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Updated: Oct 15, 2025

Candidate Gene Testing in Clinical Cohort Studies with Multiplexed Genotyping and Mass Spectrometry
Published on: June 21, 2018
Identification of driver genes for critical forms of COVID-19 in a deeply phenotyped young patient cohort
Raphael Carapito1,2,3, Richard Li4, Julie Helms1,3,5
1Laboratoire d'ImmunoRhumatologie Moléculaire, plateforme GENOMAX, INSERM (Institut de la Santé et de la Recherche Médicale) UMR_S 1109, Faculté de Médecine, Institut Thématique Interdisciplinaire (ITI) de Médecine de Précision de Strasbourg, Transplantex NG, Université de Strasbourg, 67085 Strasbourg, France.
Insights
Researchers identified ADAM9 as a key driver of critical COVID-19 in young, healthy patients. Inhibiting ADAM9 reduced SARS-CoV-2 replication, suggesting its potential as a therapeutic target for severe coronavirus disease 2019.
Area of Science:
- Immunology
- Genomics
- Virology
Background:
- The underlying causes of severe coronavirus disease 2019 (COVID-19) are not fully understood, especially in younger individuals without comorbidities.
- Confounding factors like age and pre-existing conditions have obscured the true mediators of critical illness.
Purpose of the Study:
- To investigate the biological drivers of critical COVID-19 in a young, healthy patient cohort.
- To identify unique molecular signatures differentiating critical from non-critical COVID-19 cases.
- To explore potential therapeutic targets for severe COVID-19.
Main Methods:
- Multi-omics analysis (whole-genome sequencing, RNA sequencing, proteomics, cytokine profiling, immunophenotyping) in a cohort of critical, non-critical COVID-19 patients, and healthy controls.
- Application of advanced computational methods including machine learning, deep learning, quantum annealing, and structural causal modeling.
- Validation of key findings in an independent patient cohort, including transcriptional, protein, and functional assays.
Main Results:
- Critical COVID-19 patients exhibited heightened inflammation, altered immune cell populations, increased coagulation, and distinct viral cell biology.
- A unique gene signature, including the metalloprotease ADAM9, differentiated critical from non-critical cases.
- ADAM9 inhibition ex vivo reduced SARS-CoV-2 uptake and replication in human lung cells.
Conclusions:
- ADAM9 is identified as a significant driver of severe COVID-19 pathogenesis in young, healthy individuals.
- The study provides a comprehensive landscape of in vivo biological perturbations associated with critical COVID-19.
- ADAM9 represents a promising candidate for therapeutic intervention against severe coronavirus disease 2019.
Abstract:
The drivers of critical coronavirus disease 2019 (COVID-19) remain unknown. Given major confounding factors such as age and comorbidities, true mediators of this condition have remained elusive. We used a multi-omics analysis combined with artificial intelligence in a young patient cohort where major comorbidities were excluded at the onset. The cohort included 47 “critical” (in the intensive care unit under mechanical ventilation) and 25 “non-critical” (in a non-critical care ward) patients with COVID-19 and 22 healthy individuals. The analyses included whole-genome sequencing, whole-blood RNA sequencing, plasma and blood mononuclear cell proteomics, cytokine profiling, and high-throughput immunophenotyping. An ensemble of machine learning, deep learning, quantum annealing, and structural causal modeling were used. Patients with critical COVID-19 were characterized by exacerbated inflammation, perturbed lymphoid and myeloid compartments, increased coagulation, and viral cell biology. Among differentially expressed genes, we observed up-regulation of the metalloprotease ADAM9. This gene signature was validated in a second independent cohort of 81 critical and 73 recovered patients with COVID-19 and was further confirmed at the transcriptional and protein level and by proteolytic activity. Ex vivo ADAM9 inhibition decreased severe acute respiratory syndrome coronavirus 2 (SARS-CoV-2) uptake and replication in human lung epithelial cells. In conclusion, within a young, otherwise healthy, cohort of individuals with COVID-19, we provide the landscape of biological perturbations in vivo where a unique gene signature differentiated critical from non-critical patients. We further identified ADAM9 as a driver of disease severity and a candidate therapeutic target.
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