Tribendimidine: Mode of Action and Nachr Subtype Selectivity in Ascaris and Oesophagostomum
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Division of Analytical Laboratories
Michael SWERLOWYCZ 1 Brett FLETCHER 2, Roger JACKSON 2 1 Forensic Toxicology Laboratory, Division of Analytical Laboratories, Sydney, NSW, Australia 2 Drugs & Driving Toxicology Laboratory, Division of Analytical Laboratories, Sydney, NSW, Australia Division of Analytical Laboratories COWS ON COKE Levamisole: A livestock de-wormer in cocaine Introduction Recent DDL specimens (January 2009 onwards) were examined in Levamisole ((S)-6-phenyl-2,3,5,6-tetrahydroimidazo[2,1-B][1,3]thiazole) order to oBtain comparison levamisole data from a range of living has gained attention overseas suBjects. These were mostly cocaine-positive “drug/drive” in recent years as a cutting cases, as well as a numBer of fatal accident, sexual assault and agent for illicit cocaine. murder cases. Interestingly, levamisole appears to Be more common Levamisole, or ( l) -Tetramisole, in samples from living suBjects, But generally at lower concentrations is a drug used in the treatment than the coronial samples. of colon cancer, But primarily it has a veterinary use as an anthelmintic, to PrevalenceofLevamisoleinCocaine-positiveCases(DDL) control parasites in livestock. January2009-June2010 25 70 60 20 50 Levamisole in drug/drive Levamisole around the world and other police 15 40 specimens (DDL). Recently the US Drug Enforcement Administration (DEA) reported a 30 2009 – 2010 10 Percentage(%) significant increase in the prevalence of the drug. In late 2008 the DEA NumberofCases 20 found as much as 30% of illicit cocaine hydrochloride exhiBits contained Mean concentration in 5 levamisole, and By mid-2009 this figure had risen to 70%. This trend has 10 Blood = 0.035mg/L Been seen in other countries around the world and is reflected in illicit 0 0 cocaine exhiBits received By Australian laBoratories. -
Levamisole.Pdf
8/20/2018 Levamisole | UPMC Hillman Cancer Center Levamisole About This Drug Levamisole is used to treat cancer. This drug is given orally. Possible Side Effects Bone marrow depression. This is a decrease in the number of white blood cells, red blood cells, and platelets. Bone marrow depression usually occurs three to 10 days after the drug is given and may increase your risk of infection, fatigue, and bleeding. Raised, red rash on your arms, legs, back, or chest Abdominal pain or cramping Bitter taste in the mouth Decreased appetite Nausea and vomiting Drowsiness Irritability Sexual problems and reproduction concerns may occur. In men and women both, this drug may temporarily or permanently affect your ability to have children. This cannot be determined before your therapy. In men, this drug may interfere with your ability to make sperm, but it should not change your ability to have sexual relations. In women, menstrual bleeding may become irregular or stop while you are receiving this drug. Do not assume that you cannot become pregnant if you do not have a menstrual period. Women may experience signs of menopause like vaginal dryness or itching. This drug may have harmful effects on the unborn child, so effective methods of birth control should be used during your cancer treatment. genetic counseling is available to you to discuss the effect of this drug therapy on future pregnancies. In addition, a genetic counselor can review the potential risks of problems in the fetus due to this medication if an exposure during pregnancy has occurred. http://hillman.upmc.com/patients/community-support/education/chemotherapy-drugs/levamisole 1/2 8/20/2018 Levamisole | UPMC Hillman Cancer Center Treating Side Effects Ask your doctor or nurse about medication that is available to help you prevent or lessen nausea and vomiting. -
ADME and Pharmacokinetic Properties of Remdesivir: Its Drug Interaction Potential
