Outcomes in pediatric studies of medium-chain acyl-coA dehydrogenase (MCAD) deficiency and phenylketonuria (PKU): a review.


Journal

Orphanet journal of rare diseases
ISSN: 1750-1172
Titre abrégé: Orphanet J Rare Dis
Pays: England
ID NLM: 101266602

Informations de publication

Date de publication:
14 01 2020
Historique:
received: 16 09 2019
accepted: 05 12 2019
entrez: 16 1 2020
pubmed: 16 1 2020
medline: 2 2 2021
Statut: epublish

Résumé

Inherited metabolic diseases (IMDs) are a group of individually rare single-gene diseases. For many IMDs, there is a paucity of high-quality evidence that evaluates the effectiveness of clinical interventions. Clinical effectiveness trials of IMD interventions could be supported through the development of core outcome sets (COSs), a recommended minimum set of standardized, high-quality outcomes and associated outcome measurement instruments to be incorporated by all trials in an area of study. We began the process of establishing pediatric COSs for two IMDs, medium-chain acyl-CoA dehydrogenase (MCAD) deficiency and phenylketonuria (PKU), by reviewing published literature to describe outcomes reported by authors, identify heterogeneity in outcomes across studies, and assemble a candidate list of outcomes. We used a comprehensive search strategy to identify primary studies and guidelines relevant to children with MCAD deficiency and PKU, extracting study characteristics and outcome information from eligible studies including outcome measurement instruments for select outcomes. Informed by an established framework and a previously published pediatric COS, outcomes were grouped into five, mutually-exclusive, a priori core areas: growth and development, life impact, pathophysiological manifestations, resource use, and death. For MCAD deficiency, we identified 83 outcomes from 52 articles. The most frequently represented core area was pathophysiological manifestations, with 33 outcomes reported in 29/52 articles (56%). Death was the most frequently reported outcome. One-third of outcomes were reported by a single study. The most diversely measured outcome was cognition and intelligence/IQ for which eight unique measurement instruments were reported among 14 articles. For PKU, we identified 97 outcomes from 343 articles. The most frequently represented core area was pathophysiological manifestations with 31 outcomes reported in 281/343 articles (82%). Phenylalanine concentration was the most frequently reported outcome. Sixteen percent of outcomes were reported by a single study. Similar to MCAD deficiency, the most diversely measured PKU outcome was cognition and intelligence/IQ with 39 different instruments reported among 82 articles. Heterogeneity of reported outcomes and outcome measurement instruments across published studies for both MCAD deficiency and PKU highlights the need for COSs for these diseases, to promote the use of meaningful outcomes and facilitate comparisons across studies.

Sections du résumé

BACKGROUND
Inherited metabolic diseases (IMDs) are a group of individually rare single-gene diseases. For many IMDs, there is a paucity of high-quality evidence that evaluates the effectiveness of clinical interventions. Clinical effectiveness trials of IMD interventions could be supported through the development of core outcome sets (COSs), a recommended minimum set of standardized, high-quality outcomes and associated outcome measurement instruments to be incorporated by all trials in an area of study. We began the process of establishing pediatric COSs for two IMDs, medium-chain acyl-CoA dehydrogenase (MCAD) deficiency and phenylketonuria (PKU), by reviewing published literature to describe outcomes reported by authors, identify heterogeneity in outcomes across studies, and assemble a candidate list of outcomes.
METHODS
We used a comprehensive search strategy to identify primary studies and guidelines relevant to children with MCAD deficiency and PKU, extracting study characteristics and outcome information from eligible studies including outcome measurement instruments for select outcomes. Informed by an established framework and a previously published pediatric COS, outcomes were grouped into five, mutually-exclusive, a priori core areas: growth and development, life impact, pathophysiological manifestations, resource use, and death.
RESULTS
For MCAD deficiency, we identified 83 outcomes from 52 articles. The most frequently represented core area was pathophysiological manifestations, with 33 outcomes reported in 29/52 articles (56%). Death was the most frequently reported outcome. One-third of outcomes were reported by a single study. The most diversely measured outcome was cognition and intelligence/IQ for which eight unique measurement instruments were reported among 14 articles. For PKU, we identified 97 outcomes from 343 articles. The most frequently represented core area was pathophysiological manifestations with 31 outcomes reported in 281/343 articles (82%). Phenylalanine concentration was the most frequently reported outcome. Sixteen percent of outcomes were reported by a single study. Similar to MCAD deficiency, the most diversely measured PKU outcome was cognition and intelligence/IQ with 39 different instruments reported among 82 articles.
CONCLUSIONS
Heterogeneity of reported outcomes and outcome measurement instruments across published studies for both MCAD deficiency and PKU highlights the need for COSs for these diseases, to promote the use of meaningful outcomes and facilitate comparisons across studies.

Identifiants

pubmed: 31937333
doi: 10.1186/s13023-019-1276-1
pii: 10.1186/s13023-019-1276-1
pmc: PMC6961328
doi:

Substances chimiques

Acyl-CoA Dehydrogenase EC 1.3.8.7

Types de publication

Journal Article Research Support, Non-U.S. Gov't Review

Langues

eng

Sous-ensembles de citation

IM

Pagination

12

Subventions

Organisme : CIHR
ID : 151614
Pays : Canada

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Auteurs

Michael Pugliese (M)

School of Epidemiology and Public Health, University of Ottawa, Ottawa, Ontario, Canada.

