Solanum melongena L. Extract Promotes Intestinal Tight Junction Re‐Assembly via SIRT‐1‐Dependent Mechanisms

Author:

Sukmak Pichayapa12,Kulworasreth Purisha1,Treveeravoot Supisara12,Arinno Apiwan123,Anuwongworavet Supitcha1,Wachiradejkul Wanapas1,Kulworasreth Purit1,Teansuk Natnicha12,Thongnak Laongdao1,Amonlerdpison Doungporn4,Inchai Jakkapong5,Jakrachai Chaiwet5,Akrimajirachoote Nattaphong6,Aonbangkhen Chanat3,Muanprasat Chatchai7,Poolsri Wanangkan8,Vaddhanaphuti Chutima S.5ORCID,Pongkorpsakol Pawin12ORCID

Affiliation:

1. Princess Srisavangavadhana College of Medicine Chulabhorn Royal Academy Bangkok Thailand

2. Laboratory of Epithelial Tight Junction Pathophysiology Bangkok Thailand

3. Center of Excellence in Natural Products Chemistry (CENP) Department of Chemistry Faculty of Science Chulalongkorn University Bangkok Thailand

4. Center of Excellence in Agricultural Innovation for Graduate Entrepreneur and Faculty of Fisheries Technology and Aquatic Resources Maejo University Chiang Mai Thailand

5. Innovative Research Unit of Epithelial Transport and Regulation (iETR) Department of Physiology Faculty of Medicine Chiang Mai University Chiang Mai Thailand

6. Department of Physiology Faculty of Veterinary Medicine Kasetsart University Bangkok Thailand

7. Chakri Naruebodindra Medical Institute Faculty of Medicine Ramathibodi Hospital Mahidol University Samut Prakan Thailand

8. Faculty of Science Chulabhorn Royal Academy Bangkok Thailand

Abstract

AbstractTight junction disruption can lead to pathogenesis of various diseases without therapeutic strategy to recover intestinal barrier integrity. The main objective of this study is to demonstrate the effect of Solanum melongena L. extract (SMLE) on intestinal tight junction recovery and its underlying mechanism. Intestinal barrier function is attenuated by Ca2+ depletion. SMLE treatment increased TER value across T84 cell monolayers. Permeability assay reveals that Ca2+ depletion promotes 4‐kDa FITC‐dextran permeability, but not 70‐kDa FITC‐dextran. SMLE suppresses the rate of 4‐kDa FITC‐dextran permeability, indicating that SMLE inhibits paracellular leak pathway permeability. SMLE‐mediated TER increase and leak pathway suppression are abolished by neither calcium/calmodulin‐dependent protein kinase kinase β (CaMKKβ) inhibitor nor AMP‐activated protein kinase (AMPK) inhibitor. Furthermore, mammalian target of rapamycin (mTOR) and extracellular signal‐regulated kinase (ERK) inhibitors have no effects on SMLE‐mediated TER increase and leak pathway suppression. Interestingly, SMLE is unable to enhance TER value and diminish leak pathway permeability in T84 cell monolayers pre‐treated with sirtuin‐1 (SIRT‐1) inhibitor. Immunofluorescence staining reveals that SMLE enhances re‐assembly of tight junction proteins, including occludin and ZO‐1 to intercellular space but this effect is abolished by SIRT‐1 inhibitor. These data suggest that SMLE promotes intestinal tight junction re‐assembly via SIRT‐1‐dependent manner.

Funder

Chulabhorn Royal Academy

Publisher

Wiley

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