pharmaceuticals Review ADME and Pharmacokinetic Properties of Remdesivir: Its Drug Interaction Potential Subrata Deb * , Anthony Allen Reeves, Robert Hopefl and Rebecca Bejusca Department of Pharmaceutical Sciences, College of Pharmacy, Larkin University, Miami, FL 33169, USA; [email protected] (A.A.R.); [email protected] (R.H.); [email protected] (R.B.) * Correspondence: [email protected]; Tel.: +224-310-7870 Abstract: On 11 March 2020, the World Health Organization (WHO) classified the Coronavirus Disease 2019 (COVID-19) as a global pandemic, which tested healthcare systems, administrations, and treatment ingenuity across the world. COVID-19 is caused by the novel beta coronavirus Severe Acute Respiratory Syndrome Coronavirus 2 (SARS-CoV-2). Since the inception of the pandemic, treatment options have been either limited or ineffective. Remdesivir, a drug originally designed to be used for Ebola virus, has antiviral activity against SARS-CoV-2 and has been included in the COVID-19 treatment regimens. Remdesivir is an adenosine nucleotide analog prodrug that is metabolically activated to a nucleoside triphosphate metabolite (GS-443902). The active nucleoside triphosphate metabolite is incorporated into the SARS-CoV-2 RNA viral chains, preventing its replication. The lack of reported drug development and characterization studies with remdesivir in public domain has created a void where information on the absorption, distribution, metabolism, elimination (ADME) properties, pharmacokinetics (PK), or drug-drug interaction (DDI) is limited. By Citation: Deb, S.; Reeves, A.A.; understanding these properties, clinicians can prevent subtherapeutic and supratherapeutic levels of Hopefl, R.; Bejusca, R. ADME and remdesivir and thus avoid further complications in COVID-19 patients. Remdesivir is metabolized Pharmacokinetic Properties of by both cytochrome P450 (CYP) and non-CYP enzymes such as carboxylesterases. -
Tuesday June 2 Wednesday June 3
Tuesday June 2 14:00- Registration 18:30 19:30 Welcome reception Wednesday June 3 08:00- Registration 09:00 09:00- Welcome and Introduction 09:15 09:15- Targeting Ebola Chair: Steven Kern 10:45 09:15- Conducting clinical trials in challenging Steven Kern 09:30 environments 09:30- France Estimating an effective dose for a repurposed 09:55 Mentré drug to treat Ebola: the case of favipiravir Estimating an effective dose for a new drug to 09:55- Matthias treat Ebola with incomplete information: the 10:20 Machacek case of Zmapp 10:20- An Adaptive Platform Trial for Ebola: Scott Berry 10:45 Application to Future Epidemics 10:45- Coffee break, Poster and Software session I 12:15 Posters in Group I (with poster numbers starting with I-) are accompanied by their presenter 12:15- Diabetes Chair: IñakiTrocóniz 12:55 Page | 1 12:15- Roberto A model of glucose clearance to improve the 12:35 Bizzotto description of glucose homeostasis A longitudinal HbA1c model elucidates genes 12:35- Rada Savic linked to disease progression on metformin 12:55 therapy 12:55- Lunch 14:25 On the 20th anniversary of 'Nonlinear 14:25- Chair: France models for repeated measurement 15:15 Mentré data' 14:25- David Why write a book in 1995 on nonlinear mixed 14:50 Giltinan effects modeling? 14:50- Marie Subsequent developments in nonlinear mixed 15:15 Davidian effects modeling 15:15- Tea break, Poster and Software session II 16:40 Posters in Group II (with poster numbers starting with II-) are accompanied by their presenter 16:40- Other diseases Chair: Ana Ruiz 17:40 José -
CAS Number Index
2334 CAS Number Index CAS # Page Name CAS # Page Name CAS # Page Name 50-00-0 905 Formaldehyde 56-81-5 967 Glycerol 61-90-5 1135 Leucine 50-02-2 596 Dexamethasone 56-85-9 963 Glutamine 62-44-2 1640 Phenacetin 50-06-6 1654 Phenobarbital 57-00-1 514 Creatine 62-46-4 1166 α-Lipoic acid 50-11-3 1288 Metharbital 57-22-7 2229 Vincristine 62-53-3 131 Aniline 50-12-4 1245 Mephenytoin 57-24-9 1950 Strychnine 62-73-7 626 Dichlorvos 50-23-7 1017 Hydrocortisone 57-27-2 1428 Morphine 63-05-8 127 Androstenedione 50-24-8 1739 Prednisolone 57-41-0 1672 Phenytoin 63-25-2 335 Carbaryl 50-29-3 569 DDT 57-42-1 1239 Meperidine 63-75-2 142 Arecoline 50-33-9 1666 Phenylbutazone 57-43-2 108 Amobarbital 64-04-0 1648 Phenethylamine 50-34-0 1770 Propantheline bromide 57-44-3 191 Barbital 64-13-1 1308 p-Methoxyamphetamine 50-35-1 2054 Thalidomide 57-47-6 1683 Physostigmine 64-17-5 784 Ethanol 50-36-2 497 Cocaine 57-53-4 1249 Meprobamate 64-18-6 909 Formic acid 50-37-3 1197 Lysergic acid diethylamide 57-55-6 1782 Propylene glycol 64-77-7 2104 Tolbutamide 50-44-2 1253 6-Mercaptopurine 57-66-9 1751 Probenecid 64-86-8 506 Colchicine 50-47-5 589 Desipramine 57-74-9 398 Chlordane 65-23-6 1802 Pyridoxine 50-48-6 103 Amitriptyline 57-92-1 1947 Streptomycin 65-29-2 931 Gallamine 50-49-7 1053 Imipramine 57-94-3 2179 Tubocurarine chloride 65-45-2 1888 Salicylamide 50-52-2 2071 Thioridazine 57-96-5 1966 Sulfinpyrazone 65-49-6 98 p-Aminosalicylic acid 50-53-3 426 Chlorpromazine 58-00-4 138 Apomorphine 66-76-2 632 Dicumarol 50-55-5 1841 Reserpine 58-05-9 1136 Leucovorin 66-79-5 -
