A major QTL for resistance to Gibberella stalk rot in maize. 2010

Qin Yang, and Guangming Yin, and Yanling Guo, and Dongfeng Zhang, and Shaojiang Chen, and Mingliang Xu
National Maize Improvement Center of China, China Agricultural University, 2 West Yuanmingyuan Road, Beijing, 100193, People's Republic of China.

Fusarium graminearum Schwabe, the conidial form of Gibberella zeae, is the causal fungal pathogen responsible for Gibberella stalk rot of maize. Using a BC(1)F(1) backcross mapping population derived from a cross between '1145' (donor parent, completely resistant) and 'Y331' (recurrent parent, highly susceptible), two quantitative trait loci (QTLs), qRfg1 and qRfg2, conferring resistance to Gibberella stalk rot have been detected. The major QTL qRfg1 was further confirmed in the double haploid, F(2), BC(2)F(1), and BC(3)F(1) populations. Within a qRfg1 confidence interval, single/low-copy bacterial artificial chromosome sequences, anchored expressed sequence tags, and insertion/deletion polymorphisms, were exploited to develop 59 markers to saturate the qRfg1 region. A step by step narrowing-down strategy was adopted to pursue fine mapping of the qRfg1 locus. Recombinants within the qRfg1 region, screened from each backcross generation, were backcrossed to 'Y331' to produce the next backcross progenies. These progenies were individually genotyped and evaluated for resistance to Gibberella stalk rot. Significant (or no significant) difference in resistance reactions between homozygous and heterozygous genotypes in backcross progeny suggested presence (or absence) of qRfg1 in '1145' donor fragments. The phenotypes were compared to sizes of donor fragments among recombinants to delimit the qRfg1 region. Sequential fine mapping of BC(4)F(1) to BC(6)F(1) generations enabled us to progressively refine the qRfg1 locus to a ~500-kb interval flanked by the markers SSR334 and SSR58. Meanwhile, resistance of qRfg1 to Gibberella stalk rot was also investigated in BC(3)F(1) to BC(6)F(1) generations. Once introgressed into the 'Y331' genome, the qRfg1 locus could steadily enhance the frequency of resistant plants by 32-43%. Hence, the qRfg1 locus was capable of improving maize resistance to Gibberella stalk rot.

