Occurrence of K1 and K2 serotypes and genotypic characteristics of extended spectrum β-lactamases-producing Klebsiella pneumoniae isolated from selected hospitals in Malaysia

Nurul Syazrah Anuar , Hazmin Hazman , Sharven Raj Jeyakumar , Mohd Nasir Mohd Desa , Hasni Idayu Saidi , Siti Norbaya Masri , Nur Afiza Aziz , Nurshahira Sulaiman

Asian Pacific Journal of Tropical Medicine ›› 2024, Vol. 17 ›› Issue (1) : 30 -38.

PDF (811KB)
Asian Pacific Journal of Tropical Medicine ›› 2024, Vol. 17 ›› Issue (1) :30 -38. DOI: 10.4103/apjtm.apjtm_303_23
Original Article
research-article
Occurrence of K1 and K2 serotypes and genotypic characteristics of extended spectrum β-lactamases-producing Klebsiella pneumoniae isolated from selected hospitals in Malaysia
Author information +
History +
PDF (811KB)

Abstract

Objective: To determine the distribution, phenotypic and genetic background of extended spectrum β-lactamases (ESBL)-producing Klebsiella (K.) pneumoniae clinical isolates associated with K1 and K2 serotypes in two selected hospitals in Malaysia.

Methods: A total of 192 K. pneumoniae isolates were collected and subjected to antibiotic susceptibility, hypermucoviscosity test and multiplex PCR to detect the presence of K1- and K2- serotype associated genes. Multilocus sequence typing (MLST) was performed on ESBL-producing K. pneumoniae isolates presented with K1 and K2 serotypes, followed by phylogenetic analysis.

Results: A total of 87 out of 192 (45.3%) of the K. pneumoniae isolates collected were ESBL producers. However, only 8.3% (16/192) and 10.9% (21/192) of the total isolates were detected to carry K1- and K2-serotype associated genes, respectively. Statistical analysis showed that K1 and K2 capsular serotypes were not significantly associated with ESBL phenotype (P=0.196). However, they were significantly associated with hypervirulent, as demonstrated by the positive string test (P<0.001). MLST analysis revealed that ST23 as the predominant sequence type (ST) in the K1 serotype, while the ST in the K2 serotype is more diverse.

Conclusions: Although the occurrence of ESBL-producing isolates among the hypervirulent strains was low, their coexistence warrants the need for continuous surveillance. MLST showed that these isolates were genetically heterogeneous.

Keywords

Extended spectrum β-lactamases / Capsular serotypes / Genotypic

Cite this article

Download citation ▾
Nurul Syazrah Anuar, Hazmin Hazman, Sharven Raj Jeyakumar, Mohd Nasir Mohd Desa, Hasni Idayu Saidi, Siti Norbaya Masri, Nur Afiza Aziz, Nurshahira Sulaiman. Occurrence of K1 and K2 serotypes and genotypic characteristics of extended spectrum β-lactamases-producing Klebsiella pneumoniae isolated from selected hospitals in Malaysia. Asian Pacific Journal of Tropical Medicine, 2024, 17 (1) : 30-38 DOI:10.4103/apjtm.apjtm_303_23

登录浏览全文

4963

注册一个新账户 忘记密码

References

[1]

Chang K, Rattanavong S, Mayxay M, Keoluangkhot V, Davong V, Vongsouvath M, et al. Bacteremia caused by extended-spectrum beta lactamase-producing Enterobacteriaceae in Vientiane, Lao PDR: A 5-year study. Am J Trop Med Hyg 2020; 102(5): 1137-1143.

[2]

Lee HC, Chuang YC, Yu WL, Lee NY, Chang CM, Ko NY, et al. Clinical implications of hypermucoviscosity phenotype in Klebsiella pneumoniae isolates: Association with invasive syndrome in patients with community-acquired bacteraemia. J Intern Med 2006; 259(6): 606-614.

[3]

Cubero M, Grau I, Tubau F, Pallares R, Dominguez MA, Linares J, et al. Hypervirulent Klebsiella pneumoniae clones causing bacteraemia in adults in a teaching hospital in Barcelona, Spain (2007-2013). Clin Microbiol Infect 2016; 22(2): 154-160.

[4]

Bush K, Bradford PA. Beta-lactams and beta-lactamase inhibitors: An overview. Cold Spring Harb Perspect Med 2016; 6(8): a025247.

[5]

Ur Rahman S, Ali T, Ali I, Khan NA, Han B, Gao J. The growing genetic and functional diversity of extended spectrum beta-lactamases. Biomed Res Int 2018: 9519718. doi: https://doi.org/10.1155/2018/9519718.

