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.

PubMed

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.

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