Type |
Details |
Score |
Publication |
First Author: |
Löffler AS |
Year: |
2011 |
Journal: |
Autophagy |
Title: |
Ulk1-mediated phosphorylation of AMPK constitutes a negative regulatory feedback loop. |
Volume: |
7 |
Issue: |
7 |
Pages: |
696-706 |
|
•
•
•
•
•
|
Protein Domain |
Type: |
Domain |
Description: |
This entry represents the N-terminal domain of autophagy-related protein 13 (Atg13) from yeasts, animals and plants. They function in autophagy.Fission yeast autophagy initiation is controlled by the Atg1 kinase complex, which is composed of the Ser/Thr kinase Atg1, the adaptor protein Atg13, and the ternary complex of Atg17-Atg31-Atg29. Atg13 recruits Atg1 to the site of autophagosome formation and enhancing Atg1 kinase activity. Atg13 may have additional functions that are independent of a direct interaction or permanent colocalization with Atg1 []. In vertebrates, the orthologous ULK1 kinase complex contains the Ser/Thr kinase ULK1 and the accessory proteins ATG13, RB1CC1, and ATG101 []. Through its regulation of ULK1 activity, Atg13 plays a role in the regulation of the kinase activity of mTORC1 and cell proliferation []. |
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•
•
•
•
•
|
Protein Domain |
Type: |
Family |
Description: |
This entry represents autophagy-related protein 13 (Atg13) from yeasts, animals and plants, which functions in autophagy.Fission yeast autophagy initiation is controlled by the Atg1 kinase complex, which is composed of the Ser/Thr kinase Atg1, the adaptor protein Atg13, and the ternary complex of Atg17-Atg31-Atg29. Atg13 recruits Atg1 to the site of autophagosome formation and enhancing Atg1 kinase activity. Atg13 may have additional functions that are independent of a direct interaction or permanent colocalization with Atg1 []. In vertebrates, the orthologous ULK1 kinase complex contains the Ser/Thr kinase ULK1 and the accessory proteins ATG13, RB1CC1, and ATG101 []. Through its regulation of ULK1 activity, Atg13 plays a role in the regulation of the kinase activity of mTORC1 and cell proliferation []. |
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•
•
•
•
•
|
GO Term |
|
•
•
•
•
•
|
Protein |
Organism: |
Mus musculus/domesticus |
Length: |
125
 |
Fragment?: |
false |
|
•
•
•
•
•
|
Protein |
Organism: |
Mus musculus/domesticus |
Length: |
47
 |
Fragment?: |
false |
|
•
•
•
•
•
|
Protein |
Organism: |
Mus musculus/domesticus |
Length: |
35
 |
Fragment?: |
true |
|
•
•
•
•
•
|
Publication |
First Author: |
McKnight NC |
Year: |
2012 |
Journal: |
EMBO J |
Title: |
Genome-wide siRNA screen reveals amino acid starvation-induced autophagy requires SCOC and WAC. |
Volume: |
31 |
Issue: |
8 |
Pages: |
1931-46 |
|
•
•
•
•
•
|
Protein Domain |
Type: |
Family |
Description: |
This entry represents short coiled-coil protein (SCOC). In human, SCOC is required for autophagosome formation during amino acid starvation. It forms a starvation-sensitive trimeric complex with UVRAG (UV radiation resistance associated gene) and FEZ1 and may regulate ULK1 and Beclin 1 complex activities []. |
|
•
•
•
•
•
|
HT Experiment |
Series Id: |
E-GEOD-79508 |
Experiment Type: |
transcription profiling by array |
Study Type: |
WT vs. Mutant |
Source: |
GEO |
|
•
•
•
•
•
|
Protein |
Organism: |
Mus musculus/domesticus |
Length: |
516
 |
Fragment?: |
false |
|
•
•
•
•
•
|
Protein Domain |
Type: |
Family |
Description: |
