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Query: UNIPROT:P42345 (
mTOR
)
26,049
document(s) hit in 31,850,051 MEDLINE articles (0.00 seconds)
FK506, an immunosuppressant that prolongs allograft survival, is a co-drug with its intracellular receptor,
FKBP12
. The
FKBP12
.FK506 complex inhibits calcineurin, a critical signaling molecule during T-cell activation.
FKBP12
was, until recently, the sole FKBP known to mediate calcineurin inhibition at clinically relevant FK506 concentrations. The best characterized cellular function of
FKBP12
is the modulation of ryanodine receptor isoform-1, a component of the calcium release channel of skeletal muscle sarcoplasmic reticulum. Recently, a novel protein, FKBP12.6, was found to inhibit calcineurin at clinically relevant FK506 concentrations. We have cloned the cDNA encoding human FKBP12.6 and characterized the protein. In transfected Jurkat cells, FKBP12.6 is equivalent to
FKBP12
at mediating the inhibitory effects of FK506. Upon binding rapamycin, FKBP12.6 complexes with the 288-kDa
mammalian target of rapamycin
. In contrast to
FKBP12
, FKBP12.6 is not associated with ryanodine receptor isoform-1 but with the distinct ryanodine receptor isoform-2 in cardiac muscle sarcoplasmic reticulum. Our results suggest that FKBP12.6 has both a unique physiological role in excitation-contraction coupling in cardiac muscle and the potential to contribute to the immunosuppressive and toxic effects of FK506 and rapamycin.
...
PMID:A novel FK506 binding protein can mediate the immunosuppressive effects of FK506 and is associated with the cardiac ryanodine receptor. 759 69
We report on studies leading to refinements of various steps of the protein internal sequencing process. Specifically, the developments comprise (1) higher-sensitivity chemical sequencing through background reduction; (2) improved peptide recovery from rapid in situ digests of nanogram amount, nitrocellulose-bound proteins; and (3) accurate UV spectroscopic identification of Trp- and Cys-containing peptides. In addition, we describe strategies for 2-dimensional liquid chromatographic peptide isolation from complex mixtures and a multi-analytical approach to peptide sequence analysis (Edman sequencing, matrix-assisted laser desorption mass spectrometry, and UV spectroscopy). Both strategies were applied in tandem to the primary structural analysis of a gel-purified, 250-kDa protein (
mammalian target of rapamycin
-
FKBP12
complex), available in low picomolar quantities only. More than 300-amino acids worth of sequence was obtained in mostly uninterrupted stretches, several containing Trp, Cys, His, and Ser. That information has allowed the matching of a biological function of a mammalian protein to a yeast gene product with a well-characterized mutant phenotype. The results also demonstrate that extended chemical sequencing analysis (e.g., 26 successive amino acids) is now feasible, starting with initial yields well below 1 pmol.
...
PMID:High-sensitivity sequencing of large proteins: partial structure of the rapamycin-FKBP12 target. 775 97
The structurally related natural products rapamycin and FK506 bind to the same intracellular receptor,
FKBP12
, yet the resulting complexes interfere with distinct signalling pathways.
FKBP12
-rapamycin inhibits progression through the G1 phase of the cell cycle in osteosarcoma, liver and T cells as well as in yeast, and interferes with mitogenic signalling pathways that are involved in G1 progression, namely with activation of the protein p70S6k (refs 5, 11-13) and cyclin-dependent kinases. Here we isolate a mammalian
FKBP-rapamycin-associated protein
(
FRAP
) whose binding to structural variants of rapamycin complexed to
FKBP12
correlates with the ability of these ligands to inhibit cell-cycle progression. Peptide sequences from purified bovine
FRAP
were used to isolate a human cDNA clone that is highly related to the DRR1/TOR1 and DRR2/TOR2 gene products from Saccharomyces cerevisiae. Although it has not been previously demonstrated that either of the DRR/TOR gene products can bind the FKBP-rapamycin complex directly, these yeast genes have been genetically linked to a rapamycin-sensitive pathway and are thought to encode lipid kinases.
...
PMID:A mammalian protein targeted by G1-arresting rapamycin-receptor complex. 800 69
Rapamycin, a potent immunosuppressive agent, binds two proteins: the FK506-binding protein (
FKBP12
) and the
FKBP-rapamycin-associated protein
(
FRAP
). A crystal structure of the ternary complex of human
FKBP12
, rapamycin, and the
FKBP12
-rapamycin-binding (FRB) domain of human
FRAP
at a resolution of 2.7 angstroms revealed the two proteins bound together as a result of the ability of rapamycin to occupy two different hydrophobic binding pockets simultaneously. The structure shows extensive interactions between rapamycin and both proteins, but fewer interactions between the proteins. The structure of the FRB domain of
FRAP
clarifies both rapamycin-independent and -dependent effects observed for mutants of
FRAP
and its homologs in the family of proteins related to the ataxia-telangiectasia mutant gene product, and it illustrates how a small cell-permeable molecule can mediate protein dimerization.
