Literature DB >> 28179007

Global research trends of World Health Organization's top eight emerging pathogens.

Waleed M Sweileh1.   

Abstract

BACKGROUND: On December 8th, 2015, World Health Organization published a priority list of eight pathogens expected to cause severe outbreaks in the near future. To better understand global research trends and characteristics of publications on these emerging pathogens, we carried out this bibliometric study hoping to contribute to global awareness and preparedness toward this topic.
METHOD: Scopus database was searched for the following pathogens/infectious diseases: Ebola, Marburg, Lassa, Rift valley, Crimean-Congo, Nipah, Middle Eastern Respiratory Syndrome (MERS), and Severe Respiratory Acute Syndrome (SARS). Retrieved articles were analyzed to obtain standard bibliometric indicators.
RESULTS: A total of 8619 journal articles were retrieved. Authors from 154 different countries contributed to publishing these articles. Two peaks of publications, an early one for SARS and a late one for Ebola, were observed. Retrieved articles received a total of 221,606 citations with a mean ± standard deviation of 25.7 ± 65.4 citations per article and an h-index of 173. International collaboration was as high as 86.9%. The Centers for Disease Control and Prevention had the highest share (344; 5.0%) followed by the University of Hong Kong with 305 (4.5%). The top leading journal was Journal of Virology with 572 (6.6%) articles while Feldmann, Heinz R. was the most productive researcher with 197 (2.3%) articles. China ranked first on SARS, Turkey ranked first on Crimean-Congo fever, while the United States of America ranked first on the remaining six diseases. Of retrieved articles, 472 (5.5%) were on vaccine - related research with Ebola vaccine being most studied.
CONCLUSION: Number of publications on studied pathogens showed sudden dramatic rise in the past two decades representing severe global outbreaks. Contribution of a large number of different countries and the relatively high h-index are indicative of how international collaboration can create common health agenda among distant different countries.

Entities:  

Keywords:  AcrGIS 10.1; Bibliometrics; Outbreaks; VOSviewer; Virus; WHO

Mesh:

Year:  2017        PMID: 28179007      PMCID: PMC5299748          DOI: 10.1186/s12992-017-0233-9

Source DB:  PubMed          Journal:  Global Health        ISSN: 1744-8603            Impact factor:   4.185


Background

On December 8th, 2015, World Health Organization (WHO) led a meeting of experts and health consultants in Geneva to discuss and publish a priority list of pathogens likely to cause serious outbreaks in the near future bearing in mind that the suggested pathogens had limited or no available effective therapies or preventive measures [1]. The meeting came up with a list of top eight emerging serious pathogens that are of great harmful health consequences. According to WHO, the list is not an ultimate one and is supposed to be reviewed annually to include any new emerging pathogens. The WHO list aims to lay the basis and background for national and international health planning to combat and control any potential outbreaks of these pathogens. Furthermore, the WHO wanted countries, researchers, clinicians, and policy makers to talk about these pathogens and corresponding infectious diseases as part of global awareness and preventive policies which might include developing new and inexpensive diagnostics, therapies, vaccines, and behavioral health measures. According to WHO, the list of pathogens, which required urgent attention for research and development pertaining to preparedness, included “Crimean Congo haemorrhagic fever, Ebola virus, Marburg, Lassa fever, Middle East respiratory syndrome (MERS) and Severe acute respiratory syndrome (SARS) coronavirus diseases, Nipah, and Rift Valley fever” [1]. These infectious diseases are caused by viruses and some of them, such as Crimean-Congo and Ebola, are associated with high fatality rate [2-8]. Marburg virus is transmitted to people from fruit bats and spreads among humans through human-to-human transmission [9-13] while Lassa fever is transmitted to humans through food contaminated with rodent feces or urine [14, 15]. Middle East respiratory syndrome is caused by a coronavirus that was first identified in Saudi Arabia in 2012 [16-18] while SARS, another coronavirus respiratory disease, was recognized on February 2003 [19, 20]. Nipah virus, identified in 1998, is emerging zoonosis that affects both animals and humans [13, 21–24]. Rift Valley fever is a viral zoonosis that was first identified among sheep on a farm in the Rift Valley of Kenya [25-29]. The WHO committee listed another three pathogens/infectious diseases and considered them as serious and require an action as soon as possible. These three serious diseases include Chikungunya, severe fever with thrombocytopenia syndrome, and Zika. Literature review using Pubmed, Google Scholar and Scopus showed that bibliometric studies on SARS or Ebola or Nipah virus have been carried out, but as a single disease and not as a group of diseases with potential future severe epidemics [25-29]. The collective analysis of literature on top eight pathogens will give a more comprehensive view on these infectious diseases and will help identify which one needs to be given top priority for funding and research. It has been reported that mapping literature with certain statistical methods could help in detection of emerging infectious disease outbreaks particularly in the presence of internet with thousands of reports being easily communicated among public health specialists and healthcare providers [30, 31]. Based on all of the above, we carried out this bibliometric study to analyze literature on top eight emerging pathogens suggested by WHO. Specifically, information regarding number of publications over time, contribution of various countries, international collaboration, active authors and institutions, journals that are actively publishing articles, citations analysis, geographical distribution of publications, visualization of inter-country collaboration, and top cited articles will be presented. This kind of analysis will be of value to virologists, pharmacist, medicinal chemist, and clinicians who are interested in infectious viral diseases and in developing effective preventive and curative pharmaceutical products. Young researchers need to direct their research efforts toward emerging diseases because they are considered top priority and a bulk of financial support will be invested in these diseases. Healthcare workers in the field of travel medicine need to be aware of the map of infectious diseases that quickly cross borders from one country to another leading to spread of diseases with potential negative impact on public health and tourism industry.

