Chagas Disease Clinical Trial
— TESEOOfficial title:
New Chemotherapy Regimens and Biomarkers for Chagas Disease
Verified date | June 2024 |
Source | University of Texas, El Paso |
Contact | n/a |
Is FDA regulated | No |
Health authority | |
Study type | Interventional |
Chagas disease (CD) is an endemic zoonotic disease with a significant global impact. Current approved treatments for CD (benznidazole (BZN) and nifurtimox (NFX)) were developed in the 1970s with regimens and dosing intervals derived from decades-old patient series and with very limited direct comparisons. Treatment recommendations vary significantly from country to country and the comparative evidence-base with the current treatment regimens is limited. The reported efficacy of both drugs in patients with T. cruzi infection is variable and depends on the disease stage, the drug dose, the age of patients, and the infecting T. cruzi strain or genotype. Due to a therapeutic failure of at least 20% after 12 months in chronic patients and the high rate of adverse events, together with the recent data that suggest that we may be overdosing patients, we propose to test new dosing regimens of these two old compounds. Hypotheses: - Lowering the frequency of drug dosing of BZN and NFX, the plasma drug levels of the drugs within the therapeutic range will be maintained. - The duration of treatment with BZN or NFX may be related to the effectiveness of these drugs. - Blood levels of the proposed biomarkers will significantly diminish or became negative after a relatively short interval after treatment.
Status | Active, not recruiting |
Enrollment | 450 |
Est. completion date | July 31, 2025 |
Est. primary completion date | May 29, 2024 |
Accepts healthy volunteers | No |
Gender | All |
Age group | 18 Years to 50 Years |
Eligibility | Inclusion Criteria: 1. Adults, 18-50 years. 2. Weight: 88-198 pounds (40-90 Kg). 3. Individuals diagnosed as being infected with T. cruzi by conventional serology (two positive tests with different antigens) with at least one positive qualitative RT-PCR assay out of three during the screening. 4. Patient classified as being in the indeterminate form (without clinical manifestations) or early cardiac form (Kushnir 1) of chronic Chagas disease. 5. Signed informed consent form (ICF). Exclusion Criteria: 1. Clinical signs of dilated cardiomyopathy (dyspnea, legs' edema, syncope, pulmonary crackles). Patients with an EKG showing the following characteristics: sinus tachycardia or atrial fibrillation, ventricular arrhythmias, left atrial enlargement, left bundle-branch block (LBBB) accompanied by right axis deviation (RAD), and/or patients with Calculation of Fridericia's corrected QT interval (QTcF) > 450ms, a formula for calculating the QT interval on an electrocardiogram (ECG). 2. History of Chagas disease treatment with BZN or NFX or any triazole drug(s) in the last five years. 3. Clinical signs and/or symptoms of digestive form of Chagas disease, which is characterized by the presence of two or more of the following criteria *: 1. Excessive exertion in at least 25% of bowel movements 2. Hard stools in at least 25% of stools (type 1-2 of Bristol) 3. Feeling of incomplete evacuation in at least 25% of bowel movements 4. Feeling of obstruction or anorectal block in at least 25% of bowel movements 5. Manual maneuvers to facilitate defecation in at least 25% of bowel movements 6. Less than 3 complete spontaneous stools per week - Criteria must be met for at least the last three months and symptoms must have been started for at least six months before diagnosis. 4. Hypersensitivity to the active substances (BZN or NFX) or to the excipient. 5. Previous diagnosis of porphyria. 6. Any other acute or chronic health conditions that in the opinion of the PI, may interfere with the efficacy and/or safety evaluation of the study drug. 7. Formal contraindication to BZN or NFX. 8. Any concomitant or anticipated use of drugs that are contraindicated with the use of BZN or NFX. 9. Individuals currently known to abuse alcohol and/or drugs. Furthermore, if throughout the course of the study the team becomes aware that a participant is using drugs/alcohol that participant will be excluded from the treatment but will continue with the follow-up visits. The study manual outlines how abuse and dependence will be measured for this study. 10. Pregnancy. Females of childbearing potential will be required to complete a pregnancy test prior to enrollment and throughout the course of treatment. 11. Women in reproductive age must have a negative serum pregnancy test at screening, must not be breastfeeding, and consistently use and/or have partner consistently use a highly effective contraceptive method during the entire treatment phase of the trial. 12. Transaminases (alanine aminotransferase-ALT and aspartate aminotransferase- AST). AST must be within the normal range, within an acceptable margin of 25% above the upper limit of normality for both, according to the insert of the biochemical kit being used in this study. 