Asset Details
MbrlCatalogueTitleDetail
Do you wish to reserve the book?
Shear force sensing of epithelial Na⁺ channel (ENaC) relies on N-glycosylated asparagines in the palm and knuckle domains of αENaC
by
Katare, Rajesh
, Ashley, Zoe
, Barth, Daniel
, Baldin, Jan-Peter
, Kazantseva, Marina
, Weissmann, Norbert
, Fronius, Martin
, Saw, Eng Leng
, Knoepp, Fenja
, Jennings, Michael
, de la Rosa, Diego Alvarez
in
Animals
/ Asparagine - chemistry
/ Asparagine - metabolism
/ Biological Sciences
/ Blood pressure
/ Degenerin
/ Disease Models, Animal
/ Domains
/ Electrolytic cells
/ Endothelial Cells
/ Endothelium, Vascular - cytology
/ Endothelium, Vascular - pathology
/ Endothelium, Vascular - physiopathology
/ Epithelial cells
/ Epithelial Sodium Channels - chemistry
/ Epithelial Sodium Channels - genetics
/ Epithelial Sodium Channels - metabolism
/ Extracellular matrix
/ Extracellular Matrix - metabolism
/ Female
/ Glycosylation
/ HEK293 Cells
/ Homeostasis
/ Humans
/ Hypertension
/ Hypertension - etiology
/ Hypertension - pathology
/ Hypertension - physiopathology
/ Ion channels
/ Male
/ Mice
/ Mice, Transgenic
/ Molecular modelling
/ Mutagenesis, Site-Directed
/ N-glycans
/ Oocytes
/ Patch-Clamp Techniques
/ Physiology
/ Point Mutation
/ Polysaccharides
/ Polysaccharides - chemistry
/ Protein Domains - genetics
/ Shear forces
/ Sodium
/ Stress, Mechanical
/ Tethers
/ Vertebrates
/ Xenopus laevis
2020
Hey, we have placed the reservation for you!
By the way, why not check out events that you can attend while you pick your title.
You are currently in the queue to collect this book. You will be notified once it is your turn to collect the book.
Oops! Something went wrong.
Looks like we were not able to place the reservation. Kindly try again later.
Are you sure you want to remove the book from the shelf?
Shear force sensing of epithelial Na⁺ channel (ENaC) relies on N-glycosylated asparagines in the palm and knuckle domains of αENaC
by
Katare, Rajesh
, Ashley, Zoe
, Barth, Daniel
, Baldin, Jan-Peter
, Kazantseva, Marina
, Weissmann, Norbert
, Fronius, Martin
, Saw, Eng Leng
, Knoepp, Fenja
, Jennings, Michael
, de la Rosa, Diego Alvarez
in
Animals
/ Asparagine - chemistry
/ Asparagine - metabolism
/ Biological Sciences
/ Blood pressure
/ Degenerin
/ Disease Models, Animal
/ Domains
/ Electrolytic cells
/ Endothelial Cells
/ Endothelium, Vascular - cytology
/ Endothelium, Vascular - pathology
/ Endothelium, Vascular - physiopathology
/ Epithelial cells
/ Epithelial Sodium Channels - chemistry
/ Epithelial Sodium Channels - genetics
/ Epithelial Sodium Channels - metabolism
/ Extracellular matrix
/ Extracellular Matrix - metabolism
/ Female
/ Glycosylation
/ HEK293 Cells
/ Homeostasis
/ Humans
/ Hypertension
/ Hypertension - etiology
/ Hypertension - pathology
/ Hypertension - physiopathology
/ Ion channels
/ Male
/ Mice
/ Mice, Transgenic
/ Molecular modelling
/ Mutagenesis, Site-Directed
/ N-glycans
/ Oocytes
/ Patch-Clamp Techniques
/ Physiology
/ Point Mutation
/ Polysaccharides
/ Polysaccharides - chemistry
/ Protein Domains - genetics
/ Shear forces
/ Sodium
/ Stress, Mechanical
/ Tethers
/ Vertebrates
/ Xenopus laevis
2020
Oops! Something went wrong.
While trying to remove the title from your shelf something went wrong :( Kindly try again later!
Do you wish to request the book?
