Research

Research library

Studies on persistent infection, persister cells, herbal medicines and treatment trials, from both sides of the debate. Each one is summarized and linked to the original paper, often with free full text.

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Antibiotics & Drug Discovery 2020 Antibiotics

Repurposing Disulfiram (Tetraethylthiuram Disulfide) as a Potential Drug Candidate against Borrelia burgdorferi In Vitro and In Vivo

Potula HSK, Shahryari J, Inayathullah M et al.

Stanford study showing the alcoholism drug disulfiram killed Borrelia in culture and cleared infection in mice, the lab foundation for disulfiram treatment of Lyme.

Abstract
Lyme disease caused by the Borrelia burgdorferi (Bb or B. burgdorferi) is the most common vector-borne, multi-systemic disease in the USA. Although most Lyme disease patients can be cured with a course of the first line of antibiotic treatment, some patients are intolerant to currently available antibiotics, necessitating the development of more effective therapeutics. We previously found several drugs, including disulfiram, that exhibited effective activity against B. burgdorferi. In the current study, we evaluated the potential of repurposing the FDA-approved drug, disulfiram for its borreliacidal activity. Our results indicate disulfiram has excellent borreliacidal activity against both the log and stationary phase B. burgdorferi sensu stricto B31 MI. Treatment of mice with disulfiram eliminated the B. burgdorferi sensu stricto B31 MI completely from the hearts and urinary bladder by day 28 post infection. Moreover, disulfiram-treated mice showed reduced expressions of inflammatory markers, and thus they were protected from histopathology and cardiac organ damage. Furthermore, disulfiram-treated mice showed significantly lower amounts of total antibody titers (IgM and IgG) at day 21 and total IgG2b at day 28 post infection. FACS analysis of lymph nodes revealed a decrease in the percentage of CD19+ B cells and an increase in total percentage of CD3+ T cells, CD3+ CD4+ T helpers, and naive and effector memory cells in disulfiram-treated mice. Together, our findings suggest that disulfiram has the potential to be repurposed as an effective antibiotic for treating Lyme disease.
Antibiotics & Drug Discovery 2019 Antibiotics

Disulfiram (Tetraethylthiuram Disulfide) in the Treatment of Lyme Disease and Babesiosis: Report of Experience in Three Cases

Liegner KB

Dr. Kenneth Liegner's report of three patients with relapsing neurological Lyme and babesiosis who were able to stop open-ended treatment and stay well for 6–23 months after a finite course of disulfiram alone.

Abstract
Three patients, each of whom had required intensive open-ended antimicrobial therapy for control of the symptoms of chronic relapsing neurological Lyme disease and relapsing babesiosis, were able to discontinue treatment and remain clinically well for periods of observation of 6-23 months following the completion of a finite course of treatment solely with disulfiram. One patient relapsed at six months and is being re-treated with disulfiram.
Antibiotics & Drug Discovery 2016 Drug Design, Development and Therapy

Identification of new drug candidates against Borrelia burgdorferi using high-throughput screening

Pothineni VR, Wagh D, Babar MM et al.

Stanford high-throughput screen of 4,366 compounds (mostly FDA-approved drugs) against Lyme bacteria. 150 compounds stopped more than 90% of growth at low concentrations; this work by Dr. Rajadas's lab first flagged disulfiram as a promising Lyme drug candidate.

Abstract
Lyme disease is the most common zoonotic bacterial disease in North America. It is estimated that >300,000 cases per annum are reported in USA alone. A total of 10%-20% of patients who have been treated with antibiotic therapy report the recrudescence of symptoms, such as muscle and joint pain, psychosocial and cognitive difficulties, and generalized fatigue. This condition is referred to as posttreatment Lyme disease syndrome. While there is no evidence for the presence of viable infectious organisms in individuals with posttreatment Lyme disease syndrome, some researchers found surviving Borrelia burgdorferi population in rodents and primates even after antibiotic treatment. Although such observations need more ratification, there is unmet need for developing the therapeutic agents that focus on removing the persisting bacterial form of B. burgdorferi in rodent and nonhuman primates. For this purpose, high-throughput screening was done using BacTiter-Glo assay for four compound libraries to identify candidates that stop the growth of B. burgdorferi in vitro. The four chemical libraries containing 4,366 compounds (80% Food and Drug Administration [FDA] approved) that were screened are Library of Pharmacologically Active Compounds (LOPAC1280), the National Institutes of Health Clinical Collection, the Microsource Spectrum, and the Biomol FDA. We subsequently identified 150 unique compounds, which inhibited >90% of B. burgdorferi growth at a concentration of <25 µM. These 150 unique compounds comprise many safe antibiotics, chemical compounds, and also small molecules from plant sources. Of the 150 unique compounds, 101 compounds are FDA approved. We selected the top 20 FDA-approved molecules based on safety and potency and studied their minimum inhibitory concentration and minimum bactericidal concentration. The promising safe FDA-approved candidates that show low minimum inhibitory concentration and minimum bactericidal concentration values can be chosen as lead molecules for further advanced studies.
Antibiotics & Drug Discovery 2004 Toxicological Sciences

N,N-diethyldithiocarbamate produces copper accumulation, lipid peroxidation, and myelin injury in rat peripheral nerve

Tonkin EG, Valentine HL, Milatovic DM et al.

Rat study showing a disulfiram breakdown product (diethyldithiocarbamate) causes copper to build up in peripheral nerves, leading to lipid damage and loss of myelin. It's the leading explanation for why neuropathy occurs during disulfiram treatment, and why some patients take zinc.

Summaries are our plain-language reading of each abstract. Lab (in-vitro) and animal results don't always translate to people. Read the original papers and discuss them with your clinician.