports, vets can directly support efforts to prevent these devastating diseases and help pave the way for new tools like real-time reporting and risk warnings.”

 

EIDS is generously funded by the UK’s Thoroughbred industry and is based at Cambridge University.

 

For more details, download the latest Equine Quarterly Disease Surveillance report

https://equinesurveillance.org/landing/resources/reports/dsr20243.pdf

 

Veterinary surgeons can record cases at

www.equinesurveillance.org/redwatch

Tuesday, September 17, 2024

Effect of PPID on egg shedding after deworming

It has been suggested that horses with hormonal disorders, such as insulin dysregulation and
Pituitary Pars Intermedia Dysfunction (PPID), may be more susceptible to worm infections.
 

Horses with PPID often have a weakened immune system, which can allow worms, such as cyathostomes, to thrive more easily compared to healthy horses. These horses may also not respond as effectively to standard deworming treatments due to their altered immune function.

 

A study conducted in Australia aimed to determine whether horses with PPID had increased strongyle faecal egg counts (FEC) compared with control horses.

 

The study, led by Adelaina Horner, took place over a fourteen-week period and involved adult horses and ponies over eight years old in Victoria, Australia. All horses lived on pasture and had not been dewormed for at least three months prior to the study. A total of 45 privately owned horses and ponies met the criteria for inclusion, with 14 horses diagnosed with PPID and 31 serving as controls. PPID diagnosis was confirmed by elevated plasma ACTH concentrations (above 120 pg/mL) along with at least one clinical sign of the disorder.

 

All horses were dewormed with a standard dose of a commercially available ivermectin product. Faecal egg counts were taken before treatment and then every two weeks for 14 weeks. A FEC of 200 eggs per gram (EPG) or higher was used as the cutoff for significant worm burden.

 

The results showed that the egg reappearance period (ERP) after deworming was shorter in PPID horses, and cumulative FEC after deworming was higher in these horses. However, the researchers noted that some PPID horses consistently had no detectable eggs or low EPG (≤ 200) throughout the study, and this could not be explained by observed husbandry practices.

 

Worm eggs collected during the study were cultured in the laboratory, and examination of the larvae confirmed that all worms were cyathostomin species.

 

The researchers advise monitoring egg shedding before anthelmintic treatment in PPID horses, in line with sustainable worm management guidelines, as some PPID horses consistently showed low FEC results.

 

While hormonal disorders like PPID do not directly cause an increase in parasitic infections, they can impair the horse’s immune system and overall health, making them more vulnerable to worm infections and potentially reducing the effectiveness of treatments. Effective management of both the hormonal disorder and parasitic infections is crucial for maintaining the health of affected horses.

 

 

For more details, see: 

 

Strongyle egg shedding and egg reappearance periods in horses with pituitary pars intermedia dysfunction

Adelaina Horner, Nicholas J. Bamford, Michael J. Stear, David Piedrafita, Abdul Jabbar, Kristopher J. Hughes, Charles M. El-Hage, Sarah Preston

Veterinary Parasitology (2024) Vol 328, 110176

 

https://doi.org/10.1016/j.vetpar.2024.110176

Thursday, July 25, 2024

Optimising Youngstock Growth and Development

 An international panel focused on "Optimising Youngstock Growth and Development" at the Gerald Leigh Lectures on June 12, 2024. 

Organized by the Beaufort Cottage Educational Trust on behalf of the Gerald Leigh Charitable Trust, the event honours Mr. Leigh’s accomplishments as a racehorse owner and breeder and his dedication to scientific knowledge and horse welfare. The speakers included experts from the UK, USA, and Europe.

 

Key topics included:

·      Influence of prenatal maternal and environmental factors on foal athletic potential (Pascale Chavatte-Palmer, France)

·      Seasonal effects on mare and foal nutrition (Joe Pagan, USA)

·      Overview of foal purchase at public auctions (Jamie Railton)

·      Parasite resistance on UK stud farms and parasite control strategies (Professor Jacqui Matthews and Paul Overton)

·      Sustainable equine helminth control (Professor Jacqui Matthews)

·      Surgical solutions for limb deformities (Abigail Kent)

·      Raising foals for optimal performance (Dr. Rebecca Mouncey)

·      A stud manager's approach to soundness (Julian Dollar)

·      Balancing youngstock growth and development (Joe Pagan).

