The <i>Fusarium graminearum</i> Genome Reveals a Link Between Localized Polymorphism and Pathogen Specialization
- Christina A. Cuomo
- Ulrich Güldener
- Jin‐Rong Xu
- Frances Trail
- B. Gillian Turgeon
- Antonio Di Pietro
- Jonathan D. Walton
- Li‐Jun Ma
- SBScott Baker
- Martijn Rep
- Gerhard Adam
- J. F. Antoniw
- Thomas K. Baldwin
- Sarah E. Calvo
- Yueh-Long Chang
- David DeCaprio
- Liane Rosewich Gale
- Sante Gnerre
- Rubella S. Goswami
- Kim Hammond-Kosack
- Linda J. Harris
- Karen Hilburn
- John C. Kennell
- Scott Kroken
- Jon Magnuson
- Gertrud Mannhaupt
- Evan Mauceli
- Hans‐Werner Mewes
- Rudolf Mitterbauer
- Gary J. Muehlbauer
- Martin Münsterkötter
- David R. Nelson
- Kerry O’Donnell
- Thérèse Ouellet
- Weihong Qi
- Hadi Quesneville
- M. Isabel G. Roncero
- Kye-Yong Seong
- Igor V. Tetko
- Martin Urban
- Cees Waalwijk
- Todd J. Ward
- Jiqiang Yao
- Bruce W. Birren
- Harold Kistler
- SBScott Baker
- SBScott Baker
- SBScott Baker
- SBScott Baker
Science · 2007 · American Association for the Advancement of Science
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Abstract
We sequenced and annotated the genome of the filamentous fungus Fusarium graminearum, a major pathogen of cultivated cereals. Very few repetitive sequences were detected, and the process of repeat-induced point mutation, in which duplicated sequences are subject to extensive mutation, may partially account for the reduced repeat content and apparent low number of paralogous (ancestrally duplicated) genes. A second strain of F. graminearum contained more than 10,000 single-nucleotide polymorphisms, which were frequently located near telomeres and within other discrete chromosomal segments. Many highly polymorphic regions contained sets of genes implicated in plant-fungus interactions and were unusually divergent, with higher rates of recombination. These regions of genome innovation may result from selection due to interactions of F. graminearum with its plant hosts.
