Maize (Zea mays) displays an exceptional level of structural genomic diversity, which is likely unique among higher eukaryotes. In this study, we surveyed how the genetic divergence of two maize inbred lines affects the transcriptomic landscape in four different primary root tissues of their F1-hybrid progeny. An extreme instance of complementation was frequently observed: genes that were expressed in only one parent but in both reciprocal hybrids. This single-parent expression (SPE) pattern was detected for 2341 genes with up to 1287 SPE patterns per tissue. As a consequence, the number of active genes in hybrids exceeded that of their parents in each tissue by >400. SPE patterns are highly dynamic, as illustrated by their excessive degree...
Not all genes are created equal. Despite being supported by sequence conservation and expression dat...
Whole-genome duplications are a widespread feature of plant genome evolution, having been detected i...
Transposable Elements (TEs) are mobile elements that contribute the majority of DNA sequences in the...
Maize (Zea mays) displays an exceptional level of structural genomic diversity, which is likely uniq...
Typically, F1-hybrids are more vigorous than their homozygous, genetically distinct parents, a pheno...
Abstract Background Heterosis is the superior performance of F1 hybrid progeny relative to the paren...
Heterosis, which has greatly increased maize yields, is associated with gene expression patterns dur...
Heterosis, or hybrid vigor, contributes to superior agronomic performance of hybrids compared to the...
BACKGROUND:Maize experienced a whole-genome duplication event approximately 5 to 12 million years ag...
Abstract Tandem duplication gives rise to copy number variation and subsequent functional novelty am...
<div><p>Gene expression differences between divergent lineages caused by modification of <i>cis</i> ...
Here we report a multi-tissue gene expression resource that represents the genotypic and phenotypic ...
The domestication of maize (Zea mays sp. mays) from its wild progenitors represents an opportunity t...
The root system is fundamental for plant development, is crucial for overall plant growth and is rec...
Gene expression differences between divergent lineages caused by modification of cis regulatory elem...
Not all genes are created equal. Despite being supported by sequence conservation and expression dat...
Whole-genome duplications are a widespread feature of plant genome evolution, having been detected i...
Transposable Elements (TEs) are mobile elements that contribute the majority of DNA sequences in the...
Maize (Zea mays) displays an exceptional level of structural genomic diversity, which is likely uniq...
Typically, F1-hybrids are more vigorous than their homozygous, genetically distinct parents, a pheno...
Abstract Background Heterosis is the superior performance of F1 hybrid progeny relative to the paren...
Heterosis, which has greatly increased maize yields, is associated with gene expression patterns dur...
Heterosis, or hybrid vigor, contributes to superior agronomic performance of hybrids compared to the...
BACKGROUND:Maize experienced a whole-genome duplication event approximately 5 to 12 million years ag...
Abstract Tandem duplication gives rise to copy number variation and subsequent functional novelty am...
<div><p>Gene expression differences between divergent lineages caused by modification of <i>cis</i> ...
Here we report a multi-tissue gene expression resource that represents the genotypic and phenotypic ...
The domestication of maize (Zea mays sp. mays) from its wild progenitors represents an opportunity t...
The root system is fundamental for plant development, is crucial for overall plant growth and is rec...
Gene expression differences between divergent lineages caused by modification of cis regulatory elem...
Not all genes are created equal. Despite being supported by sequence conservation and expression dat...
Whole-genome duplications are a widespread feature of plant genome evolution, having been detected i...
Transposable Elements (TEs) are mobile elements that contribute the majority of DNA sequences in the...