Type |
Details |
Score |
Genotype |
Symbol: |
Nr3c2/Nr3c2 |
Background: |
involves: 129P2/OlaHsd * C57BL/6 |
Zygosity: |
hm |
Has Mutant Allele: |
true |
|
•
•
•
•
•
|
Genotype |
Symbol: |
Cfc1/Cfc1 |
Background: |
either: (involves: 129S6/SvEvTac * Black Swiss) or (involves: 129S6/SvEvTac * C57BL/6J) |
Zygosity: |
hm |
Has Mutant Allele: |
true |
|
•
•
•
•
•
|
Genotype |
Symbol: |
Hand2/Hand2 |
Background: |
involves: 129S7/SvEvBrd |
Zygosity: |
hm |
Has Mutant Allele: |
true |
|
•
•
•
•
•
|
Genotype |
Symbol: |
Dll1/Dll1 |
Background: |
involves: 129S1/Sv * 129X1/SvJ * C57BL/6J |
Zygosity: |
hm |
Has Mutant Allele: |
true |
|
•
•
•
•
•
|
Genotype |
Symbol: |
Ovol2/Ovol2 |
Background: |
involves: 129P2/OlaHsd * C57BL/6J |
Zygosity: |
hm |
Has Mutant Allele: |
true |
|
•
•
•
•
•
|
Genotype |
Symbol: |
Megf8/Megf8 |
Background: |
involves: C57BL/6J |
Zygosity: |
hm |
Has Mutant Allele: |
true |
|
•
•
•
•
•
|
Publication |
First Author: |
Oeschger FM |
Year: |
2012 |
Journal: |
Cereb Cortex |
Title: |
Gene expression analysis of the embryonic subplate. |
Volume: |
22 |
Issue: |
6 |
Pages: |
1343-59 |
|
•
•
•
•
•
|
Protein Coding Gene |
Type: |
protein_coding_gene |
Organism: |
mouse, laboratory |
|
•
•
•
•
•
|
Protein Coding Gene |
Type: |
protein_coding_gene |
Organism: |
mouse, laboratory |
|
•
•
•
•
•
|
Protein Coding Gene |
Type: |
protein_coding_gene |
Organism: |
mouse, laboratory |
|
•
•
•
•
•
|
Protein Coding Gene |
Type: |
protein_coding_gene |
Organism: |
mouse, laboratory |
|
•
•
•
•
•
|
Protein Coding Gene |
Type: |
protein_coding_gene |
Organism: |
mouse, laboratory |
|
•
•
•
•
•
|
Protein Coding Gene |
Type: |
protein_coding_gene |
Organism: |
mouse, laboratory |
|
•
•
•
•
•
|
Protein Coding Gene |
Type: |
protein_coding_gene |
Organism: |
mouse, laboratory |
|
•
•
•
•
•
|
Protein Coding Gene |
Type: |
protein_coding_gene |
Organism: |
mouse, laboratory |
|
•
•
•
•
•
|
Protein Coding Gene |
Type: |
protein_coding_gene |
Organism: |
mouse, laboratory |
|
•
•
•
•
•
|
Protein Coding Gene |
Type: |
protein_coding_gene |
Organism: |
mouse, laboratory |
|
•
•
•
•
•
|
Protein Coding Gene |
Type: |
protein_coding_gene |
Organism: |
mouse, laboratory |
|
•
•
•
•
•
|
Protein Coding Gene |
Type: |
protein_coding_gene |
Organism: |
mouse, laboratory |
|
•
•
•
•
•
|
Protein Coding Gene |
Type: |
protein_coding_gene |
Organism: |
mouse, laboratory |
|
•
•
•
•
•
|
Protein Coding Gene |
Type: |
protein_coding_gene |
Organism: |
mouse, laboratory |
|
•
•
•
•
•
|
Protein Coding Gene |
Type: |
protein_coding_gene |
Organism: |
mouse, laboratory |
|
•
•
•
•
•
|
Protein Coding Gene |
Type: |
protein_coding_gene |
Organism: |
mouse, laboratory |
|
•
•
•
•
•
|
Protein Coding Gene |
Type: |
protein_coding_gene |
Organism: |
mouse, laboratory |
|
•
•
•
•
•
|
Protein Coding Gene |
Type: |
protein_coding_gene |
Organism: |
mouse, laboratory |
|
•
•
•
•
•
|
Protein Coding Gene |