 

To watch recordings of the lectures (and those from previous years) go to:

 

https://www.beaufortcottage.com/news-events/category/gerald-leigh-memorial-lectures/

Tuesday, June 18, 2024

New internal parasite guidelines from AAEP

The American Association of Equine Practitioners (AAEP) has issued revised Internal Parasite Control Guidelines to help minimise the risk of parasitic disease and maintain the effectiveness of current drugs for as long as possible by delaying further development of anthelmintic resistance.

The guidelines, originally created in 2013 and last revised in 2019, account for recent advances in knowledge concerning increased anthelmintic resistance and optimisation of parasite control management practices. They also address common misconceptions and offer parasite control program recommendations for senior horses (over 15 years old), mature horses (between 5 and 15 years old), and young horses (under 5 years old).

The guidelines were reviewed and updated by the AAEP Internal Parasite Control Guidelines Task Force, chaired by Dr. Nielsen and comprised of 10 AAEP members predominantly board certified in veterinary internal medicine, veterinary parasitology and/or veterinary microbiology. 

“We have seen dramatic development in the field of equine parasite control over the past 10 years, since we first launched these guidelines, and we work hard to keep our recommendations up to date,” said Martin Nielsen, DVM, PhD, DVSc, DAVCM, DEVPC, Schlaikjer Professor of Equine Infectious Diseases at the University of Kentucky.

Important conclusions to be drawn from the revised guidelines are to:

  • Perform fecal egg count reduction tests annually to ensure that you are using effective dewormers in every herd or barn.
  • Recognize that no anthelmintic will eliminate all parasitic stages from a horse.
  • Continue using fecal egg counts once or twice per year to stratify horses into low, medium and high shedders to reduce pasture contamination.
  • Deworm all horses at a baseline rate and target selected horses more often based on fecal egg counts.
  • Not use fecal egg counts to diagnose disease in horses as there is no correlation between fecal egg counts and disease-causing parasite life stages.
  • Discontinue deworming all horses with fixed intervals year-round and stop blindly rotating anthelmintic classes.

View the guidelines at https://aaep.org/resource/internal-parasite-control-guidelines.

You can access the entire guidelines document by clicking the Download Resource button.

Friday, June 14, 2024

Do endocrine disorders affect anthelmintic performance?

Recent research indicates that insulin dysregulation may affect the performance of anthelmintics
like ivermectin. This suggests that horses with such endocrine disorders might be more prone to parasitic infections.

In a study conducted by Martin Nielsen and colleagues at the University of Kentucky, the response to ivermectin was evaluated in horses with insulin dysregulation (ID), pituitary pars intermedia dysfunction (PPID), or neither condition. 

 

The study population was part of a special herd at the University of Kentucky’s Department of Veterinary Science, which included horses with and without these endocrine disorders. These horses were kept in permanent paddocks without pasture rotation or enhanced hygiene practices and received routine anthelmintic treatments: ivermectin in March or April and July or August, and moxidectin/praziquantel in November.

 

The study focused on senior horses (aged 13 years and over) and those with or without PPID, ID, or both. Out of 47 horses in the research herd, 19 met the criteria for inclusion. These horses, all with positive faecal worm egg counts, were treated with ivermectin at the recommended dose of 200 mcg/kg. Faecal samples were collected before treatment, two weeks post-treatment (for the Faecal Egg Count Reduction Test, or FECRT), and then weekly until worm eggs reappeared in the faeces (Egg Reappearance Period, or ERP).

 

Two laboratory tests were employed to assess the response to ivermectin: the Faecal Egg Count Reduction Test (FECRT) and the Egg Reappearance Period (ERP). For the FECRT, a reduction of at least 99.7% in worm egg counts is considered effective two weeks post-treatment. The ERP for ivermectin is typically 8-10 weeks.

 

The study found no significant differences in the effectiveness of ivermectin between the groups. However, the small sample size may have made it difficult to detect any potential differences. Overall, ivermectin was highly effective, with all horses showing a greater than 99.7% reduction in worm egg counts at the two-week mark. 

