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RNA-seq Analyses of Gene Expression in the Microsclerotia of Verticillium Dahliae

Overview
Journal BMC Genomics
Publisher Biomed Central
Specialty Genetics
Date 2013 Sep 11
PMID 24015849
Citations 47
Authors
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Abstract

Background: The soilborne fungus, Verticillium dahliae, causes Verticillium wilt disease in plants. Verticillium wilt is difficult to control since V. dahliae is capable of persisting in the soil for 10 to 15 years as melanized microsclerotia, rendering crop rotation strategies for disease control ineffective. Microsclerotia of V. dahliae overwinter and germinate to produce infectious hyphae that give rise to primary infections. Consequently, microsclerotia formation, maintenance, and germination are critically important processes in the disease cycle of V. dahliae.

Results: To shed additional light on the molecular processes that contribute to microsclerotia biogenesis and melanin synthesis in V. dahliae, three replicate RNA-seq libraries were prepared from 10 day-old microsclerotia (MS)-producing cultures of V. dahliae, strain VdLs.17 (average = 52.23 million reads), and those not producing microsclerotia (NoMS, average = 50.58 million reads). Analyses of these libraries for differential gene expression revealed over 200 differentially expressed genes, including up-regulation of melanogenesis-associated genes tetrahydroxynaphthalene reductase (344-fold increase) and scytalone dehydratase (231-fold increase), and additional genes located in a 48.8 kilobase melanin biosynthetic gene cluster of strain VdLs.17. Nearly 50% of the genes identified as differentially expressed in the MS library encode hypothetical proteins. Additional comparative analyses of gene expression in V. dahliae, under growth conditions that promote or preclude microsclerotial development, were conducted using a microarray approach with RNA derived from V. dahliae strain Dvd-T5, and from the amicrosclerotial vdh1 strain. Differential expression of selected genes observed by RNA-seq or microarray analysis was confirmed using RT-qPCR or Northern hybridizations.

Conclusion: Collectively, the data acquired from these investigations provide additional insight into gene expression and molecular processes that occur during MS biogenesis and maturation in V. dahliae. The identified gene products could therefore potentially represent new targets for disease control through prevention of survival structure development.

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References
1.
Klosterman S, Subbarao K, Kang S, Veronese P, Gold S, Thomma B . Comparative genomics yields insights into niche adaptation of plant vascular wilt pathogens. PLoS Pathog. 2011; 7(7):e1002137. PMC: 3145793. DOI: 10.1371/journal.ppat.1002137. View

2.
Woo P, Tam E, Chong K, Cai J, Tung E, Ngan A . High diversity of polyketide synthase genes and the melanin biosynthesis gene cluster in Penicillium marneffei. FEBS J. 2010; 277(18):3750-8. DOI: 10.1111/j.1742-4658.2010.07776.x. View

3.
Gao F, Zhou B, Li G, Jia P, Li H, Zhao Y . A glutamic acid-rich protein identified in Verticillium dahliae from an insertional mutagenesis affects microsclerotial formation and pathogenicity. PLoS One. 2010; 5(12):e15319. PMC: 2998422. DOI: 10.1371/journal.pone.0015319. View

4.
Yu J, CHANG P, Ehrlich K, Cary J, Montalbano B, Dyer J . Characterization of the critical amino acids of an Aspergillus parasiticus cytochrome P-450 monooxygenase encoded by ordA that is involved in the biosynthesis of aflatoxins B1, G1, B2, and G2. Appl Environ Microbiol. 1998; 64(12):4834-41. PMC: 90931. DOI: 10.1128/AEM.64.12.4834-4841.1998. View

5.
Parrou J, Jules M, Beltran G, Francois J . Acid trehalase in yeasts and filamentous fungi: localization, regulation and physiological function. FEMS Yeast Res. 2005; 5(6-7):503-11. DOI: 10.1016/j.femsyr.2005.01.002. View