Kylie Tingley (K)

School of Epidemiology and Public Health, University of Ottawa, Ottawa, Ontario, Canada.

Andrea Chow (A)

School of Epidemiology and Public Health, University of Ottawa, Ottawa, Ontario, Canada.

Nicole Pallone (N)

Canadian PKU & Allied Disorders Inc., Sparwood, Canada.

Maureen Smith (M)

Canadian Organization for Rare Disorders, Ottawa, Canada.

Alvi Rahman (A)

School of Epidemiology and Public Health, University of Ottawa, Ottawa, Ontario, Canada.

Pranesh Chakraborty (P)

Newborn Screening Ontario, Children's Hospital of Eastern Ontario, Ottawa, Canada.

Michael T Geraghty (MT)

Division of Metabolics and Newborn Screening, Pediatrics, Children's Hospital of Eastern Ontario and University of Ottawa, Ottawa, Canada.

Julie Irwin (J)

Ambulatory Care, Children's Hospital of Eastern Ontario, Ottawa, Canada.

Laure Tessier (L)

Newborn Screening Ontario, Children's Hospital of Eastern Ontario, Ottawa, Canada.

Stuart G Nicholls (SG)

Clinical Epidemiology Program, Ottawa Hospital Research Institute, Ottawa, Canada.

Martin Offringa (M)

Department of Pediatrics, University of Toronto, Toronto, Canada.
Child Health Evaluative Sciences, The Hospital for Sick Children Research Institute, Toronto, Canada.

Nancy J Butcher (NJ)

Child Health Evaluative Sciences, The Hospital for Sick Children Research Institute, Toronto, Canada.

Ryan Iverson (R)

School of Epidemiology and Public Health, University of Ottawa, Ottawa, Ontario, Canada.

Tammy J Clifford (TJ)

School of Epidemiology and Public Health, University of Ottawa, Ottawa, Ontario, Canada.

Sylvia Stockler (S)

Biochemical Diseases, BC Children's Hospital, Vancouver, Canada.

Brian Hutton (B)

School of Epidemiology and Public Health, University of Ottawa, Ottawa, Ontario, Canada.

Karen Paik (K)

School of Epidemiology and Public Health, University of Ottawa, Ottawa, Ontario, Canada.

Jessica Tao (J)

Faculty of Medicine, University of Ottawa, Ottawa, Canada.

Becky Skidmore (B)

Clinical Epidemiology Program, Ottawa Hospital Research Institute, Ottawa, Canada.

Doug Coyle (D)

School of Epidemiology and Public Health, University of Ottawa, Ottawa, Ontario, Canada.

Kathleen Duddy (K)

Biochemical Diseases, BC Children's Hospital, Vancouver, Canada.

Sarah Dyack (S)

Division of Medical Genetics, IWK Health Centre, Halifax, Canada.

Cheryl R Greenberg (CR)

Department of Pediatrics and Child Health, University of Manitoba, Winnipeg, Canada.

Shailly Jain Ghai (SJ)

Department of Medical Genetics, University of Alberta, Edmonton, Canada.

Natalya Karp (N)

Department of Pediatrics, Western University, London, Canada.

Lawrence Korngut (L)

Department of Clinical Neurosciences, University of Calgary, Calgary, Canada.

Jonathan Kronick (J)

Department of Pediatrics, University of Toronto, Toronto, Canada.
Clinical and Metabolic Genetics, The Hospital for Sick Children, Toronto, Canada.

Alex MacKenzie (A)

Children's Hospital of Eastern Ontario Research Institute, Ottawa, Canada.

Jennifer MacKenzie (J)

Department of Pediatrics, McMaster University, Hamilton, Canada.

Bruno Maranda (B)

Department of Pediatrics, Université de Sherbrooke, Sherbrooke, Canada.

John J Mitchell (JJ)

Human Genetics and Pediatrics, McGill University, Montreal, Canada.

Murray Potter (M)

Pathology and Molecular Medicine, McMaster University, Hamilton, Canada.

Chitra Prasad (C)

Department of Pediatrics, Western University, London, Canada.

Andreas Schulze (A)

Department of Pediatrics, University of Toronto, Toronto, Canada.

Rebecca Sparkes (R)

Medical Genetics and Pediatrics, University of Calgary, Calgary, Canada.

Monica Taljaard (M)

School of Epidemiology and Public Health, University of Ottawa, Ottawa, Ontario, Canada.
Clinical Epidemiology Program, Ottawa Hospital Research Institute, Ottawa, Canada.

Yannis Trakadis (Y)

Human Genetics and Medical Genetics, McGill University Health Centre, Montreal, Canada.

Jagdeep Walia (J)

Department of Pediatrics, Queen's University, Kingston, Canada.

Beth K Potter (BK)

School of Epidemiology and Public Health, University of Ottawa, Ottawa, Ontario, Canada. bpotter@uottawa.com.

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