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©The Author(s) 2024.
World J Gastrointest Oncol. May 15, 2024; 16(5): 2181-2199
Published online May 15, 2024. doi: 10.4251/wjgo.v16.i5.2181
Published online May 15, 2024. doi: 10.4251/wjgo.v16.i5.2181
Table 1 The top 10 productive countries/regions
Rank | Country | Publications | Citations |
1 | China | 1007 | 25279 |
2 | USA | 232 | 7621 |
3 | Iran | 135 | 1740 |
4 | South Korea | 121 | 2733 |
5 | India | 113 | 2072 |
6 | Japan | 106 | 3605 |
7 | Saudi Arabia | 53 | 627 |
8 | England | 50 | 1753 |
9 | Germany | 47 | 1501 |
10 | Italy | 46 | 1200 |
Table 2 The top 10 productive institutions
Rank | Institution | Country | Publications | Citations |
1 | Shanghai Jiao Tong University | China | 94 | 3981 |
2 | Nanjing Medical University | China | 59 | 1273 |
3 | Nanjing University | China | 55 | 1589 |
4 | Islamic Azad University | Iran | 55 | 474 |
5 | Southeast University | China | 49 | 2020 |
6 | Chinese Academy of Sciences | China | 47 | 1368 |
7 | Fudan University | China | 44 | 856 |
8 | Sun Yat-Sen University | China | 34 | 671 |
9 | Southern Medical University | China | 30 | 576 |
10 | Yonsei University | South Korea | 27 | 634 |
Table 3 The top 20 productive authors
Rank | Author | Total publications | Total citations | Per citations |
1 | Da-Xiang Cui | 47 | 2693 | 57 |
2 | Nong-Yue He | 29 | 1434 | 49 |
3 | Chun-Lei Zhang | 27 | 1915 | 71 |
4 | Kan Wang | 19 | 1137 | 60 |
5 | Bao-Rui Liu | 19 | 447 | 24 |
6 | Chao Li | 15 | 731 | 49 |
7 | Qin Liu | 15 | 277 | 18 |
8 | Yan Deng | 14 | 1451 | 104 |
9 | Guo Gao | 14 | 1070 | 76 |
10 | Jing Wang | 14 | 235 | 17 |
11 | Qian Zhang | 12 | 400 | 33 |
12 | Wei Li | 12 | 166 | 14 |
13 | Ali Salehzadeh | 12 | 44 | 4 |
14 | Zhi-Yang Li | 11 | 375 | 34 |
15 | Rutian Li | 11 | 297 | 27 |
16 | Yong-Min Huh | 11 | 292 | 27 |
17 | Seungjoo Haam | 11 | 265 | 24 |
18 | Xiao Zhi | 10 | 583 | 58 |
19 | Fei Pan | 10 | 533 | 53 |
20 | Li Li | 10 | 160 | 16 |
Table 4 The top 10 productive journals
Rank | Journal | IF (2021) | Total publications | Total citations |
1 | International Journal of Nanomedicine | 7.033 | 64 | 2026 |
2 | Journal of Nanoscience and Nanotechnology | / | 44 | 746 |
3 | Journal of Biomedical Nanotechnology | 3.641 | 33 | 994 |
4 | Nanoscience and Nanotechnology Letters | / | 30 | 273 |
5 | International Journal of Pharmaceutics | 6.51 | 28 | 649 |
6 | Biomaterials | 15.304 | 28 | 2078 |
7 | International Journal of Biological Macromolecules | 8.025 | 25 | 535 |
8 | Scientific Reports | 4.997 | 24 | 720 |
9 | ACS Applied Materials & Interfaces | 10.383 | 23 | 636 |
10 | RSC Advances | 4.036 | 22 | 399 |
Table 5 The top 10 highest cited articles
Rank | Title | Journal | Impact Index Per Article | Citations | Average Citations | Publication year | Ref. |
1 | Improvement of cancer-targeting therapy, using nanocarriers for intractable solid tumors by inhibition of TGF-β signaling | Proceedings of the National Academy of Sciences | 22.9 | 345 | 22 | 2007 | [13] |
2 | Folic acid-conjugated Silica-modified gold nanorods for X-ray/CT imaging-guided dual-mode radiation and photo-thermal therapy | Biomaterials | 26.7 | 333 | 28 | 2011 | [79] |
3 | Diagnosis and Classification of 17 Diseases from 1404 Subjects via Pattern Analysis of Exhaled Molecules | ACS Nano | 35.7 | 285 | 48 | 2017 | [80] |
4 | Exosomes-mediated transfer of long noncoding RNA ZFAS1 promotes gastric cancer progression | Journal of Cancer Research and Clinical Oncology | 33.6 | 225 | 38 | 2017 | [81] |
5 | Photosensitizer-conjugated magnetic nanoparticles for in vivo simultaneous magnetofluorescent imaging and targeting therapy | Biomaterials | 16.5 | 222 | 19 | 2011 | [82] |
6 | A phase I and pharmacokinetic study of NK105, a paclitaxel-incorporating micellar nanoparticle formulation | British Journal of Cancer | 13.1 | 219 | 14 | 2007 | [83] |