13. Creatinine must be within an acceptable range, within an acceptable margin of 10% above the upper limit of normality, according to the insert of the biochemical kit being used. The normal ranges of transaminases (ALT and AST) and creatinine are defined by the inserts of the commercial biochemical kits selected to be used in the present study. All treatment centers (Chagas Platforms in Cochabamba, Sucre, and Tarija) are going to use the same biochemical kits. The participating clinical laboratories at the Platforms (in Cochabamba, Sucre, and Tarija) will use the Common Terminology Criteria for Adverse Events (CTCAE, v.5.0; ttps://ctep.cancer.gov/protocoldevelopment/electronic_applications/docs/ctcae_v5_quick _reference_5x7.pdf). 14. Total bilirubin must be within the normal range, within an acceptable margin of 15% above the upper limit of normality for both sexes, according to the insert of the biochemical kit being used in this study. 15. For other standard exclusion criteria, a detailed explanation for each criterion is provided in the Manual of Operations and Procedures (MOP). |
Country | Name | City | State |
---|---|---|---|
Bolivia | Platform for the Comprehensive Care of Patients with Chagas Disease | Cochabamba | Cercado |
Bolivia | Platform for the Comprehensive Care of Patients with Chagas Disease | Sucre | |
Bolivia | Platform for the Comprehensive Care of Patients with Chagas Disease | Tarija | Cercado |
Lead Sponsor | Collaborator |
---|---|
University of Texas, El Paso | Barcelona Institute for Global Health, Drugs for Neglected Diseases, Fundación Ciencia y Estudios Aplicados para el Desarrollo en Salud y Medio Ambiente (CEADES), Institute of Parasitology and Biomedicine Lopez Neyra, Mundo Sano Foundation, National Institute of Allergy and Infectious Diseases (NIAID), U.S. Food and Drug Administration (FDA) |
Bolivia,
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Pinazo MJ, Thomas MC, Bua J, Perrone A, Schijman AG, Viotti RJ, Ramsey JM, Ribeiro I, Sosa-Estani S, Lopez MC, Gascon J. Biological markers for evaluating therapeutic efficacy in Chagas disease, a systematic review. Expert Rev Anti Infect Ther. 2014 Apr;12(4):479-96. doi: 10.1586/14787210.2014.899150. — View Citation
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Regueiro A, Garcia-Alvarez A, Sitges M, Ortiz-Perez JT, De Caralt MT, Pinazo MJ, Posada E, Heras M, Gascon J, Sanz G. Myocardial involvement in Chagas disease: insights from cardiac magnetic resonance. Int J Cardiol. 2013 Apr 30;165(1):107-12. doi: 10.1016/j.ijcard.2011.07.089. Epub 2011 Sep 9. — View Citation
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* Note: There are 19 references in all — Click here to view all references
Type | Measure | Description | Time frame | Safety issue |
---|---|---|---|---|
Primary | Sustained Parasitological Clearance by qPCR at End of Follow-Up (36 months) | The primary efficacy endpoint or measure is a binary 'cured' (success), 'not-cured' (failure) variable based on a total of eight qPCR timepoints from end-of-treatment (EOT) up to 36 months of follow-up. Each of the timepoints includes a total of three sequential qPCR examinations on blood samples collected during one visit. Therefore, for a patient to be considered "cured", a total of 24 negative qPCR results should be documented.
Blood samples to be collected at EOT (30, 60, or 90 days), and at 4, 6, 12, 18, 24, 30 and 36 months of follow-up (with a window period of +/- 7 days from 4 to 12 months and +/- 14 days from 18 to 36 months). |
up to 36 months | |
Secondary | Changes Over Time in the blood parasitic load by qPCR | Evaluate changes over time in blood parasitic load as measured by qPCR. The unit for the qPCR is parasite equivalents/milliliter of blood (Par. Eq./mL). The limit of detection (LOD) and limit of quantification (LOQ) for the qPCR assay is 0.69 and 1.5 Par. Eq./mL blood, respectively.
Kaplan-Meier survival curves will be drawn to depict the time-to-reappearance of blood parasitic load for patients who have cleared blood parasitic load at EOT (as such this is a time-to-relapse for 'success' patients) across treatment groups. A discrete-time survival model will be used to analyze this event time data. Change in parasite load over time assessed at days 14-17, 59-62, and EOT (30, 60, or 90 days), according to the treatment arm, and months 4, 6, 12, 18, 24, 30, and 36 of follow-up (with a window period of +/- 7 days from 4 to 12 months and +/- 14 days from 18 to 36 months), as measured by qPCR. |
Days 14-17, 59-62; EOT-30, EOT-60, and EOT-90; and months 4, 6, 12, 18, 24, 30, and 36 during follow-up (with a window period of +/- 7 days from 4 to 12 months and +/- 14 days from 18 to 36 months). | |
Secondary | Changes Over Time in the Conventional Serology using parasite antigenic mixture | Evaluate changes over time in serological titers and incidence of negative seroconversion through conventional serology. Chagas disease serology commercial kit using a parasite antigenic mixture (lysate) will be used to perform this analysis. Serum samples from all timepoints in the study for each patient will be analyzed in the same ELISA plate to avoid bias due to interassay variations.