Current Therapeutic Applications and Pharmacokinetic Modulations of Ivermectin
Veterinary World, EISSN: 2231-0916 REVIEW ARTICLE Available at www.veterinaryworld.org/Vol.12/August-2019/5.pdf Open Access Current therapeutic applications and pharmacokinetic modulations of ivermectin Khan Sharun1, T. S. Shyamkumar2, V. A. Aneesha2, Kuldeep Dhama3, Abhijit Motiram Pawde1 and Amar Pal1 1. Division of Surgery, ICAR-Indian Veterinary Research Institute, Bareilly, Uttar Pradesh, India; 2. Division of Pharmacology and Toxicology, ICAR-Indian Veterinary Research Institute, Bareilly, Uttar Pradesh, India; 3. Division of Pathology, ICAR-Indian Veterinary Research Institute, Bareilly, Uttar Pradesh, India. Corresponding author: Khan Sharun, e-mail: [email protected] Co-authors: TSS: [email protected], VAA: [email protected], KD: [email protected], AMP: [email protected], AP: [email protected] Received: 17-05-2019, Accepted: 29-06-2019, Published online: 08-08-2019 doi: 10.14202/vetworld.2019.1204-1211 How to cite this article: Sharun K, Shyamkumar TS, Aneesha VA, Dhama K, Pawde AM, Pal A (2019) Current therapeutic applications and pharmacokinetic modulations of ivermectin, Veterinary World, 12(8): 1204-1211. Abstract Ivermectin is considered to be a wonder drug due to its broad-spectrum antiparasitic activity against both ectoparasites and endoparasites (under class of endectocide) and has multiple applications in both veterinary and human medicine. In particular, ivermectin is commonly used in the treatment of different kinds of infections and infestations. By altering the vehicles used in the formulations, the pharmacokinetic properties of different ivermectin preparations can be altered. Since its development, various vehicles have been evaluated to assess the efficacy, safety, and therapeutic systemic concentrations of ivermectin in different species. A subcutaneous route of administration is preferred over a topical or an oral route for ivermectin due to superior bioavailability. -
Discriminative and Reinforcing Effects of Cocaine-Levamisole Combinations
Western Michigan University ScholarWorks at WMU Dissertations Graduate College 6-2017 Discriminative and Reinforcing Effects of Cocaine-Levamisole Combinations Zachary J. Zimmermann Western Michigan University, [email protected] Follow this and additional works at: https://scholarworks.wmich.edu/dissertations Part of the Substance Abuse and Addiction Commons Recommended Citation Zimmermann, Zachary J., "Discriminative and Reinforcing Effects of Cocaine-Levamisole Combinations" (2017). Dissertations. 3120. https://scholarworks.wmich.edu/dissertations/3120 This Dissertation-Open Access is brought to you for free and open access by the Graduate College at ScholarWorks at WMU. It has been accepted for inclusion in Dissertations by an authorized administrator of ScholarWorks at WMU. For more information, please contact [email protected]. DISCRIMINATIVE AND REINFORCING EFFECTS OF COCAINE-LEVAMISOLE COMBINATIONS by Zachary J. Zimmermann A dissertation submitted to the Graduate College in partial fulfillment of the requirements for the degree of Doctor of Philosophy Psychology Western Michigan University June 2017 Dissertation Committee: Alan Poling, Ph.D., Chair Lisa Baker, Ph.D. David V. Gauvin, Ph.D. Cynthia Pietras, Ph.D. DISCRIMINATIVE AND REINFORCING EFFECTS OF COCAINE-LEVAMISOLE COMBINATIONS Zachary J. Zimmermann, Ph.D. Western Michigan University, 2017 The behavioral and neurochemical effects of cocaine are well established, and it is one of the most widely abused illicit drugs. Illicit cocaine is often adulterated with levamisole, which is an anthelmintic that was withdrawn from the U. S. market in 2000. It has been hypothesized that levamisole, unlike other common adulterants which are added as simple bulking agents, has effects of its own which may be responsible for its use as an adulterant. -
Parasitology Group Annual Review of Literature and Horizon Scanning Report 2018
