A Review on Human Monkeypox Virus

 

R. V. Khankari, S. M. Umale, A. S. Patil, T. R. Thanekar

Prof. Ravindra Nikam College of Pharmacy, Gondur, Dhule

*Corresponding Author E-mail: rupaliwani44@gmail.com

 

ABSTRACT:

The human monkeypox is an emerging zoonotic orthopoxvirus with a clinical presentation similar to that of smallpox. It is difficult to differentiate monkeypox from other orthopedic infections, and laboratory diagnosis is the primary component of disease identification and monitoring. However, current diagnostics are time-consuming, and new tests are needed for rapid and precise diagnosis. Most cases have been reported in Central Africa; however, an increasing number of cases have been reported in Europe, the United States of America (USA), Australia, and the United Arab Emirates. Although investigation of the current global outbreak is still ongoing, viral transmission seems to have occurred during crowded events in Spain and Belgium. New therapeutics and vaccines are being deployed for the treatment and prevention of monkeypox, and more research on the epidemiology, biology, and ecology of the virus in endemic areas is required to understand and prevent further global outbreaks.

 

KEYWORDS: Monkeypox, zoonotic, orthopoxvirus

 

 


INTRODUCTION:

Monkeypox is an emerging zoonotic disease in humans that arises from an orthopoxvirus belonging to the Poxviradea family, which is known to have a complex double-stranded DNA.1,2 Human monkeypox infection is observed in smallpox posteradication areas. Monkeypox virus has a propensity to spread among mammals, including humans. The natural host of the monkeypox virus remains largely unknown, but it has been isolated from a wild animal, once from a ropy squirrel in the Democratic Republic of Congo and once from a sooty mangabey in Côte d’Ivoire.3 The incubation period of the monkeypox virus, as seen in human-to-human transmission, is 12 days.4

 

It is believed that the virus is transmitted through respiratory secretions and saliva, or through direct contact with the exudate or crust material of the lesion. Viral shedding through feces is another potential source for the transmission of the virus.1

 

Monkeypox virus has morphologic features similar to other orthopoxviruses, with a size of 200–250 nm, a brick-shaped virus that is enveloped and contains surface tubules along with a dumbell-shaped core component.5 The central region of the genome of the monkeypox virus is 96.3% similar to that of the variola virus, which codes for structural proteins and essential enzymes, and differs substantially from the region of the genome that codes for virulence factors and host range factors.6 The 3.4 to 10% case fatality rate of monkeypox lies between the case fatality rates of variola minor and variola major, which have case fatality rates of 1% and 30%, respectively.1

 

The disease is indigenous to the Democratic Republic of Congo, where the first case was reported in 1970.3 However, numerous cases of monkeypox have been reported in humans and wildlife in Central and West Africa.1 The number of cases of human monkeypox virus has surged in recent years along with an increase in the geographic spread of the disease, as immunity to smallpox vaccination is waning.7,8 In 2017, Nigeria experienced the largest outbreak of monkeypox virus in the West African clade with a 6% fatality rate.3,9,10 Two cases of monkeypox were imported to the United Kingdom (UK) through Nigerian individuals in September 2018, and 1 became the source of nosocomial infections affecting healthcare workers.11 In addition, the monkeypox virus was imported to the United States of America (USA) in 2003 through rodents that were shipped from Ghana and housed with prairie dogs, which became the source of infection in humans.5,10,12,13

 

Two clades of monkeypox viruses have been identified: the West African clade and the Central African clade. The former has a case fatality rate of <1 percent with no report of human-to-human transmission, whereas the latter has a case fatality rate of 11%, and human-to-human transmission has been documented in the Central African clade. The virus that was involved in the US outbreak was considered the West African variant, and the one that involved the Democratic Republic of Congo was the Central African variant.12,13 It has been observed that the Central African clade, also known as the Congo basin clade, is associated with increased morbidity and mortality, human-to-human transmission, and viremia as compared to the West African clade.5,10,13

 

Epidemiology and rising prevalence:

There has been a greater than 10-fold increase in confirmed, probable, and/or possible MPX cases over the past 5 decades, from 48 cases in the 1970s to 520 cases in the 1990s, with the DRC being the country that is most affected 14. In the first decade of the 2000s, MPX cases were only described in 3 countries in Africa but between 2010 and 2019, cases were reported in 7 African countries, which were Cameroon, Central African Republic (CAR), DRC, Liberia, Nigeria, Sierra Leone, and Republic of the Congo15. The collected data suggest that this trend represents actual disease increase and not merely a result of improved surveillance16.

