Real-world utility of serological tests in patients with suspected scrub typhus in the Republic of Korea: A single-center, retrospective, observational study

Seulki Kim , A Reum Kim , Seungjin Lim , Su Jin Lee , Moonsuk Bae

Asian Pacific Journal of Tropical Medicine ›› 2024, Vol. 17 ›› Issue (6) : 273 -280.

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Asian Pacific Journal of Tropical Medicine ›› 2024, Vol. 17 ›› Issue (6) :273 -280. DOI: 10.4103/apjtm.apjtm_815_23
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Real-world utility of serological tests in patients with suspected scrub typhus in the Republic of Korea: A single-center, retrospective, observational study
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Abstract

Objective: Serological tests are widely used for scrub typhus diagnosis; however, their limitations are evident. This study aims to assess their practical value in clinical settings.

Methods: We analyzed the data of adult patients with suspected scrub typhus who visited a tertiary care hospital in the Republic of Korea from September to December from 2019 to 2021. The included patients had an acute fever and at least one of the following ten secondary findings: myalgia, skin rash, eschar, headache, thrombocytopenia, increased liver enzyme levels, lymphadenopathy, hepatomegaly, splenomegaly, and pleural effusion. The diagnoses were grouped as scrub typhus or other diseases by two infectious disease physicians.

Results: Among 136 patients who met the eligibility criteria, 109 had scrub typhus and 27 had different diseases. Single and paired total antibodies using immunofluorescence assay (IFA), and total antibodies using immunochromatography-based rapid diagnostic testing (ICT) were measured in 98%, 22%, and 75% of all patients, respectively. Confirmation using paired samples for scrub typhus was established at a median of 11 [interquartile range (IQR) 10-16] days following the first visit. Among the 82 admitted patients, the median admission time was 9 (IQR 7-13) days. According to IFA, 58 (55%) patients with scrub typhus had total immunoglobulin titers ≥1:320, while 23 (85%) patients with other disease had titers < 1:320. Positive ICT results were observed in 64 (74%) patients with scrub typhus and 10 (67%) patients with other diseases showed negative ICT results.

Conclusions: Serological testing for scrub typhus is currently insufficient for decision-making in clinical practice.

Keywords

Scrub typhus / Serological test / Immunofluorescence assay / Immunochromatography / Rapid detecting test

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Seulki Kim, A Reum Kim, Seungjin Lim, Su Jin Lee, Moonsuk Bae. Real-world utility of serological tests in patients with suspected scrub typhus in the Republic of Korea: A single-center, retrospective, observational study. Asian Pacific Journal of Tropical Medicine, 2024, 17 (6) : 273-280 DOI:10.4103/apjtm.apjtm_815_23

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References

[1]

Xu G, Walker DH, Jupiter D, Melby PC, Arcari CM. A review of the global epidemiology of scrub typhus. PLoS Negl Trop Dis 2017; 11(11): e0006062.

[2]

Kim YS, Kim DM, Yoon NR, Jang MS, Kim CM. Effects of rifampin and doxycycline treatments in patients with uncomplicated scrub typhus: An open-label, randomized, controlled trial. Clin Infect Dis 2018; 67(4): 600-605.

[3]

Rao PN, van Eijk AM, Choubey S, Ali SZ, Dash A, Barla P, et al. Dengue, chikungunya, and scrub typhus are important etiologies of non-malarial febrile illness in Rourkela, Odisha, India. BMC Infect Dis 2019; 19(1): 572.

[4]

Tran HTD, Schindler C, Pham TTT, Vien MQ, Do HM, Ngo QT, et al. Simple clinical and laboratory predictors to improve empirical treatment strategies in areas of high scrub typhus and dengue endemicity, central Vietnam. PLoS Negl Trop Dis 2022; 16(5): e0010281.

[5]

Im JH, Baek J, Durey A, Kwon HY, Chung MH, Lee JS. Current status of tick-borne diseases in South Korea. Vector Borne Zoonotic Dis 2019; 19(4): 225-233.

[6]

Park SW, Lee CS, Kim JH, Bae IG, Moon C, Kwak YG, et al. Severe fever with thrombocytopenia syndrome: Comparison with scrub typhus and clinical diagnostic prediction. BMC Infect Dis 2019; 19(1): 174.

[7]

Won EJ, Kim SH, Byeon KH, Jeon CH, Kang SJ, Park JH, et al. Under-diagnosis of vector-borne diseases among individuals suspected of having scrub typhus in South Korea. PLoS One 2023; 18(6): e0286631.

[8]

Kala D, Gupta S, Nagraik R, Verma V, Thakur A, Kaushal A. Diagnosis of scrub typhus: Recent advancements and challenges. 3 Biotech 2020; 10(9): 396.

[9]

Lee KD, Moon C, Oh WS, Sohn KM, Kim BN. Diagnosis of scrub typhus: Introduction of the immunochromatographic test in Korea. Korean J Intern Med 2014; 29(2): 253-255.

[10]

Kim YJ, Park S, Premaratna R, Selvaraj S, Park SJ, Kim S, et al. Clinical evaluation of rapid diagnostic test kit for scrub typhus with improved performance. J Korean Med Sci 2016; 31(8): 1190-1196.

[11]

Kim CM, Kim DM, Yun NR. Evaluation of the diagnostic accuracy of antibody assays for patients with scrub typhus. J Clin Microbiol 2021; 59(7): e0294220.