[6]

National Institutes of Health (NIH). National antibiotic resistance surveillance report 2021. [Online]. Available from: https://www.imr.gov.my/MyOHAR/index.php/site/archive_rpt. [Accessed on 1 December 2023].

[7]

Sawatwong P, Sapchookul P, Whistler T, Gregory CJ, Sangwichian O, Makprasert S, et al. High burden of extended-spectrum β-lactamase-producing Escherichia coli and Klebsiella pneumoniae bacteremia in older adults: A seven-year study in two rural Thai provinces. Am J Trop Med Hyg 2019; 100(4): 943-951.

[8]

Sinanjung K, Aman AT, Nirwati H. Extended spectrum beta lactamase (ESBL)-producing Klebsiella pneumoniae clinical isolates and its susceptibility pattern to antibiotics at Dr. Soeradji Tirtonegoro General Hospital Klaten, Central Java. J Med Sci 2020; doi: 10.19106/JMEDSCI005201202003.

[9]

Choby JE, Howard-Anderson J, Weiss DS. Hypervirulent Klebsiella pneumoniae-clinical and molecular perspectives. J Intern Med 2019; 287(3): 283-300.

[10]

Ranjbar R, Kelishadrokhi AF, Chehelgerdi M. Molecular characterization, serotypes and phenotypic and genotypic evaluation of antibiotic resistance of the Klebsiella pneumoniae strains isolated from different types of hospital-acquired infections. Infect Drug Resist 2019; 12: 603-611.

[11]

Remya P, Shanthi M, Sekar U. Occurrence and characterization of hyperviscous K1 and K2 serotype in Klebsiella pneumoniae. J Lab Physicians 2018; 10(3): 283-288.

[12]

Siu LK, Fung CP, Chang FY, Lee N, Yeh KM, Koh TH, et al. Molecular typing and virulence analysis of serotype K1 Klebsiella pneumoniae strains isolated from liver abscess patients and stool samples from non-infectious subjects in Hong Kong, Singapore, and Taiwan. J Clin Microbiol 2011; 49(11): 3761-3765.

[13]

Lin JC, Koh T, Lee N, Fung CP, Chang FY, Tsai YK, et al. Genotypes and virulence in serotype K2 Klebsiella pneumoniae from liver abscess and non-infectious carriers in Hong Kong, Singapore and Taiwan. Gut Pathog 2014; 6(1): 21.

[14]

Catalán-Nájera JC, Garza-Ramos U, Barrios-Camacho H. Hypervirulence and hypermucoviscosity: Two different but complementary Klebsiella spp. phenotypes? Virulence 2017; 8(7): 1111-1123.

[15]

Patel SS, Chauhan HC, Patel AC, Shrimali MD, Patel KB, Prajapati BI, et al. Isolation and identification of Klebsiella pneumoniae from sheep-case report. Int J Curr Microbiol Appi Sci 2017; 6(5): 331-334.

[16]

Sánchez-López J, García-Caballero A, Navarro-San Francisco C, Quereda C, Ruiz-Garbajosa P, Navas E, et al. Hypermucoviscous Klebsiella pneumoniae: A challenge in community acquired infection. IDCases 2019; 17: e00547.

[17]

Clinical and Laboratory Standards Institute (CLSI). Performance standards for antimi-crobial susceptibility testing. 32nd ed. Wayne, PA: Clinical and Laboratory Standards Institute; 2022.

[18]

Al-Jailawi M, Zedan Tamara H, Jassim K. Multiplex-PCR assay for identification of Klebsiella pneumoniae. Int J Pharm Sci Rev Res 2014; 26(1): 112-117.

[19]

Elnifro EM, Ashshi AM, Cooper RJ, Klapper PE. Multiplex PCR: Optimization and application in diagnostic virology. Clin Microbiol Rev 2000; 13(4): 559-570.

[20]

Fang CT, Chuang YP, Shun CT, Chang SC, Wang JT. A novel virulence gene in Klebsiella pneumoniae strains causing primary liver abscess and septic metastatic complications. J Exp Med 2004; 199(5): 697-705.

[21]

Turton JF, Baklan H, Siu LK, Kaufmann ME, Pitt TL. Evaluation of a multiplex PCR for detection of serotypes K1, K2 and K5 in Klebsiella sp. and comparison of isolates within these serotypes. FEMS Microbiol Lett 2008; 284(2): 247-252.

[22]

Turton JF, Perry C, Elgohari S, Hampton CV. PCR characterization and typing of Klebsiella pneumoniae using capsular type-specific, variable number tandem repeat and virulence gene targets. J Med Microbiol 2010; 59(5): 541-547.

