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Calcium Absorption in Patients With Rothmund-Thomson Syndrome

Evaluation of Calcium Absorption in Patients With Rothmund-Thomson Syndrome

Status
Completed
Phases
NA
Study type
Interventional
Source
ClinicalTrials.gov
Registry ID
NCT01304407
Enrollment
29
Registered
2011-02-25
Start date
2011-03-31
Completion date
2017-02-28
Last updated
2020-07-23

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

Conditions

Rothmund-Thomson Syndrome

Keywords

Rothmund-Thomson Syndrome, Calcium absorption, Bone density

Brief summary

Osteosarcoma is the most common malignant bone tumor in children and adolescents. Because cure rates for osteosarcoma have remained stagnant for the past several decades despite numerous trials of chemotherapy agents, novel therapies based on the understanding of the molecular pathogenesis of osteosarcoma are needed. Rothmund-Thomson Syndrome (RTS) is a genetic disorder affecting many parts of the body and resulting in major skeletal abnormalities. This disease also has the propensity to increase the risk of developing cancer, particularly osteosarcoma. Two-thirds of RTS patients have a high risk of developing osteosarcoma. Therefore, it is important to understand the impact of RTS on the skeletal phenotype (as measured by bone density) in order to develop effective therapies to battle osteosarcoma.

Detailed description

This is an evaluation of bone calcium deposition in patients with Rothmund-Thomson Syndrome (RTS). This study includes one study visit during which subjects will be admitted to the inpatient unit in the Pediatric GCRC at TCH where they will undergo comprehensive clinical evaluations by a team of physicians familiar with RTS as well as bone-specific studies divided into four parts. Procedures for this study may be combined with procedures for H-9106, another protocol for patients with RTS by Dr. Wang. Subjects will arrive at the GCRC at TCH after an overnight fast. Per TCH pain management protocols, numbing creams and sprays will be offered to the subject prior to the blood draw. Tylenol per TCH pain protocol is allowed. All food and beverages consumed at the GCRC will be pre-arranged by the study dietitian and weighed by the GCRC nutrition staff. Additional food is not allowed unless approved by the study dietitian. Subjects will be asked to provide a 3-day written dietary history as well as food preferences for the GCRC study day. For the first meal of the study day, subjects will consume 180 mL of low-fat milk or orange juice to which 20 micrograms of 46Ca will have been added. (If milk is used as the vehicle for the isotope, the 46Ca will be added 18-24 hours in advance.) Immediately after breakfast, subjects will receive 5 mg of 42Ca intravenously over 2-3 minutes. The beginning of this infusion will serve as Time 0. After the infusion is complete, the catheter hub will be changed in preparation for the subsequent blood draws. Samples for calcium isotope ratio measurement (0.5 ml of whole blood) will be obtained at 6, 12, 20, 40, 120, 180, 240, and 480 minutes after the infusion. GCRC will provide weighed diets for the study day as directed by the study dietitian. Each meal should contain approximately 300 mg of calcium and each snack should provide negligible calcium. A complete 24-hour urine collection in 8 hour aliquots will be performed while at the GCRC starting with the first void after the isotopes are given. After completion of this 24 hour period, the subjects will be discharged. They will continue to collect all of their urine in 8 hour aliquots for an additional 24 hours and then will collect three spot urine samples each day for the next 6 days. These samples will then be mailed to the CNRC research laboratory of Dr. Steven Abrams where they will be analyzed for isotope ratios by mass spectrometry analysis. Upon discharge, subjects will receive a food scale and instruction sheets on recording their dietary intake for the next 3 days (i.e., weighed food record). While inpatient, the study dietitian will instruct the family on the guidelines for recording this intake. After the 3 days, the food scale and records will be returned to the CNRC for analysis.

Interventions

OTHERCalcium stable isotope

Subjects consume breakfast and 180 ml of calcium-fortified orange juice to which 20 mg of 46Ca stable isotope was added. Immediately after breakfast, subjects receive 5 mg of 42Ca intravenously.

Sponsors

United States Department of Agriculture (USDA)
CollaboratorFED
National Institutes of Health (NIH)
CollaboratorNIH
National Institute of Arthritis and Musculoskeletal and Skin Diseases (NIAMS)
CollaboratorNIH
Gillson-Longenbaugh Foundation
CollaboratorOTHER
Baylor College of Medicine
Lead SponsorOTHER

Study design

Allocation
NA
Intervention model
SINGLE_GROUP
Primary purpose
OTHER
Masking
NONE

Eligibility

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

Inclusion criteria

* Patients at least four years of age who have been diagnosed clinically with RTS by a physician.