Type: |
protein_coding_gene |
Organism: |
mouse, laboratory |
|
•
•
•
•
•
|
Protein Coding Gene |
Type: |
protein_coding_gene |
Organism: |
mouse, laboratory |
|
•
•
•
•
•
|
Protein Coding Gene |
Type: |
protein_coding_gene |
Organism: |
mouse, laboratory |
|
•
•
•
•
•
|
Protein Coding Gene |
Type: |
protein_coding_gene |
Organism: |
mouse, laboratory |
|
•
•
•
•
•
|
Protein Coding Gene |
Type: |
protein_coding_gene |
Organism: |
mouse, laboratory |
|
•
•
•
•
•
|
Protein Coding Gene |
Type: |
protein_coding_gene |
Organism: |
mouse, laboratory |
|
•
•
•
•
•
|
Protein Coding Gene |
Type: |
protein_coding_gene |
Organism: |
mouse, laboratory |
|
•
•
•
•
•
|
Protein Coding Gene |
Type: |
protein_coding_gene |
Organism: |
mouse, laboratory |
|
•
•
•
•
•
|
Protein Coding Gene |
Type: |
protein_coding_gene |
Organism: |
mouse, laboratory |
|
•
•
•
•
•
|
Protein Coding Gene |
Type: |
protein_coding_gene |
Organism: |
mouse, laboratory |
|
•
•
•
•
•
|
Protein Coding Gene |
Type: |
protein_coding_gene |
Organism: |
mouse, laboratory |
|
•
•
•
•
•
|
Protein Coding Gene |
Type: |
protein_coding_gene |
Organism: |
mouse, laboratory |
|
•
•
•
•
•
|
Protein Coding Gene |
Type: |
protein_coding_gene |
Organism: |
mouse, laboratory |
|
•
•
•
•
•
|
Protein Coding Gene |
Type: |
protein_coding_gene |
Organism: |
mouse, laboratory |
|
•
•
•
•
•
|
Protein Coding Gene |
Type: |
protein_coding_gene |
Organism: |
mouse, laboratory |
|
•
•
•
•
•
|
Protein Coding Gene |
Type: |
protein_coding_gene |
Organism: |
mouse, laboratory |
|
•
•
•
•
•
|
Protein Coding Gene |
Type: |
protein_coding_gene |
Organism: |
mouse, laboratory |
|
•
•
•
•
•
|
Protein Coding Gene |
Type: |
protein_coding_gene |
Organism: |
mouse, laboratory |
|
•
•
•
•
•
|
Protein Coding Gene |
Type: |
protein_coding_gene |
Organism: |
mouse, laboratory |
|
•
•
•
•
•
|
Protein Coding Gene |
Type: |
protein_coding_gene |
Organism: |
mouse, laboratory |
|
•
•
•
•
•
|
Protein Coding Gene |
Type: |
protein_coding_gene |
Organism: |
mouse, laboratory |
|
•
•
•
•
•
|
Protein Coding Gene |
Type: |
protein_coding_gene |
Organism: |
mouse, laboratory |
|
•
•
•
•
•
|
Protein Coding Gene |
Type: |
protein_coding_gene |
Organism: |
mouse, laboratory |
|
•
•
•
•
•
|
Protein Coding Gene |
Type: |
protein_coding_gene |
Organism: |
mouse, laboratory |
|
•
•
•
•
•
|
Protein Coding Gene |
Type: |
protein_coding_gene |
Organism: |
mouse, laboratory |
|
•
•
•
•
•
|
Protein Coding Gene |
Type: |
protein_coding_gene |
Organism: |
mouse, laboratory |
|
•
•
•
•
•
|
Protein Coding Gene |
Type: |
protein_coding_gene |
Organism: |
mouse, laboratory |
|
•
•
•
•
•
|
Protein Coding Gene |
Type: |
protein_coding_gene |
Organism: |
mouse, laboratory |
|
•
•
•
•
•
|
Protein |
Organism: |
Mus musculus/domesticus |
Length: |
793
 |
Fragment?: |
false |
|
•
•
•
•
•
|
Protein |
Organism: |
Mus musculus/domesticus |
Length: |
343
 |
Fragment?: |
false |
|
•
•