Shear force sensing of epithelial Na⁺ channel (ENaC) relies on N-glycosylated asparagines in the palm and knuckle domains of αENaC
by
Katare, Rajesh
, Ashley, Zoe
, Barth, Daniel
, Baldin, Jan-Peter
, Kazantseva, Marina
, Weissmann, Norbert
, Fronius, Martin
, Saw, Eng Leng
, Knoepp, Fenja
, Jennings, Michael
, de la Rosa, Diego Alvarez
in
Animals
/ Asparagine - chemistry
/ Asparagine - metabolism
/ Biological Sciences
/ Blood pressure
/ Degenerin
/ Disease Models, Animal
/ Domains
/ Electrolytic cells
/ Endothelial Cells
/ Endothelium, Vascular - cytology
/ Endothelium, Vascular - pathology
/ Endothelium, Vascular - physiopathology
/ Epithelial cells
/ Epithelial Sodium Channels - chemistry
/ Epithelial Sodium Channels - genetics
/ Epithelial Sodium Channels - metabolism
/ Extracellular matrix
/ Extracellular Matrix - metabolism
/ Female
/ Glycosylation
/ HEK293 Cells
/ Homeostasis
/ Humans
/ Hypertension
/ Hypertension - etiology
/ Hypertension - pathology
/ Hypertension - physiopathology
/ Ion channels
/ Male
/ Mice
/ Mice, Transgenic
/ Molecular modelling
/ Mutagenesis, Site-Directed
/ N-glycans
/ Oocytes
/ Patch-Clamp Techniques
/ Physiology
/ Point Mutation
/ Polysaccharides
/ Polysaccharides - chemistry
/ Protein Domains - genetics
/ Shear forces
/ Sodium
/ Stress, Mechanical
/ Tethers
/ Vertebrates
/ Xenopus laevis
2020
Please be aware that the book you have requested cannot be checked out. If you would like to checkout this book, you can reserve another copy
We have requested the book for you!
Your request is successful and it will be processed during the Library working hours. Please check the status of your request in My Requests.
Oops! Something went wrong.
Looks like we were not able to place your request. Kindly try again later.
Shear force sensing of epithelial Na⁺ channel (ENaC) relies on N-glycosylated asparagines in the palm and knuckle domains of αENaC
Journal Article
Shear force sensing of epithelial Na⁺ channel (ENaC) relies on N-glycosylated asparagines in the palm and knuckle domains of αENaC
2020
Request Book From Autostore
and Choose the Collection Method
Overview
Mechanosensitive ion channels are crucial for normal cell function and facilitate physiological function, such as blood pressure regulation. So far little is known about the molecular mechanisms of how channels sense mechanical force. Canonical vertebrate epithelial Na⁺ channel (ENaC) formed by α-, β-, and γ-subunits is a shear force (SF) sensor and a member of the ENaC/degenerin protein family. ENaC activity in epithelial cells contributes to electrolyte/fluid-homeostasis and blood pressure regulation. Furthermore, ENaC in endothelial cells mediates vascular responsiveness to regulate blood pressure. Here, we provide evidence that ENaC’s ability to mediate SF responsiveness relies on the “force-from-filament” principle involving extracellular tethers and the extracellular matrix (ECM). Two glycosylated asparagines, respectively their N-glycans localized in the palm and knuckle domains of αENaC, were identified as potential tethers. Decreased SF-induced ENaC currents were observed following removal of the ECM/glycocalyx, replacement of these glycosylated asparagines, or removal of N-glycans. Endothelial-specific overexpression of αENaC in mice induced hypertension. In contrast, expression of αENaC lacking these glycosylated asparagines blunted this effect. In summary, glycosylated asparagines in the palm and knuckle domains of αENaC are important for SF sensing. In accordance with the force-from-filament principle, they may provide a connection to the ECM that facilitates vascular responsiveness contributing to blood pressure regulation.
Publisher
National Academy of Sciences
Subject
/ Domains
/ Endothelium, Vascular - cytology
/ Endothelium, Vascular - pathology
/ Endothelium, Vascular - physiopathology
/ Epithelial Sodium Channels - chemistry
/ Epithelial Sodium Channels - genetics
/ Epithelial Sodium Channels - metabolism
/ Extracellular Matrix - metabolism
/ Female
/ Humans
/ Hypertension - physiopathology
/ Male
/ Mice
/ Oocytes
/ Sodium
/ Tethers
MBRLCatalogueRelatedBooks
Related Items
Related Items
This website uses cookies to ensure you get the best experience on our website.