Littérature scientifique sur le sujet « Sem1/DSS1 »

Créez une référence correcte selon les styles APA, MLA, Chicago, Harvard et plusieurs autres

Choisissez une source :

Consultez les listes thématiques d’articles de revues, de livres, de thèses, de rapports de conférences et d’autres sources académiques sur le sujet « Sem1/DSS1 ».

À côté de chaque source dans la liste de références il y a un bouton « Ajouter à la bibliographie ». Cliquez sur ce bouton, et nous générerons automatiquement la référence bibliographique pour la source choisie selon votre style de citation préféré : APA, MLA, Harvard, Vancouver, Chicago, etc.

Vous pouvez aussi télécharger le texte intégral de la publication scolaire au format pdf et consulter son résumé en ligne lorsque ces informations sont inclues dans les métadonnées.

Articles de revues sur le sujet "Sem1/DSS1"

1

Faza, Marius Boulos, Stefan Kemmler, Sonia Jimeno, Cristina González-Aguilera, Andrés Aguilera, Ed Hurt et Vikram Govind Panse. « Sem1 is a functional component of the nuclear pore complex–associated messenger RNA export machinery ». Journal of Cell Biology 184, no 6 (16 mars 2009) : 833–46. http://dx.doi.org/10.1083/jcb.200810059.

Texte intégral
Résumé :
The evolutionarily conserved protein Sem1/Dss1 is a subunit of the regulatory particle (RP) of the proteasome, and, in mammalian cells, binds the tumor suppressor protein BRCA2. Here, we describe a new function for yeast Sem1. We show that sem1 mutants are impaired in messenger RNA (mRNA) export and transcription elongation, and induce strong transcription-associated hyper-recombination phenotypes. Importantly, Sem1, independent of the RP, is functionally linked to the mRNA export pathway. Biochemical analyses revealed that, in addition to the RP, Sem1 coenriches with components of two other multisubunit complexes: the nuclear pore complex (NPC)-associated TREX-2 complex that is required for transcription-coupled mRNA export, and the COP9 signalosome, which is involved in deneddylation. Notably, targeting of Thp1, a TREX-2 component, to the NPC is perturbed in a sem1 mutant. These findings reveal an unexpected nonproteasomal function of Sem1 in mRNA export and in prevention of transcription-associated genome instability. Thus, Sem1 is a versatile protein that might stabilize multiple protein complexes involved in diverse pathways.
Styles APA, Harvard, Vancouver, ISO, etc.
2

Kragelund, Birthe B., Signe M. Schenstrøm, Caio A. Rebula, Vikram Govind Panse et Rasmus Hartmann-Petersen. « DSS1/Sem1, a Multifunctional and Intrinsically Disordered Protein ». Trends in Biochemical Sciences 41, no 5 (mai 2016) : 446–59. http://dx.doi.org/10.1016/j.tibs.2016.02.004.

Texte intégral
Styles APA, Harvard, Vancouver, ISO, etc.
3

Wilmes, Gwendolyn M., Megan Bergkessel, Sourav Bandyopadhyay, Michael Shales, Hannes Braberg, Gerard Cagney, Sean R. Collins et al. « A Genetic Interaction Map of RNA-Processing Factors Reveals Links between Sem1/Dss1-Containing Complexes and mRNA Export and Splicing ». Molecular Cell 32, no 5 (décembre 2008) : 735–46. http://dx.doi.org/10.1016/j.molcel.2008.11.012.

Texte intégral
Styles APA, Harvard, Vancouver, ISO, etc.
4

Jantti, J., J. Lahdenranta, V. M. Olkkonen, H. Soderlund et S. Keranen. « SEM1, a homologue of the split hand/split foot malformation candidate gene Dss1, regulates exocytosis and pseudohyphal differentiation in yeast ». Proceedings of the National Academy of Sciences 96, no 3 (2 février 1999) : 909–14. http://dx.doi.org/10.1073/pnas.96.3.909.

Texte intégral
Styles APA, Harvard, Vancouver, ISO, etc.
5

Levi, Giovanni, Nicolas Narboux-Nême et Martine Cohen-Solal. « DLX Genes in the Development and Maintenance of the Vertebrate Skeleton : Implications for Human Pathologies ». Cells 11, no 20 (18 octobre 2022) : 3277. http://dx.doi.org/10.3390/cells11203277.

Texte intégral
Résumé :
Skeletal shape and mechanical properties define, to a large extent, vertebrate morphology and physical capacities. During development, skeletal morphogenesis results from dynamic communications between chondrocytes, osteoblasts, osteoclasts, and other cellular components of the skeleton. Later in life, skeletal integrity depends on the regulatory cascades that assure the equilibrium between bone formation and resorption. Finally, during aging, skeletal catabolism prevails over anabolism resulting in progressive skeletal degradation. These cellular processes depend on the transcriptional cascades that control cell division and differentiation in each cell type. Most Distal-less (Dlx) homeobox transcription factors are directly involved in determining the proliferation and differentiation of chondrocytes and osteoblasts and, indirectly, of osteoclasts. While the involvement of Dlx genes in the regulation of skeletal formation has been well-analyzed thanks to several mutant mouse models, the role of these genes in the maintenance of bone integrity has been only partially studied. The importance of Dlx genes for adult bone tissues is evidenced by their central role in the regulatory pathways involving Osx/Sp7 and Runx2, the two major master genes of osteogenesis. Dlx genes appear to be involved in several bone pathologies including, for example, osteoporosis. Indeed, at least five large-scale GWAS studies which aimed to detect loci associated with human bone mineral density (BMD) have identified a known DLX5/6 regulatory region within chromosome 7q21.3 in proximity of SEM1/FLJ42280/DSS1 coding sequences, suggesting that DLX5/6 expression is critical in determining healthy BMD. This review aims to summarize the major findings concerning the involvement of Dlx genes in skeletal development and homeostasis and their involvement in skeletal aging and pathology.
Styles APA, Harvard, Vancouver, ISO, etc.
Nous offrons des réductions sur tous les plans premium pour les auteurs dont les œuvres sont incluses dans des sélections littéraires thématiques. Contactez-nous pour obtenir un code promo unique!

Vers la bibliographie