Methods

For this study, Scopus search engine was chosen to retrieve required literature. Scopus was used because of its advantages over other databases such as Web of Science (WoS), Google scholar or Pubmed [32]. According to Falagas et al. study, no database is perfect and each has certain merits over the other. For example, PubMed and Google Scholar are free to use in contrast to Scopus and WoS. PubMed lacks citation analysis in contrast to other databases. Scopus offers about 20% more coverage than Web of Science and 100% of Medline database is covered by Scopus. Google Scholar is the largest in terms of coverage but results obtained by Google Scholar have inconsistent accuracy. Although Scopus covers a wider journal range, it is currently limited to articles published after 1995 when compared with WoS [32]. In the current study, we preferred the use of Scopus because of its wider coverage since we are interested in global research activity in the eight emerging pathogens. Many of the journals published from developing countries, where these infectious diseases were found, are indexed in Scopus. This is reflected in the number of journals covered by Scopus versus those covered by WoS [32]. In the current study, keywords used were the names of diseases that appeared in the WHO top eight list. To avoid errors, the names of diseases were followed by conditional keywords such as “virus OR viral OR fever OR hemorrhagic OR haemorrhagic OR corona* OR coronavirus OR infection OR infectious). Fig. 1 illustrates the steps followed along with keywords and search query used in Scopus to retrieve required data.
Fig. 1

Strategy and search query used to retrieve required data in Scopus

Strategy and search query used to retrieve required data in Scopus The data obtained were refined using the side functions in Scopus. Such functions include: 1) time limitation which was set for this study from 1996 to 2015, 2) source type of data which was set in this study to be journal articles while books and book chapters were excluded, and finally 3) type of documents and for the purpose of this study all types of documents were included except errata (correction). Analysis of data was carried out using the “analyze” function in Scopus menu bar. Analysis included annual number of published documents, productivity of each country, author, preferred journals for publishing research on top eight emerging pathogens, geographical distribution, network visualization, and institution/organization. Scopus allows for citation analysis such as total number of citations, Hirsch index (h-index), and top cited articles. The h-index is a parameter used to measure productivity and scientific impact of an author, institution, or country, or even a subject area [33]. Scopus can also give analysis about active journals in publishing articles on studied diseases. Active journals were presented along with Impact Factor (IF) which was obtained from the Journal Citation Report published by Thomson Reuters. An important feature in Scopus is that it allows exclusion or limitation which allow researchers to identify articles published by a single author or a single country. Based on this, we divided articles into two types: (1) single country publications (SCP) in which all authors have the same country affiliation and such publications represent an intra-country collaboration, and (2) multiple country publications (MCP) in which authors have different country affiliation and such publications represent inter-country collaboration. In bibliometric studies, not all data can be presented. In most bibliometric studies, active or most productive countries, authors, institutions/organizations, and journals are usually presented. In this study, with large number of retrieved documents, only countries, authors, institutions, and journals with a minimum productivity of 100 documents were presented and ranked. The cutoff point of 100 publications have been previously used in other bibliometric studies [34]. For analysis pertaining to each infectious disease, only the top 10 productive countries were presented. An important preventive aspect of most serious infectious diseases is the development of vaccines for prevention of spread. In this study, publications pertaining to vaccine development against any one of the top eight emerging pathogens were sought and presented. The search query used to search for vaccine development was the same search query used to retrieve publications on the top eight pathogens plus the keyword “vaccin*” with an asterisk to retrieve words such as vaccine or vaccination. The complete search query for vaccine data was presented in Fig. 1. Statistical Package for Social Sciences (SPSS - 21) was used to create graphs pertaining to growth of publications for each disease. Mean ± standard deviation (SD) and median (Q1 – Q3) were used for descriptive statistics. Finally, bibliometric studies do not involve human or animal subjects and therefore, no ethical approval by Institutional Review Board was required.

Results

A total of 8619 journal articles were retrieved. The highest number of published articles was recorded in 2015 while the lowest number of published articles was recorded in 1996. The growth of publications showed a rising trend in 2003 and 2004 and then in 2014 and 2015. Figure 2 shows the annual growth of publications during the study period.
Fig. 2

Annual growth of publications over the study period (1996–2015)

Annual growth of publications over the study period (1996–2015) A total of 28 different languages were encountered in retrieved articles. English (n = 7,661; 88.9%) was the most common followed by Chinese (n = 387; 4.5%), French (206; 2.4%), and Russian (n = 131; 1.5%). The majority of retrieved articles were research articles (n = 6,587; 76.4%). Other types of retrieved documents are shown in Table 1.
Table 1

Types of retrieved documents

Type of documentFrequency% N = 8619
Article663377.0
Review98411.4
Letter3043.5
Note2583.0
Conference Paper1922.2
Editorial1411.6
Short Survey1071.2
Types of retrieved documents The majority of articles (n = 5,406; 62.7%) were published in peer reviewed journals in the subject area of “Medicine” while 3075 (35.7%) were published in peer reviewed journals in the subject area of “Immunology and Microbiology”. The subject areas with a minimum of 100 articles are shown in Table 2. Since some journals fit into more than one subject area, the total percentages in Table 2 exceeded 100%.
Table 2

