AI Article Synopsis

  • - T-type calcium (Ca3) channels play a crucial role in heart function, particularly in heart conditions like hypertrophy and failure, but there's a lack of clinical inhibitors for them.
  • - The study focused on purpurealidin analogs from marine sponges to find novel inhibitors and identified purpurealidin I as having a significant inhibitory effect on the rat Ca3.1 channel.
  • - Four potent analogs were found to inhibit the Ca3.1 channel by blocking its ion flow, without altering the activation curve, and also showed activity on hERG channels, paving the way for new drug designs targeting T-type Ca channels.

Article Abstract

T-type calcium (Ca3) channels are involved in cardiac automaticity, development, and excitation-contraction coupling in normal cardiac myocytes. Their functional role becomes more pronounced in the process of pathological cardiac hypertrophy and heart failure. Currently, no Ca3 channel inhibitors are used in clinical settings. To identify novel T-type calcium channel ligands, purpurealidin analogs were electrophysiologically investigated. These compounds are alkaloids produced as secondary metabolites by marine sponges, and they exhibit a broad range of biological activities. In this study, we identified the inhibitory effect of purpurealidin I (1) on the rat Ca3.1 channel and conducted structure-activity relationship studies by characterizing the interaction of 119 purpurealidin analogs. Next, the mechanism of action of the four most potent analogs was investigated. Analogs , , , and showed a potent inhibition on the Ca3.1 channel with IC's at approximately 3 μM. No shift of the activation curve could be observed, suggesting that these compounds act like a pore blocker obstructing the ion flow by binding in the pore region of the Ca3.1 channel. A selectivity screening showed that these analogs are also active on hERG channels. Collectively, a new class of Ca3 channel inhibitors has been discovered and the structure-function studies provide new insights into the synthetic design of drugs and the mechanism of interaction with T-type Ca channels.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC9962600PMC
http://dx.doi.org/10.3390/ijms24043429DOI Listing

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