Treatment Trials

8 Clinical Trials for Various Conditions

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ACTIVE_NOT_RECRUITING
Clinical Benefit, Safety, PK and PD Study of AT-007 in Pediatric Subjects With Classic Galactosemia
Description

This study is designed to assess the clinical benefit as well as the safety, pharmacokinetics (PK), and pharmacodynamics (PD) (reduction of galactitol levels) of AT-007 in pediatric subjects with Classic Galactosemia (CG).

UNKNOWN
AT-007 in Adult Subjects With Classic Galactosemia (CG)
Description

This study is a 12-month open-label extension (OLE) study of AT-007 in adult subjects with CG who previously participated in Study AT-007-1001 Part D and/or Part D Extension. The study is designed to assess the long-term safety of AT-007 in subjects with CG as well as the pharmacodynamics (PD) (inhibition of galactitol) and PK of AT-007. The effect of 12-month treatment with AT-007 on the levels of galactose and other galactose metabolites in subjects with CG will also be evaluated.

COMPLETED
Safety and Pharmacokinetics of AT-007 in Healthy Subjects and in Adult Subjects With Classic Galactosemia
Description

This study is a first-in-human, randomized, placebo-controlled, 4-Part, single ascending dose (SAD) and multiple ascending dose (MAD) study in healthy adult subjects and adult subjects with Classic Galactosemia.

ACTIVE_NOT_RECRUITING
Preventing Speech and Language Disorders in Children With Classic Galactosemia
Description

A critical knowledge gap is whether proactive intervention can improve speech and language outcomes in infants at known risk for communication disorders. Speech and language assessments and treatments are usually not initiated until deficits can be diagnosed, no earlier than age 2-3 years. Preventive services are not available. Children with classic galactosemia (CG) hold the keys towards investigating whether proactive services are more effective than conventional management. CG is a recessively inherited inborn error of metabolism characterized by defective conversion of galactose. Despite early detection and strict adherence to lactose-restricted diets, children with CG are at very high risk not only for motor and learning disabilities but also for severe speech sound disorder and language impairment. Delays are evident from earliest signals of communication and persist into adulthood in many cases but speech/language assessment and treatment are usually not initiated until deficits manifest. However, because CG is diagnosed via newborn screening, the known genotype-phenotype association can be leveraged to investigate the efficacy of proactive interventions during the acquisition of prespeech (2 to 12 months) and early communication skills (13 to 24 months). If this proactive intervention is more effective than standard care regarding speech and language outcomes in children with CG, this will change their clinical management from deficit-based to proactive services. It will also motivate investigating this approach in infants with other types of known risk factors, e.g., various genetic causes and very low birth weight. The Babble Boot Camp is a program for children with CG, ages 2 to 24 months. The intervention is implemented by a pediatric speech-language pathologist (SLP) via parent training. Activities and routines are designed to foster earliest signals of communication, increase coo and babble behaviors, support the emergence of first words and word combinations, and expand syntactic complexity. The SLP meets with parents online every week for 10 to 15 minutes to provide instruction, feedback, and guidance. Close monitoring of progress is achieved via regularly administered questionnaires, a monthly day-long audio recording, and the SLPs weekly progress notes. At age 24 months, the active phase of the Babble Boot Camp ends. The children receive a professional speech/language assessment at ages 2 1/2, 3 1/2, and 4 1/2 years.

COMPLETED
Intervention and Outcomes in Duarte Galactosemia
Description

The purpose of this study is to learn about Duarte galactosemia (DG). This study will examine the possible effects of Duarte galactosemia (DG) in children, and determine whether dietary exposure to milk in infancy or early childhood is associated with developmental outcomes of school-age children with Duarte galactosemia (DG).

RECRUITING
Gonadal Tissue Freezing for Fertility Preservation in Individuals at Risk for Ovarian Dysfunction, Premature Ovarian Insufficiency and Clinically Indicated Gonadectomy
Description

Background: Turner Syndrome, galactosemia, and premature ovarian insufficiency are all conditions that may make it very hard or impossible for a person to become pregnant and have their own child. Researchers want to learn more about why this happens and if freezing Gonadal tissue allows for fertility preservation. Objective: To find out why people with certain conditions have can have premature ovarian insufficiency (POI or early menopause) and individuals with variations in sex characteristics have trouble getting pregnant and if freezing the gonads tissue from them will help to have their own child in the future. Eligibility: Individuals aged 2-12 who have Turner Syndrome or galactosemia. Also, females aged 13-21 with premature ovarian insufficiency and Individuals with variations in sex characteristics Design: Participants will be screened with a medical history. Participants may have a physical exam and blood tests. Their body measurements may be taken. These include weight, height, arm span, skin fold, and sitting height. They may fill out surveys about their quality of life, body image, and health. Participants may have a transabdominal pelvic ultrasound. A probe will be placed on their belly and will take pictures of the organs in the pelvis. They may have a transvaginal pelvic ultrasound performed while asleep in the operating room if needed. Participants may have surgery to remove an gonads and skin biopsy. The removed tissue will be frozen and stored. The tissue will have to be stored for many years. NIH will pay to store the tissue for 1 year. After that, participants will have to pay for storage. A piece of the gonads (no more than 20%) will be used for research Travel, lodging and meals for participants traveling greater than 50 miles will be reimbursed based off the government rate. Local participants will not be reimbursed. Participants will have a checkup 6 weeks after surgery one or more follow-up visits 6-18 months after surgery. They may have phone follow-up every 12-24 months after surgery. Participation will last 30 years.

