Tauroursodeoxycholic acid
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Stress of endoplasmic reticulum (ERS) is one of the molecular triggers of adipocyte dysfunction and chronic low inflammation accompanying obesity. ERS can be alleviated by chemical chaperones from the family of bile acids (BAs). Thus, two BAs currently used to treat cholestasis, ursodeoxycholic and tauroursodeoxycholic acid (UDCA and TUDCA), could potentially lessen adverse metabolic effects of obesity. Nevertheless, BAs effects on human adipose cells are mostly unknown. They could regulate gene expression through pathways different from their chaperone function, namely through activation of farnesoid X receptor (FXR) and TGR5, G-coupled receptor. Therefore, this study aimed to analyze effects of UDCA and TUDCA on human preadipocytes and differentiated adipocytes derived from paired samples of two distinct subcutaneous adipose tissue depots, abdominal and gluteal. While TUDCA did not alter proliferation of cells from either depot, UDCA exerted strong anti-proliferative effect. In differentiated adipocytes, acute exposition to neither TUDCA nor UDCA was able to reduce effect of ERS stressor tunicamycin. However, exposure of cells to UDCA during whole differentiation process decreased expression of ERS markers. At the same time however, UDCA profoundly inhibited adipogenic conversion of cells. UDCA abolished expression of PPARγ and lipogenic enzymes already in the early phases of adipogenesis. This anti-adipogenic effect of UDCA was not dependent on FXR or TGR5 activation, but could be related to ability of UDCA to sustain the activation of ERK1/2 previously linked with PPARγ inactivation. Finally, neither BAs did lower expression of chemokines inducible by TLR4 pathway, when UDCA enhanced their expression in gluteal adipocytes. Therefore while TUDCA has neutral effect on human preadipocytes and adipocytes, the therapeutic use of UDCA different from treating cholestatic diseases should be considered with caution because UDCA alters functions of human adipose cells.
- MeSH
- adipogeneze účinky léků MeSH
- aktivace enzymů účinky léků MeSH
- buněčná diferenciace účinky léků MeSH
- cytokiny genetika MeSH
- kyselina taurochenodeoxycholová farmakologie MeSH
- kyselina ursodeoxycholová farmakologie MeSH
- lidé MeSH
- mitogenem aktivovaná proteinkinasa 1 metabolismus MeSH
- mitogenem aktivovaná proteinkinasa 3 metabolismus MeSH
- podkožní tuk cytologie MeSH
- proliferace buněk účinky léků MeSH
- regulace genové exprese účinky léků MeSH
- stres endoplazmatického retikula účinky léků MeSH
- tukové buňky cytologie účinky léků metabolismus MeSH
- Check Tag
- lidé MeSH
- ženské pohlaví MeSH
- Publikační typ
- časopisecké články MeSH
- práce podpořená grantem MeSH
Ovarian surface epithelium (OSE) forms a single layer of mostly cuboidal cells on surface of mammalian ovaries that is inherently exposed to cell stress evoked by tissue damage every ovulation and declines morphologically after menopause. Endoplasmic reticulum (ER) is a principal cell organelle involved in proteosynthesis, but also integrating various stress signals. ER stress evokes a conserved signaling pathway, the unfolded protein response (UPR), leading to cell death or adaptation to stress conditions. In this work, we document that mouse OSE suffers from ER stress during replicative senescence in vitro, develops abnormalities in ER and initiates UPR. Attenuation of ER stress in senescent OSE by tauroursodeoxycholic acid (TUDCA) reconditions ER architecture and leads to delayed onset of senescence. In summary, we show for the first time a mutual molecular link between ER stress response and replicative senescence leading to phenotypic changes of non-malignant ovarian surface epithelium.
- MeSH
- down regulace účinky léků MeSH
- epitel účinky léků patologie ultrastruktura MeSH
- kyselina taurochenodeoxycholová farmakologie MeSH
- messenger RNA genetika metabolismus MeSH
- myši MeSH
- ovarium patologie MeSH
- stárnutí buněk účinky léků MeSH
- stres endoplazmatického retikula účinky léků MeSH
- tunikamycin farmakologie MeSH
- upregulace účinky léků MeSH
- zkracování telomer účinky léků MeSH
- zvířata MeSH
- Check Tag
- myši MeSH
- ženské pohlaví MeSH
- zvířata MeSH
- Publikační typ
- časopisecké články MeSH
... Kramer 3 -- Section I: BILE ACID BIOSYNTHESIS AND METABOLISM -- 1 Determinants of biliary bile acid composition ... ... of bile acid synthesis -- Z. ... ... Dowling 82 -- Section II: HEPATIC BILE ACID TRANSPORT -- 7 Regulation of bile acid carrier expression ... ... Oude Elferink 137 -- CONTENTS -- 14 Stimulation of bile acid secretion by tauroursodeoxycholate and cell ... ... Hylemon -- Section IV: BIOLOGICAL ACTIONS OF BILE ACIDS -- 20 Effects of bile acids on bile secretion ...