Exclusion criteria

* Any person who does not meet the inclusion criteria.

Design outcomes

Primary

MeasureTime frameDescription
Bone Density (Low Areal Bone Mineral Density (aBMD))8 daysIndividuals had low areal bone mineral density (aBMD) assessed by DXA using a Hologic Delphi-A instrument (Bedford, MA) at the Body Composition Laboratory of the Children's Nutrition Research Center, Houston, TX. Scans were performed of the whole body, lumbar spine, and proximal femur. Bone mineral content (BMC), bone area, and BMD were measured using Hologic Discovery V12.1 analysis software. For adult subjects, BMD Z-scores of the whole body, lumbar spine, left total hip, and left femoral neck were calculated using the Hologic Reference Database. Validated age- and sex-matched control data from the pediatric population generated by the Body Composition Laboratory of the Children's Nutrition Research Center, Houston, TX were used to calculate the Z-scores for pediatric subjects as previously published.

Countries

United States

Participant flow

Recruitment details

The isotope tracer is used as a method to evaluate calcium absorption.

Participants by arm

ArmCount
RTS Patients
Rothmond-Thompson patients receiving 5 mg 42Ca, 46Ca stable isotopes to evaluate bone calcium deposition
29
Total29

Baseline characteristics

CharacteristicRTS Patients
Age, Categorical
<=18 years
20 Participants
Age, Categorical
>=65 years
0 Participants
Age, Categorical
Between 18 and 65 years
9 Participants
Age, Continuous5 years
Region of Enrollment
United States
29 count of participants
Sex: Female, Male
Female
16 Participants
Sex: Female, Male
Male
13 Participants

Adverse events

Event typeEG000
affected / at risk
deaths
Total, all-cause mortality
0 / 29
other
Total, other adverse events
0 / 29
serious
Total, serious adverse events
0 / 29

Outcome results

Primary

Bone Density (Low Areal Bone Mineral Density (aBMD))

Individuals had low areal bone mineral density (aBMD) assessed by DXA using a Hologic Delphi-A instrument (Bedford, MA) at the Body Composition Laboratory of the Children's Nutrition Research Center, Houston, TX. Scans were performed of the whole body, lumbar spine, and proximal femur. Bone mineral content (BMC), bone area, and BMD were measured using Hologic Discovery V12.1 analysis software. For adult subjects, BMD Z-scores of the whole body, lumbar spine, left total hip, and left femoral neck were calculated using the Hologic Reference Database. Validated age- and sex-matched control data from the pediatric population generated by the Body Composition Laboratory of the Children's Nutrition Research Center, Houston, TX were used to calculate the Z-scores for pediatric subjects as previously published.

Time frame: 8 days

Population: Areal bone mineral density (aBMD) z-scores of 13 pediatric patients, 9 adult patients. 7 of the patients did not have successful bone density scans to be included in the analysis.

ArmMeasureGroupValue (MEDIAN)
RTS PatientsBone Density (Low Areal Bone Mineral Density (aBMD))13 pediatric patients, whole body aBMD-1.3 z-score
RTS PatientsBone Density (Low Areal Bone Mineral Density (aBMD))9 adult patients, whole body aBMD-0.9 z-score
RTS PatientsBone Density (Low Areal Bone Mineral Density (aBMD))13 pediatric patients, lumbar spine aBMD-2.4 z-score
RTS PatientsBone Density (Low Areal Bone Mineral Density (aBMD))9 adult patients, lumbar spine aBMD-1.2 z-score
RTS PatientsBone Density (Low Areal Bone Mineral Density (aBMD))13 pediatric patients, femoral neck aBMD-2.4 z-score
RTS PatientsBone Density (Low Areal Bone Mineral Density (aBMD))9 adult patients, femoral neck aBMD-0.8 z-score
RTS PatientsBone Density (Low Areal Bone Mineral Density (aBMD))13 pediatric patients, total hip aBMD-1.5 z-score
RTS PatientsBone Density (Low Areal Bone Mineral Density (aBMD))9 adult patients, total hip aBMD-0.7 z-score

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