 

MPX was not reported outside Africa until the outbreak in the USA in 2003 when infected rodents were accidentally imported to the USA. Back then, 71 cases of human MPX were identified in 6 states, with 34 laboratory-confirmed cases. During that outbreak, the disease appeared to have a very low rate of person-to-person transmission17. Since then, transportation, sale, and release into the wild of prairie dogs and animals from Africa was prohibited by the CDC and Food and Drug Administration (FDA)18. Therefore, with the geographical spread and further resurgence in areas that had not reported cases of MPX in decades, concern for the public health impact of MPX has been growing even before the present-day outbreaks19.

 

In the UK, from 2018 to 2021, 4 patients were diagnosed with travel-associated MPX with onward transmission to 3 patients20. This marked the first reported household cluster outside Africa. On May 7, 2022, the UK reported another new case of MPX outside Africa in a traveler returning from Nigeria. A few days later, 2 further cases who are part of the same family, which had not traveled and were not linked to the index case from Nigeria, were reported. Since then, multiple cases have been identified, many with no known epidemiological links to the imported case from Nigeria or to the family cluster. What has been observed, however, is that these emerging cases were frequently men who have sex with men (MSM) that presented with symptoms such as a vesicular rash-like illness, lymphadenopathy, and fever21,22. Until June 6, more than 300 cases of MPX have been reported in the UK, and more than 30 cases have been reported in the US23. To date, more than 76 countries not usually endemic to MPXV and in some cases with no established travel link reported cases of the disease, bringing the total to more than 12,261 individuals affected24,25. Fig 1 shows the number of cumulative confirmed cases and number of countries who have reported confirmed cases (Global. health Monkeypox (accessed on 2022 July 18).

 

Fig 1: Number of cumulative confirmed cases and number of countries who have reported confirmed cases.

El Eid R, Allaw F, Haddad SF, Kanj SS (2022) Human monkeypox: A review of the literature. PLOS Pathogens 18(9): e1010768. https://doi.org/10.1371/journal.ppat.1010768

 

While the previous outbreaks were able to be contained, the current cases showed a rapid human-to-human transmission, raising concerns for rapid community spread. Most of the patients did not travel to the endemic areas of Africa, suggesting possible previously underdetected community transmission. In addition, the fact that it occurred in multiple countries during the same period of time suggests multiple sources of introduction and transmission. More thorough investigations are needed to answer these questions associated with this outbreak.

 

Reservoirs and transmission:

Despite its name, monkeys are not the reservoir of MPXV. In fact, monkeys and humans are incidental hosts. The reservoirs are believed to be mainly rodents including squirrels and Gambian rats26.

Animal-to-human transmission of MPX is well documented and usually happens through contact with an infected animal bodily fluid or through a bite27. In a study done based on the 2003 US outbreak, it was suggested that exposure be classified as “noninvasive” (touching an infected animal) or “complex” (invasive bite from an ill animal). Patients with complex exposures were more likely to develop systemic illness compared to those with noninvasive exposure28. The current outbreak has also raised concerns that MPXV could undergo “reverse zoonosis” by infecting wildlife outside of Africa, forming a reservoir that could be a seed for human outbreaks29. However, as of May 24, the European Food Safety Authority have stated that no pets or wild animals had been infected and none have been identified outside of Africa30. Furthermore, surveys of wild animals in Wisconsin and Illinois after the 2003 US outbreak never found any evidence of MPXV and none of the infected humans passed on the disease to other people31. On the other hand, 300 of the infected animals from Ghana and the exposed prairie dogs were never found32. Additionally, researchers have been able to intentionally infect many lab animals, including rabbits, hamsters, guinea pigs, animals that are common household pets32.

 

Human-to-human transmission can usually occur through large respiratory droplets, with prolonged face-to-face contact, close contact with infectious skin lesions, or bodily fluids. Contaminated fomites objects, surfaces, such as living in the same household, sleeping on the same bedding, or eating/drinking from the same dishes of an infected individual are also considered risk factors for viral transmission33. The virus can also cross the placenta from the mother to the fetus34. It has been reported in a significant number of cases including nosocomial and household transmission14,35,36. Although there are questions whether MPXV can be transmitted via the airborne route, there currently exists no evidence to support this. In addition, the fact that many initial clinical presentations lack a prodromal phase and are confined to skin lesions suggests possible limited respiratory transmission and more skin-to-skin contact mode of transmission.

 

Though the cases of MPX associated with sexual intercourse are more likely to be the result of direct contact with skin lesions rather than being sexually transmitted, this latter theory has been postulated after the seminal fluid sampled from some cases was found to be positive for MPXV, with quantification cycle (Cq) values comparable to those obtained for nasopharyngeal swabs37. However, the clinical significance of this remains to be established.

