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Zuhri, U. M.

Publications and source records attributed to Zuhri, U. M..

2 recordsLinked to original sources

Exploration of the main active metabolites from Tinospora crispa (L.) Hook. f. & Thomson stem as insulin sensitizer in L6.C11 skeletal muscle cell by integrating in vitro, metabolomics, and molecular docking

Ethnopharmacological relevanceTinospora crispa (L.) Hook. f. & Thomson stem (TCS) has long been used as folk medicine for the treatment of diabetes mellitus. Previous study revealed that TCS possesses multi-ingredients and multi-targets characteristic potential as insulin sensitizer activity. However, its mechanisms of action and molecular targets are still obscure. Aim of the studyIn the present study, we investigated the effects of TCS against insulin resistance in muscle cells through integrating in vitro experiment and identifying its active biomarker using metabolomics and in molecular docking validation. Materials and methodsWe used centrifugal partition chromatography (CPC) to isolate 33 fractions from methanolic extract of TCS, and then used UHPLC-Orbitrap-HRMS to identify the detectable metabolites in each fraction. We assessed the insulin sensitization activity of each fraction using enzyme-linked immunosorbent assay (ELISA), and then used confocal immunocytochemistry microscopy to measure the translocation of glucose transporter 4 (GLUT4) to the cell membrane. The identified active metabolites were further simulated for its molecular docking interaction using Autodock Tools. ResultsThe polar fractions of TCS significantly increased insulin sensitivity, as measured by the inhibition of phosphorylated insulin receptor substrate-1 (pIRS1) at serine-312 residue (ser312) also the increasing number of translocated GLUT4 and glycogen content. We identified 58 metabolites of TCS, including glycosides, flavonoids, alkaloids, coumarins, and nucleotides groups. The metabolomics and molecular docking simulations showed the presence of minor metabolites consisting of tinoscorside D, higenamine, and tinoscorside A as the active compounds. ConclusionsOur findings suggest that TCS is a promising new treatment for insulin resistance and the identification of the active metabolites in TCS could lead to the development of new drugs therapies for diabetes that target these pathways. HighlightsTCS attenuated insulin resistance in skeletal muscle through lowering IRS ser312 phosphorylation, increasing translocation of GLUT4 and glycogen content. Tinoscorside D, tinoscorside A, and higenamine were identified as the primary bioactive compounds of TCS.

pharmacology and toxicology↗

Network Pharmacology Integrated Molecular Docking Based Prediction of Active Compounds and Potential Targets in Tinospora crispa Linn. as Insulin Sensitizer

Insulin resistance is a metabolic disorder characterized by the decreased response to insulin in muscle, liver, and adipose cells. The normal insulin levels are unable to control glucose, lipids, and energy homeostasis. This condition remains a complex phenomenon that involves several genetic defects and environmental stresses, such as obesity. A full understanding is required to understand the entire itinerary and functional consequences of the occurrence of insulin resistance to develop a potent drug in diabetes management. In the present study, we investigated the mechanism of known phytochemical constituents of Tinospora crispa and its interaction with insulin resistant target proteins by using network pharmacology and molecular docking. The insulin sensitizer activities of Tinospora crispa may be associated with the inhibition of the activation of the inflammatory pathway and the activation of insulin signaling. Tinoscorside A, Makisterone C, Borapetoside A and B, and {beta} sitosterol consider the main phytoconstituents of Tinospora crispa by its binding with active sites of main protein targets of insulin resistance potential therapy. In conclusion, Tinospora crispa was one of the promising therapeutic agent in type 2 diabetes mellitus management. Regulation in glucose homeostasis, adipolysis, cell proliferation, and antiapoptosis may be the critical mechanism of Tinospora crispa as an insulin sensitizer.

bioinformatics↗