Molecular epidemiology of leprosy: An update

被引:27
作者
Avanzi, Charlotte [1 ,2 ,3 ]
Singh, Pushpendra [4 ]
Truman, Richard W. [5 ]
Suffys, Philip N. [6 ]
机构
[1] Colorado State Univ, Dept Microbiol Immunol & Pathol, Ft Collins, CO 80523 USA
[2] Swiss Trop & Publ Hlth Inst, Basel, Switzerland
[3] Univ Basel, Basel, Switzerland
[4] Natl Inst Res Tribal Hlth, Indian Council Med Res, Jabalpur, India
[5] Louisiana State Univ, Dept Pathobiol Sci, Baton Rouge, LA 70803 USA
[6] Fiocruz MS, Oswaldo Cruz Inst, Lab Mol Biol Appl Mycobacteria, Rio De Janeiro, Brazil
关键词
Leprosy; Molecular epidemiology; Transmission; Phylogeny; Non-human reservoir; Drug resistance; MYCOBACTERIUM-LEPRAE STRAINS; DRUG-RESISTANT LEPROSY; AUTOCHTHONOUS LEPROSY; LEPROMATOUS LEPROSY; GENOMIC DIVERSITY; ZOONOTIC LEPROSY; ENDEMIC REGIONS; RED SQUIRRELS; VNTR ANALYSIS; AERIAL ROUTE;
D O I
10.1016/j.meegid.2020.104581
中图分类号
R51 [传染病];
学科分类号
100401 ;
摘要
Molecular epidemiology investigations are notoriously challenging in the leprosy field mainly because the inherent characteristics of the disease as well as its yet uncultivated causative agents, Mycobacterium leprae and M. lepromatosis. Despite significant developments in understanding the biology of leprosy bacilli through genomic approaches, the exact mechanisms of transmission is still unclear and the factors underlying pathological variation of the disease in different patients remain as major gaps in our knowledge about leprosy. Despite these difficulties, the last two decades have seen the development of genotyping procedures based on PCR-sequencing of target loci as well as by the genome-wide analysis of an increasing number of geographically diverse isolates of leprosy bacilli. This has provided a foundation for molecular epidemiology studies that are bringing a better understanding of strain evolution associated with ancient human migrations, and phylogeographical insights about the spread of disease globally. This review discusses the advantages and drawbacks of the main tools available for molecular epidemiological investigations of leprosy and summarizes various methods ranging from PCR-based genotyping to genome-typing techniques. We also describe their main applications in analyzing the short-range and long-range transmission of the disease. Finally, we summarise the current gaps and challenges that remain in the field of molecular epidemiology of leprosy.
引用
收藏
页数:17
相关论文
共 202 条
[31]  
Cardona-Castro N, 2009, LEPROSY REV, V80, P316
[32]  
Chakrabarty A N, 2001, Acta Leprol, V12, P79
[33]   Mycobacterium leprae's evolution and environmental adaptation [J].
Chavarro-Portillo, Bibiana ;
Yesid Soto, Carlos ;
Inirida Guerrero, Martha .
ACTA TROPICA, 2019, 197
[34]   Novel Mutations Associated with Clofazimine Resistance in Mycobacterium abscessus [J].
Chen, Yuanyuan ;
Chen, Jiazhen ;
Zhang, Shuo ;
Shi, Wanliang ;
Zhang, Wenhong ;
Zhu, Min ;
Zhang, Ying .
ANTIMICROBIAL AGENTS AND CHEMOTHERAPY, 2018, 62 (07)
[35]   Evidences of Aerial Route of Mycobacterium leprae Infection and Doubts About Transmission and Natural Protection in Leprosy [J].
Cipriani Frade, Marco Andrey ;
Foss, Norma Tirabosch .
CLINICAL INFECTIOUS DISEASES, 2016, 63 (11) :1421-1422
[36]   Mixed-Strain Mycobacterium tuberculosis Infections and the Implications for Tuberculosis Treatment and Control [J].
Cohen, Ted ;
van Helden, Paul D. ;
Wilson, Douglas ;
Colijn, Caroline ;
McLaughlin, Megan M. ;
Abubakar, Ibrahim ;
Warren, Robin M. .
CLINICAL MICROBIOLOGY REVIEWS, 2012, 25 (04) :708-+
[37]   Massive gene decay in the leprosy bacillus [J].
Cole, ST ;
Eiglmeier, K ;
Parkhill, J ;
James, KD ;
Thomson, NR ;
Wheeler, PR ;
Honoré, N ;
Garnier, T ;
Churcher, C ;
Harris, D ;
Mungall, K ;
Basham, D ;
Brown, D ;
Chillingworth, T ;
Connor, R ;
Davies, RM ;
Devlin, K ;
Duthoy, S ;
Feltwell, T ;
Fraser, A ;
Hamlin, N ;
Holroyd, S ;
Hornsby, T ;
Jagels, K ;
Lacroix, C ;
Maclean, J ;
Moule, S ;
Murphy, L ;
Oliver, K ;
Quail, MA ;
Rajandream, MA ;
Rutherford, KM ;
Rutter, S ;
Seeger, K ;
Simon, S ;
Simmonds, M ;
Skelton, J ;
Squares, R ;
Squares, S ;
Stevens, K ;
Taylor, K ;
Whitehead, S ;
Woodward, JR ;
Barrell, BG .
NATURE, 2001, 409 (6823) :1007-1011
[38]   Whole-genome and targeted sequencing of drug-resistant Mycobacterium tuberculosis on the iSeq100 and MiSeq: A performance, ease-of-use, and cost evaluation [J].
Colman, Rebecca E. ;
Mace, Aurelien ;
Seifert, Mania ;
Hetzel, Jonathan ;
Mshaiel, Haifa ;
Surest, Anita ;
Lemmer, Darrin ;
Engelthaler, David M. ;
Catanzaro, Donald G. ;
Young, Amanda G. ;
Denkinger, Claudia M. ;
Rodwell, Timothy C. .
PLOS MEDICINE, 2019, 16 (04)
[39]   Whole-genome sequencing of rifampicin-resistant Mycobacterium tuberculosis strains identifies compensatory mutations in RNA polymerase genes [J].
Comas, Inaki ;
Borrell, Sonia ;
Roetzer, Andreas ;
Rose, Graham ;
Malla, Bijaya ;
Kato-Maeda, Midori ;
Galagan, James ;
Niemann, Stefan ;
Gagneux, Sebastien .
NATURE GENETICS, 2012, 44 (01) :106-U147
[40]   Genotyping of Genetically Monomorphic Bacteria: DNA Sequencing in Mycobacterium tuberculosis Highlights the Limitations of Current Methodologies [J].
Comas, Inaki ;
Homolka, Susanne ;
Niemann, Stefan ;
Gagneux, Sebastien .
PLOS ONE, 2009, 4 (11)