 

Demographic characteristics and risk factors:

A recent systematic review found the weighted average of the median age of MPX infection in Africa has changed from 4 and 5 years in the 1970s and 1980s, respectively, to 21 years old between 2010 and 201919. Males are disproportionately affected19. The 22 studies included in this review reported a heterogeneous number of confirmed cases ranging from 1 to 785. No quality assessment could be performed. The preponderance of MPX cases (around 80% to 96%) have occurred in unvaccinated individuals for smallpox19, with the highest percentage of vaccinated cases (21%) documented in the US outbreak3.

 

During this year’s outbreak, a similar demographic pattern has been observed, where 99% of the reported cases were men with a median age of 37 years and interquartile range of 32 to 43 years38. The preponderance of MPX in this age group might be related to their smallpox vaccine naïve status.

 

Beer and colleagues13 found that historically, the majority of outbreaks of MPX have occurred in rural populations living in small villages (less than 1,000 people) abutting or contained within humid evergreen tropical forests, named the “human–animal interface”. This could explain the observation of the preponderance of cases among young males, as they have been noted to trap and play with small rodents and their carcasses37. Indeed, an investigation into the outbreak in Nigeria from September 2017 through April 2018, which was the largest documented outbreak of MPX in West Africa, demonstrated that the initial cluster of 4 male individuals became ill after killing and eating a captured monkey from the area, which young boys regularly played with 37,39.

 

However, given that the current outbreak does not resemble previously observed outbreaks, the fact that males continue to be disproportionately affected warrants further explanation. Bragazzi and colleagues recently published a pooled analysis of cases up till 7 June 2022; the study revealed that all cases included in the analysis were males that have had unprotected sex with men25. This pattern was similarly observed in an analysis of cases from the UK, whereby sexual health histories identified links to various social encounters involving sexual intercourse, although no single factor or exposure that links the cases has been established40,41. Since unprotected sexual intercourse and sexual promiscuity are behaviors in which any person regardless of gender or sexual orientation can engage in, it remains unclear why MSM are at higher risk. One possibility could simply be the frequency with which this population group engages in these behaviors. Another possibility could be that the virus may be transmitted through sexual intercourse, combined with the observation that unprotected anal intercourse presents a higher likelihood of sexually transmitted infections than does unprotected vaginal intercourse, and therefore could lead to faster transmission among MSM42.

 

Clinical characteristics and diagnosis:

It is important to note that for the cases prior to 2022 outbreak, the key characteristics are similar to the clinical course of ordinary discrete smallpox except for lymphadenopathy that distinguishes MPXV infection from smallpox43. In fact, the incubation period ranges from 5 to 21 days before the development of flu-like prodromal symptoms (e.g., fever, malaise, chills, headache, weakness, lymphadenopathy)1. A person with a complex exposure may have a shorter incubation period than a person with noninvasive exposure30. Following viral entry from any route, the virus replicates at the inoculation site and spreads to the local lymph nodes leading to an initial viremia phase that seeds the virus to other organs44. Over a period of 2 to 3 weeks, lesions typically develop starting from the oropharynx (enanthems), then a macular rash appears on the skin, starting on the face and spreading to the arms and legs, and then to the hands and the feet including palms and soles44. The rash then progress through 4 stages over a period of 2 weeks—macular, papular, vesicular, and pustular—before scabbing over and resolving45. Infected patients may be contagious from the prodromal phase until the last pustule scabs and falls off1.

 

However, during the current outbreak, MPX appears to have a different clinical presentation compared to the previous outbreaks. First, many patients presented initially with rash without reporting having a prodromal phase of lethargy and asthenia, followed by the fever 41,46. Some initial symptoms were confined to the pelvic region including proctitis, instead of starting with a rash on the face and before spreading to the extremities 22,34,47. Several patients who presented with genital lesions had superimposed sexual transmitted infections 41,48. One must maintain a high clinical suspicion after establishing an epidemiological link, while considering other sexual transmitted diseases, as those patients are expected to be seen in regular clinics. Moreover, and because of the variety in the initial rash presentation, a recent call was made for dental surgeons to be vigilant about MPX diagnosis since rash can also occur in the oral cavity49. A recent systematic review and meta-analysis about the clinical spectrum of the current reported MPX cases found that the distribution of the rash in the pelvic area and groins was significantly higher in European studies compared to the African studies, while lymphadenopathy and hospitalization was higher in the African studies50. However, fever, rash with centrifugal spread, pruritis, and lymphadenopathy remain critical clinical findings for MPX diagnosis50. More studies are needed to define the clinical evolution of the disease as most of the data are derived from case reports/case series and mostly from European countries. The clinical picture is helpful in making the diagnosis. PCR is used to confirm the diagnosis given its accuracy and sensitivity51–53. Optimally, as recommended by CDC, samples should be taken from vesicles, pustules, or dry crusts. PCR from blood samples is less sensitive given the short duration of viremia compared to the timing of specimen collection54. However, MPXV PCR was detected in the semen and rectal mucosa of 3 patients from Italy48. In view of the evolution and the variety in the clinical spectrum of the disease, more studies are needed to evaluate the yield of PCR from non-skin sites as the clinical significance in terms of reservoirs and transmission is still to be determined.