Protein phosphorylation, which plays a key role in most cellular activities, is a reversible process mediated by protein kinases and phosphoprotein phosphatases. Protein kinases catalyse the transfer of the gamma phosphate from nucleotide triphosphates (often ATP) to one or more amino acid residues in a protein substrate side chain, resulting in a conformational change affecting protein function. Phosphoprotein phosphatases catalyse the reverse process. Protein kinases fall into three broad classes, characterised with respect to substrate specificity []:Serine/threonine-protein kinasesTyrosine-protein kinasesDual specificity protein kinases (e.g. MEK - phosphorylates both Thr and Tyr on target proteins)Protein kinase function is evolutionarily conserved from Escherichia coli to human []. Protein kinases play a role in a multitude of cellular processes, including division, proliferation, apoptosis, and differentiation []. Phosphorylation usually results in a functional change of the target protein by changing enzyme activity, cellular location, or association with other proteins. The catalytic subunits of protein kinases are highly conserved, and several structures have been solved [], leading to large screens to develop kinase-specific inhibitors for the treatments of a number of diseases [].This represents serine/threonine-protein kinases (), such as Ulk1 and Ulk2 (Unc-51-Like Kinase). Ulk1 and Ulk2 regulate filopodia extension and branching of sensory axons. They are important for axon growth, playing an essential role in neurite extension of cerebellar granule cells [, ]. |
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•
•
•
•
•
|
Publication |
|
Year: |
1980 |
Journal: |
Contrib Nephrol |
Title: |
Disturbances of water and electrolyte metabolism. |
Volume: |
21 |
|
Pages: |
1-152 |
|
•
•
•
•
•
|
Publication |
First Author: |
Bakula D |
Year: |
2017 |
Journal: |
Nat Commun |
Title: |
WIPI3 and WIPI4 β-propellers are scaffolds for LKB1-AMPK-TSC signalling circuits in the control of autophagy. |
Volume: |
8 |
|
Pages: |
15637 |
|
•
•
•
•
•
|
Publication |
First Author: |
Day EA |
Year: |
2023 |
Journal: |
iScience |
Title: |
Macrophage AMPK β1 activation by PF-06409577 reduces the inflammatory response, cholesterol synthesis, and atherosclerosis in mice. |
Volume: |
26 |
Issue: |
11 |
Pages: |
108269 |
|
•
•
•
•
•
|
Publication |
First Author: |
Zhu L |
Year: |
2018 |
Journal: |
Nat Commun |
Title: |
TBK-binding protein 1 regulates IL-15-induced autophagy and NKT cell survival. |
Volume: |
9 |
Issue: |
1 |
Pages: |
2812 |
|
•
•
•
•
•
|
Publication |
First Author: |
Byun S |
Year: |
2020 |
Journal: |
Nat Commun |
Title: |
Fasting-induced FGF21 signaling activates hepatic autophagy and lipid degradation via JMJD3 histone demethylase. |
Volume: |
11 |
Issue: |
1 |
Pages: |
807 |
|
•
•
•
•
•
|
Publication |
First Author: |
Tsang T |
Year: |
2020 |
Journal: |
Nat Cell Biol |
Title: |
Copper is an essential regulator of the autophagic kinases ULK1/2 to drive lung adenocarcinoma. |
Volume: |
22 |
Issue: |
4 |
Pages: |
412-424 |
|
•
•
•
•
•
|
Publication |
First Author: |
Ding S |
Year: |
2021 |
Journal: |
iScience |
Title: |
Interactions between fungal hyaluronic acid and host CD44 promote internalization by recruiting host autophagy proteins to forming phagosomes. |
Volume: |
24 |
Issue: |
3 |
Pages: |
102192 |
|
•
•
•
•
•
|
Publication |
First Author: |
Qi X |
Year: |
2016 |
Journal: |
J Exp Med |
Title: |
Cathepsin B modulates lysosomal biogenesis and host defense against Francisella novicida infection. |
Volume: |
213 |
Issue: |
10 |
Pages: |
2081-97 |
|
•
•
•
•
•
|
Publication |
First Author: |
Bujak AL |
Year: |
2015 |
Journal: |
Cell Metab |
Title: |
AMPK activation of muscle autophagy prevents fasting-induced hypoglycemia and myopathy during aging. |
Volume: |
21 |
Issue: |
6 |
Pages: |
883-90 |
|
•
•
•
•
•
|
Publication |
First Author: |
Yu H |
Year: |
2020 |
Journal: |
Oxid Med Cell Longev |
Title: |