•
•
•
|
Protein |
Organism: |
Mus musculus/domesticus |
Length: |
626
 |
Fragment?: |
false |
|
•
•
•
•
•
|
Protein |
Organism: |
Mus musculus/domesticus |
Length: |
910
 |
Fragment?: |
false |
|
•
•
•
•
•
|
Protein |
Organism: |
Mus musculus/domesticus |
Length: |
1286
 |
Fragment?: |
false |
|
•
•
•
•
•
|
Protein |
Organism: |
Mus musculus/domesticus |
Length: |
1002
 |
Fragment?: |
false |
|
•
•
•
•
•
|
Protein |
Organism: |
Mus musculus/domesticus |
Length: |
1287
 |
Fragment?: |
false |
|
•
•
•
•
•
|
Protein |
Organism: |
Mus musculus/domesticus |
Length: |
910
 |
Fragment?: |
false |
|
•
•
•
•
•
|
Protein |
Organism: |
Mus musculus/domesticus |
Length: |
306
 |
Fragment?: |
true |
|
•
•
•
•
•
|
Protein |
Organism: |
Mus musculus/domesticus |
Length: |
910
 |
Fragment?: |
false |
|
•
•
•
•
•
|
Protein |
Organism: |
Mus musculus/domesticus |
Length: |
1089
 |
Fragment?: |
false |
|
•
•
•
•
•
|
Protein |
Organism: |
Mus musculus/domesticus |
Length: |
1308
 |
Fragment?: |
false |
|
•
•
•
•
•
|
Protein |
Organism: |
Mus musculus/domesticus |
Length: |
1307
 |
Fragment?: |
false |
|
•
•
•
•
•
|
Protein |
Organism: |
Mus musculus/domesticus |
Length: |
205
 |
Fragment?: |
false |
|
•
•
•
•
•
|
Protein |
Organism: |
Mus musculus/domesticus |
Length: |
1022
 |
Fragment?: |
true |
|
•
•
•
•
•
|
Protein |
Organism: |
Mus musculus/domesticus |
Length: |
1286
 |
Fragment?: |
false |
|
•
•
•
•
•
|
Protein |
Organism: |
Mus musculus/domesticus |
Length: |
910
 |
Fragment?: |
false |
|
•
•
•
•
•
|
Protein |
Organism: |
Mus musculus/domesticus |
Length: |
343
 |
Fragment?: |
false |
|
•
•
•
•
•
|
Protein |
Organism: |
Mus musculus/domesticus |
Length: |
1113
 |
Fragment?: |
true |
|
•
•
•
•
•
|
Protein |
Organism: |
Mus musculus/domesticus |
Length: |
793
 |
Fragment?: |
false |
|
•
•
•
•
•
|
Protein |
Organism: |
Mus musculus/domesticus |
Length: |
1304
 |
Fragment?: |
false |
|
•
•
•
•
•
|
Publication |
First Author: |
Chikashige Y |
Year: |
2009 |
Journal: |
J Cell Biol |
Title: |
Membrane proteins Bqt3 and -4 anchor telomeres to the nuclear envelope to ensure chromosomal bouquet formation. |
Volume: |
187 |
Issue: |
3 |
Pages: |
413-27 |
|
•
•
•
•
•
|
Publication |
First Author: |
Krapp A |
Year: |
2008 |
Journal: |
J Cell Sci |
Title: |
Homoeostasis between the GTPase Spg1p and its GAP in the regulation of cytokinesis in S. pombe. |
Volume: |
121 |
Issue: |
Pt 5 |
Pages: |
601-8 |
|
•
•
•
•
•
|
Publication |
First Author: |
Cooper JA |
Year: |
2006 |
Journal: |
J Cell Biol |
Title: |
Checkpoint control of mitotic exit--do budding yeast mind the GAP? |
Volume: |
172 |
Issue: |
3 |
Pages: |
331-3 |
|
•
•
•
•
•
|
Publication |
First Author: |
Schmidt S |
Year: |
1997 |
Journal: |
Genes Dev |
Title: |
The Spg1p GTPase is an essential, dosage-dependent inducer of septum formation in Schizosaccharomyces pombe. |
Volume: |
11 |
Issue: |
12 |
Pages: |
1519-34 |
|
•
•
•
•
•
|
