Aaron Elliott

Aaron Elliott

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Chief Executive Officer
Encinitas, California, United States

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Jobs verified_user 0% verified
  • Freenome
    Chief Executive Officer
    Freenome
    Apr 2025 - Current (1 year 6 months)
  • REALM IDx Inc
    CEO
    REALM IDx Inc
    May 2021 - Feb 2025 (3 years 10 months)
    Realm IDx is a world leader in integrated diagnostics. With over 1,300 employees we focus on offering best-in-class genomics, imaging and pathology services to our 20k+ active ordering clinicians and 200+ pharma/biotech partners. Includes Ambry Genetics, Invicro and Konica Minolta Realm-Japan.
  • Ambry Genetics
    CEO
    Ambry Genetics
    Mar 2016 - May 2021 (5 years 3 months)
  • Ambry Genetics
    Chief Scientific Officer
    Ambry Genetics
    Mar 2012 - Aug 2016 (4 years 6 months)
    Responsible for development and implementation of all R&D related activities
  • Ambry Genetics
    Director of Genomic Services
    Ambry Genetics
    Nov 2011 - Jun 2012 (8 months)
  • Ambry Genetics
    Senior Scientist
    Ambry Genetics
    Apr 2010 - Nov 2011 (1 year 8 months)
  • Ambry Genetics
    Scientist
    Ambry Genetics
    Apr 2008 - Apr 2010 (2 years 1 month)
  • Novartis
    Scientist
    Novartis
    Jan 2006 - Jan 2008 (2 years 1 month)
Education verified_user 0% verified
  • The Johns Hopkins University School of Medicine
    PhD, Genetics
    The Johns Hopkins University School of Medicine
    Lab transfer due to PI new appointment at JHU
  • Franklin  Marshall College
    Bachelor of Science (BS, Biology
    Franklin Marshall College
  • Jefferson Health
    PhD, Genetics
    Jefferson Health
Publications verified_user 0% verified
  • M
    Improving the molecular diagnosis and treatment of epilepsy with complex genetic testing.
    Medical Laboratory Observer Feb
  • J
    Sanger Confirmation Is Required to Achieve Optimal Sensitivity and Specificity in Next-Generation Sequencing Panel Testi
    Journal of Molecular Diagnostics Oct
    Next-generation sequencing (NGS) has rapidly replaced Sanger sequencing as the method of choice for diagnostic gene-panel testing. For hereditary-cancer testing, the technical sensitivity and specificity of the assay are paramount as clinicians use results to make important clinical management and treatment decisions. There is significant debate within the diagnostics community regarding the necessity of confirming NGS variant calls by Sanger sequencing, considering that numerous laboratories report having 100% specificity from the NGS data alone. Here we report our results from 20,000 hereditary-cancer NGS panels spanning 47 genes, in which all 7845 nonpolymorphic variants were Sanger- sequenced. Of these, 98.7% were concordant between NGS
  • J
    Assessment of Diagnostic Outcomes of RNA Genetic Testing for Hereditary Cancer
    JAMA Netw Open Oct
    Performing DNA genetic testing (DGT) for hereditary cancer genes is now a well-accepted clinical practice; however, the interpretation of DNA variation remains a challenge for laboratories and clinicians. Adding RNA genetic testing (RGT) enhances DGT by clarifying the clinical actionability of hereditary cancer gene variants, thus improving clinicians' ability to accurately apply strategies for cancer risk reduction and treatment.
  • I
    Beyond DNA: An Integrated and Functional Approach for Classifying Germline Variants in Breast Cancer Genes
    International Journal of Breast Cancer Oct
    Genetic testing for hereditary breast cancer is an integral part of individualized care in the new era of precision medicine. The accuracy of an assay is reliant on not only the technology and bioinformatics analysis utilized but also the experience and infrastructure required to correctly classify genetic variants as disease-causing. Interpreting the clinical significance of germline variants identified by hereditary cancer testing is complex and has a significant impact on the management of patients who are at increased cancer risk. In this review we give an overview of our clinical laboratory’s integrated approach to variant assessment. We discuss some of the nuances that should be considered in the assessment of genomic variants. In add
  • G
    Somatic TP53 variants frequently confound germ-line testing results.
    Genetics in Medicine Nov
    PurposeBlood/saliva DNA is thought to represent the germ line in genetic cancer-risk assessment. Cases with pathogenic TP53 variants detected by multigene panel testing are often discordant with Li-Fraumeni syndrome, raising concern about misinterpretation of acquired aberrant clonal expansions (ACEs) with TP53 variants as germ-line results.MethodsPathogenic TP53 variants with abnormal next-generation sequencing metrics (e.g., decreased ratio (
  • J
    Association of Breast and Ovarian Cancers With Predisposition Genes Identified by Large-Scale Sequencing.
    JAMA Oncology Aug
    Importance: Since the discovery of BRCA1 and BRCA2, multiple high- and moderate-penetrance genes have been reported as risk factors for hereditary breast cancer, ovarian cancer, or both; however, it is unclear whether these findings represent the complete genetic landscape of these cancers. Systematic investigation of the genetic contributions to breast and ovarian cancers is needed to confirm these findings and explore potentially new associations.