 

IgM and IgG ELISA can be used as detection methods, particularly during the early phase of the infection55. The World Health Organization (WHO) recommends that these results should be interpreted carefully with the provided patient’s information that include date of fever onset, rash onset, specimen collection, current status of the rash, and age28. Point-of-care antigen detection for MPXV has been developed and may be used for rapid screening of patients56. However, as orthopoxviruses are serologically cross-reactive, antigen and antibody detection methods are not specific to MPX and are therefore not recommended for diagnosis or case investigation in resource-limited settings.55,57. Viral culture is not recommended as a routine diagnostic procedure58.

 

Case definitions:

Case definitions are used for surveillance purposes to rapidly identify clusters and routes of transmission but should not be used to guide clinical management. These definitions are not standardized across sources and can be updated as more specific information becomes available.

 

Treatment and prevention:

There is no treatment currently available for human MPX and management remains supportive. Brincidofovir—a prodrug of cidofovir—and tecovirimat are 2 orally bioavailable drugs approved in the USA for the treatment of smallpox in case of a bioterrorism event 59–61. These drugs have demonstrated efficacy against orthopoxviruses (including MPX) in animal models but were not assessed in human trials. Documented use of tecovirimat in the literature for complicated vaccinia and cowpox has been reported, with successful resolution and no concerning side effects62,63. A case series of 7 patients from the UK diagnosed with MPX between 2018 and 2021 reported that treatment with either brincidofovir or tecovirimat resulted in transient reductions in MPX viral PCR cycle thresholds, but these improvements were not durable or consistent between patients23. The significance of PCR positivity and threshold in MPX is still unclear, however. Randomized controlled trials are needed to determine whether the effects seen were attributed to treatment with these medications. Despite the potential use for antiviral drugs, symptomatic and supportive treatment remain the basis of management of MPX infection. Antiviral therapy may be indicated for patients with severe disease, immunocompromised, or in whom the infection is in atypical sites (eyes, mouth) or in the genital area40.

 

There is evidence that smallpox vaccination with vaccinia virus is protective against MPX disease64,65. This was demonstrated in a study where human-to-human transmission was 5-fold less in vaccinated individuals (7.5%) compared to unvaccinated individuals (1.3%)66. However, since the eradication of smallpox in 1980, routine vaccination against smallpox was no longer indicated for the past 4 decades19. Thus, this cross-protective immunity from smallpox will be limited to older persons, and the worldwide population less than 40 years of age will no longer benefit from this protective immunity. During this current outbreak, WHO has issued that newer-generation smallpox vaccine (second or third) can be used as preexposure prophylaxis for healthcare workers at risks, and postexposure prophylaxis ideally within 4 days of first exposure67. Little is known about the efficacy of the vaccine and more clinical evidence is needed to provide strong recommendations68. Two vaccines are currently licensed by the US FDA for smallpox: ACAM2000 (IMVAMUNE) and JYNNEOS (IMVANEX). The effectiveness of these vaccines against other orthopoxviruses such as MPX could be inferred from observational studies; however, only JYNNEOS demonstrated efficacy against MPX in a clinical study69. At present, the Advisory Committee on Immunization Practices (ACIP) recommends that people who have a high risk of exposure to MPX get vaccinated with either ACAM2000 or JYNNEOS as preexposure prophylaxis69.

 

In addition, the role of infection control strategies cannot be overstated. Rapid identification and appropriate isolation of patients, use of personal protective equipment by healthcare workers, hand hygiene and thorough contact tracing, including monitoring for secondary cases during the entire incubation period are the cornerstones of limiting the spread of disease. During the current outbreak, one hospital using these interventions alone was able to protect medical staff and the broader community from further disease transmission 70. Poxviruses are particularly resistant to drying and have increased temperature and pH tolerance enabling them to develop prolonged environmental persistence. Cleaning of the room where a MPX case was present should be done without stirring a lot of dust or causing the formation of aerosols and should use regular cleaning products followed by disinfection using a 0.1% sodium hypochlorite (NaClO). Contaminated clothing and linens should be collected and washed at 60°C cycles70.