Subject areas of retrieved documents

Subject areaFrequency% N = 8619 a
Medicine540662.7
Immunology and Microbiology307535.7
Biochemistry, Genetics and Molecular Biology168119.5
Pharmacology, Toxicology and Pharmaceutics5336.2
Agricultural and Biological Sciences4074.7
Veterinary2833.3
Multidisciplinary2342.7
Social Sciences1792.1
Chemistry1702.0
Environmental Science1331.5
Nursing1231.4

aDue to overlap among subject areas, the total percentages exceeded 100%

Subject areas of retrieved documents aDue to overlap among subject areas, the total percentages exceeded 100%

Citation analysis

Retrieved documents received a total of 221,606 citations. The mean ± SD was 25.7 ± 65.4 citations per documents while the median (Q1 – Q3) was 9 (2–27). The h-index was 173. A total of 7291 (84.6%) articles were cited at least once while 1328 (15.4%) articles were not cited at all. A total of 408 (4.7%) publications received a minimum of 100 citations per article. The article that received the highest number of citations was “A novel coronavirus associated with severe acute respiratory syndrome” [35] published in New England Journal of Medicine (NEJM) in 2003. It received a total of 1979 citations. Table 3 shows the top 20 cited articles. Content analysis of top cited articles showed that 18 articles were about SARS, one about Nipah virus and one about Ebola virus. Five of top cited articles were published in NEJM, three in Lancet, six in Science, and three in Nature.
Table 3

Top cited 20 articles on top eight emerging pathogens/infectious diseases

ArticleYearJournalNumber of citations
A novel coronavirus associated with severe acute respiratory syndrome [35]2003New England Journal of Medicine1979
Identification of a novel coronavirus in patients with severe acute respiratory syndrome [93]2003New England Journal of Medicine1810
Coronavirus as a possible cause of severe acute respiratory syndrome [94]2003Lancet1535
Characterization of a novel coronavirus associated with severe acute respiratory syndrome [95]2003Science1479
The genome sequence of the SARS-associated coronavirus [96]2003Science1295
A major outbreak of severe acute respiratory syndrome in Hong Kong [97]2003New England Journal of Medicine1135
Angiotensin-converting enzyme 2 is a functional receptor for the SARS coronavirus [98]2003Nature943
Clinical progression and viral load in a community outbreak of coronavirus-associated SARS pneumonia: A prospective study [99]2003Lancet916
Isolation and characterization of viruses related to the SARS coronavirus from animals in Southern China [99]2003Science895
Identification of severe acute respiratory syndrome in Canada [100]2003New England Journal of Medicine827
Bats are natural reservoirs of SARS-like coronaviruses [101]2005Science720
A cluster of cases of severe acute respiratory syndrome in Hong Kong [102]2003New England Journal of Medicine677
Unique and conserved features of genome and proteome of SARS-coronavirus, an early split-off from the coronavirus group 2 lineage [103]2003Journal of Molecular Biology638
Fruit bats as reservoirs of Ebola virus [104]2005Nature606
Nipah virus: A recently emergent deadly paramyxovirus [105]2000Science605
Clinical Features and Short-term Outcomes of 144 Patients with SARS in the Greater Toronto Area [106]2003Journal of the American Medical Association603
Severe acute respiratory syndrome coronavirus-like virus in Chinese horseshoe bats [107]2005PNASa 568
Koch’s postulates fulfilled for SARS virus [108]2003Nature554
Transmission dynamics and control of severe acute respiratory syndrome [109]2003Science535
Epidemiological determinants of spread of causal agent of severe acute respiratory syndrome in Hong Kong [110]2003Lancet515

a PNAS Proceedings of the National Academy of Sciences

Top cited 20 articles on top eight emerging pathogens/infectious diseases a PNAS Proceedings of the National Academy of Sciences

Country analysis

Researchers from 154 different countries participated in publishing retrieved articles. Table 4 shows a list of countries with a minimum contribution of 100 articles. The list included 23 different countries in North America, Middle East, Europe, Asia, Australia, and Africa. The total number of articles produced by the list of active countries was 6892 (80.0%). The United States of America (USA) ranked first in productivity with a total of 2852 (33.1%) followed by China (n = 1,057; 12.3%), Hong Kong (n = 548; 6.4%), and Germany (n = 608; 7.1%). Geographical distribution of worldwide publications on the top eight emerging pathogens was mapped using ArcGIS 10.1 with darker colors indicative of higher productivity (Fig. 3).
Table 4

List of countries with a minimum contribution of 100 documents

CountryFrequencya % N = 8619SCP%MCP%TCC/A h-index
USA285233.1149952.6135347.411155239.1145
China105712.360457.145342.92315321.967
Germany6087.120333.440566.62821746.477
Hong Kong5486.432659.522240.52691749.171
Canada5276.120238.332561.72180941.475
France5216.017032.635167.41865835.868
UK4705.513228.133871.91470431.360
Japan3243.812137.320362.7830925.648
Turkey3063.626987.93712.1437514.330
Taiwan2853.322880.05720.0716125.139
Singapore2553.014255.711344.3927036.443
Netherlands2092.46330.114669.91298962.150
Australia1952.34322.115277.9626232.143
South Africa1601.94729.411370.6621938.941
Switzerland1601.92113.113986.9865954.144
Spain1501.76140.78959.3388325.933
Saudi Arabia1421.65135.99164.1473333.338
Italy1401.65438.68661.4293020.929
India1231.47460.24939.812079.818
Belgium1091.31816.59183.5405437.234
Sweden1041.23331.77168.3249824.031
Iran1021.28482.41817.6126412.419
Malaysia1001.25858.04242.0439544.030