Generalized linear mixed-effects models will be used to evaluate the conventional serological response over time. The dependent variable in both models will be a binary conventional serology parameter. The treatment arm will be included in the model as a fixed effect. The significance of the treatment covariate will be tested at the 0.05 two-sided significance level with Likelihood Ratio Test. |
Day -28; EOT-30, EOT-60, and EOT-90; and months 4, 6, 12, 18, 24, 30, and 36 (with a window period of +/- 7 days from 4 to 12 months and +/- 14 days from 18 to 36 months) during follow-up. | |
Secondary | Changes Over Time in the Conventional Serology using recombinant parasite antigens | Evaluate changes over time in serological titers and incidence of negative seroconversion through conventional serology. Chagas disease serology commercial kit using recombinant parasite antigens will be used to perform this analysis. Serum samples from all timepoints in the study for each patient will be analyzed in the same ELISA plate to avoid bias due to interassay variations.
Generalized linear mixed-effects models will be used to evaluate the conventional serological response over time. The dependent variable in both models will be a binary conventional serology parameter. The treatment arm will be included in the model as a fixed effect. The significance of the treatment covariate will be tested at the 0.05 two-sided significance level with Likelihood Ratio Test. |
Day -28; EOT-30, EOT-60, and EOT-90; and months 4, 6, 12, 18, 24, 30, and 36 (with a window period of +/- 7 days from 4 to 12 months and +/- 14 days from 18 to 36 months) during follow-up. | |
Secondary | Changes Over Time in the Non-Conventional Serology Biomarker "Lytic Anti-a-Gal Antibodies" | Evaluate changes over time in the non-conventional serology biomarker (BMK) "Lytic Anti-a-Gal Antibodies" and incidence of negative seroconversion for it, as measured by chemiluminescent (CL)-ELISA using T. cruzi tGPI-mucins as antigens. CL-ELISA unit is the Titer (T). T is the ratio of the relative luminescence units (RLU) of the tested serum to the cutoff value (CV). The CV is calculated by defining the upper prediction limit (as standard deviation, SD), multiplied by a factor according to the number of negative controls (NC) and a confidence interval of 99.5%. For each test plate in which six NC are included, the CV is defined as the NC mean plus 4.355 times the SD. A serum sample is positive when T = or >1.000; negative when T = or < 0.900; and inconclusive when T > 0.900, < 1.000.
Generalized linear mixed-effects models (GLMM) will define how this BMK affects binary outcomes of parasite clearance. The BMK variable will be included in the model, with repeated measures. |
Days 0, 14-17, 59-62; EOT-30, EOT-60, and EOT-90; and at months 4, 6, 12, 18, 24, 30, and 36 during follow-up (with a window period of +/- 7 days from 4 to 12 months and +/- 14 days from 18 to 36 months). | |
Secondary | Changes Over Time in the Non-Conventional Serology Biomarker "Anti-KMP11 Antibodies" | This BMK is measured by Enzyme-Linked Immunosorbent Assay (ELISA), whose unit is Optical Density (OD) at 492 nm. Cutoff: A negative result will be considered when OD values = or <0.200, and positive when OD values >0.300, at 1/200 serum dilution; indeterminate results will be OD values comprised between 0.200 and 0.300.
Therapeutic efficacy will imply a continuous and substantial drop in the reactivity after treatment. A substantial decrease has to be at least 40% compared with the reactivity at T0 (before treatment). A slight increase (= or <20%) in the reactivity against the BMK shortly after treatment versus OD at T0 will be allowed. Generalized linear mixed-effects models (GLMM) will define how this BMK affects binary outcomes of parasite clearance. The BMK variable will be included in the model, with repeated measures. |
Days 0, 14-17, 59-62; EOT-30, EOT-60, and EOT-90; and at months 4, 6, 12, 18, 24, 30, and 36 during follow-up (with a window period of +/- 7 days from 4 to 12 months and +/- 14 days from 18 to 36 months). | |
Secondary | Changes in the Non-Conventional Serology Biomarker "Anti-HSP70 Antibodies" | This BMK is measured by Enzyme-Linked Immunosorbent Assay (ELISA), whose unit is Optical Density (OD) at 492 nm. Cutoff: A negative result will be considered when OD values = or <0.300, and positive when OD values >0.450, at 1/200 serum dilution; indeterminate results will be OD values comprised between 0.300 and 0.450.
