Search results for " UPS"

showing 10 items of 102 documents

Novel Modulators of Proteostasis: RNAi Screen of Chromosome I in a Heat Stress Paradigm in C. elegans

2018

Proteostasis is of vital importance for cellular function and it is challenged upon exposure to acute or chronic insults during neurodegeneration and aging. The proteostasis network is relevant for the maintenance of proteome integrity and mainly comprises molecular chaperones and two degradation pathways, namely, autophagy and the ubiquitin proteasome system. This network is characterized by an impressive functional interrelation and complexity, and occasionally novel factors are discovered that modulate proteostasis. Here, we present an RNAi screen in C. elegans, which aimed to identify modulators of proteostasis in a heat stress paradigm. The screen comprised genes that are located on ch…

0301 basic medicineautophagyproteostasis networkUPSArticle03 medical and health sciences0302 clinical medicinemedicinechaperonelcsh:QH301-705.5GeneRNAi screenGene knockdownproteostasisbiologyAutophagyNeurodegenerationneurodegenerationGeneral Medicinemedicine.diseaseCell biology030104 developmental biologyProteostasislcsh:Biology (General)ProteasomeChaperone (protein)Proteomebiology.proteinC. elegans<i>C. elegans</i>; RNAi screen; proteostasis; proteostasis network; autophagy; UPS; chaperone; neurodegeneration030217 neurology & neurosurgeryCells
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"Table 8" of "$\Upsilon$ production and nuclear modification at forward rapidity in Pb-Pb collisions at $\mathbf{\sqrt{\textit{s}_{\textbf{NN}}}=5.02…

2021

Nuclear modification factor of $\Upsilon(1\mathrm{S})$ as a function of transverse momentum for the 0–90% centrality interval.

5020.0High Energy Physics::ExperimentUpsilonNuclear ExperimentPb Pb --&gt; UPSI(1S) &lt; MU+ MU- &gt; XTransverse Momentum DependenceLead-Lead ScatteringRAANuclear Modification Factor
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"Table 1" of "$\Upsilon$ production and nuclear modification at forward rapidity in Pb-Pb collisions at $\mathbf{\sqrt{\textit{s}_{\textbf{NN}}}=5.02…

2021

Rapidity-differential yield of $\Upsilon(1\mathrm{S}) \rightarrow \mu^{+}\mu^{-}$ divided by the average nuclear overlap function $\langle T_{\mathrm{AA}} \rangle$ for the 0–90% centrality interval ($\langle T_{\mathrm{AA}} \rangle$ = 6.28 $\pm$ 0.06 mb$^{-1}$).

5020.0InclusiveDN/DYRAPRapidity DependenceUpsilonPb Pb --&gt; UPSI(1S) &lt; MU+ MU- &gt; XLead-Lead Scattering
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"Table 2" of "$\Upsilon$ production and nuclear modification at forward rapidity in Pb-Pb collisions at $\mathbf{\sqrt{\textit{s}_{\textbf{NN}}}=5.02…

2021

Rapidity-differential yield of $\Upsilon(2\mathrm{S}) \rightarrow \mu^{+}\mu^{-}$ divided by the average nuclear overlap function $\langle T_{\mathrm{AA}} \rangle$ for the 0–90% centrality interval ($\langle T_{\mathrm{AA}} \rangle$ = 6.28 $\pm$ 0.06 mb$^{-1}$).

5020.0InclusiveDN/DYRAPRapidity DependenceUpsilonPb Pb --&gt; UPSI(2S) &lt; MU+ MU- &gt; XLead-Lead Scattering
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"Table 3" of "$\Upsilon$ production and nuclear modification at forward rapidity in Pb-Pb collisions at $\mathbf{\sqrt{\textit{s}_{\textbf{NN}}}=5.02…

2021

$p_{\mathrm{T}}$-differential yield of $\Upsilon(1\mathrm{S}) \rightarrow \mu^{+}\mu^{-}$ divided by the average nuclear overlap function $\langle T_{\mathrm{AA}} \rangle$ for the 0–90% centrality interval ($\langle T_{\mathrm{AA}} \rangle$ = 6.28 $\pm$ 0.06 mb$^{-1}$).