    Objective: To confirm reported and identify additional predisposition genes for breast or ovarian cancer.

    Design, Setting, and Participants: In this sample of 11 416 patients with clinical features of breast cancer, ovarian cancer, or both who were referred for genetic test
  • P
    A Bayesian framework for efficient and accurate variant prediction.
    PLoS One Sep
    There is a growing need to develop variant prediction tools capable of assessing a wide spectrum of evidence. We present a Bayesian framework that involves aggregating pathogenicity data across multiple in silico scores on a gene-by-gene basis and multiple evidence statistics in both quantitative and qualitative forms, and performs 5-tiered variant classification based on the resulting probability credible interval. When evaluated in 1,161 missense variants, our gene-specific in silico model-based meta-predictor yielded an area under the curve (AUC) of 96.0% and outperformed all other in silico predictors. Multifactorial model analysis incorporating all available evidence yielded 99.7% AUC, with 22.8% predicted as variants of uncertain sign
  • C
    Not All Next Generation Sequencing Diagnostics are Created Equal: Understanding the Nuances of Solid Tumor Assay Design
    Cancers Jul
    The molecular characterization of tumors using next generation sequencing (NGS) is an emerging diagnostic tool that is quickly becoming an integral part of clinical decision making. Cancer genomic profiling involves significant challenges including DNA quality and quantity, tumor heterogeneity, and the need to detect a wide variety of complex genetic mutations. Most available comprehensive diagnostic tests rely on primer based amplification or probe based capture methods coupled with NGS to detect hotspot mutation sites or whole regions implicated in disease. These tumor panels utilize highly customized bioinformatics pipelines to perform the difficult task of accurately calling cancer relevant alterations such as single nucleotide variatio
  • N
    Splicing profile by capture RNA-seq identifies pathogenic germline variants in tumor suppressor genes
    NPJ Precis Oncol Feb
    Germline variants in tumor suppressor genes (TSGs) can result in RNA mis-splicing and predisposition to cancer. However, identification of variants that impact splicing remains a challenge, contributing to a substantial proportion of patients with suspected hereditary cancer syndromes remaining without a molecular diagnosis. To address this, we used capture RNA-sequencing (RNA-seq) to generate a splicing profile of 18 TSGs (APC, ATM, BRCA1, BRCA2, BRIP1, CDH1, CHEK2, MLH1, MSH2, MSH6, MUTYH, NF1, PALB2, PMS2, PTEN, RAD51C, RAD51D, and TP53) in 345 whole-blood samples from healthy donors. We subsequently demonstrated that this approach can detect mis-splicing by comparing splicing profiles from the control dataset to profiles generated from
  • G
    Enhanced utility of family-centered diagnostic exome sequencing with inheritance model-based analysis: results from 500
    Genet Med Nov
    Purpose:Diagnostic exome sequencing was immediately successful in diagnosing patients in whom traditional technologies were uninformative. Herein, we provide the results from the first 500 probands referred to a clinical laboratory for diagnostic exome sequencing.Methods:Family-based exome sequencing included whole-exome sequencing followed by family inheritance-based model filtering, comprehensive medical review, familial cosegregation analysis, and analysis of novel genes.Results:A positive or likely positive result in a characterized gene was identified in 30% of patients (152/500). A novel gene finding was identified in 7.5% of patients (31/416). The highest diagnostic rates were observed among patients with ataxia, multiple congenital
  • F
    Quantitative Analysis of BRCA1 and BRCA2 Germline Splicing Variants Using a Novel RNA-Massively Parallel Sequencing Assa
    Frontiers in Oncology Jan
    Clinical genetic testing for hereditary breast and ovarian cancer (HBOC) is becoming widespread. However, the interpretation of variants of unknown significance (VUS) in HBOC genes, such as the clinically actionable genes BRCA1 and BRCA2, remain a challenge. Among the variants that are frequently classified as VUS are those with unclear effects on splicing. In order to address this issue we developed a high-throughput RNA-massively parallel sequencing assay-CloneSeq-capable to perform quantitative and qualitative analysis of transcripts in cell lines and HBOC patients. This assay is based on cloning of RT-PCR products followed by massive parallel sequencing of the cloned transcripts. To validate this assay we compared it to the RNA splicing
  • J
    Replacing CFTR Sanger Sequencing in the Clinical Lab with a Reliable, Targeted Next-Generation Sequencing Assay
    Journal of Genetics and Genome Research Oct
    The clinical implementation of new target enrichment methods and next-generation sequencing (NGS) technology has rapidly transformed genetic testing. Diagnostic labs can now offer a wide
    variety of large comprehensive multi-gene panels or even full exome sequencing to help clinicians diagnose and treat patients. The unmatched sensitivity, accuracy and throughput of NGS compared to traditional Sanger sequencing make it an ideal technology not only for panels but also high volume single gene assays. Here we describe the validation and performance of an NGS based assay for sequencing the Cystic Fibrosis Transmembrane Conductance Regulator (CFTR) gene. The custom designed assay utilizes TruSeq Custom Amplicon (TSCA) target enrichment and m
  • O
    TumorNext-Lynch-MMR: a comprehensive next generation sequencing assay for the detection of germline and somatic mutation
    Oncotarget Jan
    The current algorithm for Lynch syndrome diagnosis is highly complex with multiple steps which can result in an extended time to diagnosis while depleting precious tumor specimens. Here we describe the analytical validation of a custom probe-based NGS tumor panel, TumorNext-Lynch-MMR, which generates a comprehensive genetic profile of both germline and somatic mutations that can accelerate and streamline the time to diagnosis and preserve specimen. TumorNext-Lynch-MMR can detect single nucleotide variants, small insertions and deletions in 39 genes that are frequently mutated in Lynch syndrome and colorectal cancer. Moreover, the panel provides microsatellite instability status and detects loss of heterozygosity in the five Lynch genes; MSH
  • N
    Mutational and splicing landscape in a cohort of 43,000 patients tested for hereditary cancer
    NPJ Genom Med Aug
    DNA germline genetic testing can identify individuals with cancer susceptibility. However, DNA sequencing alone is limited in its detection and classification of mRNA splicing variants, particularly those located far from coding sequences. Here we address the limitations of splicing variant identification and interpretation by pairing DNA and RNA sequencing and describe the mutational and splicing landscape in a clinical cohort of 43,524 individuals undergoing genetic testing for hereditary cancer predisposition.
  • O
    TumorNext: A comprehensive tumor profiling assay that incorporates high resolution copy number analysis and germline sta
    Oncotarget Sep
    The development of targeted therapies for both germline and somatic DNA mutations has increased the need for molecular profiling assays to determine the mutational status of specific genes. Moreover, the potential of off-label prescription of targeted therapies favors classifying tumors based on DNA alterations rather than traditional tissue pathology. Here we describe the analytical validation of a custom probe-based NGS tumor panel, TumorNext, which can detect single nucleotide variants, small insertions and deletions in 142 genes that are frequently mutated in somatic and/or germline cancers. TumorNext also detects gene fusions and structural variants, such as tandem duplications and inversions, in 15 frequently disrupted oncogenes and t
  • G
    Detection of structural variation using target captured next-generation sequencing data for genetic diagnostic testing.
    Genetics in Medicine Dec
  • G
    DNA breakpoint assay reveals a majority of gross duplications occur in tandem reducing VUS classifications in breast can
    Genetics in Medicine Jan
    PURPOSE: Gross duplications are ambiguous in terms of clinical interpretation due to the limitations of the detection methods that cannot infer their context, namely, whether they occur in tandem or are duplicated and inserted elsewhere in the genome. We investigated the proportion of gross duplications occurring in tandem in breast cancer predisposition genes with the intent of informing their classifications.

