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Target Concepts:
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Query: EC:3.6.4.4 (
kinesin
)
5,033
document(s) hit in 31,850,051 MEDLINE articles (0.00 seconds)
Kinesins comprise a large family of microtubule-based motor proteins, of which individual members mediate specific types of motile processes. Using the ezrin domain of the protein-tyrosine phosphatase
PTPD1
as a bait in a yeast two-hybrid screen, we identified a new kinesin-like protein, KIF1C. KIF1C represents a member of the Unc104 subfamily of
kinesin
-like proteins that are involved in the transport of mitochondria or synaptic vesicles in axons. Like its homologues, the 1103-amino acid protein KIF1C consists of an amino-terminal motor domain followed by a U104 domain and probably binds to target membranes through carboxyl-terminal sequences. Interestingly, KIF1C was tyrosine-phosphorylated after peroxovanadate stimulation when overexpressed in 293 or NIH3T3 fibroblasts or in native C2C12 cells. Using immunofluorescence, we found that KIF1C is localized primarily at the Golgi apparatus. In brefeldin A-treated cells, the Golgi membranes and KIF1C redistributed to the endoplasmic reticulum (ER). This brefeldin A-induced flow of Golgi membranes into the ER was inhibited in cells transiently overexpressing catalytically inactive KIF1C. In conclusion, our data suggest an involvement of tyrosine phosphorylation in the regulation of the Golgi to ER membrane flow and describe a new
kinesin
-like motor protein responsible for this transport.
...
PMID:Characterization of KIF1C, a new kinesin-like protein involved in vesicle transport from the Golgi apparatus to the endoplasmic reticulum. 968 76
PTPD1
, a cytosolic non-receptor protein-tyrosine phosphatase, stimulates the Src-EGF transduction pathway. Localization of
PTPD1
at actin cytoskeleton and adhesion sites is required for cell scattering and migration. Here, we show that during EGF stimulation,
PTPD1
is rapidly recruited to endocytic vesicles containing the EGF receptor. Endosomal localization of
PTPD1
is mediated by interaction with KIF16B, an endosomal
kinesin
that modulates receptor recycling at the plasma membrane. Silencing of
PTPD1
promotes degradation of EGF receptor and inhibits downstream ERK signaling. We also found that
PTPD1
is markedly increased in bladder cancer tissue samples.
PTPD1
levels positively correlated with the grading and invasiveness potential of these tumors. Transgenic expression of an inactive
PTPD1
mutant or genetic knockdown of the endogenous
PTPD1
severely inhibited both growth and motility of human bladder cancer cells. These findings identify
PTPD1
as a novel component of the endocytic machinery that impacts on EGF receptor stability and on growth and motility of bladder cancer cells.
...
PMID:PTPD1 supports receptor stability and mitogenic signaling in bladder cancer cells. 2092 65
The
kinesin
-3 KIF1C is a fast organelle transporter implicated in the transport of dense core vesicles in neurons and the delivery of integrins to cell adhesions. Here we report the mechanisms of autoinhibition and release that control the activity of KIF1C. We show that the microtubule binding surface of KIF1C motor domain interacts with its stalk and that these autoinhibitory interactions are released upon binding of protein tyrosine phosphatase
PTPN21
. The FERM domain of
PTPN21
stimulates dense core vesicle transport in primary hippocampal neurons and rescues integrin trafficking in KIF1C-depleted cells. In vitro, human full-length KIF1C is a processive, plus-end directed motor. Its landing rate onto microtubules increases in the presence of either
PTPN21
FERM domain or the cargo adapter Hook3 that binds the same region of KIF1C tail. This autoinhibition release mechanism allows cargo-activated transport and might enable motors to participate in bidirectional cargo transport without undertaking a tug-of-war.
...
PMID:PTPN21 and Hook3 relieve KIF1C autoinhibition and activate intracellular transport. 3121 19