TC total citations, C/A citation per article, h-index Hirsch index, USA United States of America, UK United Kingdom, SCP single country publications, MCP multiple country publications

aWhen productivity of each country was calculated alone the total number exceeds the number of retrieved articles. However, when productivity of all countries was dealt with collectively, the total number will be lesser than that presented in the table. The collaboration between countries created some percentage of overlap and therefore certain number of similar countries were counted twice for collaborating countries

Fig. 3

Geographical distribution of publications on the eight emerging pathogens. The map was created using ArcGIS 10.1 program. Regions with no colors in the map have no available data

List of countries with a minimum contribution of 100 documents TC total citations, C/A citation per article, h-index Hirsch index, USA United States of America, UK United Kingdom, SCP single country publications, MCP multiple country publications aWhen productivity of each country was calculated alone the total number exceeds the number of retrieved articles. However, when productivity of all countries was dealt with collectively, the total number will be lesser than that presented in the table. The collaboration between countries created some percentage of overlap and therefore certain number of similar countries were counted twice for collaborating countries Geographical distribution of publications on the eight emerging pathogens. The map was created using ArcGIS 10.1 program. Regions with no colors in the map have no available data International collaboration ranged from 12.1 to 86.9%. Turkey had the lowest percentage (12.1%) of articles with international authors while Switzerland had the highest percentage (86.9%) of articles with international authors. Only two countries (Turkey and Iran) had less than 20% international collaboration. There was a significant correlation (Pearson correlation r = 0.52; p = 0.01) between percentage of international collaboration and number of citation per article but not with h-index. Visualization of international collaboration was created using VOSviewer technique. In the network visualization map, the strength of collaboration between countries is expressed by the thickness of the line between any two countries. Figure 4 shows inter-country collaboration between various developed and developing countries. The thickness of the connecting lines represents the extent of collaboration between any two countries.
Fig. 4

Network visualization of inter-country collaborations among countries with minimum of 20 publications on emerging pathogens. Links represent the strength of collaboration

Network visualization of inter-country collaborations among countries with minimum of 20 publications on emerging pathogens. Links represent the strength of collaboration

Institutions/organizations

Sixteen intuitions/organizations made a contribution of a minimum of 100 publications (Table 5). The total number of documents published by these active institutions was 3083 (35.8%). Eight active intuitions are in northern America (USA and Canada), three are in Hong Kong/China, two in Germany, one in France, one in Japan, and one is an international organization (WHO). The Centers for Disease Control and Prevention (CDC) had the highest productivity of 344 (5.5%) articles followed by the University of Hong Kong with 305 (4.5%) documents. World Health Organization ranked 12th with 135 (1.6%) documents. However, publications by WHO had the highest citations per article (70.3) followed by those published by University of Hong Kong (60.4) and CDC (60.2). The CDC had the highest (87) h-index followed by U.S. Army Medical Research Institute of Infectious Diseases (75) and The University of Hong Kong (63).
Table 5

List of institutions/organizations with a minimum contribution of 100 documents

Institution/OrganizationFrequency% N = 8619TCC/A h-indexAffiliation
Centers for Disease Control and Prevention (CDC)4224.92541060.287USA
The University of Hong Kong3053.51842560.463Hong Kong
U.S. Army Medical Research Institute of Infectious Diseases2973.41702757.375USA
National Institutes of Health, Bethesda2092.4707233.844USA
UT Medical Branch at Galveston2082.4693733.444USA
National Institute of Allergy and Infectious Diseases2002.31037151.956USA
Universitat Marburg1822.11015955.852Germany
Institut Pasteur, Paris1752.0863949.444France
University of Manitoba1651.9728944.251Canada
National Microbiology Laboratory1631.9725044.548Canada
Prince of Wales Hospital Hong Kong1411.6660046.840Hong Kong
Organisation Mondiale de la Sante1351.6949670.344WHO
National Institute of Infectious Diseases1251.5235618.828Japan
Chinese University of Hong Kong1141.3460140.433Hong Kong
Bernhard Nocht Institut fur Tropenmedizin Hamburg1081.3724167.036Germany
University of Toronto1001.2507150.732Canada

TC total citations, C/A citation per article, h-index Hirsch index, USA United States of America, WHO World Health Organization

List of institutions/organizations with a minimum contribution of 100 documents TC total citations, C/A citation per article, h-index Hirsch index, USA United States of America, WHO World Health Organization

Journals and authors

Five journals made a contribution of at least 100 articles to studied diseases. Top leading journal was Journal of Virology with 572 (6.6%) articles. The journal is published by the American Society of Microbiology and has an IF of 4.6. The second ranking journal was Emerging Infectious Diseases with 295 (3.4%) publications; published by the CDC and has and IF of 6.99. The third ranking journal was Journal of Infectious Diseases with 244 (2.8%) articles; published on behalf of Infectious Diseases Society of America and has an IF of 6.3. The fourth ranking journal was Virology journal with 194 (2.3%) articles; published by Elsevier and has an impact factor of 3.2. The fifth ranking journal was Plos One with 146 (1.7%) articles; published by Public Library of Science, and has an IF of 3.1. Feldmann, Heinz R. at the National Institutes of Health, Bethesda, Laboratory of Virology, was the most productive researcher with 197 (2.3%) articles. Rollin, Pierre Etienne at CDC, Atlanta, USA ranked second with 123 (1.4%) articles. Ksiazek, Thomas G. at Galveston National Laboratory, Galveston, USA ranked third with 118 (1.4%) articles. Nichol, Stuart T., at the National Center for Emerging and Zoonotic Infectious Diseases, Atlanta, USA, ranked fourth with 112 (1.3%) articles. Geisbert, Thomas Thomas, at UT Medical Branch at Galveston, Department of Microbiology and Immunology, Galveston, USA ranked fifth with 103 (1.2%) articles. Figure 5 is a visualization map of author collaboration. The map had 6 clusters of names of authors. Each cluster represents a research group working on particular pathogen(s).
Fig. 5

