Unique Metabolic Signatures Associated with Autism Spectrum Disorder (ASD) Detect More than 50% of individuals with ASD in Children’s Autism Metabolome Project (CAMP)

New Findings from the CAMP Study, a 1,102 Subject Study of the Metabolism of Children with ASD, Published in Autism Research

Key Takeaways

  • A new study reproducibly identified unique metabolic signatures (called metabotypes) in over 50% of the children with autism in the study.
  • The new findings, based on analysis of blood samples from the Children’s Autism Metabolome Project, were published in the journal Autism Research.
  • This is an important step towards the goal of developing a panel of metabolomics tests that could form the basis for a biological screen of risk for ASD.

Madison, WI (June 16, 2020): In a paper published online this week in Autism Research, scientists at NeuroPointDX, a division of Stemina Biomarker Discovery, Inc., in collaboration with researchers at the UC Davis MIND Institute and academic and clinical institutions across the country, report new findings from the Children’s Autism Metabolome Project or CAMP.

Analysis of blood samples from CAMP, the largest study yet undertaken of the metabolism of children with autism spectrum disorder (ASD), has now reproducibly identified unique metabolic signatures (called metabotypes) in over 50% of the children with autism in the study. This is an important step towards the goal of developing a panel of metabolomics tests that could form the basis for a biological screen of risk for ASD. Analysis of other potential blood-based biomarkers using CAMP study samples is ongoing. Validation of additional metabotypes of ASD is expected to result in the ability to detect a still higher percentage of children at risk of ASD using this approach. 

The new publication, entitled “A metabolomics approach to screening for autism risk in the Children’s Autism Metabolome Project” (Autism Research: doi: 10.1002/aur.2330) was authored by researchers from the UC Davis Mind Institute, Stemina Biomarker Discovery, Inc., University of Wisconsin-Madison, and the Cleveland Clinic

“A primary goal of the CAMP study, which recruited 1,102 children ages 18 months to 48 months, was to generate a panel of validated biomarkers that, taken together, could detect a large proportion of young children at risk for ASD,” said David Amaral, PhD, distinguished professor at the UC Davis MIND Institute and the Department of Psychiatry and Behavioral Sciences at UC Davis and senior author of the paper. “Our original analyses, published in Biological Psychiatry in 2019, identified and validated a set of metabotypes based on differences in branch chain amino acid metabolism; these metabotypes represented 17% of the children with autism in CAMP. This new research builds on that effort, resulting in an optimized set of 34 newly defined metabotypes based on amino acid and energy metabolism. Taken together, the test battery now detects 53% of subjects with ASD in the CAMP study with 91% specificity.”

Robert Burrier, PhD, Chief Operating Officer of Stemina and co-author points out that “Using metabolomics to detect objective biomarkers of ASD is a promising approach because metabolism is sensitive to interactions among the genome, gastrointestinal microbiome, diet, and environmental factors that all contribute to risk of ASD.”

“The CAMP study is the seminal study of the metabolism of children with autism. The study was carefully designed to allow discovery and validation of subpopulations of children with ASD who share common metabolic differences from typically developing children,” said Elizabeth Donley, JD, MBA, MS, NeuroPointDX Chief Executive Officer and a co-author of the publication. “We strive to discover, validate and publish peer reviewed science from this ground-breaking study with the goal of building trust in the rigor of our science and its potential to change how autism is diagnosed and treated.”

“While further research is needed, given the virtual absence of effective biomarkers to detect autism risk in very young children, we are optimistic that this approach has enormous potential for identifying children as early as possible,” said Dr. Amaral. “Moreover, determining that an individual child has a particular pattern of metabolic alterations may offer the possibility of new targeted and personalized therapies. These opportunities and questions require further testing in the CAMP study. Fortunately, CAMP retains a repository of blood samples from our young participants that can be used for follow-up studies. The current paper represents an important stride in the research journey toward understanding the role of metabotypes and their potential as actionable clinical tools in the detection and treatment of ASD.”

“These new findings from the CAMP study represent another step in our efforts to develop a metabolomics-based screening tool for ASD,” Donley added. “While biomarkers of any kind cannot provide a definitive diagnosis of ASD, combining a metabolomics-based screen with behavioral testing increases the likelihood that those at risk for ASD can be detected as early as possible.” 

While the published findings are based on collection of blood samples from children 18 to 48-months-old, future research will be directed at validating this metabolomics approach in children younger than one year old when current diagnostic procedures are lacking. The researchers are also exploring whether these metabolic differences can lead to insights that enable more targeted treatment options for children with ASD.

Other authors on the paper include Marvin Natowicz, MD, PhD, Professor of Pathology, Cleveland Clinic Lerner College of Medicine of Case Western Reserve University ; Physician at Cleveland Clinic; Denise Ney, PhD, Professor of Nutritional Sciences at the University of Wisconsin–Madison; and scientists from NeuroPointDX, a division of Stemina Biomarker Discovery, Inc., of Madison, Wisconsin.

Funding for the CAMP study was provided by a grant from the National Institutes of Mental Health (Grant No. 5R44MH107124-03), the Nancy Lurie Marks Family Foundation, and the Robert E. and Donna Landreth Family Fund.