[12]

Blacksell SD, Bryant NJ, Paris DH, Doust JA, Sakoda Y, Day NP. Scrub typhus serologic testing with the indirect immunofluorescence method as a diagnostic gold standard: A lack of consensus leads to a lot of confusion. Clin Infect Dis 2007; 44(3): 391-401.

[13]

Elangovan D, Perumalla S, Rose W, Verghese VP, Mammen J, Gowri MS, et al. Assessment of two immunoassays for detection of IgM antibodies to scrub typhus using a serum panel. Indian J Med Microbiol 2019; 37(4): 584-586.

[14]

Saraswati K, Day NPJ, Mukaka M, Blacksell SD. Scrub typhus point-of-care testing: A systematic review and meta-analysis. PLoS Negl Trop Dis 2018; 12(3): e0006330.

[15]

Kim W, Lee SY, Kim SI, Sohng IK, Park SC, Jun S, et al. Identification of a novel antigen for serological diagnosis of scrub typhus. Am J Trop Med Hyg 2021; 105(5): 1356-1361.

[16]

Kannan K, John R, Kundu D, Dayanand D, Abhilash KPP, Mathuram AJ, et al. Performance of molecular and serologic tests for the diagnosis of scrub typhus. PLoS Negl Trop Dis 2020; 14(11): e0008747.

[17]

Yun NR, Kim CM, Kim DY, Seo JW, Kim DM. Clinical usefulness of 16S ribosomal RNA real-time PCR for the diagnosis of scrub typhus. Sci Rep 2021; 11(1): 14299.

[18]

Kim CM, Kim DM, Yun NR. Follow-up investigation of antibody titers and diagnostic antibody cutoff values in patients with scrub typhus in South Korea. BMC Infect Dis 2021; 21(1): 69.

[19]

Korea Centers for Disease Control and Prevention. Infectious diseases surveillance yearbook 2021. Cheongju (Korea): Korea Centers for Disease Control and Prevention; 2022.

[20]

Yang J, Luo L, Chen T, Li L, Xu X, Zhang Y, et al. Efficacy and safety of antibiotics for treatment of scrub typhus: A network meta-analysis. JAMA Netw Open 2020; 3(8): e2014487.

[21]

Jung HC, Chon SB, Oh WS, Lee DH, Lee HJ. Etiologies of acute undifferentiated fever and clinical prediction of scrub typhus in a non-tropical endemic area. Am J Trop Med Hyg 2015; 92(2): 256-261.

[22]

Hamaguchi S, Cuong NC, Tra DT, Doan YH, Shimizu K, Tuan NQ, et al. Clinical and epidemiological characteristics of scrub typhus and murine typhus among hospitalized patients with acute undifferentiated fever in Northern Vietnam. Am J Trop Med Hyg 2015; 92(5): 972-978.

[23]

Jain P, Sharma M, Seval M, Meena P. Epidemiology and clinico- laboratory manifestations of scrub typhus in Hadoti region of Rajasthan, India: A cross-sectional study. J Acute Dis 2023; 12(2): 57-60.

[24]

Hwang K, Jang HN, Lee TW, Cho HS, Bae E, Chang SH, et al. Incidence, risk factors and clinical outcomes of acute kidney injury associated with scrub typhus: A retrospective study of 510 consecutive patients in South Korea (2001-2013). BMJ Open 2017; 7(3): e013882.

[25]

Sharma D, Sharma A, Singh B, Kumar S, Verma SK. Neglected scrub typhus: An updated review with a focus on omics technologies. Asian Pac J Trop Med 2022; 15(12): 531-541.

[26]

Choi YJ, Jang WJ, Kim JH, Ryu JS, Lee SH, Park KH, et al. Spotted fever group and typhus group rickettsioses in humans, South Korea. Emerg Infect Dis 2015; 11(2): 237-244.

[27]

Chung MH, Lee SH, Kim MJ, Lee JH, Kim ES, Lee JS, et al. Japanese spotted fever, South Korea. Emerg Infect Dis 2006; 12(7): 1122-1124.

[28]

Kim YS, Choi YJ, Lee KM, Ahn KJ, Kim HC, Klein T, et al. First isolation of Rickettsia monacensis from a patient in South Korea. Microbiol Immunol 2017; 61(7): 258-263.

[29]

Yoo J, Chung JH, Kim CM, Yun NR, Kim DM. Asymptomatic-anaplasmosis confirmation using genetic and serological tests and possible coinfection with spotted fever group Rickettsia: A case report. BMC Infect Dis 2020; 20(1): 458.

[30]

Lim C, Paris DH, Blacksell SD, Laongnualpanich A, Kantipong P, Chierakul W, et al. How to determine the accuracy of an alternative diagnostic test when it is actually better than the reference tests: A re-evaluation of diagnostic tests for scrub typhus using Bayesian LCMs. PLoS One 2015; 10(5): e0114930.

[31]

Tantibhedhyangkul W, Wongsawat E, Silpasakorn S, Waywa D, Saenyasiri N, Suesuay J, et al. Use of multiplex real-time PCR to diagnose scrub typhus. J Clin Microbiol 2017; 55(5): 1377-1387.

[32]

Patricia KA, Hoti SL, Kanungo R, Jambulingam P, Shashikala N, Naik AC. Improving the diagnosis of scrub typhus by combining groEL based polymerase chain reaction and IgM ELISA. J Clin Diagn Res 2017; 11(8): Dc27-dc31.

[33]

Anitharaj V, Stephen S, Pradeep J, Pooja P, Preethi S. Validation of Geno-Sen's scrub typhus real time polymerase chain reaction kit by its comparison with a serological ELISA test. J Glob Infect Dis 2017; 9(3): 108-112.

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