Network visualization map of author collaboration. Cluster of authors having similar cluster color most probably represents a closely related research group

Network visualization map of author collaboration. Cluster of authors having similar cluster color most probably represents a closely related research group

Publication activity on each disease

Table 6 shows the number of retrieved articles for each type of disease. Due to the presence of articles that might have discussed more than one pathogen/infectious disease at the same time, the total percentages exceeded 100%. Publications on SARS (3379; 39.2%) ranked first in quantity followed by those on Ebola (2355; 27.3%) and Crimean-Congo (766; 8.9%). Geographical distribution of research publications on SARS, Ebola, Crimean – Congo, and MERS were mapped and presented in Figs. 6, 7, 8 and 9. The annual growth of publications showed that publications on SARS exhibited a sharp peak in 2003, publications on Ebola exhibited a sharp peak in 2014, and publications on MERS exhibited a clear rise starting from 2012 (Fig. 10a and b).
Table 6

Number of publications on each disease

RankDiseaseFrequency% h-index
1st SARS337939.2115
2nd Ebola235527.3120
3rd Crimean – Congo7668.954
4th Rift valley fever6787.961
5th MERS6137.151
6th Nipah3824.463
7th Marburg3544.155
8th Lassa2853.347

SARS Severe acute respiratory syndrome, MERS Middle East respiratory syndrome, h-index Hirsch index

Due to overlap, total percentage exceeded 100%

Fig. 6

Geographical distribution of publications on SARS. The map was created using ArcGIS 10.1 program. Regions with no colors in the map have no available data

Fig. 7

Geographical distribution of publications on Ebola. The map was created using ArcGIS 10.1 program. Regions with no colors in the map have no available data

Fig. 8

Geographical distribution of publications on Ebola. The map was created using ArcGIS 10.1 program. Regions with no colors in the map have no available data

Fig. 9

Geographical distribution of publications on MERS. The map was created using ArcGIS 10.1 program. Regions with no colors in the map have no available data

Fig. 10

a Growth of publication on Ebola and SARS (1996–2015). b Growth of publications on “Crimean – Congo, Marburg, Lassa fever, Middle East respiratory syndrome (MERS), Nipah, and Rift Valley fever” (1996–2015)

Number of publications on each disease SARS Severe acute respiratory syndrome, MERS Middle East respiratory syndrome, h-index Hirsch index Due to overlap, total percentage exceeded 100% Geographical distribution of publications on SARS. The map was created using ArcGIS 10.1 program. Regions with no colors in the map have no available data Geographical distribution of publications on Ebola. The map was created using ArcGIS 10.1 program. Regions with no colors in the map have no available data Geographical distribution of publications on Ebola. The map was created using ArcGIS 10.1 program. Regions with no colors in the map have no available data Geographical distribution of publications on MERS. The map was created using ArcGIS 10.1 program. Regions with no colors in the map have no available data a Growth of publication on Ebola and SARS (1996–2015). b Growth of publications on “Crimean – Congo, Marburg, Lassa fever, Middle East respiratory syndrome (MERS), Nipah, and Rift Valley fever” (1996–2015) Country analysis of publications on each disease is shown in Table 7. The USA ranked first in productivity in research pertaining to Mraburg, Ebola, Rift valley fever, Nipah, MERS, and Lassa. However, China ranked first in SARS while Turkey ranked first in Crimean-Congo fever. For SARS virus, half of the top 10 list were Asian countries while for Nipah virus, four Asian countries appeared in the top 10 list; Malaysia, Bangladesh, Japan, and Singapore. The USA, the UK, and Germany appeared in the top 10 productive list for all diseases. China and/or Hong Kong were in the top 10 productive list for Ebola, MERS, and SARS. Analysis of h-index of publications pertaining to each disease showed that publications on Ebola (120) had the highest h-index followed by SARS (115), Nipah (63) and rift valley fever (61).
Table 7

Top 10 productive countries for each pathogen/infectious disease

SARSFrequency% N = 3379Crimean-CongoFrequency% N = 766MarburgFrequency% N = 354
China81124.0Turkey28837.6USA15443.5
USA78623.3Iran9111.9Germany6518.4
Hong Kong49914.8USA9111.9Canada298.2
Taiwan2768.2UK455.9Japan236.5
Canada2407.1Germany415.4France205.6
Singapore2116.2Greece415.4UK185.1
Germany1674.9France364.7Belgium133.7
UK1313.9Sweden354.6Switzerland133.7
Japan1273.8Russian Fed.273.5South Africa123.4
Netherlands792.3Bulgaria243.1Congo113.1
EbolaFrequency% N = 2355Rift valley feverFrequency% N = 678MERSFrequency% N = 613
USA114748.7USA26338.8USA20132.8
Canada1928.2France12418.3Saudi Arabia9615.7
France1928.2South Africa7511.1China8213.4
Germany1867.9Kenya6810.0UK559.0
UK1606.8Senegal466.8Germany548.8
China1225.2UK416.0Hong Kong457.3
Japan1134.8Saudi Arabia314.6Netherlands447.2
Switzerland662.8Egypt284.1South Korea376.0
Nigeria582.5Germany284.1France274.4
India562.4Netherlands274.0Japan233.8
NipahFrequency% N = 382LassaFrequency% N = 285
USA18648.7USA12343.2
Malaysia8823.0Germany7426.0
Australia6617.3France3411.9
Bangladesh297.6Nigeria3211.2
France256.5Sierra Leone196.7
Canada236.0Guinea176.0
Japan195.0Canada155.3
Germany174.5UK124.2
Singapore164.2Netherlands103.5
UK153.9Belgium93.2
Japan93.2