5020.0InclusiveUpsilonD2N/DYRAP/DPTPb Pb --&gt; UPSI(1S) &lt; MU+ MU- &gt; XTransverse Momentum DependenceLead-Lead Scattering
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"Table 4" of "Measurement of $\Upsilon(1{\rm S})$ elliptic flow at forward rapidity in Pb-Pb collisions at $\sqrt{s_{\rm{NN}}}=5.02$ TeV"

2019

The $\Upsilon$(1S) $v_2$ coefficient in three centrality intervals integrated over the transverse momentum range 2~$&lt;$~$p_{\rm T}$~$&lt;$~15 GeV/$c$ in Pb-Pb collisions at $\sqrt{s_{\rm NN}}$ = 5.02 TeV.

5020.0PB PB --&gt; Upsilon(1S) Xv_2High Energy Physics::ExperimentNuclear Experiment
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"Table 12" of "$\Upsilon$ production and nuclear modification at forward rapidity in Pb-Pb collisions at $\mathbf{\sqrt{\textit{s}_{\textbf{NN}}}=5.0…

2021

Interpolated $p_{\mathrm{T}}$-differential cross section for $\Upsilon(1\mathrm{S}) \rightarrow \mu^{+}\mu^{-}$ in proton–proton collisions. Results used for the determination of the nuclear modification factor of $\Upsilon(1\mathrm{S})$ as a function of its transverse momentum (Figure 6).

5020.0Proton-Proton ScatteringP P --&gt; UPSI(1S) &lt; MU+ MU- &gt; XD2SIG/DYRAP/DPTNuclear TheoryHigh Energy Physics::ExperimentUpsilonCross SectionNuclear ExperimentTransverse Momentum Dependence
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"Table 13" of "$\Upsilon$ production and nuclear modification at forward rapidity in Pb-Pb collisions at $\mathbf{\sqrt{\textit{s}_{\textbf{NN}}}=5.0…

2021

Interpolated rapidity-differential cross section for $\Upsilon(1\mathrm{S}) \rightarrow \mu^{+}\mu^{-}$ in proton–proton collisions. Results used for the determination of the nuclear modification factor of $\Upsilon(1\mathrm{S})$ as a function of rapidity (Figure 7).

5020.0Proton-Proton ScatteringP P --&gt; UPSI(1S) &lt; MU+ MU- &gt; XRapidity DependenceNuclear TheoryHigh Energy Physics::ExperimentUpsilonDSIG/DYRAPCross SectionNuclear Experiment
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"Table 14" of "$\Upsilon$ production and nuclear modification at forward rapidity in Pb-Pb collisions at $\mathbf{\sqrt{\textit{s}_{\textbf{NN}}}=5.0…

2021

Interpolated rapidity-differential cross section for $\Upsilon(2\mathrm{S}) \rightarrow \mu^{+}\mu^{-}$ in proton–proton collisions. Results used for the determination of the nuclear modification factor of $\Upsilon(2\mathrm{S})$ as a function of rapidity (Figure 7).

5020.0Proton-Proton ScatteringP P --&gt; UPSI(2S) &lt; MU+ MU- &gt; XRapidity DependenceNuclear TheoryHigh Energy Physics::ExperimentUpsilonDSIG/DYRAPCross SectionNuclear Experiment
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"Table 11" of "$\Upsilon$ production and nuclear modification at forward rapidity in Pb-Pb collisions at $\mathbf{\sqrt{\textit{s}_{\textbf{NN}}}=5.0…

2021

Interpolated production cross sections and cross-section ratio for $\Upsilon(1\mathrm{S}) \rightarrow \mu^{+}\mu^{-}$ and $\Upsilon(2\mathrm{S}) \rightarrow \mu^{+}\mu^{-}$ in proton–proton collisions, integrated over the rapidity interval 2.5–4.0 and $p_{\mathrm{T}} &lt;$ 15 GeV/$c$. Results used for the determination of the integrated nuclear modification factors and of the nuclear modification factors as a function of centrality (Figures 4 and 5 (right)).

5020.0RATIOProton-Proton ScatteringP P --&gt; UPSI(1S) &lt; MU+ MU- &gt; XP P --&gt; UPSI(2S) &lt; MU+ MU- &gt; XHigh Energy Physics::PhenomenologyIntegrated Cross SectionHigh Energy Physics::ExperimentUpsilonNuclear ExperimentSIG
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