1,013 research outputs found
The pattern and distribution of deleterious mutations in maize
Most non-synonymous mutations are thought to be deleterious because of their
effect on protein sequence. These polymorphisms are expected to be removed or
kept at low frequency by the action of natural selection, and rare deleterious
variants have been implicated as a possible explanation for the "missing
heritability" seen in many studies of complex traits. Nonetheless, the effect
of positive selection on linked sites or drift in small or inbred populations
may also impact the evolution of deleterious alleles. Here, we made use of
genome-wide genotyping data to characterize deleterious variants in a large
panel of maize inbred lines. We show that, in spite of small effective
population sizes and inbreeding, most putatively deleterious SNPs are indeed at
low frequencies within individual genetic groups. We find that genes showing
associations with a number of complex traits are enriched for deleterious
variants. Together these data are consistent with the dominance model of
heterosis, in which complementation of numerous low frequency, weak deleterious
variants contribute to hybrid vigor
Genetic, evolutionary and plant breeding insights from the domestication of maize.
The natural history of maize began nine thousand years ago when Mexican farmers started to collect the seeds of the wild grass, teosinte. Invaluable as a food source, maize permeated Mexican culture and religion. Its domestication eventually led to its adoption as a model organism, aided in large part by its large chromosomes, ease of pollination and growing agricultural importance. Genome comparisons between varieties of maize, teosinte and other grasses are beginning to identify the genes responsible for the domestication of modern maize and are also providing ideas for the breeding of more hardy varieties
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Dynamic Patterns of Transcript Abundance of Transposable Element Families in Maize.
Transposable Elements (TEs) are mobile elements that contribute the majority of DNA sequences in the maize genome. Due to their repetitive nature, genomic studies of TEs are complicated by the difficulty of properly attributing multi-mapped short reads to specific genomic loci. Here, we utilize a method to attribute RNA-seq reads to TE families rather than particular loci in order to characterize transcript abundance for TE families in the maize genome. We applied this method to assess per-family expression of transposable elements in >800 published RNA-seq libraries representing a range of maize development, genotypes, and hybrids. While a relatively small proportion of TE families are transcribed, expression is highly dynamic with most families exhibiting tissue-specific expression. A large number of TE families were specifically detected in pollen and endosperm, consistent with reproductive dynamics that maintain silencing of TEs in the germ line. We find that B73 transcript abundance is a poor predictor of TE expression in other genotypes and that transcript levels can differ even for shared TEs. Finally, by assessing recombinant inbred line and hybrid transcriptomes, complex patterns of TE transcript abundance across genotypes emerged. Taken together, this study reveals a dynamic contribution of TEs to maize transcriptomes
Allele specific expression analysis identifies regulatory variation associated with stress-related genes in the Mexican highland maize landrace Palomero Toluqueño.
