Articles with "independent translation" as a keyword



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Exploring the Role of AUG Triplets in Human Cap-Independent Translation Enhancing Elements

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Published in 2018 at "Biochemistry"

DOI: 10.1021/acs.biochem.8b00785

Abstract: Cap-independent translation is believed to play an important role in eukaryotic protein synthesis, but the mechanisms of ribosomal recruitment and translation initiation remain largely unknown. Messenger RNA display was previously used to profile the human… read more here.

Keywords: aug triplets; translation; role; cap independent ... See more keywords
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Structural characterization of a new subclass of panicum mosaic virus-like 3′ cap-independent translation enhancer

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Published in 2022 at "Nucleic Acids Research"

DOI: 10.1093/nar/gkac007

Abstract: Abstract Canonical eukaryotic mRNA translation requires 5′cap recognition by initiation factor 4E (eIF4E). In contrast, many positive-strand RNA virus genomes lack a 5′cap and promote translation by non-canonical mechanisms. Among plant viruses, PTEs are a… read more here.

Keywords: independent translation; virus; cap independent; translation ... See more keywords
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Cap‐independent translation: A shared mechanism for lifespan extension by rapamycin, acarbose, and 17α‐estradiol

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Published in 2021 at "Aging Cell"

DOI: 10.1111/acel.13345

Abstract: We hypothesized that rapamycin (Rapa), acarbose (ACA), which both increase mouse lifespan, and 17α‐estradiol, which increases lifespan in males (17aE2) all share common intracellular signaling pathways with long‐lived Snell dwarf, PAPPA‐KO, and Ghr−/− mice. The… read more here.

Keywords: lifespan extension; translation; cap independent; independent translation ... See more keywords
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Cap‐independent translation of GPLD1 enhances markers of brain health in long‐lived mutant and drug‐treated mice

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Published in 2022 at "Aging Cell"

DOI: 10.1111/acel.13685

Abstract: Glycosylphosphatidylinositol‐specific phospholipase D1 (GPLD1) hydrolyzes inositol phosphate linkages in proteins anchored to the cell membrane. Mice overexpressing GPLD1 show enhanced neurogenesis and cognition. Snell dwarf (DW) and growth hormone receptor knockout (GKO) mice show delays… read more here.

Keywords: cap independent; brain; independent translation; gpld1 ... See more keywords
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Analysis of the interacting partners eIF4F and 3'-CITE required for Melon necrotic spot virus cap-independent translation.

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Published in 2017 at "Molecular plant pathology"

DOI: 10.1111/mpp.12422

Abstract: We have shown previously that the translation of Melon necrotic spot virus (MNSV, family Tombusviridae, genus Carmovirus) RNAs is controlled by a 3'-cap-independent translation enhancer (CITE), which is genetically and functionally dependent on the eukaryotic… read more here.

Keywords: eif4e; independent translation; translation; cap independent ... See more keywords
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cis-Acting Sequences and Secondary Structures in Untranslated Regions of Duck Tembusu Virus RNA Are Important for Cap-Independent Translation and Viral Proliferation

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Published in 2020 at "Journal of Virology"

DOI: 10.1128/jvi.00906-20

Abstract: The genus Flavivirus includes major human pathogens, as well as animal-infecting viruses with zoonotic potential. In order to counteract the threats these viruses represent, it is important to understand their basic biology to develop universal… read more here.

Keywords: translation; independent translation; virus; rna ... See more keywords
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A Dual Interaction Between the 5′- and 3′-Ends of the Melon Necrotic Spot Virus (MNSV) RNA Genome Is Required for Efficient Cap-Independent Translation

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Published in 2018 at "Frontiers in Plant Science"

DOI: 10.3389/fpls.2018.00625

Abstract: In eukaryotes, the formation of a 5′-cap and 3′-poly(A) dependent protein–protein bridge is required for translation of its mRNAs. In contrast, several plant virus RNA genomes lack both of these mRNA features, but instead have… read more here.

Keywords: mnsv; translation; cap independent; virus ... See more keywords