 

Nonetheless, the researchers observed that the ERP was shorter in horses with ID and those with both PPID and ID, at six and seven weeks respectively, compared to eight weeks for both the PPID-only and healthy control groups.

 

They suggest that their findings indicate a need for further investigation of the possible influence of endocrine disorders on anthelmintic performance in horses.

 

 

For more details, see:

 

M.K. Nielsen, C.A. Finnerty, N.E. Ripley, A.E. Page, M.E. McClendon, A.A. Adams,

Ivermectin performance in horses diagnosed with equine endocrine disorders,

Veterinary Parasitology, (2024) Vol 328,110182,

https://doi.org/10.1016/j.vetpar.2024.110182

Saturday, June 08, 2024

Effect of diet on strongyle infection and gut microbiome

Recent research from France suggests that the first step in controlling intestinal worm infections inanimals should be providing them with diets that maintain a healthy gut ecosystem. 

Horses’ intestines can harbour many different worms, some of which can cause severe disease. It's concerning that some of these worms are becoming resistant to deworming medications. This resistance has emerged through factors such as incorrect dosing or frequent use of the same medications.

 

It's clear that we need to adopt a more sustainable approach to managing equine  intestinal parasites.

 

To address this challenge, scientists are exploring different methods, including dietary changes. These diets might enhance the body's defences, regulate gut bacteria, or directly combat parasites. For example, certain foods containing plant compounds might hinder worm reproduction in the body.

 

A study by Noémie Laroche and colleagues, at Lab to Field, Dijon, and the University of Bourgogne Franche-Comté, investigated how diet affects strongyle infection in horses, focusing on immune-mediated, microbiota-mediated, or direct deworming mechanisms. The work is reported in PLos ONE.

 

They studied twelve adult French Trotter geldings naturally infected with strongyles. These horses were divided into two groups and fed either a high-fibre or high-starch diet, along with supplements containing polyphenol-rich pellets from dehydrated sainfoin or control pellets made from sunflower and hay.

 

The study revealed that horses on a high-starch diet had higher strongyle egg excretion compared to those on a high-fibre diet. However, adding sainfoin to the high-starch diet reduced egg excretion. What’s more, sainfoin supplementation decreased larval motility, regardless of the diet.

 

Moreover, the high-starch diet was associated with lower faecal bacterial diversity, changes in faecal microbiota structure, lower faecal pH, reduced blood acetate levels, and lower haematocrit compared to the high-fibre diet.

 

Overall, these findings suggest that dietary changes can be an alternative strategy for managing helminth infections. 

 

The study highlights the importance of considering broader ecological mechanisms in parasite management strategies. The researchers emphasize that eradicating helminth infections entirely is unrealistic and could have negative effects. 

 

They write: “… pursuing a goal of eradicating helminth infection (zero infection) is not only illusionary but also likely to produce more negative effects than benefits. Mammals have coevolved with helminths during millions of years, and in most cases, the infection does not produce severe symptoms.’

 

“We therefore suggest that a safer strategy to control helminth infection would be to improve host tolerance to the infection rather than pursuing a hopeless, environmentally toxic, strategy of drug-based eradication.”

 

For more details, see:

 

Laroche N, Grimm P, Julliand S, Sorci G (2024) 

Diet modulates strongyle infection and microbiota in the large intestine of horses. PLoS ONE 19(4): e0301920. 

https://doi.org/10.1371/journal.pone.0301920

Sunday, December 24, 2023

Signs of anthelmintic resistance in tapeworms?

Horses frequently carry tapeworm infections, particularly Anoplocephala perfoliata. While these parasites can be linked to colic, most infected horses generally tolerate them well and show no adverse signs.. 

Tapeworms are commonly found in horses grazing on pasture because the intermediate host, an oribatid mite, resides in the pasture environment. In contrast, tapeworms are seldom observed in horses in dry and arid conditions.

 

Two drugs, praziquantel and pyrantel, are commonly employed for tapeworm control and are generally acknowledged as effective in managing these parasites.

 

While the issue of anthelmintic resistance has garnered widespread attention concerning roundworms, it has not received as much consideration in relation to tapeworms. Anthelmintic resistance in equine tapeworms, as in other parasites, poses a significant challenge in the management of horse health. 