[23]

Diancourt L, Passet V, Verhoef J, Grimont PAD, Brisse S. Multilocus sequence typing of Klebsiella pneumoniae nosocomial isolates. J Clin Microbiol 2005; 43(8): 4178-4182.

[24]

Tamura K, Stecher G, Kumar S. MEGA11: Molecular evolutionary genetics analysis version 11. Mol Biol Evol 2021; 38(7): 3022-3027.

[25]

Tamura K, Nei M. Estimation of the number of nucleotide substitutions in the control region of mitochondrial DNA in humans and chimpanzees. Mol Biol Evol 1993; 10(3): 512-526.

[26]

Mobasseri G, Thong KL, Rajasekaram G, Teh CSJ. Molecular characterization of extended-spectrum β-lactamase-producing Klebsiella pneumoniae from a Malaysian hospital. Braz J Microbiol 2019; 51(1): 189-195.

[27]

Mahdi Yahya Mohsen S, Hamzah HA, Muhammad Imad Al-Deen M, Baharudin R. Antimicrobial susceptibility of Klebsiella pneumoniae and Escherichia coli with extended-spectrum β-lactamase associated genes in Hospital Tengku Ampuan Afzan, Kuantan, Pahang. Malays J Med Sci 2016; 23(2): 14-20.

[28]

Lim KT, Yeo CC, Md Yasin R, Balan G, Thong KL. Characterization of multidrug-resistant and extended-spectrum beta-lactamase-producing Klebsiella pneumoniae strains from Malaysian hospitals. J Med Microbiol 2009; 58(Pt 11): 1463-1469.

[29]

Nirwati H, Sinanjung K, Fahrunissa F, Wijaya F, Napitupulu S, Hati VP, et al. Biofilm formation and antibiotic resistance of Klebsiella pneumoniae isolated from clinical samples in a tertiary care hospital, Klaten, Indonesia. BMC Proc 2019; 13(Suppl 11): 20.

[30]

Jin Y, Dong C, Shao C, Wang Y, Liu Y. Molecular epidemiology of clonally related metallo-β-lactamase-producing Klebsiella pneumoniae isolated from newborns in a hospital in Shandong, China. Jundishapur J Microbiol 2017; 10(9): e14046.

[31]

Gharrah MM, Mostafa El-Mahdy A, Barwa RF. Association between virulence factors and extended spectrum beta lactamase producing Klebsiella pneumoniae compared to nonproducing isolates. Interdiscip Perspect Infect Dis 2017; 2017: 7279830. doi: 10.1155/2017/7279830.

[32]

Shin J, Ko KS. Comparative study of genotype and virulence in CTX-M-producing and non-extended-spectrum-β-lactamase-producing Klebsiella pneumoniae isolates. Antimicrob Agents Chemother 2014; 58(4): 2463-2467.

[33]

Ahmed OI, El-Hady SA, Ahmed TM, Ahmed IZ. Detection of bla SHV and bla CTX-M genes in ESBL producing Klebsiella pneumoniae isolated from Egyptian patients with suspected nosocomial infections. Egypt J Med Hum Genet 2013; 14(3): 277-283.

[34]

Santajit S, Indrawattana N. Mechanisms of antimicrobial resistance in ESKAPE pathogens. Biomed Res Int 2016; 2016: 2475067. doi: 10.1155/2016/2475067.

[35]

Guo Y, Wang S, Zhan L, Jin Y, Duan J, Hao Z, et al. Microbiological and clinical characteristics of hypermucoviscous Klebsiella pneumoniae isolates associated with invasive infections in China. Front Cell Infect Microbiol 2017; 7: 24. doi: 10.3389/fcimb.2017.00024.

[36]

Russo TA, Marr CM. Hypervirulent Klebsiella pneumoniae. Clin Microbiol Rev 2019; 32(3): e00001-19.

[37]

Mansouri S, Abbasi S. Prevalence of multiple drug resistant clinical isolates of extended-spectrum beta-lactamase producing Enterobacteriaceae in Southeast Iran. Iran J Med Sci 2010; 35(2): 101-108.

[38]

Struve C, Roe CC, Stegger M, Stahlhut SG, Hansen DS, Engelthaler DM, et al. Mapping the evolution of hypervirulent Klebsiella pneumoniae. mBio 2015; 6(4): e00630. doi: 10.1128/mBio.00630-15.

[39]

Russo TA, Olson R, Fang CT, Stoesser N, Miller M, MacDonald U, et al. Identification of biomarkers for differentiation of hypervirulent Klebsiella pneumoniae from classical Kpneumoniae. J Clin Microbiol 2018; 56(9): e00776-18. doi: 10.1128/JCM.00776-18.

PDF (811KB)

8

Accesses

0

Citation

Detail

Sections
Recommended

/