Protein Domain |
Type: |
Family |
Description: |
Small GTPases form an independent superfamily within the larger class of regulatory GTP hydrolases. This superfamily contains proteins that control a vast number of important processes and possess a common, structurally preserved GTP-binding domain [, ]. Sequence comparisons of small G proteins from various species have revealed that they are conserved in primary structures at the level of 30-55% similarity [].Crystallographic analysis of various small G proteins revealed the presence of a 20kDa catalytic domain that is unique for the whole superfamily [, ]. The domain is built of five alpha helices (A1-A5), six β-strands (B1-B6) and five polypeptide loops (G1-G5). A structural comparison of the GTP- and GDP-bound form, allows one to distinguish two functional loop regions: switch I and switch II that surround the gamma-phosphate group of the nucleotide. The G1 loop (also called the P-loop) that connects the B1 strand and the A1 helix is responsible for the binding of the phosphate groups. The G3 loop provides residues for Mg2 and phosphate binding and is located at the N terminus of the A2 helix. The G1 and G3 loops are sequentially similar to Walker A and Walker B boxes that are found in other nucleotide binding motifs. The G2 loop connects the A1 helix and the B2 strand and contains a conserved Thr residue responsible for Mg2 binding. The guanine base is recognised by the G4 and G5 loops. The consensus sequence NKXD of the G4 loop contains Lys and Asp residues directly interacting with the nucleotide. Part of the G5 loop located between B6 and A5 acts as a recognition site for the guanine base [].The small GTPase superfamily can be divided into at least 8 different families, including:Arf small GTPases. GTP-binding proteins involved in protein trafficking by modulating vesicle budding and uncoating within the Golgi apparatus.Ran small GTPases. GTP-binding proteins involved in nucleocytoplasmic transport. Required for the import of proteins into the nucleus and also for RNA export.Rab small GTPases. GTP-binding proteins involved in vesicular traffic.Rho small GTPases. GTP-binding proteins that control cytoskeleton reorganisation.Ras small GTPases. GTP-binding proteins involved in signalling pathways.Sar1 small GTPases. Small GTPase component of the coat protein complex II (COPII) which promotes the formation of transport vesicles from the endoplasmic reticulum (ER).Mitochondrial Rho (Miro). Small GTPase domain found in mitochondrial proteins involved in mitochondrial trafficking.Roc small GTPases domain. Small GTPase domain always found associated with the COR domain.This entry includes Tem1 from budding yeasts and Spg1 from fission yeasts. They are GTPases involved in the regulation of the cell cycle. In Schizosaccharomyces pombe, Spg1 is required for the localisation of Cdc7 (part of the septation initiation network) to the spindle pole body (SPB) []. It is regulated negatively by a GTPase-activating protein (GAP) comprising two subunits - Byr4 and Cdc16. In anaphase B, Spg1 is localised on the new SPB []. In Saccharomyces cerevisiae, Tem1 is associated with the mitotic exit network (MEN). It is involved in termination of M phase of the cell cycle []. |
