| Literature DB >> 32964036 |
Joseph Kawuki1,2, Xiaojin Yu1,2, Taha Hussein Musa2,3.
Abstract
BACKGROUND: Within the past decade, Africa has faced several recurrent outbreaks of Ebola virus disease (EVD), including the 2014-2016 outbreak in West Africa and the recent 2018-2020 Kivu outbreak in the Democratic Republic of Congo. The study thus aimed at quantifying and mapping the scientific output of EVD research published within 2010-2020 though a bibliometric perspective.Entities:
Mesh:
Year: 2020 PMID: 32964036 PMCID: PMC7486633 DOI: 10.1155/2020/5476567
Source DB: PubMed Journal: Biomed Res Int Impact factor: 3.411
Figure 1Flowchart of the methodology.
Figure 2Annual trend of publication (a) and citation (b) from WoS and Scopus (2010-2020).
Top 15 productive countries of EVD research (2010-2020).
| Rank | WoS | Scopus | ||||
|---|---|---|---|---|---|---|
| Country | Number of papers (%), | Single country papers | Country | Number of papers (%), | Single country papers | |
| 1 | USA | 1736 (44.9) | 1189 | USA | 702 (18.3) | 479 |
| 2 | United Kingdom | 352 (9.1) | 180 | United Kingdom | 130 (3.4) | 66 |
| 3 | China | 198 (5.1) | 126 | Canada | 76 (2.0) | 37 |
| 4 | Canada | 160 (4.1) | 80 | France | 65 (1.7) | 26 |
| 5 | Germany | 134 (3.5) | 62 | Germany | 65 (1.7) | 29 |
| 6 | France | 122 (3.2) | 52 | China | 57 (1.5) | 33 |
| 7 | Australia | 75 (1.9) | 42 | Italy | 39 (1.0) | 21 |
| 8 | Switzerland | 75 (1.9) | 30 | Japan | 34 (0.9) | 17 |
| 9 | Italy | 62 (1.6) | 32 | Switzerland | 31 (0.8) | 8 |
| 10 | Japan | 57 (1.5) | 25 | Georgia | 23 (0.6) | 14 |
| 11 | Nigeria | 52 (1.3) | 30 | India | 23 (0.6) | 21 |
| 12 | Belgium | 46 (1.2) | 9 | Spain | 20 (0.5) | 12 |
| 13 | South Africa | 42 (1.1) | 18 | Netherlands | 19 (0.5) | 10 |
| 14 | India | 41 (1.1) | 36 | Nigeria | 17 (0.4) | 10 |
| 15 | Spain | 41 (1.1) | 23 | Australia | 16 (0.4) | 6 |
Figure 3Network visualisation of collaborations among countries of EVD research indexed in WoS (a) and Scopus (b).
Figure 4Ten most prolific organisations in EVD research in WoS and Scopus.
Figure 5Network visualisation of collaborations among key institutions of EVD research from WoS (a) and Scopus (b).
Top 10 funding agencies of EVD research (2010-2020).
| Rank | Funding agencies (WoS) | No. of papers (%), | Funding agencies (Scopus) | No. of papers (%), |
|---|---|---|---|---|
| 1st | US Dept. of Health Human Services | 742 (19.2) | National Institutes of Health USA | 422 (10.9) |
| 2nd | National Institutes of Health USA | 691 (17.9) | NIAID | 205 (5.3) |
| 3rd | NIAID | 303 (7.8) | Defense Threat Reduction Agency | 90 (2.3) |
| 4th | US Depart. of Defense | 160 (4.1) | National Science Foundation NSF | 82 (2.1) |
| 5th | Defense Threat Reduction Agency | 124 (3.2) | National Natural Science Foundation of China | 78 (2.0) |
| 6th | Wellcome Trust | 106 (2.7) | Centers for Disease Control and Prevention | 59 (1.5) |
| 7th | National Natural Science Foundation of China | 100 (2.6) | Wellcome Trust | 54 (1.4) |
| 8th | World Health Organization | 97 (2.5) | Deutsche Forschungsgemeinschaft | 45 (1.2) |
| 9th | National Science Foundation NSF | 95 (2.5) | World Health Organization | 45 (1.2) |
| 10th | European Union EU | 84 (2.2) | National Institute of General Medical Sciences | 44 (1.1) |
Figure 6Most crucial research fields of EVD studies (2010-2020) in WoS and Scopus.
