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Research Article

Comparative analysis of whole genomes and transcriptomes of Microsporum canis from invasive dermatophytosis and tinea capitis

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Article: 2219346 | Received 09 Feb 2023, Accepted 24 May 2023, Published online: 08 Jun 2023

References

  • Wu LC, Sun PL, Chang YT. Extensive deep dermatophytosis cause by Trichophyton rubrum in a patient with liver cirrhosis and chronic renal failure. Mycopathologia. 2013;176:457–462.
  • Wang R, Huang C, Zhang Y, et al. Invasive dermatophyte infection: a systematic review. Mycoses. 2021;64:340–348.
  • Aneke CI, Otranto D, Cafarchia C. Therapy and antifungal susceptibility profile of Microsporum canis. J Fungi. 2018;4:107.
  • Nazarian RM, Lilly E, Gavino C, et al. Novel CARD9 mutation in a patient with chronic invasive dermatophyte infection (tinea profunda). J Cutan Pathol. 2020;47:166–170.
  • Botterel F, Romand S, Cornet M, et al. Dermatophyte pseudomycetoma of the scalp: case report and review. Br J Dermatol. 2001;145:151–153.
  • Martinez-Rossi NM, Peres NT, Rossi A. Pathogenesis of dermatophytosis: sensing the host tissue. Mycopathologia. 2017;182:215–227.
  • Lorincz AL, Sun SH. Dermatophyte viability at modestly raised temperatures. Arch Dermatol. 1963;88:393–402.
  • Shore D, Zencir S, Albert B. Transcriptional control of ribosome biogenesis in yeast: links to growth and stress signals. Biochem Soc Trans. 2021;49:1589–1599.
  • Song Y, Wang X, Li Q, et al. Fatal dermatophytic pseudomycetoma in a patient with non-HIV CD4 lymphocytopenia. Emerg Microbes Infect. 2023;12:2208685.
  • Wang R, Wang X, Li R. Image gallery: dermatophytic pseudomycetoma caused by Microsporum canis. Br J Dermatol. 2018;178:e228.
  • Nir-Paz R, Elinav H, Pierard GE, et al. Deep infection by Trichophyton rubrum in an immunocompromised patient. J Clin Microbiol. 2003;41:5298–5301.
  • Petrov I, Kempf W, Stoilova D, et al. Disseminated dermatophytic pseudomycetomas arising in an immunocompromised patient. Br J Dermatol. 2006;155:628–630.
  • Marconi VC, Kradin R, Marty FM, et al. Disseminated dermatophytosis in a patient with hereditary hemochromatosis and hepatic cirrhosis: case report and review of the literature. Med Mycol. 2010;48:518–527.
  • Berg JC, Hamacher KL, Roberts GD. Pseudomycetoma caused by Microsporum canis in an immunosuppressed patient: a case report and review of the literature. J Cutan Pathol. 2007;34:431–434.
  • Queiroz-Telles F, Mercier T, Maertens J, et al. Successful allogenic stem cell transplantation in patients with inherited CARD9 deficiency. J Clin Immunol. 2019;39:462–469.
  • Tirado-Gonzalez M, Ball E, Ruiz A, et al. Disseminated dermatophytic pseudomycetoma caused by Microsporum species. Int J Dermatol. 2012;51:1478–1482.
  • Jiang Y, Luo W, Verweij PE, et al. Regional differences in antifungal susceptibility of the prevalent dermatophyte Trichophyton rubrum. Mycopathologia. 2021;186:53–70.
  • Maurya VK, Kachhwaha D, Bora A, et al. Determination of antifungal minimum inhibitory concentration and its clinical correlation among treatment failure cases of dermatophytosis. J Fam Med Prim Care. 2019;8:2577–2581.
  • Wildfeuer A, Seidl HP, Paule I, et al. In vitro evaluation of voriconazole against clinical isolates of yeasts, moulds and dermatophytes in comparison with itraconazole, ketoconazole, amphotericin B and griseofulvin. Mycoses. 1998;41:309–319.
  • Zhang W, Yu L, Yang J, et al. Transcriptional profiles of response to terbinafine in Trichophyton rubrum. Appl Microbiol Biotechnol. 2009;82:1123–1130.
  • Peres NT, Sanches PR, Falcao JP, et al. Transcriptional profiling reveals the expression of novel genes in response to various stimuli in the human dermatophyte Trichophyton rubrum. BMC Microbiol. 2010;10:39.
  • Persinoti GF, de Aguiar Peres NT, Jacob TR, et al. RNA-sequencing analysis of Trichophyton rubrum transcriptome in response to sublethal doses of acriflavine. BMC Genom. 2014;15(Suppl. 7):S1.
  • Mendes NS, Bitencourt TA, Sanches PR, et al. Transcriptome-wide survey of gene expression changes and alternative splicing in Trichophyton rubrum in response to undecanoic acid. Sci Rep. 2018;8:2520.
  • Martinez-Rossi NM, Bitencourt TA, Peres NTA, et al. Dermatophyte resistance to antifungal drugs: mechanisms and prospectus. Front Microbiol. 2018;9:1108.
  • Roy U, Kornitzer D. Heme-iron acquisition in fungi. Curr Opin Microbiol. 2019;52:77–83.
  • Pinsky M, Roy U, Moshe S, et al. Human serum albumin facilitates heme-iron utilization by fungi. mBio. 2020;11:e00607–20.
  • Pihet M, Le Govic Y. Reappraisal of conventional diagnosis for dermatophytes. Mycopathologia. 2017;182:169–180.
  • Clinical and Laboratory Standards Institute. Reference method for broth dilution antifungal susceptibility testing of filamentous fungi. CLSI Standard M38, 3rd ed. 2017; Wayne, PA.
  • Song Y, da Silva NM, Weiss VA, et al. Comparative genomic analysis of capsule-producing black yeasts Exophiala dermatitidis and Exophiala spinifera, potential agents of disseminated mycoses. Front Microbiol. 2020;11:586.
  • Xiao C, Chen Y, Xie S, et al. MECAT: fast mapping, error correction, and de novo assembly for single-molecule sequencing reads. Nat Methods. 2017;14:1072–1074.
  • Lypaczewski P, Hoshizaki J, Zhang W, et al. A complete Leishmania donovani reference genome identifies novel genetic variations associated with virulence. Sci Rep. 2018;8:16549.