|
•
•
•
•
•
|
Publication |
First Author: |
Youngren KK |
Year: |
2005 |
Journal: |
Nature |
Title: |
The Ter mutation in the dead end gene causes germ cell loss and testicular germ cell tumours. |
Volume: |
435 |
Issue: |
7040 |
Pages: |
360-4 |
|
•
•
•
•
•
|
Publication |
First Author: |
Christodoulou A |
Year: |
2006 |
Journal: |
J Cell Sci |
Title: |
Motor protein KIFC5A interacts with Nubp1 and Nubp2, and is implicated in the regulation of centrosome duplication. |
Volume: |
119 |
Issue: |
Pt 10 |
Pages: |
2035-47 |
|
•
•
•
•
•
|
Publication |
First Author: |
Furukawa N |
Year: |
2005 |
Journal: |
Cell Metab |
Title: |
Role of Rho-kinase in regulation of insulin action and glucose homeostasis. |
Volume: |
2 |
Issue: |
2 |
Pages: |
119-29 |
|
•
•
•
•
•
|
Publication |
First Author: |
Kaestner KH |
Year: |
1989 |
Journal: |
Proc Natl Acad Sci U S A |
Title: |
Sequence, tissue distribution, and differential expression of mRNA for a putative insulin-responsive glucose transporter in mouse 3T3-L1 adipocytes. |
Volume: |
86 |
Issue: |
9 |
Pages: |
3150-4 |
|
•
•
•
•
•
|
Publication |
First Author: |
Nagamatsu S |
Year: |
1992 |
Journal: |
J Biol Chem |
Title: |
Glucose transporter expression in brain. cDNA sequence of mouse GLUT3, the brain facilitative glucose transporter isoform, and identification of sites of expression by in situ hybridization. |
Volume: |
267 |
Issue: |
1 |
Pages: |
467-72 |
|
•
•
•
•
•
|
Publication |
First Author: |
Bandyopadhyay G |
Year: |
2004 |
Journal: |
Mol Endocrinol |
Title: |
Protein kinase C-lambda knockout in embryonic stem cells and adipocytes impairs insulin-stimulated glucose transport. |
Volume: |
18 |
Issue: |
2 |
Pages: |
373-83 |
|
•
•
•
•
•
|
Publication |
First Author: |
Nakagawa O |
Year: |
1996 |
Journal: |
FEBS Lett |
Title: |
ROCK-I and ROCK-II, two isoforms of Rho-associated coiled-coil forming protein serine/threonine kinase in mice. |
Volume: |
392 |
Issue: |
2 |
Pages: |
189-93 |
|
•
•
•
•
•
|
Publication |
First Author: |
Zhou Z |
Year: |
2009 |
Journal: |
Neuropharmacology |
Title: |
A critical role of Rho-kinase ROCK2 in the regulation of spine and synaptic function. |
Volume: |
56 |
Issue: |
1 |
Pages: |
81-9 |
|
•
•
•
•
•
|
Publication |
First Author: |
Saito T |
Year: |
2013 |
Journal: |
Circulation |
Title: |
Pivotal role of Rho-associated kinase 2 in generating the intrinsic circadian rhythm of vascular contractility. |
Volume: |
127 |
Issue: |
1 |
Pages: |
104-14 |
|
•
•
•
•
•
|
Publication |
First Author: |
Reed BC |
Year: |
1990 |
Journal: |
Arch Biochem Biophys |