O-GlcNAcylation Is Essential for Autophagy in Cardiomyocytes. |
Volume: |
2020 |
|
Pages: |
5602396 |
|
•
•
•
•
•
|
Publication |
First Author: |
Fetalvero KM |
Year: |
2013 |
Journal: |
Mol Cell Biol |
Title: |
Defective autophagy and mTORC1 signaling in myotubularin null mice. |
Volume: |
33 |
Issue: |
1 |
Pages: |
98-110 |
|
•
•
•
•
•
|
Publication |
First Author: |
Israeli T |
Year: |
2022 |
Journal: |
Diabetes |
Title: |
Nutrient Sensor mTORC1 Regulates Insulin Secretion by Modulating β-Cell Autophagy. |
Volume: |
71 |
Issue: |
3 |
Pages: |
453-469 |
|
•
•
•
•
•
|
Publication |
First Author: |
Longo M |
Year: |
2024 |
Journal: |
Mol Cell |
Title: |
Opposing roles for AMPK in regulating distinct mitophagy pathways. |
Volume: |
84 |
Issue: |
22 |
Pages: |
4350-4367.e9 |
|
•
•
•
•
•
|
Publication |
First Author: |
Chauhan S |
Year: |
2015 |
Journal: |
Mol Cell |
Title: |
IRGM governs the core autophagy machinery to conduct antimicrobial defense. |
Volume: |
58 |
Issue: |
3 |
Pages: |
507-21 |
|
•
•
•
•
•
|
Publication |
First Author: |
Bodemann BO |
Year: |
2011 |
Journal: |
Cell |
Title: |
RalB and the exocyst mediate the cellular starvation response by direct activation of autophagosome assembly. |
Volume: |
144 |
Issue: |
2 |
Pages: |
253-67 |
|
•
•
•
•
•
|
Publication |
First Author: |
Zhang J |
Year: |
2015 |
Journal: |
Nat Cell Biol |
Title: |
ATM functions at the peroxisome to induce pexophagy in response to ROS. |
Volume: |
17 |
Issue: |
10 |
Pages: |
1259-1269 |
|
•
•
•
•
•
|
Publication |
First Author: |
Berglund R |
Year: |
2024 |
Journal: |
Nat Commun |
Title: |
The aging mouse CNS is protected by an autophagy-dependent microglia population promoted by IL-34. |
Volume: |
15 |
Issue: |
1 |
Pages: |
383 |
|
•
•
•
•
•
|
Protein |
Organism: |
Mus musculus/domesticus |
Length: |
327
 |
Fragment?: |
true |
|
•
•
•
•
•
|
Publication |
First Author: |
Ogura K |
Year: |
2006 |
Journal: |
Development |
Title: |
The autophagy-related kinase UNC-51 and its binding partner UNC-14 regulate the subcellular localization of the Netrin receptor UNC-5 in Caenorhabditis elegans. |
Volume: |
133 |
Issue: |
17 |
Pages: |
3441-50 |
|
•
•
•
•
•
|
Publication |
First Author: |
Aladzsity I |
Year: |
2007 |
Journal: |
Genetics |
Title: |
Autophagy genes unc-51 and bec-1 are required for normal cell size in Caenorhabditis elegans. |
Volume: |
177 |
Issue: |
1 |
Pages: |
655-60 |
|
•
•
•
•
•
|
Publication |
First Author: |
Tian E |
Year: |
2009 |
Journal: |
Autophagy |
Title: |
epg-1 functions in autophagy-regulated processes and may encode a highly divergent Atg13 homolog in C. elegans. |
Volume: |
5 |
Issue: |
5 |
Pages: |
608-15 |
|
•
•
•
•
•
|
Publication |
First Author: |
Fujioka Y |
Year: |
2014 |
Journal: |
Nat Struct Mol Biol |
Title: |
Structural basis of starvation-induced assembly of the autophagy initiation complex. |
Volume: |
21 |
Issue: |
6 |
Pages: |
513-21 |
|
•
•
•
•
•
|
Publication |
First Author: |
Colicelli J |
Year: |
2004 |
Journal: |
Sci STKE |
Title: |
Human RAS superfamily proteins and related GTPases. |
Volume: |
2004 |
Issue: |
250 |
Pages: |
RE13 |
|
•
•
•
•
•
|
Publication |
First Author: |
Lim KH |
Year: |
2005 |
Journal: |
Cancer Cell |
Title: |
Activation of RalA is critical for Ras-induced tumorigenesis of human cells. |
Volume: |
7 |
Issue: |
6 |
Pages: |
533-45 |
|
•
•
•
•
•
|
Publication |
First Author: |
Chien Y |
Year: |
2006 |
Journal: |
Cell |
Title: |
RalB GTPase-mediated activation of the IkappaB family kinase TBK1 couples innate immune signaling to tumor cell survival. |
Volume: |
127 |
Issue: |
1 |
Pages: |
157-70 |
|
•
•
•
•
•
|
Publication |
First Author: |
Simicek M |
Year: |
2013 |
