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학술논문

Cloud computing in population-scale genomics: Strategies, challenges, and future directions

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영문명
발행기관
대한의학유전학회
저자명
Seungsoo Kim Taekeun Kim Seungwon Lee Hae Seo Jeyun Kang Dawon Kang Ina Jeon Jungmin Choi
간행물 정보
『대한의학유전학회지』제22권 제2호, 37~46쪽, 전체 10쪽
주제분류
의약학 > 기타의약학
파일형태
PDF
발행일자
2025.12.30
4,000

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국문 초록

Advances in next-generation sequencing technologies have enabled population-scale genomic studies, transforming biomedical research and precision medicine. However, the resulting exponential growth in sequencing data has resulted in significant computational, storage, and governance challenges. Cloud computing has emerged as a critical infrastructure to address these issues by providing elastic computing resources, scalable storage, and standardized workflow management. This review evaluates the role of cloud computing in population-scale genomics and examines the technological foundations of cloudnative analysis, including containerization, workflow engines, and multi-cloud integration. We also discuss the regulatory frameworks such as Health Insurance Portability and Accountability Act, General Data Protection Regulation, and Personal Information Protection Act that govern the secure use of data, as well as Findable, Accessible, Interoperable, and Reusable (FAIR) and Secure and Authorized FAIR Environment principles that emphasize the responsible data sharing. Economic considerations, including Financial Operations-driven strategies for cost optimization, are explored alongside emerging technologies such as federated learning, quantum computing, and blockchain that are poised to reshape genomic research. Despite substantial progress, challenges persist in vendor lock-in, data migration, and cross-platform interoperability. Addressing these barriers will be essential to achieving scalable, secure, and reproducible cloud-based genomics. Ultimately, integrating cloud infrastructure into population-scale genomics will accelerate discovery and enable real-time clinical applications, inspiring a new era of precision medicine.

목차

Introduction
Global Landscape of Human Population Genomic Projects
Paradigms for Population-scale Genomics
Technical Foundations for Cloud-native Genomics
Regulatory Compliance and Data Governance
Economics and Cost Optimization
Future Directions and Emerging Technologies
Challenges in Cloud-based Genomic Analysis
Strategic Recommendations
Conclusion
Acknowledgements
Funding
Authors’ Contributions
References

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APA

Seungsoo Kim,Taekeun Kim,Seungwon Lee,Hae Seo,Jeyun Kang,Dawon Kang,Ina Jeon,Jungmin Choi. (2025).Cloud computing in population-scale genomics: Strategies, challenges, and future directions. 대한의학유전학회지, 22 (2), 37-46

MLA

Seungsoo Kim,Taekeun Kim,Seungwon Lee,Hae Seo,Jeyun Kang,Dawon Kang,Ina Jeon,Jungmin Choi. "Cloud computing in population-scale genomics: Strategies, challenges, and future directions." 대한의학유전학회지, 22.2(2025): 37-46

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