SARS Severe acute respiratory syndrome, MERS Middle East respiratory

Top 10 productive countries for each pathogen/infectious disease SARS Severe acute respiratory syndrome, MERS Middle East respiratory

Publications on vaccine development

Four hundred seventy-two publications were related to vaccine development. Research activity on vaccine development showed similar trend to overall research activity on the top eight emerging disease (Fig. 11). As expected Vaccine journal (68, 14.4%) ranked first in productivity followed by Journal of Virology (40, 8.5%). The USA was the most productive country in this field with 254 (53.8%) followed distantly by China (70; 14.8%) and Canada (54; 11.4%). Professor Feldmann H. (36; 7.6%) was the most prolific author in this field. Top 20 cited articles on vaccines against studied pathogens/infectious diseases are shown in Table 8. Development of a vaccine against Ebola, SARS, Nipah, or Lassa was the main focus of vaccine – related studies. Ten articles in the top 20 list were about Ebola, five were about SARS, two were about Marburg, one was about Nipah, one about Lassa fever, and one article was about both Ebola and Marburg viruses.
Fig. 11

Growth of publications on vaccine research on emerging pathogens (1996–2015)

Table 8

Top 20 cited articles on vaccine – related publication on studied diseases

TitleYearJournalNumber of citations
Development of a preventive vaccine for Ebola virus infection in primates [111]2000Nature490
Accelerated vaccination for Ebola virus haemorrhagic fever in non-human primates [112]2003Nature336
Live attenuated recombinant vaccine protects nonhuman primates against Ebola and Marburg viruses [113]2005Nature Medicine320
A DNA vaccine induces SARS coronavirus neutralization and protective immunity in mice [114]2004Nature320
Severe acute respiratory syndrome coronavirus spike protein expressed by attenuated vaccinia virus protectively immunizes mice [115]2004PNAS232
Marburg virus vaccines based upon alphavirus replicons protect guinea pigs and nonhuman primates [116]1998Virology199
Effects of a SARS-associated coronavirus vaccine in monkeys [117]2003Lancet168
Ebola virus: From discovery to vaccine [118]2003Nature Reviews Immunology168
Evaluation in nonhuman primates of vaccines against Ebola virus [119]2002Emerging Infectious Diseases166
Severe acute respiratory syndrome vaccine development: Experiences of vaccination against avian infectious bronchitis coronavirus [120]2003Avian Pathology152
Ebola virus-like particle-based vaccine protects nonhuman primates against lethal Ebola virus challenge [121]2007Journal of Infectious Diseases149
Efficacy and effectiveness of an rVSV-vectored vaccine expressing Ebola surface glycoprotein: interim results from the Guinea ring vaccination cluster-randomised trial [122]2015The Lancet137
DNA vaccines expressing either the GP or NP genes of Ebola virus protect mice from lethal challenge [123]1998Virology136
A DNA vaccine for Ebola virus is safe and immunogenic in a phase I clinical trial [124]2006Clinical and Vaccine Immunology134
Single-injection vaccine protects nonhuman primates against infection with Marburg virus and three species of Ebola virus [125]2009Journal of Virology127
Development of a new vaccine for the prevention of Lassa fever [126]2005PLoS Medicine115
Receptor-binding domain of SARS-CoV spike protein induces highly potent neutralizing antibodies: Implication for developing subunit vaccine [127]2004Biochemical and Biophysical Research Communications115
Correlates of protective immunity for Ebola vaccines: Implications for regulatory approval by the animal rule [128]2009Nature Reviews Microbiology105
Nipah Virus: Vaccination and Passive Protection Studies in a Hamster Model [129]2004Journal of Virology105
Recombinant modified vaccinia virus Ankara expressing the spike glycoprotein of severe acute respiratory syndrome coronavirus induces protective neutralizing antibodies primarily targeting the receptor binding region [130]2005Journal of Virology101

PNAS Proceedings of the National Academy of Sciences

Growth of publications on vaccine research on emerging pathogens (1996–2015) Top 20 cited articles on vaccine – related publication on studied diseases PNAS Proceedings of the National Academy of Sciences

