Detection and genotyping of oocysts of Cryptosporidium parvum by real-time PCR and melting curve analysis

被引:63
作者
Tanriverdi, S
Tanyeli, A
Baslamisli, F
Köksal, F
Kilinç, Y
Feng, XC
Batzer, G
Tzipori, S
Widmer, G
机构
[1] Tufts Univ, Sch Vet Med, Div Infect Dis, North Grafton, MA 01536 USA
[2] Cukurova Univ, Dept Pediat Hematol Oncol, Sch Med, TR-01330 Adana, Turkey
[3] Cukurova Univ, Dept Hematol Oncol, Sch Med, TR-01330 Adana, Turkey
[4] Cukurova Univ, Sch Med, Dept Microbiol, TR-01330 Adana, Turkey
关键词
D O I
10.1128/JCM.40.9.3237-3244.2002
中图分类号
Q93 [微生物学];
学科分类号
071005 ; 100705 ;
摘要
Several real-time PCR procedures for the detection and genotyping of oocysts of Cryptosporidium parvum were evaluated. A 40-cycle amplification of a 157-bp fragment from the C. parvum beta-tubulin gene detected individual oocysts which were introduced into the reaction mixture by micromanipulation. SYBR Green I melting curve analysis was used to confirm the specificity of the method when DNA extracted from fecal samples spiked with oocysts was analyzed. Because C. parvum isolates infecting humans comprise two distinct genotypes, designated type 1 and type 2, real-time PCR methods for discriminating C. parvum genotypes were developed. The first method used the same beta-tubulin amplification primers and two fluorescently labeled antisense oligonucleotide probes spanning a 49-bp polymorphic sequence diagnostic for C. parvum type 1 and type 2. The second genotyping method used SYBR Green I fluorescence and targeted a polymorphic coding region within the GP900/poly(T) gene. Both methods discriminated between type 1 and type 2 C. parvum on the basis of melting curve analysis. To our knowledge, this is the first report describing the application of melting curve analysis for genotyping of C. parvum oocysts.
引用
收藏
页码:3237 / 3244
页数:8
相关论文
共 42 条
  • [1] COMPARISON OF THE PROSPECT AND COLOR-VUE ENZYME-LINKED IMMUNOASSAYS FOR THE DETECTION OF CRYPTOSPORIDIUM IN STOOL SPECIMENS
    AARNAES, SL
    BLANDING, J
    SPEIER, S
    FORTHAL, D
    DELAMAZA, LM
    PETERSON, EM
    [J]. DIAGNOSTIC MICROBIOLOGY AND INFECTIOUS DISEASE, 1994, 19 (04) : 221 - 225
  • [2] Differentiation between human and animal isolates of Cryptosporidium parvum using molecular and biological markers
    Awad-El-Kariem, FM
    Robinson, HA
    Petry, F
    McDonald, V
    Evans, D
    Casemore, D
    [J]. PARASITOLOGY RESEARCH, 1998, 84 (04) : 297 - 301
  • [3] A novel multi-domain mucin-like glycoprotein of Cryptosporidium parvum mediates invasion
    Barnes, DA
    Bonnin, A
    Huang, JX
    Gousset, L
    Wu, J
    Gut, J
    Doyle, P
    Dubremetz, JF
    Ward, H
    Petersen, C
    [J]. MOLECULAR AND BIOCHEMICAL PARASITOLOGY, 1998, 96 (1-2) : 93 - 110
  • [4] Cacciò S, 1999, FEMS MICROBIOL LETT, V170, P173, DOI 10.1016/S0378-1097(98)00543-6
  • [5] A new restriction fragment length polymorphism from Cryptosporidium parvum identifies genetically heterogeneous parasite populations and genotypic changes following transmission from bovine to human hosts
    Carraway, M
    Tzipori, S
    Widmer, G
    [J]. INFECTION AND IMMUNITY, 1997, 65 (09) : 3958 - 3960
  • [6] Cryptosporidium parvum: Intensity of infection and oocyst excretion patterns in healthy volunteers
    Chappell, CL
    Okhuysen, PC
    Sterling, CR
    DuPont, HL
    [J]. JOURNAL OF INFECTIOUS DISEASES, 1996, 173 (01) : 232 - 236
  • [7] CRYPTOSPORIDIOSIS
    CURRENT, WL
    GARCIA, LS
    [J]. CLINICAL MICROBIOLOGY REVIEWS, 1991, 4 (03) : 325 - 358
  • [8] Immunomagnetic capture PCR to detect viable Cryptosporidium parvum oocysts from environmental samples
    Deng, MQ
    Cliver, DO
    Mariam, TW
    [J]. APPLIED AND ENVIRONMENTAL MICROBIOLOGY, 1997, 63 (08) : 3134 - 3138
  • [9] Di Giovanni GD, 1999, APPL ENVIRON MICROB, V65, P3427
  • [10] Experimental evidence for genetic recombination in the opportunistic pathogen Cryptosporidium parvum
    Feng, XC
    Rich, SM
    Tzipori, S
    Widmer, G
    [J]. MOLECULAR AND BIOCHEMICAL PARASITOLOGY, 2002, 119 (01) : 55 - 62