 

There is still no strong evidence to suggest airborne transmission of MPXV, and this creates an unclarity in terms of infection control measures and implications for isolation and contact tracing. Thus, a recent guidance from the CDC recommends that contacts (including healthcare personals) should be instructed to monitor for symptoms for 21 days after their last exposure but should continue to carry their routine daily activities without isolation while refraining from donating blood, cells, tissue, and semen and refraining from breast feeding or engaging in sexual activities while under surveillance70. This indeed poses a challenge in healthcare facilities until more evidence is gathered about the virus mode of transmission, but for the time being, avoiding close contact of the exposed people with humans and pets is essential. Public health authorities have a major role in promptly identifying infected patients, isolating, treating, and administering vaccine when recommended. Innovative ways on monitoring the close contact to limit further spread of the virus are highly desirable. As with COVID-19, early actions allow a rapid response to the outbreak and have a potential great impact on containing the virus70. The microbiology laboratories have a great role in containing the outbreaks where there has been an increasing demand for their services, requiring accurate and rapid diagnostic testing tools70.

 

CONCLUSIONS:

MPX is currently gaining attention worldwide, and people are concerned if these outbreaks can become a pandemic. For now, key gap information needs to be further studied to provide better answers such as the exact mode of transmission and the role of animal reservoirs. Sexual modes of transmission, genetic mutations, waning immunity from smallpox, and previous undetected cases of MPX warrant further investigation. Doctors should also keep in mind the atypical presentations and rely on the WHO and CDC criteria to guide patients and help in containing outbreaks.

 

REFERENCES:

1.      Sklenovská N, Van Ranst M. Emergence of monkeypox as the most important          orthopoxvirus infection in humans. Front Public Health. 2018;6:241.

2.      Jezek Z, Marennikova SS, Mutumbo M, et al. Human monkeypox: a study of 2,510 contacts of 214 patients. J Infect Dis. 1986;154:551–5.

3.      Huhn GD, Bauer AM, Yorita K, et al. Clinical characteristics of human monkeypox, and risk factors for severe disease. Clin Infect Dis. 2005;41:1742–51.

4.      Durski KN, McCollum AM, Nakazawa Y, et al. Emergence of Monkeypox − West and Central Africa, 1970-2017. MMWR Morb Mortal Wkly Rep. 2018;67:306–10.

5.      Di Giulio DB, Eckburg PB. Human monkeypox: an emerging zoonosis. Lancet Infect Dis. 2004;4:15–25.

6.      McCollum AM, Damon IK. Human monkeypox. Clin Infect Dis. 2014;58:260–7.

7.      Hutin YJ, Williams RJ, Malfait P, et al. Outbreak of human monkeypox, Democratic Republic of Congo, 1996 to 1997. Emerg Infect Dis. 2001;7:434–8

8.      Likos AM, Sammons SA, Olson VA, et al. A tale of two clades: monkeypox viruses. J Gen Virol. 2005;86:2661–72.

9.      Reynolds MG, Damon IK. Outbreaks of human monkeypox after cessation of smallpox vaccination. Trends Microbiol. 2012;20:80–7.

10.   Yinka-Ogunleye A, Aruna O, Ogoina D, et al. Reemergence of Human Monkeypox in Nigeria, 2017. Emerg Infect Dis. 2018;24:1149–51.

11.   Jezek Z, Szczeniowski M, Paluku KM, et al. Human monkeypox: clinical features of 282 patients. J Infect Dis. 1987;156:293–8.

12.   Vaughan A, Aarons E, Astbury J, et al. Human-to-human transmission of monkeypox virus, United Kingdom, October 2018. Emerg Infect Dis. 2020;26:782–5.

13.   Beer EM, Rao VB. A systematic review of the epidemiology of human monkeypox outbreaks and implications for outbreak strategy. PLoS Negl Trop Dis. 2019;13:e0007791.

14.   Bunge EM, Hoet B, Chen L, Lienert F, Weidenthaler H, Baer LR, et al. The changing epidemiology of human monkeypox—A potential threat? A systematic review. PLoS Negl Trop Dis. 2022;16(2):e0010141. pmid:35148313

15.   Hoff NA, Doshi RH, Colwell B, Kebela-Illunga B, Mukadi P, Mossoko M, et al. Evolution of a Disease Surveillance System: An Increase in Reporting of Human Monkeypox Disease in the Democratic Republic of the Congo, 2001–2013. Int J Trop Dis Health. 2017;25(2).

