Search

Your search keyword '"Dominik Wiemuth"' showing total 22 results

Search Constraints

Start Over You searched for: Author "Dominik Wiemuth" Remove constraint Author: "Dominik Wiemuth" Topic medicine Remove constraint Topic: medicine
22 results on '"Dominik Wiemuth"'

Search Results

1. The bile acid-sensitive ion channel (BASIC) is activated by alterations of its membrane environment.

2. Interaction of serum- and glucocorticoid regulated kinase 1 (SGK1) with the WW-domains of Nedd4-2 is required for epithelial sodium channel regulation.

3. Bile acids are potent inhibitors of rat P2X2 receptors

4. The bile acid-sensitive ion channel (BASIC) mediates bile acid-dependent currents in bile duct epithelial cells

5. The Neuropeptide Nocistatin Is Not a Direct Agonist of Acid-Sensing Ion Channel 1a (ASIC1a)

6. Comparative electrophysiological analysis of the bile acid-sensitive ion channel (BASIC) from different species suggests similar physiological functions

7. Modulation of DEG/ENaCs by Amphiphiles Suggests Sensitivity to Membrane Alterations

8. A Cytosolic Amphiphilic α-Helix Controls the Activity of the Bile Acid-sensitive Ion Channel (BASIC)

9. Screening of 109 neuropeptides on ASICs reveals no direct agonists and dynorphin A, YFMRFamide and endomorphin-1 as modulators

10. Pentafluorosulfanyl-containing flufenamic acid analogs: Syntheses, properties and biological activities

11. Inhalational anesthetics accelerate desensitization of acid-sensing ion channels

12. The bile acid-sensitive ion channel (BASIC), the ignored cousin of ASICs and ENaC

13. Pharmacological and electrophysiological characterization of the human bile acid-sensitive ion channel (hBASIC)

14. The ALS-linked E102Q mutation in Sigma receptor-1 leads to ER stress-mediated defects in protein homeostasis and dysregulation of RNA-binding proteins

15. Strong activation of bile acid-sensitive ion channel (BASIC) by ursodeoxycholic acid

16. Transient receptor potential N (TRPN1) fromXenopusinteracts with the penta-EF-hand protein peflin

17. A Single Amino Acid Tunes Ca2+ Inhibition of Brain Liver Intestine Na+ Channel (BLINaC)

18. Loss of function of the ALS protein SigR1 leads to ER pathology associated with defective autophagy and lipid raft disturbances

19. The bile acid-sensitive ion channel (BASIC) is activated by alterations of its membrane environment

20. Bile acids increase the activity of the epithelial Na+ channel

21. Bile Salts Activate BLINaC - An Epithelial Na+ Channel in the Liver

22. The pharmacological profile of brain liver intestine Na+ channel: inhibition by diarylamidines and activation by fenamates

Catalog

Books, media, physical & digital resources