Falk symposium ; 93
xv, 328 stran : ilustrace, tabulky ; 24 cm
- MeSH
- hepatobiliární exkrece MeSH
- klinické lékařství MeSH
- nemoci jater MeSH
- nemoci žlučového ústrojí MeSH
- žlučové kyseliny a soli biosyntéza fyziologie metabolismus terapeutické užití MeSH
- Publikační typ
- sborníky MeSH
- Konspekt
- Patologie. Klinická medicína
- NLK Obory
- hepatologie
Cell communication systems based on polypeptide ligands use transmembrane receptors to transmit signals across the plasma membrane. In their biogenesis, receptors depend on the endoplasmic reticulum (ER)-Golgi system for folding, maturation, transport and localization to the cell surface. ER stress, caused by protein overproduction and misfolding, is a well-known pathology in neurodegeneration, cancer and numerous other diseases. How ER stress affects cell communication via transmembrane receptors is largely unknown. In disease models of multiple myeloma, chronic lymphocytic leukemia and osteogenesis imperfecta, we show that ER stress leads to loss of the mature transmembrane receptors FGFR3, ROR1, FGFR1, LRP6, FZD5 and PTH1R at the cell surface, resulting in impaired downstream signaling. This is caused by downregulation of receptor production and increased intracellular retention of immature receptor forms. Reduction of ER stress by treatment of cells with the chemical chaperone tauroursodeoxycholic acid or by expression of the chaperone protein BiP resulted in restoration of receptor maturation and signaling. We show a previously unappreciated pathological effect of ER stress; impaired cellular communication due to altered receptor processing. Our findings have implications for disease mechanisms related to ER stress and are particularly important when receptor-based pharmacological approaches are used for treatment.
- MeSH
- chaperon endoplazmatického retikula BiP MeSH
- kyselina taurochenodeoxycholová farmakologie MeSH
- lidé MeSH
- nádorové buněčné linie MeSH
- receptory buněčného povrchu * metabolismus MeSH
- signální transdukce * účinky léků MeSH
- stres endoplazmatického retikula * účinky léků MeSH
- zvířata MeSH
- Check Tag
- lidé MeSH
- zvířata MeSH
- Publikační typ
- časopisecké články MeSH
... Sewell 67 -- SECTION 2: BILE ACID BIOSYNTHESIS AND METABOLISM -- Regulation of bile acid synthesis -- ... ... Shefer 91 -- Bile acid metabolism in man: monohydroxy bile acids -- P. F. Miskovitz, N. B. ... ... Trash 257 -- Effects of ursodeoxycholic acid and chenodeoxycholic acid on bile acid kinetics and secretion ... ... Leijd 267 -- Effect of tauroursodeoxycholic acid administration on bile lipid secretion in man -- E. ... ... -- AND URSODEOXYCHOLIC ACID -- Pharmacology of chenodeoxycholic and ursodeoxycholic acid -- A. ...
Falk symposium ; No. 33
417 s. : il.
There is an ongoing need for the development of new cancer therapeutics that combine high cytotoxic efficiency with low side effects, and also override resistance to the first-line chemotherapeutics. Copper(ii)-phenanthroline complexes are promising compounds that were shown previously to induce an immediate cytotoxic response over a panel of tumor cell lines in vitro. The molecular mechanism, however, remained unresolved. In this work we performed a thorough study of the copper(ii)-phenanthroline complexes containing different imidazolidine-2-thione ligands in ovarian cancer cells, and revealed that these complexes induce endoplasmic reticulum (ER) stress and subsequently cell death mediated by the unfolded protein response. Alleviation of the ER-stress by tauroursodeoxycholic acid (TUDCA) attenuated the cytotoxic effects. In summary, we have identified a novel, ER-dependent, molecular mechanism mediating cytotoxic effects of copper(ii)-phenanthroline complexes.
- MeSH
- fenantroliny chemie farmakologie MeSH
- komplexní sloučeniny chemie farmakologie MeSH
- lidé MeSH
- měď chemie farmakologie MeSH
- nádorové buněčné linie MeSH
- nádory vaječníků farmakoterapie metabolismus MeSH
- protinádorové látky chemie farmakologie MeSH
- signální dráha UPR účinky léků MeSH
- Check Tag
- lidé MeSH
- ženské pohlaví MeSH
- Publikační typ
- časopisecké články MeSH
- práce podpořená grantem MeSH