10 research outputs found

    Comparative sequencing of human and mouse syntenic regions from DGCR and MND2.

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    With successful implementation of the shotgun sequencing strategy, two syntenic regions between human and mouse, totaling about 0.8 Mb, have been sequenced. One is from the DiGeorge syndrome critical region (DGCR) from human chromosome 22q11 and its syntenic region from mouse chromosome 16. The other is from the mouse motor neuron disease critical region (mnd2) from mouse chromosome 6 and its syntenic region in human chromosome 2. Based on results from database similarity search and computational gene prediction, a total of 13 genes have been predicted in the sequenced regions. Genomic structure, putative regulatory elements and possible functional implications of all the genes have been examined in detail. Sequence comparison between these human and mouse syntenic regions revealed a high conservation in gene order, gene structure as well as coding sequences. Regulatory elements including promoters and polyadenylation signals had a moderate to high degree of sequence conservation. A low level and occasionally an absence of sequence conservation was observed in the syntenic intronic and intergenic regions. Varying amounts of repeat sequences, ranging from 22%--60% for human and 26--47% for mouse occurred in the sequenced regions, with similar amounts found in the human and mouse syntenic regions. A new gene prediction method based on human and mouse coding sequence conservation was designed and implemented. A program package, named Geneligner, was developed to facilitate annotation of genomic sequences

    Characterizing adjuvants’ effects at murine immunoglobulin repertoire level

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    Summary: Generating large-scale, high-fidelity sequencing data is challenging and, furthermore, not much has been done to characterize adjuvants’ effects at the repertoire level. Thus, we introduced an IgSeq pipeline that standardized library prep protocols and data analysis functions for accurate repertoire profiling. We then studied systemically effects of CpG and Alum on the Ig heavy chain repertoire using the ovalbumin (OVA) murine model. Ig repertoires of different tissues (spleen and bone marrow) and isotypes (IgG and IgM) were examined and compared in IGHV mutation, gene usage, CDR3 length, clonal diversity, and clonal selection. We found Ig repertoires of different compartments exhibited distinguishable profiles at the non-immunized steady state, and distinctions became more pronounced upon adjuvanted immunizations. Notably, Alum and CpG effects exhibited different tissue- and isotype-preferences. The former led to increased diversity of abundant clones in bone marrow, and the latter promoted the selection of IgG clones in both tissues

    Structure and Diversity of the Rhesus Macaque Immunoglobulin Loci through Multiple De Novo Genome Assemblies

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    The rhesus macaque is a critically important animal model in biomedical research, most recently playing a key role in the development of vaccines against human immunodeficiency virus-1. Nevertheless, the immunoglobulin (Ig) loci of macaques are as yet incompletely determined and our understanding of differences between human and macaque humoral immunity remains deficient. We completed a high-coverage, high-quality whole genome sequencing and assembly project with a single rhesus macaque of Indian origin, and partial genome assemblies using genomic molecular targeting of the Ig loci in nine other rhesus macaques of Indian origin. These data indicate that the macaque Ig loci are substantially more diverse than those in humans, including greater sequence diversity and copy-number variation between individuals. It appears likely that such copy-number variation even occurs between allelic loci within individuals. Different Ig gene families in the macaque show distinct relationships to the corresponding human gene families and appear to evolve under different mechanisms. These results raise intriguing questions about the evolution of antigen receptors in primates but also have important practical implications for the design and interpretation of biomedical studies

    The Medicago genome provides insight into the evolution of rhizobial symbioses

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    Legumes (Fabaceae or Leguminosae) are unique among cultivated plants for their ability to carry out endosymbiotic nitrogen fixation with rhizobial bacteria, a process that takes place in a specialized structure known as the nodule. Legumes belong to one of the two main groups of eurosids, the Fabidae, which includes most species capable of endosymbiotic nitrogen fixation(1). Legumes comprise several evolutionary lineages derived from a common ancestor 60 million years ago (Myr ago). Papilionoids are the largest clade, dating nearly to the origin of legumes and containing most cultivated species(2). Medicago truncatula is a long-established model for the study of legume biology. Here we describe the draft sequence of the M. truncatula euchromatin based on a recently completed BAC assembly supplemented with Illumina shotgun sequence, together capturing similar to 94% of all M. truncatula genes. A whole-genome duplication (WGD) approximately 58 Myr ago had a major role in shaping the M. truncatula genome and thereby contributed to the evolution of endosymbiotic nitrogen fixation. Subsequent to the WGD, the M. truncatula genome experienced higher levels of rearrangement than two other sequenced legumes, Glycine max and Lotus japonicus. M. truncatula is a close relative of alfalfa (Medicago sativa), a widely cultivated crop with limited genomics tools and complex autotetraploid genetics. As such, the M. truncatula genome sequence provides significant opportunities to expand alfalfa's genomic toolbox

    The Medicago genome provides insight into the evolution of rhizobial symbioses

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    The tomato genome sequence provides insights into fleshy fruit evolution

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    Tomato (Solanum lycopersicum) is a major crop plant and a model system for fruit development. Solanum is one of the largest angiosperm genera1 and includes annual and perennial plants from diverse habitats. Here we present a high-quality genome sequence of domesticated tomato, a draft sequence of its closest wild relative, Solanum pimpinellifolium2, and compare them to each other and to the potato genome (Solanum tuberosum). The two tomato genomes show only 0.6% nucleotide divergence and signs of recent admixture, but show more than 8% divergence from potato, with nine large and several smaller inversions. In contrast to Arabidopsis, but similar to soybean, tomato and potato small RNAs map predominantly to gene-rich chromosomal regions, including gene promoters. The Solanum lineage has experienced two consecutive genome triplications: one that is ancient and shared with rosids, and a more recent one. These triplications set the stage for the neofunctionalization of genes controlling fruit characteristics, such as colour and fleshiness
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