APHA Parasitology Group Annual Review of Literature and Horizon Scanning Report 2018 Published: November 2019 November 2019 © Crown copyright 2018 You may re-use this information (excluding logos) free of charge in any format or medium, under the terms of the Open Government Licence v.3. To view this licence visit www.nationalarchives.gov.uk/doc/open-government-licence/version/3/ or email [email protected] This publication is available at www.gov.uk/government/publications Any enquiries regarding this publication should be sent to us at [email protected] Year of publication: 2019 The Animal and Plant Health Agency (APHA) is an executive agency of the Department for Environment, Food & Rural Affairs, and also works on behalf of the Scottish Government and Welsh Government. November 2019 Contents Summary ............................................................................................................................. 1 Fasciola hepatica ............................................................................................................. 1 Rumen fluke (Calicophoron daubneyi) ............................................................................. 2 Parasitic gastro-enteritis (PGE) ........................................................................................ 2 Anthelmintic resistance .................................................................................................... 4 Cestodes ......................................................................................................................... -
Prevalence of Levamisole in Urine Toxicology Screens Positive For
LETTERS portable, handheld ultrasound units are now available. In clinical settings, the marginal benefit of the added diagnos- 1988, Filly,2 in an editorial, called ultrasound the stetho- tic information likely does not justify the added cost of the scope of the future but was concerned about its use in un- device, the time it adds to the physical examination, or the trained hands. In 2002, Dodd3 encouraged teaching the tech- cost of false-positive and incidental findings requiring ad- nique of ultrasound usage to medical students beginning in ditional follow-up. the gross anatomy laboratory and ending in ward rounds We would like to emphasize that the potential for bring- and senior electives. In 2003, Greenbaum4 projected that ing new technology to the physical examination should not in the near future “medical students will also be buying a be viewed as a substitute for developing strong physical ex- ‘sonoscope’” in addition to a stethoscope. He envisioned amination skills. The routine physical examination remains the sonoscope as enhancing the physical examination of all part of standard practice because it is quick, cheap, and readily patients. With the advent of smaller, better-quality, and less- available. It also helps to formulate hypotheses and can al- expensive machines, and medical schools beginning to pro- low a physician to quickly rule in or out competing diag- vide technical training for their students, the use of point- noses. For the most part, the tips and maneuvers that we raised of-care ultrasound is increasing, with applications in physical in our article are simple, inexpensive, and easily mastered. -
An Overview of Anthelmintic Drugs in Ascaris Suum Intestine
Iowa State University Capstones, Theses and Creative Components Dissertations Spring 2019 An Overview of Anthelmintic Drugs in Ascaris suum Intestine Katie Tharaldson Follow this and additional works at: https://lib.dr.iastate.edu/creativecomponents Part of the Chemicals and Drugs Commons Recommended Citation Tharaldson, Katie, "An Overview of Anthelmintic Drugs in Ascaris suum Intestine" (2019). Creative Components. 