Journal: |
Nat Cell Biol |
Title: |
The deubiquitylase USP33 discriminates between RALB functions in autophagy and innate immune response. |
Volume: |
15 |
Issue: |
10 |
Pages: |
1220-30 |
|
•
•
•
•
•
|
Publication |
First Author: |
Lebreton S |
Year: |
2004 |
Journal: |
Mech Dev |
Title: |
RLIP mediates downstream signalling from RalB to the actin cytoskeleton during Xenopus early development. |
Volume: |
121 |
Issue: |
12 |
Pages: |
1481-94 |
|
•
•
•
•
•
|
Publication |
First Author: |
Suttangkakul A |
Year: |
2011 |
Journal: |
Plant Cell |
Title: |
The ATG1/ATG13 protein kinase complex is both a regulator and a target of autophagic recycling in Arabidopsis. |
Volume: |
23 |
Issue: |
10 |
Pages: |
3761-79 |
|
•
•
•
•
•
|
Protein Domain |
Type: |
Family |
Description: |
This entry represents a group of Serine/threonine-protein kinases, including Atg1 from yeasts, Unc-51 from C. elegans, Ulk1-3 from humans and ATG1a/b/c/t from Arabidopsis.Atg1 is required for vesicle formation in autophagy and the cytoplasm-to-vacuole targeting (Cvt) pathway [].Ulk1-3 are involved in autophagy in response to starvation [, ]. Ulk1 and Ulk2 regulate filopodia extension and branching of sensory axons. They are important for axon growth, playing an essential role in neurite extension of cerebellar granule cells [, ]. Unc-51 is important for axonal elongation and axonal guidance []. It is required for either the maintenance of axons (membrane turnover) or for an unknown neuronal function. C elegans worms lacking Unc-51 exhibit various abnormalities in axonal elongation and axonal structures. Unc-51 could also help control cell size along with Bec-1, as mutations in their corresponding genes results in a reduction in small body size without affecting cell number []. Unc-51 is also a component of the Unc-51/Atg-13 complex that is probably recruited by lgg-1 to preautophagosomes and is required for autophagosome formation [].In plants, the ATG1/13 complex is both a regulator and a target of autophagy []. |
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•
•
•
•
•
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Protein Domain |
Type: |
Family |
Description: |
Ral protein family, including RALA and RALB, belongs to the RAS family of small GTPases. Like other RAS GTPases, Ral proteins function as molecular switches alternating between inactive GDP-bound and active GT-bound states [].In humans, RALA and RALB are activated in tumour-derived cell lines. RALA severely impairs the anchorage-independent proliferation of cancer cell lines [], while RALB is required to suppress apoptotic checkpoint activation and is essential for the survival of a variety of tumour-derived cell lines []. RALA and RALB share the same effector molecules, such as SEC5 and EXO84. However, they seem to function in distinct but inter-related biological processes. RALA regulates the assembly interface of a full octameric exocyst complex through interaction with Sec5 and Exo84 []. The RALB/Sec5 effector complex is involved in the TBK1-dependent innate immune signaling [], while the interaction between PALB and EXO84 promotes the assembly of catalytically active ULK1 and the beclin-1-VPS34 autophagy initiation complex []. This entry also includes Xenopus RalA and RalB. RalB regulates the actin cytoskeleton during the early development and affects gastrulation []. |
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•
•
•
•
|
Protein Domain |
Type: |
Domain |
Description: |