7 | Defined factors induce reprogramming of gastrointestinal cancer cells | Proceedings of the National Academy of Sciences | 15.6 | 217 | 17 | 2010 | [84] |
8 | Synthesis of novel biodegradable and self-assembling methoxy poly (ethylene glycol)–palmitate nanocarrier for curcumin delivery to cancer cells | Acta Biomaterialia | 11.3 | 196 | 13 | 2008 | [85] |
9 | Ultrasensitive Silicon Nanowire for Real-World Gas Sensing: Noninvasive Diagnosis of Cancer from Breath Volatolome | Nano Letters | 12.9 | 172 | 22 | 2015 | [86] |
10 | Gastric cancer detection based on blood plasma surface-enhanced Raman spectroscopy excited by polarized laser light | Biosensors and Bioelectronics | 12.4 | 171 | 14 | 2011 | [56] |
Table 6 Clusters of the top 100 keywords
Cluster | Keywords | Counts | Rank | Cluster | Keywords | Counts | Rank |
1 | Nanoparticles | 389 | 1 | 2 | DNA | 42 | 35 |
1 | Drug-delivery | 193 | 3 | 2 | Stem-cells | 42 | 36 |
1 | Cancer | 187 | 5 | 2 | Northern jiangsu | 41 | 40 |
1 | Delivery | 182 | 6 | 2 | Toxicity | 40 | 43 |
1 | In-vitro | 182 | 7 | 2 | Gastric-cancer risk | 39 | 44 |
1 | Therapy | 134 | 9 | 2 | Diagnosis | 35 | 53 |
1 | Release | 104 | 11 | 2 | Antioxidant | 34 | 55 |
1 | In-vivo | 76 | 14 | 2 | Oxidative stress | 33 | 61 |
1 | Chemotherapy | 65 | 17 | 2 | Mechanism | 32 | 63 |
1 | Doxorubicin | 64 | 18 | 2 | Quantum dots | 32 | 64 |
1 | Paclitaxel | 55 | 23 | 2 | Infection | 32 | 65 |
1 | Design | 49 | 27 | 2 | Complexes | 30 | 70 |
1 | Stability | 48 | 28 | 2 | Graphene oxide | 29 | 72 |
1 | Bioavailability | 44 | 30 | 2 | Model | 28 | 74 |
1 | Drug | 44 | 31 | 2 | Proteins | 28 | 75 |
1 | Combination | 41 | 38 | 2 | Binding | 27 | 77 |
1 | Acid | 41 | 39 | 2 | Gold nanorods | 27 | 78 |
1 | System | 40 | 41 | 2 | Sensitive detection | 26 | 81 |
1 | Tumor | 40 | 42 | 2 | Iron-oxide nanoparticles | 25 | 87 |
1 | Efficacy | 38 | 45 | 2 | Silver nanoparticles | 25 | 88 |
1 | Tumors | 37 | 47 | 2 | Induction | 24 | 91 |
1 | 5-fluorouracil | 36 | 48 | 2 | Rapid detection | 23 | 95 |
1 | Chitosan | 36 | 49 | 2 | Nanocomposites | 23 | 96 |
1 | Size | 36 | 50 | 2 | Biomedical applications | 22 | 98 |
1 | Controlled-release | 35 | 52 | 2 | Green synthesis | 22 | 99 |
1 | Micelles | 34 | 54 | 3 | Gastric-cancer | 219 | 2 |
1 | Cisplatin | 33 | 57 | 3 | Expression | 190 | 4 |
1 | Nanocarriers | 33 | 58 | 3 | Cells | 142 | 8 |
1 | Pharmacokinetics | 33 | 59 | 3 | Breast-cancer | 104 | 12 |
1 | Cancer-cells | 33 | 60 | 3 | Growth | 90 | 13 |
1 | Carriers | 32 | 62 | 3 | Identification | 73 | 15 |
1 | Liposomes | 31 | 67 | 3 | Metastasis | 64 | 19 |
1 | Antitumor-activity | 30 | 68 | 3 | Carcinoma | 60 | 20 |
1 | Formulation | 30 | 69 | 3 | Proliferation | 57 | 22 |
1 | Oral delivery | 29 | 71 | 3 | Inhibition | 55 | 24 |
1 | Systems | 28 | 73 | 3 | Resistance | 52 | 26 |
1 | Polymeric micelles | 26 | 80 | 3 | Activation | 45 | 29 |
1 | Co-delivery | 25 | 84 | 3 | Lung-cancer | 44 | 33 |
1 | Microspheres | 25 | 85 | 3 | Gene | 43 | 34 |
1 | Inflammation | 25 | 86 | 3 | Colorectal-cancer | 42 | 37 |
1 | Permeability | 24 | 90 | 3 | Protein | 38 | 46 |
1 | Polymeric nanoparticles | 23 | 92 | 3 | Invasion | 36 | 51 |
1 | Multidrug-resistance | 23 | 93 | 3 | Adenocarcinoma | 34 | 56 |
1 | Ph | 23 | 94 | 3 | Survival | 32 | 66 |
1 | Absorption | 22 | 97 | 3 | Gene-expression | 28 | 76 |
2 | Apoptosis | 124 | 10 | 3 | Pathway | 27 | 79 |
2 | Magnetic nanoparticles | 66 | 16 | 3 | Micrornas | 26 | 82 |
2 | Gold nanoparticles | 57 | 21 | 3 | Progression | 26 | 83 |
2 | Cytotoxicity | 54 | 25 | 3 | Migration | 25 | 89 |
2 | Mechanisms | 44 | 32 | 3 | Differentiation | 22 | 100 |
- Citation: Liu BN, Gao XL, Piao Y. Mapping the intellectual structure and emerging trends for the application of nanomaterials in gastric cancer: A bibliometric study. World J Gastrointest Oncol 2024; 16(5): 2181-2199
- URL: https://www.wjgnet.com/1948-5204/full/v16/i5/2181.htm
- DOI: https://dx.doi.org/10.4251/wjgo.v16.i5.2181