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14 Laboratory Diagnosis ofZoonotic Tuberculosis: AnUpdate
https://t.me/medicina_free
4. Thomas J, Balseiro A, Gortázar C, Risalde MA.Diagnosis of tuberculosis in wildlife: a sys­tematic review. Vet Res. 2021;52(1):31.
5. Radostits OM, Blood DC, Gay CC, Arundel JH.Veterinary medicine: a textbook of the dis­eases of cattle, sheep, pigs, goats and horses. Paris: Baillière Tindall; 1994. p.1763.
6. Shitaye JE, Tsegaye W, Pavlik I.Bovine tuberculosis infection in animal and human popula­tions in Ethiopia: a review. Vet Med. 2007;52(8):317–32.
7. Quadri NS, Brihn A, Shah JA, Kirsch JD.Bovine tuberculosis: a re-emerging zoonotic infec­tion. J Agromedicine. 2021;26(3):334–9.
8. Kruse H, Kirkemo AM, Handeland K.Wildlife as source of zoonotic infections. Emerg Infect Dis. 2004;10(12):2067–72.
9. Backues KA.Chapter 36. Mycobacterial diseases in carnivores. In: Fowler ME, Miller RE, editors. Zoo and wild animal medicine. 6th ed. Saint Louis: W.B.Saunders; 2008. p.294–8.
https://www.sciencedirect.com/science/article/pii/B9781416040477500397. Accessed 20
Apr 2023.
10. Collins ÁB, Floyd S, Gordon SV, More SJ.Prevalence of Mycobacterium bovis in milk on dairy cattle farms: an international systematic literature review and meta-analysis. Tuberculosis (Edinb). 2022;132:102166.
11. Cuervo-Soto LI, López-Pazos SA, Batista-García RA, Cuervo-Soto LI, López-Pazos SA, Batista-García RA.Metagenomics and diagnosis of zoonotic diseases. Farm animals diseases, recent Omic trends and new strategies of treatment. London: IntechOpen; 2018. https://www.
intechopen.com/chapters/58730. Accessed 20 Apr 2023.
12. Teppawar RN, Chaudhari SP, Moon SL, Shinde SV, Khan WA, Patil AR, etal. Zoonotic tuber­culosis: a concern and strategies to combat. In: Basic biology and applications of actinobac­teria. London: IntechOpen; 2018. https://www.intechopen.com/chapters/61347. Accessed 20 Apr 2023.
13. Une Y, Mori T.Tuberculosis as a zoonosis from a veterinary perspective. Comp Immunol Microbiol Infect Dis. 2007;30(5):415–25.
14. Grange JM, Collins CH.Bovine tubercle bacilli and disease in animals and man. Epidemiol Infect. 1987;99(2):221–34.
15. Thakkar K, Ghaisas SM, Singh M.Lymphadenopathy: differentiation between tuberculosis and other non-tuberculosis causes like follicular lymphoma. Front Public Health. 2016;4.
https://doi.org/10.3389/fpubh.2016.00031.
16. Thoen C, Lobue P, de Kantor I.The importance of Mycobacterium bovis as a zoonosis. Vet Microbiol. 2006;112(2–4):339–45.
17. Smith RMM, Drobniewski F, Gibson A, Montague JDE, Logan MN, Hunt D, et al. Mycobacterium bovis infection, United Kingdom. Emerg Infect Dis. 2004;10(3):539–41.
18. Ali M.Bovine tuberculosis; 2013. https://doi.org/10.13140/RG.2.2.10600.55045.
19. Ramos DF, Silva PEA, Dellagostin OA.Diagnosis of bovine tuberculosis: review of main techniques. Braz J Biol. 2015;75(4):830–7.
20. Cousins DV.Mycobacterium bovis infection and control in domestic livestock. Rev Sci Tech. 2001;20(1):71–85.
21. Rimal R, Shrestha D, Pyakurel S, Poudel R, Shrestha P, Rai KR, etal. Diagnostic performance of GeneXpert MTB/RIF in detecting MTB in smear-negative presumptive TB patients. BMC Infect Dis. 2022;22(1):321.
22. Chopra S, Mahajan S, Singh Y, Chopra M.Comparative evaluation of Ziehl- Neelsen staining and kinyoun’s staining in the diagnosis of clinically suspected cases of tuberculosis. IP Int J Med Microbiol Trop Dis. 2022;8(2):149–53.
