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Evaluation of the Clinical Utility of Circulating Biomarkers in Advanced Thyroid Carcinomas

Evaluation of the Clinical Utility of Circulating Biomarkers in Advanced Thyroid Carcinomas

Status
Recruiting
Phases
Unknown
Study type
Observational
Source
ClinicalTrials.gov
Registry ID
NCT06863805
Enrollment
10
Registered
2025-03-07
Start date
2022-12-15
Completion date
2027-12-31
Last updated
2025-03-07

For informational purposes only — not medical advice. Sourced from public registries and may not reflect the latest updates. Terms

Conditions

Thyroid Carcinoma

Keywords

carcinomas of thyroid, molecular markers, liquid biopsy

Brief summary

The study is aimed at all adult patients diagnosed with advanced thyroid carcinomas and well-differentiated thyroid carcinomas (DTC) iodine-refractory, well-differentiated iodine-refractory thyroid (RAI-R DTC) metastatic carcinomas that are candidates for systemic therapy. By simple blood sampling and analysis on peripheral blood of circulating DNA (ccf-DNA), circulating RNA (ccf-RNA), and counting and analysis of circulating tumor cells through the use of liquid biopsy, molecular profiling corresponding to those obtained by genomic sequencing on tumor tissue can be arrived at, depending on optimal therapeutic choices

Detailed description

In recent years, research has focused on the so-called liquid biopsy, understood as a noninvasive procedure capable of performing analysis on tumor-derived material contained in blood such as circulating free DNA (ccf-DNA), circulating free RNA (ccf-RNA), and circulating tumor cells (CTCs), capable of providing a dynamic snapshot of the molecular structure of the oncological pathology throughout its course. In thyroid cancers, liquid biopsy methods have also proven feasible with potential clinical applications, both in the prognostic field, in the identification and monitoring of minimal residual disease, and in therapeutics. 28 The identification, in fact, of circulating biomarkers predictive of response or resistance to drugs in use to date first and foremost would allow in clinical practice a more accurate selection of patients at the time of initiation of systemic treatment, especially where tumor tissue is not available or adequate for molecular profiling. In addition, the identification of new molecular events, even secondary ones, during treatment would offer the possibility of developing alternative therapeutic strategies aimed at overcoming resistance. The primary objective of the present study is to verify the match between molecular profiling obtained by liquid biopsy versus that obtained by genomic sequencing on tumor tissue (gold standard) in patients with advanced thyroid carcinoma who are candidates for systemic therapy. The secondary objectives of this study are as follows: * identification of circulating biomarkers predictive of response to cancer treatment useful for selecting patients with iodine-resistant metastatic disease for initiation of systemic therapy by profiling on peripheral blood; * identification of additional molecular events, expression of polyclonal disease evolution, that may represent new therapeutic targets. The study is interventional low-risk, tissue-based, prospective, single-center study. For each patient enrolled in the present study, 4 EDTA tubes of peripheral blood will be collected to be used to obtain molecular profiling during scheduled laboratory controls as per normal clinical practice according to the following time schedule: * T0 = basal collection before initiation of systemic treatment; * T1 = sampling at 1 month after the start of systemic treatment; * T2 = sampling at 3 months (+/- 1 month) after the start of systemic treatment at the first instrumental re-evaluation of disease; * T3 = sampling at 6 months (+/- 1 month) from the start of systemic treatment at the time of instrumental disease reassessment; * T4 = sampling at the time of evidence of instrumental disease progression within 24 months of treatment initiation. The following analyses will be conducted on the samples thus collected: * multigenic analysis on ccf-DNA and ccf-RNA at baseline, i.e., before the initiation of systemic treatment; * isolation, counting and analysis of CTCs at baseline visit * multigenic analysis on ccf-DNA and ccf-RNA and isolation, counting and analysis of CTCs during treatment (at + 1 month, + 3 months, + 6 months and at progression) * Outcome of the primary study objective: presence of gene alterations (BRAF mutations, RAS mutations, RET mutations, rearrangements of NTRK, RET, ALK, etc.) found in the two molecular profiling methods, performed on peripheral blood and tumor tissue. * Outcome of the study secondary objectives: early metabolic response rate assessed by fluorodeoxyglucose (FDG) CT-PET at one month of treatment; overall response rate (ORR); progression-free survival (PFS); tumor burden assessed by sum of diameters (SOD) of measurable disease according to RECIST v.1.1 criteria; isolation, count (CTC/ml) and phenotype assessment of CTCs. The results obtained will be compared with those obtained from biomolecular profiling of disease on tumor tissue that is already available as per clinical practice.