Discussion

This study was carried out to assess worldwide research activity on emerging pathogens expected to cause serious fatal outbreaks in the near future. Several bibliometric studies were carried out and published on infectious diseases in general or on a specific disease such as Ebola [36], SARS [37, 38], and Nipah [39, 40]. However, no bibliometric study was carried out on research activity on a group of viruses suspected of potential outbreaks in the near future. These emerging pathogens need to be looked at as one unit since most of them have similar pathogenic and epidemiologic characteristics. Our study showed that research activity on emerging pathogens showed an uprising peak in 2003 due to the outbreak of SARS at that time, particularly in Asian countries. Another uprising peak of publications was seen in 2014 due to outbreak of Ebola virus and to a lesser extent the outbreak of MERS-CoV. Between the two peaks of SARS and Ebola, there was a high plateau of research activity that is most probably due to the rise in the number of publications about the remaining five diseases. International collaboration in research on emerging diseases was high possibly due to spread of these viral infectious outbreaks across borders. Furthermore, the relatively high h-index of 173 indicates that research on these diseases is receiving a high number of citations suggestive of importance and large number of readers. A study concluded that the h-index can be used to estimate the potential impact of a pathogen and to rank individual pathogens or types of pathogens [41]. In our study, Ebola and SARS had the highest h-indices which necessitate prioritizing these two pathogens in planning for the future preventive policies. The finding that Professor Feldmann, R. was the most prolific researcher was confirmed by other bibliometric studies [34]. Infectious diseases like acquired immune deficiency syndrome (AIDS), malaria, and tuberculosis are major infectious diseases affecting millions of people and draining billions of US dollars of research funds [42, 43]. Research activity on malaria, tuberculosis, and AIDS have made some success in controlling the spread of such diseases and in developing potent and effective therapies. For example, the discovery of the effective drug artemisinin has greatly changed the therapeutic approach of malaria and enhanced control and eradication of malaria [44-46]. Actually, the Chinese scientist Tu Youyou, who discovered the drug artemisinin, was awarded Nobel Prize in Medicine in 2015 [47, 48]. In case of the top eight emerging pathogens which are expected to cause serious outbreaks in the near future, no effective therapy is available so far and no preventive measures are being developed to face a sudden worldwide outbreak of these infectious diseases. Calls for strengthening preparedness for Crimean-Congo [49] and MERS-coronavirus [50-52] have been published. The WHO stated that research remains the cornerstone for reversing trends of serious outbreaks of certain viral diseases and that research will improve methods for surveillance, prevention, and control. Unfortunately, the increased funding for AIDS created a shortage of funding for other infectious diseases [53]. A study that compared research output and citations among three infectious diseases indicated that funding has a positive influence on research output and citations for a particular disease [54]. In most bibliometric studies, the USA, the UK, Germany, and other European countries appeared in the most active list of publications. However, in this study, additional countries in Asia and Africa, and Middle east did appear in the top active list for each disease emphasizing the global threat of such infectious diseases. A bibliometric analysis on infectious diseases reported that USA ranked as top productive country but China is increasing its place among the top five countries [55]. Actually, many countries start to focus their research efforts on infectious diseases as a national health burden [56]. The participation of Asian, African, and Middle eastern countries in research activity pertaining to top eight emerging infectious diseases was clear and prominent. Outbreaks of emerging viral infectious diseases have been commonly reported from many countries in Africa, Asia, and Africa [52, 57–62]. For example, MERS-CoV and Crimean-Congo fever have been reported in more than 20 countries, mostly in Asia, Africa, and Middle East [63-77]. The outbreaks of SARS in Hong Kong and China had a great economic and public health impact [78-80]. Many of these infectious diseases were initially reported in Africa, such as Ebola, Lassa fever, and Rift valley fever [81-86]. The Marburg virus was initially reported in Germany and spread to other neighboring countries and that is why China and Hong Kong did not show in the top productive countries on Marburg disease. Our study has few limitations that need to be stated. Scopus is a large and comprehensive database but not all journals are indexed in Scopus and therefore, some articles about the studied diseases published in un-indexed journals might be missed. Furthermore, the keywords used might not be 100% accurate although the validity of the search query was tested by manual review of 10% of retrieved articles, false positive and false negative results remain a possibility. The ranking of countries and institutions based on citations did not take into account self-citations which affects the validity of results. These limitations and others are found in most bibliometric studies [71, 87–91]. This study focused only on the top eight emerging infectious diseases expected to cause severe outbreaks in the near future. However, the other three serious infectious diseases which in include Zaika were not included in the analysis. Finally, we should always bear in mind that no database is perfect and even might have some bias by over-representing journals with English language. Therefore, bibliometric results should always be considered with caution [92].

Conclusions

The number of publications on diseases expected to cause severe outbreaks in the near future showed two clear peaks in the past two decades; one for SARS and one for Ebola. The clear increase in number of publication on the studied diseases during relatively short period of time is an indication of how science and health information flows rapidly across borders to create similar concerns among different countries. Bibliometric methods can be used to prioritize efforts and direct research funds to help control emerging diseases [41]. Although the USA is leading the research on these diseases, the share of Asian, African, and Middle Eastern countries was apparent. International collaboration in research on these diseases was relatively high for most countries. Search for an effective vaccine was clearly strong for Ebola and SARS.
  118 in total

1.  Comparison of the h-Index Scores Among Pathogens Identified as Emerging Hazards in North America.

Authors:  R Cox; K M McIntyre; J Sanchez; C Setzkorn; M Baylis; C W Revie
Journal:  Transbound Emerg Dis       Date:  2014-04-16       Impact factor: 5.005

2.  Development of a preventive vaccine for Ebola virus infection in primates.

Authors:  N J Sullivan; A Sanchez; P E Rollin; Z Y Yang; G J Nabel
Journal:  Nature       Date:  2000-11-30       Impact factor: 49.962

3.  Rift Valley fever outbreak--Kenya, November 2006-January 2007.

Authors: 
Journal:  MMWR Morb Mortal Wkly Rep       Date:  2007-02-02       Impact factor: 17.586

4.  Fruit bats as reservoirs of Ebola virus.

Authors:  Eric M Leroy; Brice Kumulungui; Xavier Pourrut; Pierre Rouquet; Alexandre Hassanin; Philippe Yaba; André Délicat; Janusz T Paweska; Jean-Paul Gonzalez; Robert Swanepoel
Journal:  Nature       Date:  2005-12-01       Impact factor: 49.962

5.  DNA vaccines expressing either the GP or NP genes of Ebola virus protect mice from lethal challenge.

Authors:  L Vanderzanden; M Bray; D Fuller; T Roberts; D Custer; K Spik; P Jahrling; J Huggins; A Schmaljohn; C Schmaljohn
Journal:  Virology       Date:  1998-06-20       Impact factor: 3.616

Review 6.  Qinghaosu (artemisinin): an antimalarial drug from China.