23. Bansal R, Sharma PK, Jaryal SC, Gupta PK, Kumar D.Comparison of sensitivity and speci­city of ZN and uorescent stain microscopy with culture as gold standard. J Tuberc Res. 2017;5(2):118–28.
24. Balakrishna J, Shahapur P, Chakradhar P, Hussain S.Comparative study of different staining techniques-Ziehlneelsen stain, Gabbet’s stain, Fluorochrome stain for detecting of mycobacte­rium tuberculosis in the sputum. J Pharm Sci Res. 2013;5(4):89–92.
255
256
https://t.me/medicina_free
25. Cattamanchi A, Davis JL, Worodria W, den Boon S, Yoo S, Matovu J, etal. Sensitivity and specicity of uorescence microscopy for diagnosing pulmonary tuberculosis in a high HIV prevalence setting. Int J Tuberc Lung Dis. 2009;13(9):1130–6.
26. Rodriguez-Morales AJ, Castañeda-Hernández DM. Bacteria: Mycobacterium bovis. In: Reference module in food science. Amsterdam: Elsevier; 2019. p. B9780081005965226000.
https://linkinghub.elsevier.com/retrieve/pii/B9780081005965226401. Accessed 20 Apr 2023.
27. Abdelsadek HA, Sobhy HM, Mohamed KF, Hekal SHA, Dapgh AN, Hakim AS.Multidrug­resistant strains of Mycobacterium complex species in Egyptian farm animals, veterinarians, and farm and abattoir workers. Vet World. 2020;13(10):2150–5.
28. Niu J, Wang D, Yan M, Chang Z, Xu Y, Sizhu S, etal. Isolation, identication and biological characteristics of mycoplasma bovis in yaks. Microb Pathog. 2021;150:104691.
29. Sorlozano A, Soria I, Roman J, Huertas P, Soto MJ, Piedrola G, etal. Comparative evaluation of three culture methods for the isolation of mycobacteria from clinical samples. J Microbiol Biotechnol. 2009;19(10):1259–64.
30. Kassaza K, Orikiriza P, Llosa A, Bazira J, Nyehangane D, Page AL, etal. Lowenstein-Jensen selective medium for reducing contamination in mycobacterium tuberculosis culture. J Clin Microbiol. 2014;52(7):2671–3.
31. Essawy TS, Saeed AM, Fouad NA.Comparative study between using Lowenstein Jensen, bio-FM media and mycobacteria growth indicator tube (MGIT) system in identication of mycobacterium tuberculosis. Egypt J Chest Dis Tuberc. 2014;63(2):377–84.
32. Sharp SE, Lemes M, Sierra SG, Poniecka A, Poppiti RJ, Löwenstein-Jensen media. No longer necessary for mycobacterial isolation. Am J Clin Pathol. 2000;113(6):770–3.
33. Siddiqi SH, Rusch-Gerdes S.Procedure manual for BACTEC MGIT 960 TB system; 2006.
34. Diriba G, Kebede A, Yaregal Z, Getahun M, Tadesse M, Meaza A, et al. Performance of Mycobacterium Growth Indicator Tube BACTEC 960 with Lowenstein–Jensen method for diagnosis of Mycobacterium tuberculosis at Ethiopian National Tuberculosis Reference Laboratory, Addis Ababa, Ethiopia. BMC Res Notes. 2017;10(1):181.
35. Robbe-Austerman S, Bravo DM, Harris B.Comparison of the MGIT 960, BACTEC 460 TB and solid media for isolation of Mycobacterium bovis in United States veterinary specimens. BMC Vet Res. 2013;9(1):74.
36. Kumari P, Thakur J, Kumar P, Kumar R, Parekh D.Comparison of LJ medium and BACTEC MGIT 960 culture system for the diagnosis of tuberculosis. J Clin Diagn Res. 2020;14:DC09.
37. Medeiros L, Marassi CD, Figueiredo EES, Lilenbaum W.Potential application of new diagnos­tic methods for controlling bovine tuberculosis in Brazil. Braz J Microbiol. 2010;41(3):531–41.
38. Biet F, Boschiroli ML, Thorel MF, Guilloteau LA.Zoonotic aspects of Mycobacterium bovis and Mycobacterium avium-intracellulare complex (MAC). Vet Res. 2005;36(3):411–36.
39. Marais BJ, Brittle W, Painczyk K, Hesseling AC, Beyers N, Wasserman E, etal. Use of light­emitting diode uorescence microscopy to detect acid-fast bacilli in sputum. Clin Infect Dis. 2008;47(2):203–7.