16.   Fleischauer AT, Kile JC, Davidson M, Fischer M, Karem KL, Teclaw R, et al. Evaluation of Human-to-Human Transmission of Monkeypox from Infected Patients to Health Care Workers. Clin Infect Dis. 2005;40(5):689–694. pmid:15714414

17.   CDC. African Rodent Importation Ban. 2015. Available from: https://www.cdc.gov/poxvirus/monkeypox/african-ban.html.

18.   Adler H, Gould S, Hine P, Snell LB, Wong W, Houlihan CF, et al. Clinical features and management of human monkeypox: a retrospective observational study in the UK. Lancet Infect Dis. 2022 May 24;0(0). pmid:35623380

19.   (UKHSA) UHSA. Monkeypox cases confirmed in England–latest updates. 2022. Available from: https://www.gov.uk/government/news/monkeypox-cases-confirmed-in-england-latest-updates.

20.   Bragazzi NL, Kong JD, Mahroum N, Tsigalou C, Khamisy-Farah R, Converti M, et al. Epidemiological trends and clinical features of the ongoing monkeypox epidemic: A preliminary pooled data analysis and literature review. J Med Virol. n/a(n/a).

21.   BBC. More than 300 monkeypox cases now found in UK. 2022. Available from: https://www.bbc.com/news/health-61709659.

22.   CDC. 2022 Monkeypox and Orthopoxvirus Outbreak Global Map. 2022. Available from: https://www.cdc.gov/poxvirus/monkeypox/response/2022/world-map.html.

23.   WHO. Multi-country monkeypox outbreak: situation update. 2022. Available from: https://www.who.int/emergencies/disease-outbreak-news/item/2022-DON390#:~:text=Outbreak%20at%20a%20glance,Epidemiological%20investigations%20are%20ongoing.

24.   Nolen LD, Osadebe L, Katomba J, Likofata J, Mukadi D, Monroe B, et al. Introduction of Monkeypox into a Community and Household: Risk Factors and Zoonotic Reservoirs in the Democratic Republic of the Congo. Am J Trop Med Hyg. 2015;93(2):410–415. pmid:26013374

25.   Reynolds MG, Davidson WB, Curns AT, Conover CS, Huhn G, Davis JP, et al. Spectrum of infection and risk factors for human monkeypox, United States, 2003. Emerg Infect Dis. 2007 Sep;13(9):1332–1339. pmid:18252104

26.   Cohen J. Concern grows that human monkeypox outbreak will establish virus in animals outside Africa. 2022. Available from: https://www.science.org/content/article/concern-grows-human-monkeypox-outbreak-will-establish-virus-animals-outside-africa.

27.   ECDC. Monkeypox: ECDC publishes rapid risk assessment. 2022. Available from: https://www.efsa.europa.eu/en/news/monkeypox-ecdc-publishes-rapid-risk-assessment.

28.   CDC. Isolation and Infection Control: Home. 2022. Available from: https://www.cdc.gov/poxvirus/monkeypox/clinicians/infection-control-home.html.

29.   CDC. Potential exposure to person with confirmed human monkeypox infection—United States. 2021. Available from: https://emergency.cdc.gov/han/2021/han00446.asp.

30.   Learned LA, Reynolds MG, Wassa DW, Li Y, Olson VA, Karem K, et al. Extended interhuman transmission of monkeypox in a hospital community in the Republic of the Congo, 2003. Am J Trop Med Hyg. 2005;73(2):428–434. pmid:16103616

31.   Human monkeypox—Kasai Oriental, Democratic Republic of Congo, February 1996-October 1997. MMWR Morb Mortal Wkly Rep. 1997 Dec 12;46(49):1168–1171.

32.   Sklenovská N, Van Ranst M. Emergence of Monkeypox as the Most Important Orthopoxvirus Infection in Humans. Front Public Health. 2018:2018-September-04;6.

33.   WHO. Multi-country monkeypox outbreak: situation update. 2022 [cited 2022 Jul 14]. Available from: https://www.who.int/emergencies/disease-outbreak-news/item/2022-DON393.