This the Atg13-binding region of Atg1 which comprises two tandem MIT (microtubule interacting and transport) domains, named tMIT [].Members of this entry are Serine/threonine-protein kinases, including Atg1 from yeasts, Unc-51 from C. elegans and Ulk1-2 from humans.Atg1 is required for vesicle formation in autophagy and the cytoplasm-to-vacuole targeting (Cvt) pathway [, ].Ulk1-2 are involved in autophagy in response to starvation [, ]. Ulk1 and Ulk2 regulate filopodia extension and branching of sensory axons. They are important for axon growth, playing an essential role in neurite extension of cerebellar granule cells [, ]. Unc-51 is important for axonal elongation and axonal guidance []. It is required for either the maintenance of axons (membrane turnover) or for an unknown neuronal function. C elegans worms lacking Unc-51 exhibit various abnormalities in axonal elongation and axonal structures. Unc-51 could also help control cell size along with Bec-1, as mutations in their corresponding genes results in a reduction in small body size without affecting cell number []. Unc-51 is also a component of the Unc-51/Atg-13 complex that is probably recruited by lgg-1 to preautophagosomes and is required for autophagosome formation []. |
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•
•
•
•
•
|
Publication |
First Author: |
Meijer WH |
Year: |
2007 |
Journal: |
Autophagy |
Title: |
ATG genes involved in non-selective autophagy are conserved from yeast to man, but the selective Cvt and pexophagy pathways also require organism-specific genes. |
Volume: |
3 |
Issue: |
2 |
Pages: |
106-16 |
|
•
•
•
•
•
|
Publication |
First Author: |
Takahashi Y |
Year: |
2011 |
Journal: |
Autophagy |
Title: |
Bif-1 regulates Atg9 trafficking by mediating the fission of Golgi membranes during autophagy. |
Volume: |
7 |
Issue: |
1 |
Pages: |
61-73 |
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•
•
•
•
•
|
Publication |
First Author: |
Owen KA |
Year: |
2014 |
Journal: |
PLoS Pathog |
Title: |
Activation of focal adhesion kinase by Salmonella suppresses autophagy via an Akt/mTOR signaling pathway and promotes bacterial survival in macrophages. |
Volume: |
10 |
Issue: |
6 |
Pages: |
e1004159 |
|
•
•
•
•
•
|
Publication |
First Author: |
Jati S |
Year: |
2018 |
Journal: |
Front Immunol |
Title: |
Wnt5A Signaling Promotes Defense Against Bacterial Pathogens by Activating a Host Autophagy Circuit. |
Volume: |
9 |
|
Pages: |
679 |
|
•
•
•
•
•
|
Publication |
First Author: |
Singh BK |
Year: |
2018 |
Journal: |
Sci Signal |
Title: |
Thyroid hormone receptor and ERRα coordinately regulate mitochondrial fission, mitophagy, biogenesis, and function. |
Volume: |
11 |
Issue: |
536 |
|
|
•
•
•
•
•
|
Publication |
First Author: |
Hubber A |
Year: |
2017 |
Journal: |
Sci Rep |
Title: |
Bacterial secretion system skews the fate of Legionella-containing vacuoles towards LC3-associated phagocytosis. |
Volume: |
7 |
|
Pages: |
44795 |
|
•
•
•
•
•
|
Publication |
First Author: |
Tsang T |
Year: |
2022 |
Journal: |
Mol Cancer Res |
Title: |
BRAFV600E-Driven Lung Adenocarcinoma Requires Copper to Sustain Autophagic Signaling and Processing. |
Volume: |
20 |
Issue: |
7 |
Pages: |
1096-1107 |
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•
•
•
•
•
|
Publication |
First Author: |
Luis LB |
Year: |
2022 |
Journal: |
Cells |
Title: |
Salmonella Promotes Its Own Survival in B Cells by Inhibiting Autophagy. |
Volume: |
11 |
Issue: |
13 |
|
|
•
•
•
•
•
|
Publication |
First Author: |
Zhu M |
Year: |
2020 |
Journal: |
J Clin Invest |
Title: |
Beclin 2 negatively regulates innate immune signaling and tumor development. |
Volume: |
130 |
Issue: |
10 |
Pages: |
5349-5369 |
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•
•
•
•
•
|
Publication |
First Author: |
Seok S |
Year: |
2014 |
Journal: |
Nature |
Title: |
Transcriptional regulation of autophagy by an FXR-CREB axis. |