262. https://lib.dr.iastate.edu/creativecomponents/262 This Creative Component is brought to you for free and open access by the Iowa State University Capstones, Theses and Dissertations at Iowa State University Digital Repository. It has been accepted for inclusion in Creative Components by an authorized administrator of Iowa State University Digital Repository. For more information, please contact [email protected]. Tharaldson Overview of anthelmintic drugs and their receptors Part 1 Abstract In part 1 of this paper, I will discuss Ascaris suum and Ascaris lumbricoides. Ascaris suum acts as a model organism for Ascaris lumbricoides, a parasitic nematode that impacts roughly 1.2 billion people worldwide (de Silva et al. 2003). I will then go into the anthelmintic drugs currently being used to treat these infection, as well as the receptors they act on. In part 2 of this paper, I will discuss the research I did with levamisole, an anthelmintic drug, on nicotinic acetylcholine receptors (nAChRs) in the intestine of Ascaris suum. There were 5 control worms, as well as 5 levamisole treated worms. In the past, the nAChRs have been studied predominantly on the muscle in all nematode species. However, in previous work in the lab, although unpublished, there was promising expression of nAChRs in Ascaris suum intestine. -
Pharmacological Treatment of Patients with Mild to Moderate COVID-19: a Comprehensive Review
International Journal of Environmental Research and Public Health Review Pharmacological Treatment of Patients with Mild to Moderate COVID-19: A Comprehensive Review Reinaldo B. Bestetti *, Rosemary Furlan-Daniel and Vinicius M. R. Silva Department of Medicine, University of Ribeirão Preto, 2201 Costabile Romano, Ribeirão Preto 14096-385, Brazil; [email protected] (R.F.-D.); [email protected] (V.M.R.S.) * Correspondence: [email protected] Abstract: Mild to moderate COVID-19 can be found in about 80% of patients. Although mortality is low, mild to moderate COVID-19 may progress to severe or even critical stages in about one week. This poses a substantial burden on the health care system, and ultimately culminates in death or incapacitation and hospitalization. Therefore, pharmacological treatment is paramount for patients with this condition, especially those with recognized risk factors to disease progression. We conducted a comprehensive review in the medical literature searching for randomized studies carried out in patients with mild to moderate COVID-19. A total of 14 randomized studies were identified, enrolling a total of 6848 patients. Nine studies (64%) were randomized, placebo-controlled trials, whereas five were open-label randomized trials (35%). We observed that Bamlanivimab and nitazoxanide reduced viral load, whereas ivermectin may have shortened time to viral clearance; Interferon Beta-1 reduced time to viral clearance and vitamin D reduced viral load; Favirapir, peginterferon, and levamisole improved clinical symptoms, whereas fluvoxamine halted disease progression; inhaled budesonide reduced the number of hospitalizations and visits to emergency departments; colchicine Citation: Bestetti, R.B.; reduced the number of deaths and hospitalizations. -
Marine Mammal Pharmacology
27 PHARMACEUTICALS AND FORMULARIES CLAIRE A. SIMEONE AND MICHAEL K. STOSKOPF Contents Introduction Introduction .......................................................................... 593 This chapter aims to provide clinicians and scientists working Routes for Administering Drugs to Marine Mammals ......... 594 with marine mammals with a convenient and rapidly acces- Dose Scaling ......................................................................... 595 sible single source on the subject. A compilation of the avail- Drug Interactions and Adverse Effects ................................ 596 able pharmacological information on cetaceans, pinnipeds, Life-Threatening Adverse Reactions .................................... 596 sirenians, sea otters (Enhydra lutris), and polar bears (Ursus Hepatic Effects ...................................................................... 596 maritimus) is provided. Readers must be aware at all times Renal Effects ......................................................................... 597 that drugs discussed in this chapter may have only been Gastrointestinal Effects ......................................................... 597 used on a limited number of individual animals from a nar- Nervous System Effects ........................................................ 597 row range of species, so all information must be interpreted Dermal Effects ...................................................................... 598 with caution. No drugs have been licensed for use in marine Otic Effects ...........................................................................