34.   Africa W. Weekly Bulletin on Outbreaks and Other Emergencies. 2017 20/10/2017. Report No.

35.   Vivancos R, Anderson C, Blomquist P, Balasegaram S, Bell A, Bishop L, et al. Community transmission of monkeypox in the United Kingdom, April to May 2022. Eurosurveillance. 2022;27(22):2200422. pmid:35656834

36.   Girometti N, Byrne R, Bracchi M, Heskin J, McOwan A, Tittle V, et al. Demographic and clinical characteristics of confirmed human monkeypox virus cases in individuals attending a sexual health centre in London, UK: an observational analysis. Lancet Infect Dis. 2022 Jul 1. pmid:35785793

37.   Jenness SM, Begier EM, Neaigus A, Murrill CS, Wendel T, Hagan H. Unprotected anal intercourse and sexually transmitted diseases in high-risk heterosexual women. Am J Public Health. 2011 Apr;101(4):745–750. pmid:20558790

38.   McCollum AM, Damon IK. Human Monkeypox. Clin Infect Dis. 2013;58(2):260–267. pmid:24158414

39.   Damon IK. Status of human monkeypox: clinical disease, epidemiology and research. Vaccine. 2011 Dec 30;29(Suppl 4):D54–D59. pmid:22185831

40.   Kalthan E, Tenguere J, Ndjapou SG, Koyazengbe TA, Mbomba J, Marada RM, et al. Investigation of an outbreak of monkeypox in an area occupied by armed groups, Central African Republic. Med Mal Infect. 2018 Jun;48(4):263–268. pmid:29573840

41.   Harris E. What to Know About Monkeypox. JAMA. 2022;327(23):2278–2279. pmid:35622356

42.   de Nicolas-Ruanes B, Vivancos MJ, Azcarraga-Llobet C, Moreno AM, Rodriguez-Dominguez M, Berna-Rico ED, et al. Monkeypox virus case with maculopapular exanthem and proctitis during the Spanish outbreak in 2022. J Eur Acad Dermatol Venereol. 2022;36(8). pmid:35675097

43.   Antinori A, Mazzotta V, Vita S, Carletti F, Tacconi D, Lapini LE, et al. Epidemiological, clinical and virological characteristics of four cases of monkeypox support transmission through sexual contact, Italy, May 2022. Eurosurveillance. 2022;27(22):2200421.

44.   Murphy S. Monkeypox Br Dent J. 2022 Jun;232(11):760.

45.   Benites-Zapata V, Ulloque-Badaracco J, Alarcon-Braga E, Hernandez-Bustamante E, Mosquera M, Bonilla-Aldana D, et al. Clinical Features, Hospitalisation and Deaths associated with Monkeypox: A systematic review and meta-analysis 2022.

46.   Li Y, Olson VA, Laue T, Laker MT, Damon IK. Detection of monkeypox virus with real-time PCR assays. J Clin Virol. 2006 Jul;36(3):194–203. pmid:16731033

47.   Shchelkunov SN, Shcherbakov DN, Maksyutov RA, Gavrilova EV. Species-specific identification of variola, monkeypox, cowpox, and vaccinia viruses by multiplex real-time PCR assay. J Virol Methods. 2011 Aug;175(2):163–169. pmid:21635922

48.   Kulesh DA, Loveless BM, Norwood D, Garrison J, Whitehouse CA, Hartmann C, et al. Monkeypox virus detection in rodents using real-time 3′-minor groove binder TaqMan® assays on the Roche LightCycler. Lab Invest. 2004;84(9):1200–1208. pmid:15208646

49.   CDC. Test Procedure: Monkeypox virus Generic Real-Time PCR Test. 2022. Available from: https://www.cdc.gov/poxvirus/monkeypox/pdf/PCR-Diagnostic-Protocol-508.pdf.

50.   Karem KL, Reynolds M, Braden Z, Lou G, Bernard N, Patton J, et al. characterization of acute-phase humoral immunity to monkeypox: use of immunoglobulin M enzyme-linked immunosorbent assay for detection of monkeypox infection during the 2003 North American outbreak. Clin Diagn Lab Immunol. 2005;12(7):867–872. pmid:16002637

51.   Townsend MB, MacNeil A, Reynolds MG, Hughes CM, Olson VA, Damon IK, et al. Evaluation of the Tetracore Orthopox BioThreat® antigen detection assay using laboratory grown orthopoxviruses and rash illness clinical specimens. J Virol Methods. 2013 Jan;187(1):37–42. pmid:22981983

52.   Kitamoto N, Kobayashi T, Kato Y, Wakamiya N, Ikuta K, Tanaka T, et al. Preparation of monoclonal antibodies cross-reactive with orthopoxviruses and their application for direct immunofluorescence test. Microbiol Immunol. 2005;49(3):219–225. pmid:15781995

53.   CDC. Laboratory Procedures and Biosafety Guidelines. 2022. Available from: https://www.cdc.gov/poxvirus/monkeypox/lab-personnel/lab-procedures.html#:~:text=Culture%2Dbased%20testing%20for%20monkeypox,and%20BSL%2D3%20containment%20facilities.