Top 10 productive authors of EVD research (2010-2020).
| Rank | WoS | Scopus | ||||||
|---|---|---|---|---|---|---|---|---|
| Author |
| Total citations | No. of papers | Author |
| Total citations | No. of papers | |
| 1st | Feldmann H | 35 | 3851 | 96 | Feldmann H | 33 | 3147 | 80 |
| 2nd | Qiu XG | 26 | 2396 | 66 | Qiu X | 26 | 2564 | 63 |
| 3th | Becker S | 22 | 2211 | 53 | Becker S | 23 | 2331 | 51 |
| 4th | Bavari S | 22 | 1312 | 52 | Bavari S | 21 | 1361 | 49 |
| 5th | Nichol ST | 28 | 2375 | 51 | Nichol ST | 26 | 2462 | 49 |
| 6th | Geisbert TW | 24 | 2736 | 50 | Dye JM | 24 | 1997 | 44 |
| 7th | Kobinger GP | 25 | 2232 | 49 | Basler CF | 25 | 1711 | 42 |
| 8th | Marzi A | 23 | 1517 | 48 | Marzi A | 23 | 1458 | 42 |
| 9th | Saphire EO | 21 | 1386 | 48 | Kobinger GP | 25 | 2409 | 41 |
| 10th | Dye JM | 24 | 1916 | 46 | Wong G | 19 | 1848 | 40 |
Figure 7Coauthorship analysis of the most influential authors of EVD research (2010-2020) from WoS (a) and Scopus (b).
Top 10 journals of EVD research.
| Rank | WoS | Scopus | ||||
|---|---|---|---|---|---|---|
| Journal name | No. of papers (%), | Impact factor (2019) | Journal name | No. of papers (%), | Impact factor (2019) | |
| 1st | Journal of Infectious Diseases | 223 (5.8) | 4.73 | Journal of Infectious Diseases | 146 (3.8) | 4.73 |
| 2nd | Journal of Virology | 107 (2.8) | 4.16 | Journal of Virology | 107 (2.8) | 4.16 |
| 3rd | Lancet | 105 (2.7) | 43.38 | PLoS One | 100 (2.6) | 2.87 |
| 4th | PLoS One | 101 (2.6) | 2.87 | PLoS Neglected Tropical Diseases | 91 (2.4) | 4.40 |
| 5th | Emerging Infectious Diseases | 86 (2.2) | 6.81 | Emerging Infectious Diseases | 82 (2.1) | 6.81 |
| 6th | Morbidity and Mortality Weekly Report | 85 (2.2) | 14.40 | Scientific Reports | 72 (1.9) | 4.12 |
| 7th | PLoS Neglected Tropical Diseases | 83 (2.1) | 4.40 | New England Journal of Medicine | 52 (1.4) | 37.91 |
| 8th | Lancet Infectious Diseases | 82 (2.1) | 21.77 | Morbidity and Mortality Weekly Report | 51 (1.3) | 14.40 |
| 9th | Scientific Reports | 72 (1.9) | 4.12 | Viruses | 49 (1.3) | 3.76 |
| 10th | New England Journal of Medicine | 60 (1.5) | 37.91 | Antiviral Research | 42 (1.1) | 4.13 |
The top 10 most cited EVD documents in WoS and Scopus (2010-2020).
| Authors, year | Document title and journal name | Document type | TC (WoS) | TC (Scopus) |
|---|---|---|---|---|
| Aylward et al. 2014 | Ebola virus disease in West Africa-the first 9 months of the epidemic and forward projections, The New England Journal of Medicine | Research article | 830 | 940 |
| Baise et al. 2014 | Emergence of Zaire Ebola virus disease in Guinea, New England Journal of Medicine | Brief report | 753 | 871 |
| Feldmann Geisbert 2011 | Ebola haemorrhagic fever, The Lancet | Research article | 700 | -N/A- |
| Gire et al. 2014 | Genomic surveillance elucidates Ebola virus origin and transmission during the 2014 outbreak, Science | Research article | 635 | 685 |
| Carette et al. 2011 | Ebola virus entry requires the cholesterol transporter Niemann–Pick C1, Nature | Research article | 630 | 662 |
| Qiu et al. 2014 | Reversion of advanced Ebola virus disease in nonhuman primates with ZMapp, Nature | Research article | 557 | 613 |
| Henao-Restrepo et al. 2015 | Efficacy and effectiveness of an rVSV-vectored vaccine expressing Ebola surface glycoprotein: interim results from the Guinea ring vaccination cluster-randomised trial, The Lancet | Research article | 441 | 473 |
| Quick et al. 2016 | Real-time, portable genome sequencing for Ebola surveillance, Nature | Research article | 430 | 459 |
| Côté et al. 2011 | Small molecule inhibitors reveal Niemann–Pick C1 is essential for Ebola virus infection, Nature | Research article | 379 | 399 |
| Schieffelin et al. 2014 | Clinical illness and outcomes in patients with Ebola in Sierra Leone, New England Journal of Medicine. | Research article | 332 | 366 |
Figure 8Most ten frequent author keywords (2010-2020) in WoS and Scopus.
Figure 9Visualised word-clouds of keywords plus (2010-2020) in WoS (a) and Scopus (b).