About NeuroPointDX

NeuroPointDX, a business unit of Stemina Biomarker Discovery, is bringing a precision medicine approach to the diagnosis and treatment of neurological disorders through the application of world-class metabolomics. The company’s current focus is autism spectrum disorder (ASD). NeuroPointDX has developed and is commercializing testing panels to aid in the early diagnosis of ASD through its CLIA-certified laboratory. For more information, please visit our website at https://neuropointdx.com/.

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Key Takeaways

  • A new study reproducibly identified unique metabolic signatures (called metabotypes) in over 50% of the children with autism in the study.
  • The new findings, based on analysis of blood samples from the Children’s Autism Metabolome Project, were published in the journal Autism Research.
  • This is an important step towards the goal of developing a panel of metabolomics tests that could form the basis for a biological screen of risk for ASD.

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Quotes

A primary goal of the CAMP study was to generate a panel of validated biomarkers that could detect a large proportion of young children at risk for...
David Amaral, PhDDistinguished professor at the UC Davis MIND Institute and the Department of Psychiatry and Behavioral Sciences at UC Davis
Using metabolomics to detect objective biomarkers of ASD is a promising approach because metabolism is sensitive to interactions among the genome, ...
Robert Burrier, PhDChief Operating Officer
The study was carefully designed to allow discovery and validation of subpopulations of children with ASD who share common metabolic differences fr...
Elizabeth Donley, JD, MBA, MSChief Executive Officer
Determining that an individual child has a particular pattern of metabolic alterations may offer the possibility of new targeted and personalized t...
David Amaral, PhDDistinguished professor at the UC Davis MIND Institute and the Department of Psychiatry and Behavioral Sciences at UC Davis
While biomarkers of any kind cannot provide a definitive diagnosis of ASD, combining a metabolomics-based screen with behavioral testing increases ...
Elizabeth Donley, JD, MBA, MSChief Executive Officer

Related Bios

Elizabeth LR Donley, JD, MBA, MS
Chief Executive Officer
Ms. Donley brings a unique combination of business and legal experience to Stemina. She has more than twenty years of experience in intellectual property, law, and business management. Ms. Donley served as General Counsel and Director of Business Development for the Wisconsin Alumni Research Foundation (WARF) for more than eight years.

During those eight years, Ms. Donley negotiated hundreds of licenses and sponsored research and collaboration agreements between industry and WARF, the intellectual property management organization for the University of Wisconsin. Ms. Donley also served as Managing Director of both WARF subsidiaries: WiSys Technology Foundation (WiSys) and WiCell Research Institute (WiCell).

WiCell distributes human embryonic stem (hES) cells, trains researchers worldwide and conducts important research involving many aspects of hES cell research. In 2005, WiCell was awarded a $16 million contract by the National Institute of Health to serve as the National Stem Cell Bank.

Prior to joining WARF in 1998, Ms. Donley practiced law with the law firm of Quarles & Brady in the areas of intellectual property law, business transactions, securities, and corporate law.
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David Amaral, PhD
Distinguished professor at the UC Davis MIND Institute and the Department of Psychiatry and Behavioral Sciences at UC Davis
Dr. Amaral is a Distinguished Professor in the Department of Psychiatry and Behavioral Sciences at UC Davis. He is also the Beneto Foundation Chair and Research Director of the MIND Institute which is dedicated to studying autism and other neurodevelopmental disorders.

As Research Director, he coordinates a multidisciplinary analysis of children with autism called the Autism Phenome Project to define clinically significant subtypes of autism. More recently, Dr. Amaral has become Director of Autism BrainNet, a collaborative effort to solicit postmortem brain tissue to facilitate autism research.

In April of 2015, Amaral became Editor-in-Chief of Autism Research, the journal of the International Society for Autism Research. In 2016, he was appointed to the Interagency Autism Coordinating Committee by the Secretary of Health and Human Services.
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Robert E. Burrier, PhD
Chief Operating Officer and Vice President of Research and Development
Dr. Burrier is a career technology executive with experience in pharmaceutical research, ‘biosupplier’ product development, and biotech services. While working in pharma, he participated and led programs resulting in drugs currently on the market including Zetia, Vytorin, and others.

He is very experienced in assays and paradigms used for drug discovery having participated in over 150 drug discovery programs while working for Schering-Plough, Eli Lilly, GelTex, and Genzyme. In the biosupplier arena, Dr. Burrier led teams to innovate on an ongoing basis in the areas of cell biology, cell media development, assay development, and workflow improvements with companies including Invitrogen, and EMD Millipore (Merck). The markets around which these programs were based include academic and industrial cell biology research, stem cells, and regenerative medicine, as well as biotherapeutic protein production.

Dr. Burrier joined Stemina to bring his expertise of cell biology, assay development, scientific operations, program management, and organizational effectiveness to facilitate success and to continue to fulfill his interest of continually improving human health.
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Joan Kureczka, Bioscribe, Inc.
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Elizabeth Donley, CEO, NeuroPointDX & Stemina Biomarker Discovery
info@neuropointdx.com
608-577-9209
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