BackgroundGene regulatory variation has been proposed to play an important role in the adaptation of plants to environmental stress. In the central highlands of Mexico, farmer selection has generated a unique group of maize landraces adapted to the challenges of the highland niche. In this study, gene expression in Mexican highland maize and a reference maize breeding line were compared to identify evidence of regulatory variation in stress-related genes. It was hypothesised that local adaptation in Mexican highland maize would be associated with a transcriptional signature observable even under benign conditions.MethodsAllele specific expression analysis was performed using the seedling-leaf transcriptome of an F1 individual generated from the cross between the highland adapted Mexican landrace Palomero Toluqueño and the reference line B73, grown under benign conditions. Results were compared with a published dataset describing the transcriptional response of B73 seedlings to cold, heat, salt and UV treatments.ResultsA total of 2,386 genes were identified to show allele specific expression. Of these, 277 showed an expression difference between Palomero Toluqueño and B73 alleles under benign conditions that anticipated the response of B73 cold, heat, salt and/or UV treatments, and, as such, were considered to display a prior stress response. Prior stress response candidates included genes associated with plant hormone signaling and a number of transcription factors. Construction of a gene co-expression network revealed further signaling and stress-related genes to be among the potential targets of the transcription factors candidates.DiscussionPrior activation of responses may represent the best strategy when stresses are severe but predictable. Expression differences observed here between Palomero Toluqueño and B73 alleles indicate the presence of cis-acting regulatory variation linked to stress-related genes in Palomero Toluqueño. Considered alongside gene annotation and population data, allele specific expression analysis of plants grown under benign conditions provides an attractive strategy to identify functional variation potentially linked to local adaptation
Higher education opportunities for undocumented students in the United States: What are the policy implications for educators and legislators
A large number of undocumented students graduate from high school every year in the United States. This number is estimated to be around 65 thousand (Passel, 2003). Out of this population, only 5-10 percent continue their education in a higher education institution. As a society we should ask ourselves: What are the political, economic and moral implications of undocumented students inability to access higher education. How should educators and legislators approach this issue
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Hybrid Decay: A Transgenerational Epigenetic Decline in Vigor and Viability Triggered in Backcross Populations of Teosinte with Maize.
In the course of generating populations of maize with teosinte chromosomal introgressions, an unusual sickly plant phenotype was noted in individuals from crosses with two teosinte accessions collected near Valle de Bravo, Mexico. The plants of these Bravo teosinte accessions appear phenotypically normal themselves and the F1 plants appear similar to typical maize × teosinte F1s. However, upon backcrossing to maize, the BC1 and subsequent generations display a number of detrimental characteristics including shorter stature, reduced seed set, and abnormal floral structures. This phenomenon is observed in all BC individuals and there is no chromosomal segment linked to the sickly plant phenotype in advanced backcross generations. Once the sickly phenotype appears in a lineage, normal plants are never again recovered by continued backcrossing to the normal maize parent. Whole-genome shotgun sequencing reveals a small number of genomic sequences, some with homology to transposable elements, that have increased in copy number in the backcross populations. Transcriptome analysis of seedlings, which do not have striking phenotypic abnormalities, identified segments of 18 maize genes that exhibit increased expression in sickly plants. A de novo assembly of transcripts present in plants exhibiting the sickly phenotype identified a set of 59 upregulated novel transcripts. These transcripts include some examples with sequence similarity to transposable elements and other sequences present in the recurrent maize parent (W22) genome as well as novel sequences not present in the W22 genome. Genome-wide profiles of gene expression, DNA methylation, and small RNAs are similar between sickly plants and normal controls, although a few upregulated transcripts and transposable elements are associated with altered small RNA or methylation profiles. This study documents hybrid incompatibility and genome instability triggered by the backcrossing of Bravo teosinte with maize. We name this phenomenon "hybrid decay" and present ideas on the mechanism that may underlie it
Complex patterns of local adaptation in teosinte
Populations of widely distributed species often encounter and adapt to
specific environmental conditions. However, comprehensive characterization of
the genetic basis of adaptation is demanding, requiring genome-wide genotype
data, multiple sampled populations, and a good understanding of population
structure. We have used environmental and high-density genotype data to
describe the genetic basis of local adaptation in 21 populations of teosinte,
the wild ancestor of maize. We found that altitude, dispersal events and
admixture among subspecies formed a complex hierarchical genetic structure
within teosinte. Patterns of linkage disequilibrium revealed four mega-base
scale inversions that segregated among populations and had altitudinal clines.
Based on patterns of differentiation and correlation with environmental
variation, inversions and nongenic regions play an important role in local
adaptation of teosinte. Further, we note that strongly differentiated
individual populations can bias the identification of adaptive loci. The role
of inversions in local adaptation has been predicted by theory and requires
attention as genome-wide data become available for additional plant species.
These results also suggest a potentially important role for noncoding
variation, especially in large plant genomes in which the gene space represents
a fraction of the entire genome
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