Interventions

DIAGNOSTIC_TEST4 EDTA tubes of peripheral blood for Multigene analysis on ccf-DNA and ccf-RNA

For each patient enrolled in the present study, 4 EDTA tubes of peripheral blood will be collected to be used to obtain molecular profiling during scheduled laboratory controls as per normal clinical practice according to the following time schedule: * T0 = basal collection before initiation of systemic treatment; * T1 = sampling at 1 month after the start of systemic treatment; * T2 = sampling at 3 months (+/- 1 month) after the start of systemic treatment at the first instrumental re-evaluation of disease; * T3 = sampling at 6 months (+/- 1 month) from the start of systemic treatment at the time of instrumental disease reassessment; * T4 = sampling at the time of evidence of instrumental disease progression within 24 months of treatment initiation. The following analyses will be conducted on the samples thus collected: * multigenic analysis on ccf-DNA and ccf-RNA at baseline, i.e., before the initiation of systemic treatment; * isolation, counting and analysis of CTCs at baseline vi

Sponsors

IRCCS Azienda Ospedaliero-Universitaria di Bologna
Lead SponsorOTHER

Study design

Observational model
COHORT
Time perspective
PROSPECTIVE

Eligibility

Sex/Gender
ALL
Age
18 Years to No maximum
Healthy volunteers
No

Inclusion criteria

* Signed written informed consent, * Adult (≥18 years) male or female patients * Histologic diagnosis of advanced thyroid carcinoma confirmed at centralized review, * well-differentiated thyroid carcinomas, medullary thyroid carcinomas, anaplastic thyroid carcinomas, advanced, candidates for initiation of systemic medical therapy, * Availability of biomolecular profiling performed by multigenic NGS panel on tumor tissue, * Measurable disease by conventional imaging adopted in clinical practice (total body CT with mdc, CT-PET with FDG or F-DOPA).

Exclusion criteria

* Patients already receiving previous lines of systemic therapy, * Patients not eligible for systemic therapy.

Design outcomes

Primary

MeasureTime frameDescription
Genomic alterationsBefore the start of pharmacologic treatment and after 30 days and 3, 6 and 24 months after the start of treatmentPresence of BRAF mutations, RAS mutations, RET mutations, rearrangements of NTRK, RET, ALK, etc. in ccf-DNA, ccf-RNA and Circulating Tumour Cells (CTCs)

Secondary

MeasureTime frameDescription
Overall response rate (ORR)Throughout the study duration, an average of 24 monthsRate of clinical response
Progression-free survival (PFS)Throughout the study duration, an average of 24 monthsProgression-free survival (PFS) assessed throughout the study
Early metabolic response rate30 days from the start of pharmacologic treatmentEarly metabolic response rate evaluated by FDG-PET
Number of Circulatin Tumour cells (CTC) (CTC/ml)Before the start of pharmacologic treatment and after 30 days and 3, 6 and 24 months after the start of treatmentCTC number expressed as CTC/ml
Circulatin Tumour Cells phenotypeBefore the start of pharmacologic treatment and after 30 days and 3, 6 and 24 months after the start of treatmentDescription of the CTC phenotype
Tumour loadThroughout the study duration, an average of 24 monthsCalculated as sum of diameters (SOD) of measurable disease according to RECIST v.1.1 criteria

Countries

Italy

Contacts

Primary ContactMargherita Nannini
margherita.nannini@unibo.it+390512142207
Backup ContactMaria Abbondanza Pantaleo
maria.pantaleo@unibo.it+390512142208

Outcome results

None listed

Source: ClinicalTrials.gov · Data processed: Feb 4, 2026