40. Corner LA.Post mortem diagnosis of Mycobacterium bovis infection in cattle. Vet Microbiol. 1994;40(1–2):53–63.
41. Schiller I, Oesch B, Vordermeier HM, Palmer MV, Harris BN, Orloski KA, etal. Bovine tuber­culosis: a review of current and emerging diagnostic techniques in view of their relevance for disease control and eradication. Transbound Emerg Dis. 2010;57(4):205–20.
42. Pal M, Berhanu G, Feyisa D, Mideksa B, Kandi V.Bovine tuberculosis: a review of molecular diagnostic methods and impact on public health. Am J Microbiol Res. 2021;9(1):1–8.
43. Goosen W, Kerr T, Kleynhans L, Buss P, Cooper D, Warren R, etal. The VetMAX™ M. tuber­culosis complex PCR kit detects MTBC DNA in antemortem and postmortem samples from white rhinoceros (Ceratotherium simum), African elephants (Loxodonta africana) and African buffaloes (Syncerus caffer). BMC Vet Res. 2020;16:220.
44. Chakravorty S, Simmons AM, Rowneki M, Parmar H, Cao Y, Ryan J, etal. The new Xpert MTB/RIF ultra: improving detection of mycobacterium tuberculosis and resistance to rifampin in an assay suitable for point-of-care testing. MBio. 2017;8(4):e00812–7.
A. K. Gupta etal.
14 Laboratory Diagnosis ofZoonotic Tuberculosis: AnUpdate
https://t.me/medicina_free
45. Bernitz N, Kerr TJ, Goosen WJ, Chileshe J, Higgitt RL, Roos EO, etal. Review of diagnostic tests for detection of Mycobacterium bovis infection in south African wildlife. Front Vet Sci. 2021;8:588697. https://doi.org/10.3389/fvets.2021.588697.
46. van Soolingen D, Hermans PW, de Haas PE, van Embden JD. Insertion element IS1081­associated restriction fragment length polymorphisms in mycobacterium tuberculosis com­plex species: a reliable tool for recognizing Mycobacterium bovis BCG.J Clin Microbiol. 1992;30(7):1772–7.
47. van Soolingen D, de Haas PE, Hermans PW, Groenen PM, van Embden JD.Comparison of various repetitive DNA elements as genetic markers for strain differentiation and epidemiol­ogy of mycobacterium tuberculosis. J Clin Microbiol. 1993;31(8):1987–95.
48. Supply P, Allix C, Lesjean S, Cardoso-Oelemann M, Rüsch-Gerdes S, Willery E, etal. Proposal for standardization of optimized mycobacterial interspersed repetitive unit-variable-number tandem repeat typing of mycobacterium tuberculosis. J Clin Microbiol. 2006;44(12):4498–510.
49. Darsanaki R, Azizzadeh A, Nourbakhsh M, Raeisi G, Aliabadi M.Biosensors: functions and applications. J Biol Today World. 2013;2:53–61.
50. Swift BMC, Barron ES, Christley R, Corbetta D, Grau-Roma L, Jewell C, etal. Tuberculosis in badgers where the bovine tuberculosis epidemic is expanding in cattle in England. Sci Rep. 2021;11(1):20995.
51. Driscoll JR.Spoligotyping for molecular epidemiology of the mycobacterium tuberculosis complex. In: Caugant DA, editor. Molecular epidemiology of microorganisms: methods and protocols. Totowa, NJ: Humana Press; 2009. p.117–28. (Methods in molecular biology™).
https://doi.org/10.1007/978- 1- 60327- 999- 4_10.
52. Hermans PW, van Soolingen D, Bik EM, de Haas PE, Dale JW, van Embden JD.Insertion element IS987 from Mycobacterium bovis BCG IS located in a hot-spot integration region for insertion elements in mycobacterium tuberculosis complex strains. Infect Immun. 1991;59(8):2695–705.
53. van der Zanden AGM, Kremer K, Schouls LM, Caimi K, Cataldi A, Hulleman A, et al. Improvement of differentiation and interpretability of spoligotyping for mycobacterium tuber­culosis complex isolates by introduction of new spacer oligonucleotides. J Clin Microbiol. 2002;40(12):4628–39.
54. Dale J, Brittain D, Cataldi A, Cousins D, Crawford JT, Driscoll J, etal. Spacer oligonucleotide typing of bacteria of the mycobacterium tuberculosis complex: recommendations for stan­dardised nomenclature. Int J Tuberc Lung Dis. 2001;5:216–9.
