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Thyroid Hormones in CKD

Deciphering the Role of Thyroid Hormones in Severe Non-ADPKD Chronic Kidney Disease

Status
Not yet recruiting
Phases
Unknown
Study type
Observational
Source
ClinicalTrials.gov
Registry ID
NCT07663773
Acronym
THYROID-CKD
Enrollment
51
Registered
2026-06-23
Start date
2026-09-01
Completion date
2027-09-01
Last updated
2026-06-23

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

Conditions

Chronic Kidney Disease (Stages 4 and 5)

Keywords

Thyroid Hormones, CKD

Brief summary

This is a retrospective, observational, study evaluating circulating thyroid hormone profiles in patients with severe chronic kidney disease (CKD stages G4-G5, non-dialysis). The study includes one cohort of patients with non-ADPKD CKD and a second including a matched subset of patients with Autosomal Dominant Polycystic Kidney Disease (ADPKD) at the same CKD stage,. For the non-ADPKD CKD group, serum and urine samples will be retrieved from the certified biobank of the Centro Daccò (Mario Negri IRCCS). For the ADPKD group, analyses will be performed exclusively using existing clinical and laboratory data available within the REORIENTED study database. Laboratory measurements will be performed on stored biological samples from the non-ADPKD CKD group to assess thyroid hormones (rT3, fT3, tT3, fT4, tT4, and TSH). Clinical and laboratory data for both cohorts will be obtained from the respective study databases and linked within a predefined temporal window relative to sample collection (where applicable).

Detailed description

Chronic kidney disease (CKD) is frequently associated with alterations in thyroid hormone homeostasis, commonly referred to as Non-Thyroidal Illness Syndrome (NTIS) or "low T3 syndrome" . This condition is typically characterized by reduced circulating levels of free triiodothyronine (fT3) in the presence of normal or slightly decreased Thyroid-Stimulating Hormone (TSH) and free thyroxine (fT4), and has been associated with inflammation, protein-energy wasting, and the severity of renal dysfunction. While these hormonal changes are generally interpreted as an adaptive metabolic response to chronic illness, accumulating evidence suggests that alterations in thyroid hormone metabolism in CKD may reflect more complex pathophysiological mechanisms, including impaired peripheral deiodination, mitochondrial dysfunction, chronic inflammation, and altered availability of enzymatic cofactors. In this context, reverse triiodothyronine (rT3), a thyroid hormone metabolite generated through peripheral deiodination of thyroxine (T4), has been proposed as a potential marker of altered thyroid hormone metabolism. Although rT3 is not routinely used in clinical practice, it may provide additional insights into the balance between activating and inactivating pathways of thyroid hormone metabolism, particularly when interpreted in combination with fT3 (e.g., rT3/fT3 ratio). Recent findings from the REORIENTED study conducted in a well-characterized cohort of patients with autosomal dominant polycystic kidney disease (ADPKD), identified a distinct thyroid hormone profile characterized by increased rT3 levels, reduced fT3 concentrations, and a significant association between both fT3 and rT3 levels and renal function, measured as estimated glomerular filtration rate (eGFR). These relationships were particularly strong in patients with moderate to severe kidney dysfunction, who exhibit an increased rT3/fT3 ratio compared to patients with normal to mild decrease in eGFR, probably due to an increased conversion of T4 into rT3 at the expense of the production of fT3. These observations raise the hypothesis that ADPKD may be associated with disease-specific alterations in thyroid hormone profile, potentially reflecting unique features of cystic kidney disease. However, it remains unclear whether this hormonal pattern is specific to ADPKD or rather represents a general feature of advanced CKD, independent of the etiology. To address this question, a comparative analysis with non-ADPKD CKD patients with similar kidney function is required. By leveraging biobank-stored samples and clinical data from well-characterized CKD cohorts, it is possible to investigate whether the alterations observed in ADPKD are also present in other forms of advanced renal disease. If a similar pattern of increased rT3 and reduced fT3 (or altered rT3/fT3 ratio) is observed in non-ADPKD CKD patients, this would support the hypothesis that these changes primarily reflect reduced kidney function and systemic illness. Conversely, if such alterations are attenuated or absent, this would suggest that ADPKD is characterized by a distinct modulation of thyroid hormone metabolism, supporting a disease-specific pathophysiological mechanism. In this perspective, the present biobank-based observational comparative study was designed to characterize circulating thyroid hormone profiles in severe non-ADPKD CKD and to compare them with those observed in a matched subset of ADPKD patients from the REORIENTED cohort, with particular emphasis on rT3 and the rT3/fT3 ratio as biomarkers of altered peripheral thyroid hormone metabolism. In this context, if the observed thyroid hormone alterations are hypothesized to reflect mechanisms related to impaired kidney dysfunction rather than ADPKD itself, the ADAPT cohort-a prospective, randomized, double-blind, crossover, placebo-controlled trial published in 2025, which demonstrated beneficial effects of dapagliflozin on hyperfiltration and proteinuria in non-diabetic patients with advanced CKD-may provide a unique opportunity to further investigate thyroid hormone metabolism in advanced kidney disease. Specifically, the availability of biological samples will enable the assessment of serum and urinary thyroid hormone profiles before and after SGLT2 inhibitor treatment, to explore whether these alterations may be modulated by dapagliflozin.