    METHODS: The DNA breakpoint assay (DBA) is a custom, paired-end, next-generation sequencing (NGS) method designed to capture and detect deep-intronic DNA breakpoints in gross duplications in BRCA1, BRCA2, ATM, CDH1, PALB2, and CHEK2.

    RESULTS: DBA allowed us to ascertain breakpoints for 44 unique gross duplicatio
  • H
    Mutations in RASA1 and GDF2 identified in patients with clinical features of hereditary hemorrhagic telangiectasia
    Human Genome Variation Nov
    Hereditary hemorrhagic telangiectasia (HHT) is an autosomal dominant vascular disorder caused by mutations in ENG, ACVRL1 and SMAD4, which function in regulating the transforming growth factor beta and bone morphogenetic protein signaling pathways. Symptoms of HHT can be present in individuals who test negative for mutations in these three genes indicating other genes may be involved. In this study, we tested for mutations in two genes, RASA1 and GDF2, which were recently reported to be involved in vascular disorders. To determine whether RASA1 and GDF2 have phenotypic overlap with HHT and should be included in diagnostic testing, we developed a next-generation sequencing assay to detect mutations in 93 unrelated individuals who previously
  • J
    Cancer Risks Associated With Germline PALB2 Pathogenic Variants: An International Study of 524 Families
    J Clin Oncol Dec
    To estimate age-specific relative and absolute cancer risks of breast cancer and to estimate risks of ovarian, pancreatic, male breast, prostate, and colorectal cancers associated with germline PALB2 pathogenic variants (PVs) because these risks have not been extensively characterized.
  • B
    Inherited cancer predisposing mutations in patients with therapy-related myeloid neoplasms
    Br J Haematol Nov
    Some patients with therapy-related myeloid neoplasms (t-MN) may have unsuspected inherited cancer predisposition syndrome (CPS). We propose a set of clinical criteria to identify t-MN patients with high risk of CPS (HR-CPS). Among 225 t-MN patients with an antecedent non-myeloid malignancy, our clinical criteria identified 52 (23%) HR-CPS patients. Germline whole-exome sequencing identified pathogenic or likely pathogenic variants in 10 of 27 HR-CPS patients compared to 0 of 9 low-risk CPS patients (37% vs. 0%, p = 0.04). These simple clinical criteria identify t-MN patients most likely to benefit from genetic testing for inherited CPS.
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