UI MeSH Term Description Entries
D007113 Immunity, Innate The capacity of a normal organism to remain unaffected by microorganisms and their toxins. It results from the presence of naturally occurring ANTI-INFECTIVE AGENTS, constitutional factors such as BODY TEMPERATURE and immediate acting immune cells such as NATURAL KILLER CELLS. Immunity, Native,Immunity, Natural,Immunity, Non-Specific,Resistance, Natural,Innate Immune Response,Innate Immunity,Immune Response, Innate,Immune Responses, Innate,Immunity, Non Specific,Innate Immune Responses,Native Immunity,Natural Immunity,Natural Resistance,Non-Specific Immunity
D010935 Plant Diseases Diseases of plants. Disease, Plant,Diseases, Plant,Plant Disease
D003313 Zea mays A plant species of the family POACEAE. It is a tall grass grown for its EDIBLE GRAIN, corn, used as food and animal FODDER. Corn,Indian Corn,Maize,Teosinte,Zea,Corn, Indian
D003433 Crosses, Genetic Deliberate breeding of two different individuals that results in offspring that carry part of the genetic material of each parent. The parent organisms must be genetically compatible and may be from different varieties or closely related species. Cross, Genetic,Genetic Cross,Genetic Crosses
D005819 Genetic Markers A phenotypically recognizable genetic trait which can be used to identify a genetic locus, a linkage group, or a recombination event. Chromosome Markers,DNA Markers,Markers, DNA,Markers, Genetic,Genetic Marker,Marker, Genetic,Chromosome Marker,DNA Marker,Marker, Chromosome,Marker, DNA,Markers, Chromosome
D005838 Genotype The genetic constitution of the individual, comprising the ALLELES present at each GENETIC LOCUS. Genogroup,Genogroups,Genotypes
D005874 Gibberella A genus of ascomycetous fungi of the family Hypocreaceae, order Hypocreales including several pathogens of grains and cereals. It is also the source of plant growth regulators such as gibberellin and gibberellic acid. Gibberellas
D016133 Polymerase Chain Reaction In vitro method for producing large amounts of specific DNA or RNA fragments of defined length and sequence from small amounts of short oligonucleotide flanking sequences (primers). The essential steps include thermal denaturation of the double-stranded target molecules, annealing of the primers to their complementary sequences, and extension of the annealed primers by enzymatic synthesis with DNA polymerase. The reaction is efficient, specific, and extremely sensitive. Uses for the reaction include disease diagnosis, detection of difficult-to-isolate pathogens, mutation analysis, genetic testing, DNA sequencing, and analyzing evolutionary relationships. Anchored PCR,Inverse PCR,Nested PCR,PCR,Anchored Polymerase Chain Reaction,Inverse Polymerase Chain Reaction,Nested Polymerase Chain Reaction,PCR, Anchored,PCR, Inverse,PCR, Nested,Polymerase Chain Reactions,Reaction, Polymerase Chain,Reactions, Polymerase Chain
D020161 Physical Chromosome Mapping Mapping of the linear order of genes on a chromosome with units indicating their distances by using methods other than genetic recombination. These methods include nucleotide sequencing, overlapping deletions in polytene chromosomes, and electron micrography of heteroduplex DNA. (From King & Stansfield, A Dictionary of Genetics, 5th ed) Chromosome Mapping, Physical,Physical Mapping (Genetics),Chromosome Mappings, Physical,Mapping, Physical Chromosome,Mappings, Physical Chromosome,Physical Chromosome Mappings,Physical Mappings (Genetics)
D040641 Quantitative Trait Loci Genetic loci associated with a quantitative trait. Quantitative Trait Loci Genes,Loci, Quantitative Trait,Locus, Quantitative Trait,Quantitative Trait Locus,Trait Loci, Quantitative,Trait Locus, Quantitative

Related Publications

Qin Yang, and Guangming Yin, and Yanling Guo, and Dongfeng Zhang, and Shaojiang Chen, and Mingliang Xu
February 2012, TAG. Theoretical and applied genetics. Theoretische und angewandte Genetik,
Qin Yang, and Guangming Yin, and Yanling Guo, and Dongfeng Zhang, and Shaojiang Chen, and Mingliang Xu
August 2017, TAG. Theoretical and applied genetics. Theoretische und angewandte Genetik,
Qin Yang, and Guangming Yin, and Yanling Guo, and Dongfeng Zhang, and Shaojiang Chen, and Mingliang Xu
September 2017, The New phytologist,
Qin Yang, and Guangming Yin, and Yanling Guo, and Dongfeng Zhang, and Shaojiang Chen, and Mingliang Xu
August 2023, Molecular plant-microbe interactions : MPMI,
Qin Yang, and Guangming Yin, and Yanling Guo, and Dongfeng Zhang, and Shaojiang Chen, and Mingliang Xu
June 2007, Journal of agricultural and food chemistry,
Qin Yang, and Guangming Yin, and Yanling Guo, and Dongfeng Zhang, and Shaojiang Chen, and Mingliang Xu
November 2011, Journal of applied genetics,
Qin Yang, and Guangming Yin, and Yanling Guo, and Dongfeng Zhang, and Shaojiang Chen, and Mingliang Xu
December 2013, Molecular plant-microbe interactions : MPMI,
Qin Yang, and Guangming Yin, and Yanling Guo, and Dongfeng Zhang, and Shaojiang Chen, and Mingliang Xu
January 2022, Frontiers in plant science,
Qin Yang, and Guangming Yin, and Yanling Guo, and Dongfeng Zhang, and Shaojiang Chen, and Mingliang Xu
January 2021, Frontiers in plant science,
Qin Yang, and Guangming Yin, and Yanling Guo, and Dongfeng Zhang, and Shaojiang Chen, and Mingliang Xu
November 2023, Journal of fungi (Basel, Switzerland),
Copied contents to your clipboard!