55. Kamerbeek J, Schouls L, Kolk A, van Agterveld M, van Soolingen D, Kuijper S, et al. Simultaneous detection and strain differentiation of mycobacterium tuberculosis for diagnosis and epidemiology. J Clin Microbiol. 1997;35(4):907–14.
56. Cronin WA, Golub JE, Magder LS, Baruch NG, Lathan MJ, Mukasa LN, etal. Epidemiologic usefulness of spoligotyping for secondary typing of mycobacterium tuberculosis isolates with low copy numbers of IS6110. J Clin Microbiol. 2001;39(10):3709–11.
57. Demay C, Liens B, Burguière T, Hill V, Couvin D, Millet J, etal. SITVITWEB—a publicly available international multimarker database for studying mycobacterium tuberculosis genetic diversity and molecular epidemiology. Infect Genet Evol. 2012;12(4):755–66.
58. Slatko BE, Gardner AF, Ausubel FM.Overview of next-generation sequencing technologies. Curr Protoc Mol Biol. 2018;122(1):e59.
59. Ekblom R, Galindo J.Applications of next generation sequencing in molecular ecology of non-model organisms. Heredity. 2011;107(1):1–15.
60. Doherty ML, Monaghan ML, Bassett HF, Quinn PJ.Effect of a recent injection of puried protein derivative on diagnostic tests for tuberculosis in cattle infected with Mycobacterium bovis. Res Vet Sci. 1995;58(3):217–21.
61. Monaghan ML, Doherty ML, Collins JD, Kazda JF, Quinn PJ. The tuberculin test. Vet Microbiol. 1994;40(1):111–24.
62. Bakker D, Eger A, McNair J, Riepema KH, Willemsen PTJ. Comparison of commercially available PPD s: practical considerations for diagnosis and control of bovine tuberculosis.
257
258
https://t.me/medicina_free
2008. https://research.wur.nl/en/publications/comparison- of- commercially- available- ppd- s-
practical- consideratio. Accessed 20 Apr 2023.
63. Matulis G, Jüni P, Villiger PM, Gadola SD.Detection of latent tuberculosis in immunosup­pressed patients with autoimmune diseases: performance of a mycobacterium tuberculosis antigen-specic interferon γ assay. Ann Rheum Dis. 2008;67(1):84–90.
64. de la Rua-Domenech R, Goodchild AT, Vordermeier HM, Hewinson RG, Christiansen KH, Clifton-Hadley RS. Ante mortem diagnosis of tuberculosis in cattle: a review of the tuberculin tests, γ-interferon assay and other ancillary diagnostic techniques. Res Vet Sci. 2006;81(2):190–210.
65. Wood PR, Corner LA, Plackett P.Development of a simple, rapid invitro cellular assay for bovine tuberculosis based on the production of γ interferon. Res Vet Sci. 1990;49(1):46–9.
66. Li X, Xia A, Xu Z, Liu J, Fu S, Cao Z, etal. Development and evaluation of a Mycobacterium bovis interferon-γ enzyme-linked immunospot (ELISpot) assay for detection of bovine tuber­culosis. J Dairy Sci. 2022;105(7):6021–9.
67. Sparks K, Ballow M.The indirect ELISA for quantitation of specic antibody: analysis of antibody dilution curves. Diagn Immunol. 1983;1(4):269–75.
68. Wiker HG.MPB70 and MPB83—major antigens of Mycobacterium bovis. Scand J Immunol. 2009;69(6):492–9.
69. Villafañe L, Forrellad MA, López MG, Garbaccio S, Garro C, Rocha RV, etal. Production of Mycobacterium bovis antigens included in recombinant occlusion bodies of Baculovirus. J Mol Microbiol Biotechnol. 2019;29(1–6):83–90.
70. McNair J, Corbett D, Girvin R, Mackie D, Pollock J.Characterization of the early antibody response in bovine tuberculosis: MPB83 is an early target with diagnostic potential. Scand J Immunol. 2001;53:365–71.
71. Songthammanuphap S, Puthong S, Pongma C, Buakeaw A, Prammananan T, Warit S, et al. Detection of mycobacterium tuberculosis complex infection in Asian elephants (Elephas maximus) using an interferon gamma release assay in a captive elephant herd. Sci Rep. 2020;10(1):14551.
A. K. Gupta etal.