OmicSpace Project Results
1.
OmicSpace Technological Platform
A comprehensive infrastructure for the management, governance, and use of health data
What is it?
What challenge does it address?
How does it work?
What value does it provide?
Summary
2.
Federated Collaboration Ecosystem
Advancing biomedical research through federated collaboration based on trust, interoperability, and data sovereignty.
What is it?
What challenge does it address?
How does it work?
Federated Catalog
Enables the publication and discovery of resources through standardized metadata, facilitating the identification of available assets without exposing the underlying data.
Federated Analytics
Allows distributed analyses to be carried out across organizations by sharing only aggregated results while keeping data at its source.
What value does it provide?
One of the main achievements of OmicSpace has been the deployment of an operational federated network among its founding nodes.
This infrastructure enables:
Summary
3.
Ecosystem Governance and Trust
The foundations that ensure responsible, secure, and sustainable management of health data.
What is it?
OmicSpace has developed a governance framework that establishes the rules, responsibilities, and procedures required to operate a health data space in a secure, transparent, and sustainable manner.
This framework enables multiple organizations to collaborate under common rules while maintaining control over their data and ensuring legal and ethical compliance.
What challenge does it address?
How does it work?
OmicSpace has defined a set of documents, rules, and organizational structures governing the operation of the ecosystem.
Key elements include:
Rulebook del espacio de datos.
What value does it provide?
The governance framework turns OmicSpace into a trusted and scalable data space.
It enables:
Summary
4.
Data Space
A federated environment that enables knowledge sharing and value creation from health data while always maintaining control at the source.
What is it?
What challenge does it address?
Data required to advance biomedical research is often distributed across multiple organizations. Although combining these datasets can generate significant scientific value, there are major barriers related to privacy, regulation, interoperability, and governance.
Key challenges include:
How does it work?
OmicSpace combines different technological components to facilitate secure collaboration between organizations.
The catalog and connectors enable the identification of available resources, participant management, and access policy definition. Privacy-Enhancing Technologies (PETs) enable distributed analyses and federated model training without moving original data outside the institution where it is hosted.
As a result:
What value does it provide?
OmicSpace has enabled the transition from isolated resources to a collaborative ecosystem capable of generating knowledge in a secure and privacy-preserving manner.
The Data Space provides:
Collaboration takes place within a common framework of governance and traceability.
Summary
5.
Data Catalog
The foundations that ensure responsible, secure, and sustainable management of health data.
What problem does it solve?
Health data is often distributed across hospitals, research institutes, patient associations, biobanks, and other organizations. This fragmentation makes it difficult to identify what data exists, where it is located, and how it can be reused for research and innovation.
OmicSpace creates a common discovery point that enables users to locate data resources without directly accessing sensitive information
.
What does the catalog include?
Longitudinal clinical datasets covering a range of diseases and care pathways, including breast cancer, acute coronary syndrome, and hidradenitis suppurativa.
Clinical and oncology cohorts containing clinical information, biomarkers, treatments, healthcare utilization, and health outcomes, including lung cancer and sarcomas.
Genomic and pharmacogenomic data focused on the analysis and interpretation of genetic variants and the study of population genetic variability.
Advanced omics data, including transcriptomic and epigenomic datasets derived from biological research samples.
Microbiological information generated through surveillance projects based on microbial genomic sequencing.
Biobank resources, combining information on biological samples and associated clinical data for biomedical research.
Rare disease and highly complex diagnostic datasets, including inborn errors of metabolism.
OMOP-structured synthetic data, designed to support interoperability, methodological validation, and the development of analytical processes.
Health and social care information related to Alzheimer’s disease and other dementias, including care services, non-pharmacological therapies, and patient association statistics.
Metadata harmonized according to European standards, enabling the discovery, comparison, and evaluation of distributed resources without exposing the underlying data.
What value does it provide?
Impact
6.
Pharmacogenomics Use Case
How genetics helps personalize treatments and improve patient safety.
What challenge does it address?
What was analyzed?
How was it performed?
What did it demonstrate?
The use case demonstrated the feasibility of integrating distributed genomic and clinical data for collaborative health data analyses.
It also validated reusable components for future personalized medicine, pharmacogenomics, and federated analytics studies based on real-world data maintained under the custody of each participant organization.
7.
Training and Capacity Building
Fostering the competencies needed to build and manage health data spaces.
Need
Capabilities Developed
Target Profiles
Impact
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