...
PMID:Structure of the FKBP12-rapamycin complex interacting with the binding domain of human FRAP. 866 94
The mammalian P-glycoprotein (Pgp) is a approximately 170-kDa membrane protein that mediates multidrug resistance in many chemotherapy-resistant tumors by effluxing toxic compounds from the cell. Pgp homologs are expressed in many organisms, from bacteria to yeast and mammals. Previous studies established a model system to analyze the function of murine, human, and Plasmodium falciparum Pgp by heterologous expression in the yeast Saccharomyces cerevisiae. However, such studies have been hampered by the inherent resistance of yeast cells to chemotherapeutic agents. We find that an erg6 mutation, which blocks the final synthetic step of the membrane sterol ergosterol, renders yeast sensitive to anthracyclines and dactinomycin, clinically relevant Pgp substrates. We demonstrate that expression of the murine mdr3 gene confers dactinomycin resistance in both the erg6 mutant yeast strain and in an erg6 rad52 DNA repair mutant yeast strain. Similarly, murine mdr3 expression confers resistance to the immunosuppressants cyclosporin A (CsA) and FK506 in a CsA-FK506-sensitive vph6 mutant yeast strain. CsA and FK506 are known to partially overcome Pgp-mediated drug resistance, suggesting the targets of these drugs might regulate Pgp function. We find that both murine mdr3 and the yeast Pgp homolog STE6 function in yeast mutants lacking the CsA target proteins cyclophilin A and calcineurin. In contrast, murine mdr3 function was severely compromised in yeast mutants lacking the FK506/
rapamycin target protein
FKBP12
. Both wild-type
FKBP12
and an F43Y
FKBP12
mutant with reduced prolyl isomerase activity supported mdr3 function. Our results support the model that immunosuppressants reverse multidrug resistance by competing with other Pgp substrates but reveal that inhibition of
FKBP12
-dependent Pgp function may also contribute to reversal of multidrug resistance by FK506 and rapamycin.
...
PMID:Immunosuppressant target protein FKBP12 is required for P-glycoprotein function in yeast. 870
The potent immunosuppressive drugs FK506 and rapamycin interfere with signal transduction pathways required for T cell activation and growth. The distinct inhibitory effects of these drugs on the T cell activation program are mediated through the formation of pharmacologically active complexes with members of a family of intracellular receptors termed the FK506 binding proteins (FKBPs). The
FKBP12
.FK506 complex specifically binds to and inhibits calcineurin, a signaling protein required for transcriptional activation of the interleukin (IL)-2 gene in response to T cell antigen receptor engagement. The
FKBP12
. rapamycin complex interacts with a recently defined target protein termed the
mammalian target of rapamycin
(
mTOR
). Accumulating data suggest that
mTOR
functions in a previously unrecognized signal transduction pathway required for the progression of IL-2-stimulated T cells from G1 into the S phase of the cell cycle. Here we review the immunopharmacology of rapamycin, with particular emphasis on the characterization of
mTOR
.
...
PMID:Immunopharmacology of rapamycin. 871 22
The proteins eIF-4E BP1 and p70 S6 kinase each undergo an insulin/mitogen-stimulated phosphorylation in situ that is partially inhibited by rapamycin. Previous work has established that the protein known as
mTOR
/RAFT-1/FRAP is the target through which the rapamycin.
FKBP12
complex acts to dephosphorylate/deactivate the p70 S6 kinase; thus, some
mTOR
mutants that have lost the ability to bind to the rapamycin.
FKBP12
complex in vitro can protect the p70 S6 kinase against rapamycin-induced dephosphorylation/deactivation in situ. We show herein that such
mTOR
mutants also protect eIF-4E BP1 against rapamycin-induced dephosphorylation, and for both p70 S6 kinase and eIF-4E BP1, such protection requires that the rapamycin-resistant
mTOR
variant retains an active catalytic domain. In contrast, mutants of p70 S6 kinase rendered intrinsically resistant to inhibition by rapamycin in situ are not able to protect coexpressed eIF-4E BP1 from rapamycin-induced dephosphorylation. We conclude that
mTOR
is an upstream regulator of eIF-4E BP1 as well as the p70 S6 kinase; moreover, these two
mTOR
targets are regulated in a parallel rather than sequential manner.
