Revolutionizing Stem Cell Sorting with Machine Learning: A Review of Trends, Tools, and Future Directions
Mousazadeh M., Jahangiri-Manesh A., Soltaninejad H., Yazdi F., Rahimian K., Curran KM.
Narrative Review on Face & Skin, published in Iran J Med Sci (2026) — summary generated from the PubMed abstract.
Evidence from laboratory and animal studies provides groundwork for understanding mechanisms and potential before human studies continue.
- Level A · Stronger Clinical Evidence
- Level B · Emerging clinical evidence with positive signals
- Level C · Early human research exploring benefits
- Level D · Scientific groundwork from lab and animal studies
- Emerging · Emerging topic under active research
This page is generated from the PubMed record. The Thai description is an automated summary of bibliographic fields and the abstract, not a full translation, and is not medical advice.
- Study type
- Narrative Review
- Journal
- Iran J Med Sci (2026)
- Reported sample size
- —
- Source database
- Europe PMC
- PMID
- 42238048
- PMCID
- PMC13226860
- DOI
- 10.30476/ijms.2025.107395.4197
Abstract (original English)
Stem cells are critical tools in regenerative medicine, large-scale cell production, drug discovery, and cell-based therapies, making their precise identification and sorting essential for advancing both research and clinical applications. Accurate stem cell sorting enables improved therapeutic outcomes, efficient production pipelines, and more reliable biological studies. Traditional sorting methods, while effective, face challenges related to speed, scalability, cost, and human error. Recent advances in machine learning (ML) techniques based on image and video processing have revolutionized stem cell sorting by enabling rapid, automated, and highly accurate classification. In addition to visual data approaches, non-visual processing methods using ML have also emerged as powerful tools for stem cell analysis and separation. In this review, various ML-driven strategies for stem cell sorting, with a particular focus on visual and non-visual data processing methodologies and their applications in different stem cell types, have been comprehensively explored and categorized based on the input data types, ML techniques, stem cell types, study objectives, and performance metrics. Furthermore, an overview of the historical development of stem cell sorting technologies and ML applications was introduced, and emerging automated systems, software solutions, start-ups, and future directi
What this study does not prove
- • This study does not prove SVF is an approved treatment or a replacement for standard care.
- • This is a narrative review: it collects no new patient data and does not systematically appraise evidence quality.
Evidence level
Evidence from laboratory and animal studies provides groundwork for understanding mechanisms and potential before human studies continue.
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