ENROLLING_BY_INVITATION
Early Check: Expanded Screening in Newborns
Description

Early Check provides voluntary screening of newborns for a selected panel of conditions. The study has three main objectives: 1) develop and implement an approach to identify affected infants, 2) address the impact on infants and families who screen positive, and 3) evaluate the Early Check program. The Early Check screening will lead to earlier identification of newborns with rare health conditions in addition to providing important data on the implementation of this model program. Early diagnosis may result in health and development benefits for the newborns. Infants who have newborn screening in North Carolina will be eligible to participate, equating to over 120,000 eligible infants a year. Over 95% of participants are expected to screen negative. Newborns who screen positive and their parents are invited to additional research activities and services. Parents can enroll eligible newborns on the Early Check electronic Research Portal. Screening tests are conducted on residual blood from existing newborn screening dried blood spots. Confirmatory testing is provided free-of-charge for infants who screen positive, and carrier testing is provided to mothers of infants with fragile X. Affected newborns have a physical and developmental evaluation. Their parents have genetic counseling and are invited to participate in surveys and interviews. Ongoing evaluation of the program includes additional parent interviews.

Conditions
Spinal Muscular AtrophyFragile X SyndromeFragile X - PremutationDuchenne Muscular DystrophyHyperinsulinemic Hypoglycemia, Familial 1Diabetes MellitusAdrenoleukodystrophy, NeonatalMedium-chain Acyl-CoA Dehydrogenase DeficiencyVery Long Chain Acyl Coa Dehydrogenase DeficiencyBeta-ketothiolase DeficiencySevere Combined Immunodeficiency Due to Adenosine Deaminase DeficiencyPrimary Hyperoxaluria Type 1Congenital Bile Acid Synthesis Defect Type 2Pyridoxine-Dependent EpilepsyHereditary Fructose IntoleranceHypophosphatasiaHyperargininemiaMucopolysaccharidosis Type 6Argininosuccinic AciduriaCitrullinemia, Type IWilson DiseaseMaple Syrup Urine Disease, Type 1AMaple Syrup Urine Disease, Type 1BBiotinidase DeficiencyNeonatal Severe Primary HyperparathyroidismIntrinsic Factor DeficiencyUsher Syndrome Type 1D/F Digenic (Diagnosis)Cystic FibrosisStickler Syndrome Type 2Stickler Syndrome Type 1Alport Syndrome, Autosomal RecessiveAlport Syndrome, X-LinkedCarbamoyl Phosphate Synthetase I Deficiency DiseaseCarnitine Palmitoyl Transferase 1A DeficiencyCarnitine Palmitoyltransferase II DeficiencyCystinosisChronic Granulomatous DiseaseCerebrotendinous XanthomatosesMaple Syrup Urine Disease, Type 2Severe Combined Immunodeficiency Due to DCLRE1C DeficiencyThyroid Dyshormonogenesis 6Thyroid Dyshormonogenesis 5Supravalvar Aortic StenosisFactor X DeficiencyHemophilia AHemophilia BTyrosinemia, Type IFructose 1,6 Bisphosphatase DeficiencyGlycogen Storage Disease Type IG6PD DeficiencyGlycogen Storage Disease IIGalactokinase DeficiencyMucopolysaccharidosis Type IV AGalactosemiasGuanidinoacetate Methyltransferase DeficiencyAgat DeficiencyGlutaryl-CoA Dehydrogenase DeficiencyGtp Cyclohydrolase I DeficiencyHyperinsulinism-Hyperammonemia SyndromePrimary Hyperoxaluria Type 23-Hydroxyacyl-CoA Dehydrogenase DeficiencyLong-chain 3-hydroxyacyl-CoA Dehydrogenase DeficiencyMitochondrial Trifunctional Protein DeficiencySickle Cell DiseaseBeta-ThalassemiaHolocarboxylase Synthetase Deficiency3-Hydroxy-3-Methylglutaric AciduriaPrimary Hyperoxaluria Type 3Hermansky-Pudlak Syndrome 1Hermansky-Pudlak Syndrome 4Apparent Mineralocorticoid ExcessHSDBCBAS1Mucopolysaccharidosis Type 2Mucopolysaccharidosis Type 1Severe Combined Immunodeficiency, X LinkedSevere Combined Immunodeficiency Due to IL-7Ralpha DeficiencyDiabetes Mellitus, Permanent NeonatalIsovaleric AcidemiaSevere Combined Immunodeficiency T-Cell Negative B-Cell Positive Due to Janus Kinase-3 Deficiency (Disorder)Jervell and Lange-Nielsen Syndrome 2Hyperinsulinemic