 

In contrast to roundworms, which can be easily diagnosed and assessed through a faecal egg count, tapeworms present a greater challenge as they excrete eggs sporadically. This erratic pattern not only complicates diagnosis but also poses challenges in evaluating the response to treatment and identifying anthelmintic resistance.

 

In a report from North America, Martin K. Nielsen, affiliated with the M.H. Gluck Equine Research Center in the Department of Veterinary Science at the University of Kentucky in Lexington, USA, sheds light on an apparent treatment failure involving praziquantel and pyrantel pamoate against tapeworms. The report relates to animals on a Thoroughbred stud farm in Central Kentucky in 2023. The findings have been published in the "International Journal for Parasitology: Drugs and Drug Resistance."

 

Fifty-six young horses were initially dewormed using a combination of ivermectin and praziquantel, followed by a treatment with pyrantel pamoate. The effectiveness of the deworming was assessed by checking the number of parasite eggs in their faeces on the day of treatment and again 14 days later.

 

Two groups of female horses, consisting of 39 and 45 individuals, were also given the ivermectin/praziquantel treatment, and their faeces were examined before and after treatment.

 

In the yearlings, the overall effectiveness against tapeworms, measured by FECR levels, was 23.5% for praziquantel and 50.9% for pyrantel pamoate. 

 

Praziquantel successfully removed tapeworm eggs in three out of 17 yearlings, but five other yearlings changed from having no tapeworm eggs to having them after treatment. 

 

Unfortunately, pyrantel pamoate did not eliminate tapeworm eggs in any of the 14 yearlings that tested positive for tapeworms.

 

Among the tested mares, nine out of 84 were found to have tapeworm eggs, and after praziquantel treatment, seven of them still tested positive for tapeworm eggs.

 

The results also showed that the ivermectin and pyrantel pamoate treatment was not very effective against roundworm (strongylid)  parasites in the young horses. The average reduction in the number of parasite eggs in their faeces was 75.6% or less, and the upper limit of the 95% credible interval was below 90% in all cases.

 

Nielsen highlights that the results differ significantly from the initial field efficacy studies conducted for both active compounds, raising concerns about the potential development of anthelmintic resistance.

 

He suggests the need for continued research and advancements in parasite management strategies to develop more sustainable approaches in addressing equine tapeworm infections.

 

 

 

For more details, see:

.

Apparent treatment failure of praziquantel and pyrantel pamoate against anoplocephalid tapeworms

M K Nielsen 

Int J Parasitol Drugs Drug Resist. 2023 Aug:22:96-101.

 doi: 10.1016/j.ijpddr.2023.06.002



Sunday, October 22, 2023

Careful use of anthelminitcs can help limit resistance

 Recent research suggests that employing selective treatment regimens can significantly reduce the
development of anthelmintic resistance. This is particularly relevant in the context of parasites such as the cyathostomins (small redworms), which are among the most common internal parasites of horses. These parasites have developed resistance to various deworming drugs over the years due to their widespread and indiscriminate use.

In Sweden, a country known for its controlled approach to anthelmintic use, a study was conducted to investigate the presence of resistance to ivermectin, a commonly used deworming medication. The research found no evidence of resistance to ivermectin in cyathostomes in Sweden.

 

ML resistance has been observed in cyathostomins worldwide. However, the current situation in Sweden is unclear. Routine anthelmintic treatment of horses without prior diagnostic tests is rare in Sweden, since anthelmintic drugs were restricted to being available on prescription only in 2007. What effect would this have had on the development of ML resistance in the country?

 

To assess the effectiveness of deworming treatments, two common tests are used: the faecal egg count reduction test (FECRT) and the egg reappearance period (ERP) after treatment. FECRT evaluates whether a dewormer successfully reduces the number of internal parasite eggs in the horse's faeces. Samples are taken before treatment and around 10 to 14 days after deworming, and the two egg counts are compared. A high reduction percentage indicates that the dewormer is effective, while a low reduction percentage suggests potential resistance.

 

As internal parasites develop resistance to dewormers, the egg reappearance period (ERP) shortens, meaning that eggs reappear in the faeces more quickly after treatment.

