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Published on: June 24, 2019
Discovery and Evaluation of Novel Calenduloside E Derivatives Targeting HSP90β in Ox-LDL-Induced HUVECs Injury
Fang Han1, Huiqi Fang1, Guangyu Li1
1State Key Laboratory for Quality Ensurance and Sustainable Use of Dao-di Herbs, Institute of Medicinal Plant Development, Chinese Academy of Medical Sciences and Peking Union Medical College, Beijing 100193, China.
Insights
A novel compound, C5, derived from Calenduloside E and ticagrelor, shows enhanced anti-atherosclerosis activity by targeting Heat Shock Protein 90β. This improved compound offers potential for reduced dosage and side effects in treating atherosclerosis.
Area of Science:
- Medicinal Chemistry
- Cardiovascular Pharmacology
- Drug Discovery
Background:
- Atherosclerosis (AS) is a major cause of cardiovascular disease deaths globally.
- Heat shock protein 90 (HSP90) is a key regulator in AS progression and a potential drug target.
- Calenduloside E (CE) has shown anti-atherosclerotic activity but limited clinical utility due to weak efficacy.
Purpose of the Study:
- To enhance the anti-atherosclerotic activity of Calenduloside E (CE) through molecular hybridization.
- To synthesize and evaluate novel CE derivatives by linking CE with a ticagrelor fragment.
- To identify the mechanism of action and potential targets of the synthesized compounds.
Main Methods:
- Synthesis of ten CE derivatives by linking CE to a ticagrelor fragment via a PEG chain.
- In vitro assessment of cytotoxicity and protective effects against ox-LDL-induced HUVECs injury.
- Molecular docking, Surface Plasmon Resonance (SPR), and Microscale Thermophoresis (MST) to evaluate target interactions (HSP90β, P2Y12).
Main Results:
- Compound C5 demonstrated optimal protective activity against ox-LDL-induced HUVECs injury with an EC50 of 1.44 μM.
- C5 and CE bind to HSP90β, with C5 showing 111 times higher affinity than ticagrelor via MST.
- P2Y12 was identified as an additional potential target for compound C5.
Conclusions:
- Compound C5 effectively protects against ox-LDL-induced HUVECs injury by targeting HSP90β.
- C5 exhibits significantly improved efficacy compared to the parent compound CE.
- The dual targeting potential (HSP90β and P2Y12) of C5 offers a promising strategy for novel anti-atherosclerotic drug design.
Abstract:
Background: Atherosclerosis (AS) serves as the primary pathological basis for cardiovascular disease-related deaths worldwide, posing a severe threat to public health security. Heat shock protein 90 (HSP90) plays a crucial regulatory role in the pathological progression of AS, emerging as a potential target for anti-atherosclerosis drug development in recent years. Calenduloside E (CE) is a pentacyclic triterpenoid saponin isolated from Aralia elata (Miq.) Seem. Previous studies have confirmed its anti-atherosclerotic activity, but its weak efficacy and narrow therapeutic index limit its clinical application. In this study, the CE scaffold was hybridized with a ticagrelor-derived fragment to enhance anti-atherosclerotic activity. In this study, the CE scaffold was hybridized with a ticagrelor fragment to achieve improved activity. Methods: Based on the principle of molecular hybridization, CE was linked to the active fragment of ticagrelor via a PEG chain. Ten CE derivatives were synthesized by modifying the sugar substituents. In vitro experiments were conducted to detect cytotoxicity and protective activity against ox-LDL-induced HUVECs injury. Molecular docking and Surface Plasmon Resonance (SPR) assays were used to evaluate the interaction between CE derivatives and the known target HSP90β. Combined with Microscale Thermophoresis (MST), SwissTargetPrediction, and molecular docking, other potential targets of CE derivatives were identified. Results: In the ox-LDL-induced HUVECs injury model, all compounds except C2 and C9 exhibited protective activity. Among these compounds, compound C5 exhibited the optimal protective effect, with an EC50 value of 1.44 μM. Molecular docking results revealed that both C5 and CE could bind to HSP90β by forming hydrogen bonds with the key amino acid Asp93. Additionally, SPR results indicated that C5 and CE had similar binding affinities to HSP90β, with dissociation constants (KD) of 1.73 μM and 1.72 μM, respectively. MST demonstrated that C5 binds to HSP90β with an affinity 111 times higher than that of ticagrelor. SwissTargetPrediction and molecular docking identified P2Y12 as another potential target of derivative C5. Conclusions: Compound C5 exerts protective effect against ox-LDL-induced HUVECs injury by targeting HSP90β. Its effective concentration is significantly improved compared with that of the parent CE, which provides a possibility for reducing clinical dosage and toxic side effects in subsequent studies. Furthermore, C5 may exert its effects by targeting another potential target, P2Y12, offering references for the rational design of novel anti-atherosclerotic drugs.
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