Hypoglycemia, Familial, 2Diabetes Mellitus, Permanent Neonatal, With Neurologic FeaturesJervell and Lange-Nielsen Syndrome 1Lysosomal Acid Lipase DeficiencyCblF3-Methylcrotonyl CoA Carboxylase 1 Deficiency3-Methylcrotonyl CoA Carboxylase 2 DeficiencyWaardenburg Syndrome Type 2AMethylmalonic Aciduria cblA TypeMethylmalonic Aciduria cblB TypeMethylmalonic Aciduria and Homocystinuria Type cblCMAHCDMethylmalonic Aciduria Due to Methylmalonyl-CoA Mutase DeficiencyCongenital Disorder of Glycosylation Type 1BMthfr DeficiencyMethylcobalamin Deficiency Type Cbl G (Disorder)Methylcobalamin Deficiency Type cblEUsher Syndrome, Type 1BN-acetylglutamate Synthase DeficiencyOrnithine Transcarbamylase DeficiencyPhenylketonuriasWaardenburg Syndrome Type 1Congenital HypothyroidismPropionic AcidemiaUsher Syndrome, Type 1FPancreatic Agenesis 1Hereditary Hypophosphatemic RicketsGlycogen Storage Disease IXBGlycogen Storage Disease IXCMOWSEpilepsy, Early-Onset, Vitamin B6-DependentPyridoxal Phosphate-Responsive SeizuresPituitary Hormone Deficiency, Combined, 1PtsdDihydropteridine Reductase DeficiencySevere Combined Immunodeficiency Due to RAG1 DeficiencySevere Combined Immunodeficiency Due to RAG2 DeficiencyRetinoblastomaMultiple Endocrine Neoplasia Type 2BPseudohypoaldosteronism, Type ILiddle SyndromeBiotin-Responsive Basal Ganglia DiseaseSCDDIAR1GSD1CAcrodermatitis EnteropathicaThyroid Dyshormonogenesis 1Riboflavin Transporter DeficiencyWaardenburg Syndrome, Type 2ESRDCongenital Lipoid Adrenal Hyperplasia Due to STAR DeficiencyBarth SyndromeAdrenocorticotropic Hormone DeficiencyTranscobalamin II DeficiencyThyroid Dyshormonogenesis 3Segawa Syndrome, Autosomal RecessiveAutosomal Recessive Nonsyndromic Hearing LossThyroid Dyshormonogenesis 2ACongenital Isolated Thyroid Stimulating Hormone DeficiencyHypothyroidism Due to TSH Receptor MutationsUsher Syndrome Type 1CUsher Syndrome Type 1G (Diagnosis)Von Willebrand Disease, Type 3Combined Immunodeficiency Due to ZAP70 DeficiencyAdenine Phosphoribosyltransferase DeficiencyMetachromatic LeukodystrophyCanavan DiseaseMenkes DiseaseCarbonic Anhydrase VA DeficiencyDevelopmental and Epileptic Encephalopathy 217 Alpha-Hydroxylase DeficiencySmith-Lemli-Opitz SyndromeKrabbe DiseaseGlutathione Synthetase DeficiencyMucopolysaccharidosis Type 7Rett SyndromeMolybdenum Cofactor Deficiency, Type ANiemann-Pick Disease, Type C1Niemann-Pick Disease Type C2Ornithine Aminotransferase Deficiency3-Phosphoglycerate Dehydrogenase DeficiencyLeber Congenital Amaurosis 2Dravet SyndromeMucopolysaccharidosis Type 3 AOrnithine Translocase DeficiencyCarnitine-acylcarnitine Translocase DeficiencyGlucose Transporter Type 1 Deficiency SyndromeCreatine Transporter DeficiencyNiemann-Pick Disease Type APitt Hopkins SyndromeTuberous Sclerosis 1Tuberous Sclerosis 2Ataxia With Isolated Vitamin E DeficiencyAngelman SyndromePrader-Willi SyndromeHomocystinuriaPermanent Neonatal Diabetes MellitusTransient Neonatal Diabetes MellitusFactor VII DeficiencyGlycogen Storage Disease Type IXA1Glycogen Storage Disease, Type IXA2Glycogen Storage Disease ICGlycogen Storage Disease Type IBCentral Hypoventilation Syndrome With or Without Hirschsprung Disease
COMPLETED
The Early History of Universal Screening for Metabolic Disorders
Description

We are doing this study to learn more about the early history of universal screening for metabolic disorders such as PKU and galactosemia. In particular, we are interested in learning from our past experience to inform our current plans to expand universal newborn screening. Following standard historical research methodology, we will begin with a review of the historical scholarship on PKU and galactosemia, including more general works on mental retardation, genetics, public health screening, and metabolic disorders. We will also obtain scientific publications and archival sources on the early screening and treatment of these disorders. Lastly, we will conduct oral history interviews with key participants in teh early screening and treatment of PKU and galactosemia.