 

A study led by Ylva Hedberg Alm and her colleagues aimed to assess FECRTs and ERPs following ivermectin (IVM) treatment in Swedish horses. Sixteen equestrian establishments, each with at least six horses excreting a minimum of 150 eggs per gram of faeces (EPG) during screening, were included in the study. FECRTs and ERPs were evaluated in faecal samples before and after IVM treatment (200 µg/kg) and for eight weeks afterward.

 

The questionnaire responses revealed that 69% of establishments administered anthelmintic treatments based on faecal diagnostics. All establishments achieved a high FECRT, exceeding 99.0%, and ERPs ranged from six to over eight weeks. Notably, younger horses were found to excrete cyathostomin eggs earlier after treatment than older horses.

 

The researchers also observed that riding schools, stud farms, and those not segregating summer and winter paddocks had shorter egg reappearance periods.

 

In conclusion, this study in Swedish equestrian facilities employing selective anthelmintic treatment revealed that the establishments maintained longer ERPs and showed no confirmed resistance to ivermectin. These findings support the use of selective deworming strategies as a means of reducing the risk of anthelmintic resistance in horses. The full report is available in Veterinary Parasitology.

 

For more details, see:

 

Retained efficacy of ivermectin against cyathostomins in Swedish horse establishments practicing selective anthelmintic treatment

Ylva Hedberg Alm, Eva Osterman Lind, Frida Martin, Rebecca Lindfors, Nina Roepstorff, Ulf Hedenström, Isabelle Fredriksson, Peter Halvarsson, Eva Tydén

Veterinary Parasitology (2023) Vol 322, 110007

 

https://doi.org/10.1016/j.vetpar.2023.110007

Friday, June 16, 2023

Ivermectin resistance in small redworms

 In a recent study conducted in Brazil, it was discovered that there is widespread resistance to ivermectin among cyathostomins (small redworms) in most of the properties evaluated. This finding is concerning, as it has been increasingly recognised that important equine worms are developing resistance to commonly used anthelmintics.

The severity of this issue is underscored by the fact that resistance to all currently available classes of anthelmintics has been reported not only in cyathostomins but also in ascarids (large roundworms). Compounding the problem is the lack of new drugs on the horizon to combat this resistance.

 

Brazil is home to one of the largest horse populations globally, estimated to range from 5 to 6 million. In light of this, Giordani Mascoli de Favare and colleagues undertook a year-long research study in the western region of São Paulo state. The study aimed to assess the effectiveness of ivermectin as an anthelmintic in naturally infected horses on 12 breeding farms, involving a total of 123 horses.

 

To evaluate resistance in cyathostomins, the standard faecal egg count reduction (FECR) test was employed. If the FECR does not show a reduction of 95% or more after treatment with a macrocyclic lactone like ivermectin, it is indicative of resistance. Prior to the study, the horses had not received any anthelmintic treatment for at least 60 days. Each horse was orally administered the recommended dose of ivermectin paste based on its weight. Faecal samples were collected at the beginning of the treatment and 14 days later.

 

The results of the study revealed that in five of the properties, the FECR was below 90%, indicating significant cyathostomin resistance to ivermectin. Additionally, three properties showed a FECR between 90% and 95%, further indicating the presence of resistance. Only on four of the twelve properties did the faecal egg count reduction exceed 95%.

 

The authors of the study explain that in Brazil, the control of equine gastrointestinal parasites typically involves treating the entire herd without prior diagnosis and regularly rotating anthelmintic drugs. However, these findings highlight the urgent need for alternative strategies and interventions to effectively manage anthelmintic resistance in horses.



For more details, see:


Anthelmintic resistance of horse strongyle nematodes to ivermectin in São Paulo state, Brazil

Giordani Mascoli de Favare , Isabela de Almeida Cipriano, Tábata Alves do Carmo,  Mateus Oliveira Mena,   Gabriel Jabismar Guelpa, Alessandro Francisco Talamini do Amarante,  Ricardo Velludo Gomes de Soutello

Veterinary Parasitology: Regional Studies and Reports

Vet Parasitol Reg Stud Reports. (2023) Jun;41:100864.

 https://doi.org/10.1016/j.vprsr.2023.100864