Title: |
3T3-L1 adipocyte glucose transporter (HepG2 class): sequence and regulation of protein and mRNA expression by insulin, differentiation, and glucose starvation. |
Volume: |
279 |
Issue: |
2 |
Pages: |
261-74 |
|
•
•
•
•
•
|
Publication |
First Author: |
Nguyen HT |
Year: |
2012 |
Journal: |
Lab Invest |
Title: |
Intestinal epithelial cell-specific CD98 expression regulates tumorigenesis in Apc(Min/+) mice. |
Volume: |
92 |
Issue: |
8 |
Pages: |
1203-12 |
|
•
•
•
•
•
|
Publication |
First Author: |
Baumer Y |
Year: |
2017 |
Journal: |
Atherosclerosis |
Title: |
CD98 regulates vascular smooth muscle cell proliferation in atherosclerosis. |
Volume: |
256 |
|
Pages: |
105-114 |
|
•
•
•
•
•
|
Publication |
First Author: |
Chi MM |
Year: |
2000 |
Journal: |
J Biol Chem |
Title: |
Decreased glucose transporter expression triggers BAX-dependent apoptosis in the murine blastocyst. |
Volume: |
275 |
Issue: |
51 |
Pages: |
40252-7 |
|
•
•
•
•
•
|
Publication |
First Author: |
Penny HL |
Year: |
2021 |
Journal: |
Int J Mol Sci |
Title: |
Targeting Glycolysis in Macrophages Confers Protection Against Pancreatic Ductal Adenocarcinoma. |
Volume: |
22 |
Issue: |
12 |
|
|
•
•
•
•
•
|
Publication |
First Author: |
Li B |
Year: |
2020 |
Journal: |
FASEB J |
Title: |
Both aerobic glycolysis and mitochondrial respiration are required for osteoclast differentiation. |
Volume: |
34 |
Issue: |
8 |
Pages: |
11058-11067 |
|
•
•
•
•
•
|
Publication |
First Author: |
Bobo-Jiménez V |
Year: |
2017 |
Journal: |
Proc Natl Acad Sci U S A |
Title: |
APC/CCdh1-Rock2 pathway controls dendritic integrity and memory. |
Volume: |
114 |
Issue: |
17 |
Pages: |
4513-4518 |
|
•
•
•
•
•
|
Publication |
First Author: |
Wei L |
Year: |
2020 |
Journal: |
FASEB J |
Title: |
ROCK2 inhibition enhances the thermogenic program in white and brown fat tissue in mice. |
Volume: |
34 |
Issue: |
1 |
Pages: |
474-493 |
|
•
•
•
•
•
|
Publication |
First Author: |
Kasahara DI |
Year: |
2017 |
Journal: |
Clin Exp Allergy |
Title: |
Role of ROCK2 in CD4+ cells in allergic airways responses in mice. |
Volume: |
47 |
Issue: |
2 |
Pages: |
224-235 |
|
•
•
•
•
•
|
Publication |
First Author: |
Noma K |
Year: |
2008 |
Journal: |
J Clin Invest |
Title: |
ROCK1 mediates leukocyte recruitment and neointima formation following vascular injury. |
Volume: |
118 |
Issue: |
5 |
Pages: |
1632-44 |
|
•
•
•
•
•
|
Publication |
First Author: |
Ganguly A |
Year: |
2007 |
Journal: |
Am J Physiol Endocrinol Metab |
Title: |
Glucose transporter isoform-3 mutations cause early pregnancy loss and fetal growth restriction. |
Volume: |
292 |
Issue: |
5 |
Pages: |
E1241-55 |
|
•
•
•
•
•
|
Publication |
First Author: |
Thumkeo D |
Year: |
2005 |
Journal: |
Genes Cells |
Title: |
ROCK-I and ROCK-II cooperatively regulate closure of eyelid and ventral body wall in mouse embryo. |
Volume: |
10 |
Issue: |
8 |
Pages: |
825-34 |
|
•
•
•
•
•
|