54.   Grosenbach DW, Honeychurch K, Rose EA, Chinsangaram J, Frimm A, Maiti B, et al. Oral Tecovirimat for the Treatment of Smallpox. N Engl J Med. 2018 Jul 5;379(1):44–53. pmid:29972742

55.   Chittick G, Morrison M, Brundage T, Nichols WG. Short-term clinical safety profile of brincidofovir: A favorable benefit-risk proposition in the treatment of smallpox. Antiviral Res. 2017 Jul;143:269–277. pmid:28093339

56.   FDA. FDA approves drug to treat smallpox. 2021. Available from: https://www.fda.gov/drugs/drug-safety-and-availability/fda-approves-drug-treat-smallpox.

57.   Vora S, Damon I, Fulginiti V, Weber SG, Kahana M, Stein SL, et al. Severe eczema vaccinatum in a household contact of a smallpox vaccinee. Clin Infect Dis. 2008 May 15;46(10):1555–1561. pmid:18419490

58.   Lindholm DA, Fisher RD, Montgomery JR, Davidson W, Yu PA, Yu YC, et al. Preemptive Tecovirimat Use in an Active Duty Service Member Who Presented With Acute Myeloid Leukemia After Smallpox Vaccination. Clin Infect Dis. 2019 Nov 27;69(12):2205–2207. pmid:30959520

59.   Heymann DL, Szczeniowski M, Esteves K. Re-emergence of monkeypox in Africa: a review of the past six years. Br Med Bull. 1998;54(3):693–702. pmid:10326294

60.   Hammarlund E, Lewis MW, Carter SV, Amanna I, Hansen SG, Strelow LI, et al. Multiple diagnostic techniques identify previously vaccinated individuals with protective immunity against monkeypox. Nat Med. 2005 Sep;11(9):1005–1011. pmid:16086024

61.   Rimoin AW, Mulembakani PM, Johnston SC, Lloyd Smith JO, Kisalu NK, Kinkela TL, et al. Major increase in human monkeypox incidence 30 years after smallpox vaccination campaigns cease in the Democratic Republic of Congo. Proc Natl Acad Sci U S A. 2010 Sep 14;107(37):16262–16267. pmid:20805472

62.   WHO. Vaccines and immunization for monkeypox: Interim guidance, 14 June 2022. 2022. Available from: https://www.who.int/publications/i/item/who-mpx-immunization-2022.1.

63.   Petersen E, Zumla A, Hui DS, Blumberg L, Valdoleiros SR, Amao L, et al. Vaccination for monkeypox prevention in persons with high-risk sexual behaviours to control on-going outbreak of monkeypox virus clade 3. Int J Infect Dis. pmid:35788415

64.   CDC. Monkeypox and Smallpox Vaccine Guidance. 2022. Available from: https://www.cdc.gov/poxvirus/monkeypox/clinicians/smallpox-vaccine.html.

65.   Costello V, Sowash M, Gaur A, Cardis M, Pasieka H, Wortmann G, et al. Imported Monkeypox from International Traveler, Maryland, USA, 2021. Emerg Infect Dis 2022;28(5):1002–1005. pmid:35263559

66.   Fv Rheinbaben, Gebel J, Exner M, Schmidt A. Environmental resistance, disinfection, and sterilization of poxviruses. In: Mercer AA, Schmidt A, Weber O, editors. Poxviruses. Basel: Birkhäuser Basel; 2007. p. 397–405.

67.   (PHE) PHE. Monkeypox: Guidance for environmental cleaning and decontamination. 2018. Available from: https://assets.publishing.service.gov.uk/government/uploads/system/uploads/attachment_data/file/1079779/Monkeypox_Guidance__cleaning_decontamination.pdf.

68.   CDC. Monitoring People Who Have Been Exposed. 2022 [cited 2022 Jul 17]. Available from: https://www.cdc.gov/poxvirus/monkeypox/clinicians/monitoring.html.

69.   Ayouni I, Maatoug J, Dhouib W, Zammit N, Fredj SB, Ghammam R, et al. Effective public health measures to mitigate the spread of COVID-19: a systematic review. BMC Public Health. 2021 May 29;21(1):1015. pmid:34051769

70.   Aden TA, Blevins P, York SW, Rager S, Hutson DBCL, Lowe D, et al. Rapid Diagnostic Testing for Response to the Monkeypox Outbreak—Laboratory Response. Network. 2022(71):904–907.

 

 

 

 

Received on 09.11.2022           Modified on 14.12.2022

Accepted on 02.01.2023   ©Asian Pharma Press All Right Reserved

Asian J. Res. Pharm. Sci. 2023; 13(1):56-62.

DOI: 10.52711/2231-5659.2023.00010