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1.
RNA ; 22(2): 254-64, 2016 Feb.
Article in English | MEDLINE | ID: mdl-26654912

ABSTRACT

Approximately 75% of the human genome is transcribed and many of these spliced transcripts contain primate-specific Alu elements, the most abundant mobile element in the human genome. The majority of exonized Alu elements are located in long noncoding RNAs (lncRNAs) and the untranslated regions of mRNA, with some performing molecular functions. To further assess the potential for Alu elements to be repurposed as functional RNA domains, we investigated the distribution and evolution of Alu elements in spliced transcripts. Our analysis revealed that Alu elements are underrepresented in mRNAs and lncRNAs, suggesting that most exonized Alu elements arising in the population are rare or deleterious to RNA function. When mRNAs and lncRNAs retain exonized Alu elements, they have a clear preference for Alu dimers, left monomers, and right monomers. mRNAs often acquire Alu elements when their genes are duplicated within Alu-rich regions. In lncRNAs, reverse-oriented Alu elements are significantly enriched and are not restricted to the 3' and 5' ends. Both lncRNAs and mRNAs primarily contain the Alu J and S subfamilies that were amplified relatively early in primate evolution. Alu J subfamilies are typically overrepresented in lncRNAs, whereas the Alu S dimer is overrepresented in mRNAs. The sequences of Alu dimers tend to be constrained in both lncRNAs and mRNAs, whereas the left and right monomers are constrained within particular Alu subfamilies and classes of RNA. Collectively, these findings suggest that Alu-containing RNAs are capable of forming stable structures and that some of these Alu domains might have novel biological functions.


Subject(s)
3' Untranslated Regions , 5' Untranslated Regions , Alu Elements , Genome, Human , RNA, Long Noncoding/chemistry , Computational Biology/methods , Evolution, Molecular , Exons , Humans , RNA, Long Noncoding/genetics
2.
J Immunol ; 191(5): 2104-14, 2013 Sep 01.
Article in English | MEDLINE | ID: mdl-23918976

ABSTRACT

Loss-of-function mutations in the Fas death receptor or its ligand result in a lymphoproliferative syndrome and exacerbate clinical disease in most lupus-prone strains of mice. One exception is mice injected with 2,6,10,14-tetramethylpentadecane (TMPD), a hydrocarbon oil commonly known as pristane, which induces systemic lupus erythematosus-like disease. Although Fas/Fas ligand (FasL) interactions have been strongly implicated in the activation-induced cell death of both lymphocytes and other APCs, FasL can also trigger the production of proinflammatory cytokines. FasL is a transmembrane protein with a matrix metalloproteinase cleavage site in the ectodomain. Matrix metalloproteinase cleavage inactivates membrane-bound FasL and releases a soluble form reported to have both antagonist and agonist activity. To better understand the impact of FasL cleavage on both the proapoptotic and proinflammatory activity of FasL, its cleavage site was deleted through targeted mutation to produce the deleted cleavage site (ΔCS) mouse line. ΔCS mice express higher levels of membrane-bound FasL than do wild-type mice and fail to release soluble FasL. To determine to what extent FasL promotes inflammation in lupus mice, TMPD-injected FasL-deficient and ΔCS BALB/c mice were compared with control TMPD-injected BALB/c mice. We found that FasL deficiency significantly reduced the early inflammatory exudate induced by TMPD injection. In contrast, ΔCS mice developed a markedly exacerbated disease profile associated with a higher frequency of splenic neutrophils and macrophages, a profound change in anti-nuclear Ab specificity, and markedly increased proteinuria and kidney pathology compared with controls. These results demonstrate that FasL promotes inflammation in TMPD-induced autoimmunity, and its cleavage limits FasL proinflammatory activity.