...
PMID:Regulation of eIF-4E BP1 phosphorylation by mTOR. 933 22
The eukaryotic initiation factor 4E (eIF4E)-binding protein, PHAS-I, was phosphorylated rapidly and stoichiometrically when incubated with [gamma-32P]ATP and the
mammalian target of rapamycin
(
mTOR
) that had been immunoprecipitated with an antibody, mTAb1, directed against a region near the COOH terminus of
mTOR
. PHAS-I was phosphorylated more slowly by
mTOR
obtained either by immunoprecipitation with other antibodies or by affinity purification using a rapamycin/
FKBP12
resin. Adding mTAb1 to either of these preparations of
mTOR
increased PHAS-I phosphorylation severalfold, indicating that mTAb1 activates the
mTOR
protein kinase. mTAb1-activated
mTOR
phosphorylated Thr36, Thr45, Ser64, Thr69, and Ser82 in PHAS-I. All five of these sites fit a (Ser/Thr)-Pro motif and are dephosphorylated in response to rapamycin in rat adipocytes. Thus, our findings indicate that Pro is a determinant of the
mTOR
protein kinase specificity and that
mTOR
contributes to the phosphorylation of PHAS-I in cells.
...
PMID:The mammalian target of rapamycin phosphorylates sites having a (Ser/Thr)-Pro motif and is activated by antibodies to a region near its COOH terminus. 940 68
The role of the
mammalian target of rapamycin
(
mTOR
) was investigated in insulin responsive cell lines.
mTOR
was expressed at high levels in insulin responsive cell types and in 3T3-L1 cells
mTOR
expression levels increased dramatically as cells differentiated from fibroblasts into insulin responsive adipocytes.
mTOR
localized to membrane fractions in all cells tested and in 3T3-L1 adipocytes
mTOR
was specifically localized to microsomal membranes. Protein kinase activity directed towards
mTOR
was tightly associated with
mTOR
immunoprecipitates and this kinase activity was inhibited by
FKBP12
-rapamycin indicating it was due to an autokinase activity present in
mTOR
. The
mTOR
autokinase and the protein kinase activity of the p110 alpha isoform of PI 3-kinase shared several notable similarities; (a) both were maximally active in the presence of Mn2+ but also showed significant activity in the presence of Mg2+ (b) neither were inhibited by the presence of non-ionic detergent and (c) both were inhibited by wortmannin and LY294002, known inhibitors of the PI 3-kinase lipid kinase activity. These data taken together indicate the autokinase activity lay in the PI 3-kinase homology domain. In summary
mTOR
is a membrane anchored protein kinase that is active in conditions encountered in vivo and the fact it is highly expressed in insulin responsive cell types is consistent with a role in insulin signalling.
...
PMID:Expression, enzyme activity, and subcellular localization of mammalian target of rapamycin in insulin-responsive cells. 943 72
The complex of rapamycin with its intracellular receptor,
FKBP12
, interacts with RAFT1/FRAP/
mTOR
, the in vivo rapamycin-sensitive target and a member of the ataxia telangiectasia mutated (ATM)-related family of kinases that share homology with the catalytic domain of phosphatidylinositol 3-kinase. The function of RAFT1 in the rapamycin-sensitive pathway and its connection to downstream components of the pathway, such as p70 S6 kinase and 4E-BP1, are poorly understood. Here, we show that RAFT1 directly phosphorylates p70(S6k), 4E-BP1, and 4E-BP2 and that serum stimulates RAFT1 kinase activity with kinetics similar to those of p70(S6k) and 4E-BP1 phosphorylation. RAFT1 phosphorylates p70(S6k) on Thr-389, a residue whose phosphorylation is rapamycin-sensitive in vivo and necessary for S6 kinase activity. RAFT1 phosphorylation of 4E-BP1 on Thr-36 and Thr-45 blocks its association with the cap-binding protein, eIF-4E, in vitro, and phosphorylation of Thr-45 seems to be the major regulator of the 4E-BP1-eIF-4E interaction in vivo. RAFT1 phosphorylates p70(S6k) much more effectively than 4E-BP1, and the phosphorylation sites on the two proteins show little homology. This raises the possibility that, in vivo, an unidentified kinase analogous to p70(S6k) is activated by RAFT1 phosphorylation and acts at the rapamycin-sensitive phosphorylation sites of 4E-BP1.
...
PMID:RAFT1 phosphorylation of the translational regulators p70 S6 kinase and 4E-BP1. 946 32
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