Submitted:
05 September 2025
Posted:
09 September 2025
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Abstract
Keywords:
1. Introduction
2. Research Question
- What are the trends in publication volume over time within nanomedicine and organoid research from 2015 to 2025?
- Which publications are the most cited in the convergence of nanomedicine and organoid research, and what are their core scientific contributions and methodological approaches?
- Who are the most influential authors in the interdisciplinary field of organoid and nanomedicine research, and what are their institutional affiliations, geographical origins, scholarly output, and citation impact?
- Which countries have demonstrated the highest contribution to nanomedicine–organoid research?
- Which scientific disciplines are most prominent in advancing nanomedicine and organoid-related studies?
- What are the most frequently occurring keywords in this domain, and how have these keywords evolved over the last decade to reflect emerging trends and technologies?
- What are the dominant research themes, clusters, and conceptual structures that define this interdisciplinary field?
- What are the patterns of co-authorship, co-citation, and international collaboration, and how do they shape the development of this emerging research area?
3. Methodology
- Co-occurrence analysis of keywords to identify thematic clusters and research hotspots.
- Co-authorship analysis to explore collaboration patterns among authors, institutions, and countries.
- Citation analysis to determine the most influential documents and authors in the field.
4. Results and Finding
4.1. Data Search Strategy
| Scopus | (“organoid*” OR “organoids”) AND (“nanoparticle*” OR “nanomedicine” OR “nano-drug delivery”) |
| Criterion | Inclusion | Exclusion |
|---|---|---|
| Language | English | Non-English |
| Publication years | 2015 – 2025 | < 2015 |
| Document types | Journal (Article) and Reviews | Book and Abstract |
4.2. What are the Temporal Publication Trends in Nanomedicine and Organoids Research, Particularly at Their Intersection, from 2015 to 2025?
4.3. Which Publications are the Most Cited in the Convergence of Nanomedicine and Organoid Research, and What Are Their Core Scientific Contributions and Methodological Approaches?
4.4. Which Publications are the Most Cited in the Convergence of Nanomedicine and Organoid Research, and What Are Their Core Scientific Contributions and Methodological Approaches?
4.5. Which Countries Have Demonstrated the Highest Contribution to Nanomedicine–Organoid Research?
| Country | Count | Country | Count |
|---|---|---|---|
| China | 129 | South Korea | 22 |
| United States | 116 | Australia | 19 |
| Germany | 28 | India | 18 |
| Italy | 27 | France | 16 |
| United Kingdom | 23 | Canada | 14 |

4.6. Which Scientific Disciplines are Most Prominent in Advancing Nanomedicine and Organoid Related Studies?

| Subject Area | Count | Country | Count |
|---|---|---|---|
| Biochemistry, Genetics and Molecular Biology | 179 | Pharmacology, Toxicology and Pharmaceutics | 87 |
| Materials Science | 107 | Chemistry | 64 |
| Medicine | 107 | Physics and Astronomy | 41 |
| Engineering | 105 | Environmental Science | 23 |
| Chemical Engineering | 89 | Immunology and Microbiology |
4.7. What are the Most Frequently Occurring Keywords in this Domain, and How Have These Keywords Evolved over the Last Decade to Reflect Emerging Trends and Technologies?
- Tumor modelling and therapeutic applications: The yellow cluster, containing keywords such as “patient”, “tumor”, “activation”, “chemotherapy”, and “tumor microenvironment”, suggests a strong research focus on using organoids to simulate cancer environments and evaluate treatment responses.
- Stemcell-baseddevelopmentandregenerativemedicine:Representedbytheredcluster,thisgroupincludeskeywordssuchas“hydrogel”,“field”,“regenerativemedicine”,and“differentiation”.Thesetermsreflectstudiesonscaffoldmaterials,cellviability,andtissue-specificdevelopmentusing3Dculturesystems.
- Nanotechnologyandbiofunctionalmaterials:Inthegreencluster,termslike“nanocarrier”,“exposure”,“inflammation”,“pathway”,and“peptide”highlighttheintegrationofnanomedicineplatformswithbiologicalsignalinganddeliverymechanismswithinorganoidsystems.
- Geneticandanimal-basedmodellingapproaches:Thepinkandblueclustersincludefrequentkeywordssuchas“mouse”,“expression”,“miRNA”,“invivo”,and“metastasis”.Thesereflecttheuseofgeneregulationstudiesandinvivoextrapolationformechanisticandtranslationalinsights.
4.8. What are the Major Co-Authorship Patterns and Collaborative Author Clusters in the Organoid-Nanomedicine Research Field?
4.9. What Patterns of International Collaboration Exist in Organoid-Nanomedicine research, And Which Countries Play Central Roles in Shaping Their Global Landscape?
4.10. What Are the Core Biomedical Concepts and Emerging Scientific Focuses in Organoid-Nanomedicine Research Based on Keyword Co-Occurrence and Trend Mapping?
4. Discussion and Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
Abbreviations
| MDPI | Multidisciplinary Digital Publishing Institute |
| DOAJ | Directory of open access journals |
| TLA | Three letter acronym |
| LD | Linear dichroism |
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| Sources (Journal) | Articles | Impact Factor (IF) 2024 | JCR Quartile 2024 |
|---|---|---|---|
| International Journal of Molecular Sciences | 15 | 4.9 | Q2 |
| Advanced Materials | 9 | 27.4 | Q1 |
| Journal of Controlled Release | 9 | 10.8 | Q1 |
| Advanced Drug Delivery Reviews | 8 | 16.1 | Q1 |
| Advanced Healthcare Materials | 8 | 10 | Q1 |
| Advanced Science | 7 | 15.1 | Q1 |
| Journal of Nanobiotechnology | 7 | 10.6 | Q1 |
| Nature Communication | 6 | 14.7 | Q1 |
| Biomaterials | 6 | 14 | Q1 |
| ACS Nano | 5 | 15.8 | Q1 |
| Author | Country | Publications | Total Citations | Average Citation per Publication | H-index |
|---|---|---|---|---|---|
| Hans Clevers | Netherlands | 192 | 45701 | 238 | 91 |
| Toshiro Sato | Japan | 53 | 21125 | 398 | 32 |
| Jason R. Spence | USA | 64 | 6209 | 97 | 33 |
| Luc J. W. Van Der Laan | Netherlands | 47 | 3714 | 79 | 24 |
| Monique M. A. Verstegen | Netherlands | 35 | 3230 | 92 | 19 |
| James M. Wells | USA | 37 | 5075 | 137 | 21 |
| Jeffrey M. Beekman | Netherlands | 87 | 11960 | 137 | 47 |
| Bon-Kyoung Koo | UK | 90 | 18870 | 209 | 53 |
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