Therapeutic efficacy will imply a continuous and substantial drop in the reactivity after treatment. A substantial decrease has to be at least 30% compared with the reactivity at T0 (before treatment). A slight increase (= or < 20%) in the reactivity against the BMK shortly after treatment versus OD at T0 will be allowed. |
Days 0, 14-17, 59-62; EOT-30, EOT-60, and EOT-90; and at months 4, 6, 12, 18, 24, 30, and 36 during follow-up (with a window period of +/- 7 days from 4 to 12 months and +/- 14 days from 18 to 36 months). | |
Secondary | Changes Over Time in the Non-Conventional Serology Biomarker "Anti-PFR2 Antibodies" | This BMK is measured by Enzyme-Linked Immunosorbent Assay (ELISA), whose unit is Optical Density (OD) at 492 nm. Cutoff: A negative result will be considered when OD values = or <0.250 at 1/400 dilution, and positive when OD values >0.350, at 1/400 serum dilution; indeterminate results will be OD values comprised between 0.250 and 0.350.
Therapeutic efficacy will imply a continuous and substantial drop in the reactivity after treatment. A substantial decrease has to be at least 40% compared with the reactivity at T0 (before treatment). A slight increase (= or <20%) in the reactivity against the BMK shortly after treatment versus OD at T0 will be allowed. Generalized linear mixed-effects models (GLMM) will define how this BMK affects binary outcomes of parasite clearance. The BMK variable will be included in the model, with repeated measures. |
Days 0, 14-17, 59-62; EOT-30, EOT-60, and EOT-90; and at months 4, 6, 12, 18, 24, 30, and 36 during follow-up (with a window period of +/- 7 days from 4 to 12 months and +/- 14 days from 18 to 36 months). | |
Secondary | Changes Over Time in the Non-Conventional Serology Biomarker "Anti-Peptide 3973 Antibodies" | This BMK is measured by Enzyme-Linked Immunosorbent Assay (ELISA), whose unit is Optical Density (OD) at 492 nm. Cutoff: A negative result will be considered when OD values = or <0.250, and positive when OD values >0.350, at 1/400 serum dilution; indeterminate results will be OD values comprised between 0.250 and 0.350.
Therapeutic efficacy will imply a continuous and substantial drop in the reactivity after treatment. A substantial decrease has to be at least 40% compared with the reactivity at T0 (before treatment). A slight increase (= or <20%) in the reactivity against the BMK shortly after treatment versus OD at T0 will be allowed. Generalized linear mixed-effects models (GLMM) will define how this BMK affects binary outcomes of parasite clearance. The BMK variable will be included in the model, with repeated measures. |
Days 0, 14-17, 59-62; EOT-30, EOT-600, and EOT-90; and at months 4, 6, 12, 18, 24, 30, and 36 during follow-up (with a window period of +/- 7 days from 4 to 12 months and +/- 14 days from 18 to 36 months). | |
Secondary | Changes Over Time in the Non-Conventional Serology Biomarker "Trypomastigote Excreted/Secreted Antigens (TESA)" | Evaluate changes over time in the non-conventional serology biomarker (BMK) "Trypomastigote Excreted/Secreted Antigens (TESA)" and incidence of negative seroconversion for it, as measured by the aptamer assay.
The unit of the aptamer assay is relative fluorescence unit (RFU). A Signal to Cutoff (S/CO) ratio is calculated for each clinical specimen by dividing the RFU value of the test sample by the cutoff (CO). The CO is the highest RFU value obtained from the endemic control specimens included in each run. The S/CO of a positive control included in the same run must meet pre-established acceptance criteria to be valid. A specimen with an S/CO > 1.0 is interpreted as positive for the presence of the BMK (=infected). A specimen with an S/CO < 1 is interpreted as negative (=non-infected). Generalized linear mixed-effects models (GLMM) will define how this BMK affects binary outcomes of parasite clearance. The BMK variable will be included in the model, with repeated measures. |
Days 0, 14-17, 59-62; EOT-30, EOT-60, and EOT-90; and at months 4, 6, 12, 18, 24, 30, and 36 during follow-up (with a window period of +/- 7 days from 4 to 12 months and +/- 14 days from 18 to 36 months). |
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