Authors:  D L Klayman
Journal:  Science       Date:  1985-05-31       Impact factor: 47.728

7.  The SARS (Severe Acute Respiratory Syndrome) pandemic in Hong Kong: effects on the subjective wellbeing of elderly and younger people.

Authors:  Anna L D Lau; Iris Chi; Robert A Cummins; Tatia M C Lee; Kee-L Chou; Lawrence W M Chung
Journal:  Aging Ment Health       Date:  2008-11       Impact factor: 3.658

8.  Evaluation in nonhuman primates of vaccines against Ebola virus.

Authors:  Thomas W Geisbert; Peter Pushko; Kevin Anderson; Jonathan Smith; Kelly J Davis; Peter B Jahrling
Journal:  Emerg Infect Dis       Date:  2002-05       Impact factor: 6.883

Review 9.  Has Rift Valley fever virus evolved with increasing severity in human populations in East Africa?

Authors:  Marycelin Baba; Daniel K Masiga; Rosemary Sang; Jandouwe Villinger
Journal:  Emerg Microbes Infect       Date:  2016-06-22       Impact factor: 7.163

10.  Epidemiological determinants of spread of causal agent of severe acute respiratory syndrome in Hong Kong.

Authors:  Christl A Donnelly; Azra C Ghani; Gabriel M Leung; Anthony J Hedley; Christophe Fraser; Steven Riley; Laith J Abu-Raddad; Lai-Ming Ho; Thuan-Quoc Thach; Patsy Chau; King-Pan Chan; Tai-Hing Lam; Lai-Yin Tse; Thomas Tsang; Shao-Haei Liu; James H B Kong; Edith M C Lau; Neil M Ferguson; Roy M Anderson
Journal:  Lancet       Date:  2003-05-24       Impact factor: 79.321

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  65 in total

Review 1.  A review of quality of life (QOL) assessments and indicators: Towards a "QOL-Climate" assessment framework.

Authors:  Ronald C Estoque; Takuya Togawa; Makoto Ooba; Kei Gomi; Shogo Nakamura; Yasuaki Hijioka; Yasuko Kameyama
Journal:  Ambio       Date:  2018-09-11       Impact factor: 5.129

2.  Global Research Activity on Elder Abuse: A Bibliometric Analysis (1950-2017).

Authors:  Waleed M Sweileh
Journal:  J Immigr Minor Health       Date:  2021-02

3.  The Unstructured Paramyxovirus Nucleocapsid Protein Tail Domain Modulates Viral Pathogenesis through Regulation of Transcriptase Activity.

Authors:  Vidhi D Thakkar; Robert M Cox; Bevan Sawatsky; Renata da Fontoura Budaszewski; Julien Sourimant; Katrin Wabbel; Negar Makhsous; Alexander L Greninger; Veronika von Messling; Richard K Plemper
Journal:  J Virol       Date:  2018-03-28       Impact factor: 5.103

4.  Axl Can Serve as Entry Factor for Lassa Virus Depending on the Functional Glycosylation of Dystroglycan.

Authors:  Chiara Fedeli; Giulia Torriani; Clara Galan-Navarro; Marie-Laurence Moraz; Hector Moreno; Gisa Gerold; Stefan Kunz
Journal:  J Virol       Date:  2018-02-12       Impact factor: 5.103

5.  Angiomotin Counteracts the Negative Regulatory Effect of Host WWOX on Viral PPxY-Mediated Egress.

Authors:  Jingjing Liang; Gordon Ruthel; Cari A Sagum; Mark T Bedford; Sachdev S Sidhu; Marius Sudol; Chaitanya K Jaladanki; Hao Fan; Bruce D Freedman; Ronald N Harty
Journal:  J Virol       Date:  2021-02-03       Impact factor: 5.103

6.  Lectin Affinity Plasmapheresis for Middle East Respiratory Syndrome-Coronavirus and Marburg Virus Glycoprotein Elimination.

Authors:  Benjamin Koch; Patricia Schult-Dietrich; Stefan Büttner; Bijan Dilmaghani; Dario Lohmann; Patrick C Baer; Ursula Dietrich; Helmut Geiger
Journal:  Blood Purif       Date:  2018-04-26       Impact factor: 2.614

7.  Transgene expression in the genome of Middle East respiratory syndrome coronavirus based on a novel reverse genetics system utilizing Red-mediated recombination cloning.

Authors:  Doreen Muth; Benjamin Meyer; Daniela Niemeyer; Simon Schroeder; Nikolaus Osterrieder; Marcel Alexander Müller; Christian Drosten
Journal:  J Gen Virol       Date:  2017-10       Impact factor: 3.891

8.  Rapid Detection of Viral Envelope Lipids Using Lithium Adducts and AP-MALDI High-Resolution Mass Spectrometry.

Authors:  Anh Tran; I Abrrey Monreal; Eugene Moskovets; Hector C Aguilar; Jace W Jones
Journal:  J Am Soc Mass Spectrom       Date:  2021-04-22       Impact factor: 3.109

9.  Landscape of research, production, and regulation in venoms and antivenoms: a bibliometric analysis.

Authors:  José Luis Di Fabio; María de Los Ángeles Cortés Castillo; Elwyn Griffiths
Journal:  Rev Panam Salud Publica       Date:  2021-05-20

10.  Vaccines to Emerging Viruses: Nipah and Hendra.

Authors:  Moushimi Amaya; Christopher C Broder
Journal:  Annu Rev Virol       Date:  2020-09-29       Impact factor: 10.431

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