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Search results 201 to 219 out of 219 for Mesd

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0.024s
Type Details Score
UniProt Feature
Begin: 30
Description: LRP chaperone MESD
Type: chain
End: 224
UniProt Feature
Begin: 39
Description: LRP chaperone MESD
Type: chain
End: 154
Publication
First Author: Köhler C
Year: 2006
Journal: J Struct Funct Genomics
Title: The solution structure of the core of mesoderm development (MESD), a chaperone for members of the LDLR-family.
Volume: 7
Issue: 3-4
Pages: 131-8
Publication
First Author: Köhler C
Year: 2011
Journal: Structure
Title: The structure of MESD45-184 brings light into the mechanism of LDLR family folding.
Volume: 19
Issue: 3
Pages: 337-48
Interaction Experiment
Description: Mesd binds to mature LDL-receptor-related protein-6 and antagonizes ligand binding.
Interaction Experiment
Description: Mesd encodes an LRP5/6 chaperone essential for specification of mouse embryonic polarity.
DO Term
Allele  
Name: mesoderm development LRP chaperone; mesoderm development
Allele Type: Radiation induced
Publication
First Author: Price MN
Year: 2021
Journal: PLoS Genet
Title: Four families of folate-independent methionine synthases.
Volume: 17
Issue: 2
Pages: e1009342
Protein Domain
Type: Family
Description: This family represents the putative oxygenase component of the oxygen-dependent methionine synthase MesD, called MesX, present in aerobic bacteria []. MesX is required for MesD for its activity. MesD/MesX has the advantage of not requiring cobalamin for methionine synthesis.
Publication  
First Author: Fremaux C
Year: 1995
Journal: Microbiology
Title: Mesentericin Y105 gene clusters in Leuconostoc mesenteroides Y105.
Volume: 141 ( Pt 7)
Pages: 1637-45
Publication
First Author: Aucher W
Year: 2004
Journal: FEMS Microbiol Lett
Title: Differences in mesentericin secretion systems from two Leuconostoc strains.
Volume: 232
Issue: 1
Pages: 15-22
Publication
First Author: Varcamonti M
Year: 2001
Journal: FEMS Microbiol Lett
Title: Proteins of the lactococcin A secretion system: lcnD encodes two in-frame proteins.
Volume: 204
Issue: 2
Pages: 259-63
Protein Domain
Type: Family
Description: Bacteriocins are antibacterial proteinaceous compounds produced by bacteria. In Gram-positive bacteria, they are divided into four classes. Within the class II, constituted by non-modified peptides produced mainly by lactic acid bacteria, bacteriocins of the subclass IIa (also known as pediocin-like bacteriocins), such as mesentericin Y105, are of particular interest. They are active against the foodborne pathogen Listeria monocytogenes and share a similar primary structure, with a conserved N-terminal motif (YGNGV). Subclass IIa bacteriocins induce membrane permeabilization of sensitive strains []. Class-IId contains the one-peptide non-cyclic bacteriocins that show no sequence similarity to the pediocin-like bacteriocins, and include lactococcin A (LcnA) [].The translocation of most of the class II bacteriocins requires a type I secretion system which is composed of maturation and secretion protein and an accessory factor. MesD and MesE encode the dedicated transport system of mesentericin Y105 []. Secretion and maturation of LcnA depends on the two membrane proteins LcnC and LcnD []. This family consist of accessory factors such as MesE and LcnD. Their function remains unclear, but they are required for full production of these bacteriocins [, ].
Publication
First Author: Cotter PD
Year: 2005
Journal: Nat Rev Microbiol
Title: Bacteriocins: developing innate immunity for food.
Volume: 3
Issue: 10
Pages: 777-88
Publication  
First Author: Maltais LJ
Year: 1994
Journal: Mouse Genome
Title: Locus Map of mouse
Volume: 92
Pages: 62-85
Publication
First Author: Gerhard DS
Year: 2004
Journal: Genome Res
Title: The status, quality, and expansion of the NIH full-length cDNA project: the Mammalian Gene Collection (MGC).
Volume: 14
Issue: 10B
Pages: 2121-7
Publication
First Author: Huttlin EL
Year: 2010
Journal: Cell
Title: A tissue-specific atlas of mouse protein phosphorylation and expression.
Volume: 143
Issue: 7
Pages: 1174-89
Publication
First Author: Church DM
Year: 2009
Journal: PLoS Biol
Title: Lineage-specific biology revealed by a finished genome assembly of the mouse.
Volume: 7
Issue: 5
Pages: e1000112