Interventions

Reverse T3 will be measured using a dedicated ELISA assay. Total T3, total T4, free T3, free T4, and TSH will be measured using chemiluminescent immunoassays according to the standard operating procedures of the Laboratory of Clinical Chemistry

Sponsors

Mario Negri Institute for Pharmacological Research
Lead SponsorOTHER

Study design

Observational model
COHORT
Time perspective
RETROSPECTIVE

Eligibility

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

Inclusion criteria

* Non-ADPKD CKD * CKD stage G4, included in the ADAPT study * Availability of stored serum and urine samples in the biobank suitable for thyroid hormone analysis * Availability of relevant clinical and laboratory data within a predefined time window from sample collection * Signed informed consent for storage and future research use of biological samples and clinical data * ADPKD CKD * CKD stage G4, included in the REORIENTED study * Availability of complete thyroid hormone profile and relevant clinical data

Exclusion criteria

(applied to both groups as far as possible) * Known history of thyroid disease (hypothyroidism, hyperthyroidism, thyroiditis, or thyroid cancer) * Treatment with thyroid hormone replacement or antithyroid drugs * Use of medications known to interfere with thyroid function (e.g., amiodarone, lithium, interferon) * Systemic corticosteroid or immunosuppressive therapy at the time of sampling (if data available) * Dialysis treatment or history of kidney transplantation at the time of sampling * Acute illness, infection, or hospitalization close to the time of sample collection (if identifiable)

Design outcomes

Primary

MeasureTime frameDescription
Serum rT3One single measurement at baselineSerum rT3 levels (ng/ml) will be measured using the reverse Triiodothyronine ELISA Test System Kit (Cat#CAN-RT3-100, Diagnostic Biochem Canada) following the manufacturer's instructions.
Urine rT3One single measurement at baselineUrine rT3 levels (ng/dl or pg/ml) will be measured using the Triiodothyronine ELISA Test System Kit (Cat# EIA-RT3, Ray biotech or Cat# EK711381 AFG Bioscience) following the manufacturer's instructions.
Serum free T3One single measurement at baselineSerum free T3 (pg/ml) will be measured at the Laboratory of Clinical Chemistry of the Centro Daccò with a Chemiluminescent immunoassay according to the local standard Operating procedures.
Serum free T4One single measurement at baselineSerum free T4 (ng/dl) will be measured at the Laboratory of Clinical Chemistry of the Centro Daccò with a Chemiluminescent immunoassay according to the local standard Operating procedures
Serum TSHOne single measurement at baselineSerum TSH (microU/ml) will be measured at the Laboratory of Clinical Chemistry of the Centro Daccò with a Chemiluminescent immunoassay according to the local standard Operating procedures

Countries

Italy

Contacts

CONTACTMatias Trillini, M.D.
matias.trillini@marionegri.it+390354535411
STUDY_CHAIRGiuseppe Remuzzi, M.D.

Istituto Di Ricerche Farmacologiche Mario Negri

Outcome results

None listed

Source: ClinicalTrials.gov · Data processed: Jun 24, 2026