Volume: |
516 |
Issue: |
7529 |
Pages: |
108-11 |
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•
•
•
•
•
|
Publication |
First Author: |
Gong Y |
Year: |
2020 |
Journal: |
Biochim Biophys Acta Mol Basis Dis |
Title: |
Double knockout of Akt2 and AMPK accentuates high fat diet-induced cardiac anomalies through a cGAS-STING-mediated mechanism. |
Volume: |
1866 |
Issue: |
10 |
Pages: |
165855 |
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•
•
•
•
•
|
Publication |
First Author: |
Tong WH |
Year: |
2022 |
Journal: |
Heliyon |
Title: |
Hyperactivation of mTOR and AKT in a cardiac hypertrophy animal model of Friedreich ataxia. |
Volume: |
8 |
Issue: |
8 |
Pages: |
e10371 |
|
•
•
•
•
•
|
Publication |
First Author: |
Bandyopadhyay U |
Year: |
2014 |
Journal: |
Proc Natl Acad Sci U S A |
Title: |
Absence of lipofuscin in motor neurons of SOD1-linked ALS mice. |
Volume: |
111 |
Issue: |
30 |
Pages: |
11055-60 |
|
•
•
•
•
•
|
Publication |
First Author: |
Saleiro D |
Year: |
2022 |
Journal: |
Nat Commun |
Title: |
Discovery of a signaling feedback circuit that defines interferon responses in myeloproliferative neoplasms. |
Volume: |
13 |
Issue: |
1 |
Pages: |
1750 |
|
•
•
•
•
•
|
Publication |
First Author: |
Abd-Elrahman KS |
Year: |
2019 |
Journal: |
Mol Brain |
Title: |
Modulation of mTOR and CREB pathways following mGluR5 blockade contribute to improved Huntington's pathology in zQ175 mice. |
Volume: |
12 |
Issue: |
1 |
Pages: |
35 |
|
•
•
•
•
•
|
Publication |
First Author: |
Liu F |
Year: |
2020 |
Journal: |
J Mol Cell Cardiol |
Title: |
Beclin1 Haploinsufficiency accentuates second-hand smoke exposure -induced myocardial Remodeling and contractile dysfunction through a STING-mediated mechanism. |
Volume: |
148 |
|
Pages: |
78-88 |
|
•
•
•
•
•
|
Publication |
First Author: |
Liu C |
Year: |
2017 |
Journal: |
Sci Rep |
Title: |
Lack of evidence for involvement of TonEBP and hyperosmotic stimulus in induction of autophagy in the nucleus pulposus. |
Volume: |
7 |
Issue: |
1 |
Pages: |
4543 |
|
•
•
•
•
•
|
Publication |
First Author: |
Li-Harms X |
Year: |
2015 |
Journal: |
Blood |
Title: |
Mito-protective autophagy is impaired in erythroid cells of aged mtDNA-mutator mice. |
Volume: |
125 |
Issue: |
1 |
Pages: |
162-74 |
|
•
•
•
•
•
|
Publication |
First Author: |
Sheng YL |
Year: |
2017 |
Journal: |
Exp Neurol |
Title: |
Urate promotes SNCA/α-synuclein clearance via regulating mTOR-dependent macroautophagy. |
Volume: |
297 |
|
Pages: |
138-147 |
|
•
•
•
•
•
|
Publication |
First Author: |
Britto FA |
Year: |
2014 |
Journal: |
Am J Physiol Endocrinol Metab |
Title: |
REDD1 deletion prevents dexamethasone-induced skeletal muscle atrophy. |
Volume: |
307 |
Issue: |
11 |
Pages: |
E983-93 |
|
•
•
•
•
•
|
Publication |
First Author: |
Steiner JL |
Year: |
2015 |
Journal: |
Am J Physiol Endocrinol Metab |
Title: |
Disruption of REDD1 gene ameliorates sepsis-induced decrease in mTORC1 signaling but has divergent effects on proteolytic signaling in skeletal muscle. |
Volume: |
309 |
Issue: |
12 |
Pages: |
E981-94 |
|
•
•
•
•
•
|
Publication |
First Author: |
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Protein |
Organism: |
Mus musculus/domesticus |
Length: |
1037
 |
Fragment?: |
false |
|
•
•
•
•
•
|
Protein |
Organism: |
Mus musculus/domesticus |
Length: |
1057
 |
Fragment?: |
false |
|
•
•
•
•
•
|
Protein |
Organism: |
Mus musculus/domesticus |
Length: |
1057
 |
Fragment?: |
false |
|
•
•
•
•
•
|
Protein |
Organism: |
Mus musculus/domesticus |
Length: |
1051
 |
Fragment?: |
false |
|
•
•
•
•
•
|
Protein |
Organism: |
Mus musculus/domesticus |
Length: |
1037
 |
Fragment?: |
false |
|
•
•
•
•
•
|