Subject(s)
Fas Ligand Protein/metabolism , Lupus Erythematosus, Systemic/immunology , Lupus Erythematosus, Systemic/metabolism , Animals , Apoptosis/immunology , BALB 3T3 Cells , Disease Models, Animal , Enzyme-Linked Immunosorbent Assay , Fas Ligand Protein/immunology , Flow Cytometry , Immunosuppressive Agents/toxicity , Kidney Diseases/pathology , Lupus Erythematosus, Systemic/pathology , Mice , Mice, Inbred C57BL , Mice, Mutant Strains , Reverse Transcriptase Polymerase Chain Reaction , Terpenes/toxicity , Transcriptome
3.
Nucleic Acids Res ; 41(15): 7387-400, 2013 Aug.
Article in English | MEDLINE | ID: mdl-23761445

ABSTRACT

Anopheles darlingi is the principal neotropical malaria vector, responsible for more than a million cases of malaria per year on the American continent. Anopheles darlingi diverged from the African and Asian malaria vectors ∼100 million years ago (mya) and successfully adapted to the New World environment. Here we present an annotated reference A. darlingi genome, sequenced from a wild population of males and females collected in the Brazilian Amazon. A total of 10 481 predicted protein-coding genes were annotated, 72% of which have their closest counterpart in Anopheles gambiae and 21% have highest similarity with other mosquito species. In spite of a long period of divergent evolution, conserved gene synteny was observed between A. darlingi and A. gambiae. More than 10 million single nucleotide polymorphisms and short indels with potential use as genetic markers were identified. Transposable elements correspond to 2.3% of the A. darlingi genome. Genes associated with hematophagy, immunity and insecticide resistance, directly involved in vector-human and vector-parasite interactions, were identified and discussed. This study represents the first effort to sequence the genome of a neotropical malaria vector, and opens a new window through which we can contemplate the evolutionary history of anopheline mosquitoes. It also provides valuable information that may lead to novel strategies to reduce malaria transmission on the South American continent. The A. darlingi genome is accessible at www.labinfo.lncc.br/index.php/anopheles-darlingi.


Subject(s)
Anopheles/genetics , Genome, Insect , Insect Vectors/genetics , Animals , Anopheles/classification , Brazil , Chromosomes, Insect/genetics , DNA Transposable Elements , Evolution, Molecular , Female , Genetic Variation , Host-Parasite Interactions , Insect Proteins/genetics , Insect Vectors/classification , Insecticide Resistance , Insecticides/pharmacology , Malaria/parasitology , Male , Molecular Sequence Annotation , Phylogeny , Synteny , Transcriptome
4.
J Virol ; 87(9): 4846-60, 2013 May.
Article in English | MEDLINE | ID: mdl-23408632

ABSTRACT

Rift Valley fever virus (RVFV) is an emerging RNA virus with devastating economic and social consequences. Clinically, RVFV induces a gamut of symptoms ranging from febrile illness to retinitis, hepatic necrosis, hemorrhagic fever, and death. It is known that type I interferon (IFN) responses can be protective against severe pathology; however, it is unknown which innate immune receptor pathways are crucial for mounting this response. Using both in vitro assays and in vivo mucosal mouse challenge, we demonstrate here that RNA helicases are critical for IFN production by immune cells and that signaling through the helicase adaptor molecule MAVS (mitochondrial antiviral signaling) is protective against mortality and more subtle pathology during RVFV infection. In addition, we demonstrate that Toll-like-receptor-mediated signaling is not involved in IFN production, further emphasizing the importance of the RNA cellular helicases in type I IFN responses to RVFV.


Subject(s)
DEAD-box RNA Helicases/immunology , Interferon-beta/immunology , Mucous Membrane/virology , Rift Valley Fever/enzymology , Rift Valley Fever/immunology , Rift Valley fever virus/physiology , Animals , Cell Line , DEAD Box Protein 58 , DEAD-box RNA Helicases/genetics , Dendritic Cells/immunology , Dendritic Cells/virology , Female , Humans , Interferon-beta/genetics , Macrophages/immunology , Macrophages/virology , Male , Mice , Mice, Inbred C57BL , Mice, Knockout/genetics , Mucous Membrane/immunology , Rift Valley Fever/prevention & control , Rift Valley Fever/virology , Signal Transduction , Toll-Like Receptors/genetics , Toll-Like Receptors/immunology
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