Development of the new group of indole-derived neuroprotective drugs affecting oxidative stress

S Stolc1, V Snirc, M Májeková

  • 1Institute of Experimental Pharmacology, Slovak Academy of Sciences, Dúbravská cesta 9, 841 04, Bratislava, Slovak Republic.

Insights

New stobadine derivatives show promise as potent neuroprotectants. These compounds effectively reduce oxidative stress and improve outcomes in models of head trauma and hypoxia, with lower toxicity than the original drug.

Area of Science:

  • Neuroscience
  • Pharmacology
  • Medicinal Chemistry

Background:

  • Oxidative stress is implicated in numerous neuronal pathologies, yet effective pharmacological interventions remain limited due to issues with drug efficacy, pharmacokinetics, and toxicity.
  • Stobadine, a known antioxidant and neuroprotectant, serves as a basis for developing novel therapeutic agents.
  • Existing treatments for oxidative stress-related neurological conditions face challenges in clinical application.

Purpose of the Study:

  • To design, synthesize, and evaluate novel stobadine derivatives with enhanced pharmacodynamic and toxicity profiles.
  • To investigate the neuroprotective and antioxidant potential of new pyridoindole compounds.
  • To address the unmet need for effective treatments against oxidative stress in neuronal diseases.

Main Methods:

  • Molecular design and synthesis of over 70 stobadine derivatives, primarily through electron-donating substitutions on the benzene ring and N-2 position.
  • In vivo assessment in a mouse model of head trauma, evaluating sensomotoric outcomes and brain edema post-administration.
  • In vitro evaluation using rat hippocampal slices subjected to hypoxia/low glucose, analyzing synaptic transmission in CA1 neurons.
  • Assessment of antioxidant efficacy in rat brain homogenates using an iron/ascorbate system to measure protection against lipid and creatine kinase oxidation.

Main Results:

  • Several new stobadine derivatives significantly improved sensomotoric function and reduced brain edema in mice following head trauma.
  • The compound SMe1EC2 demonstrated potent neuroprotective effects in rat hippocampal slices, reducing hypoxia-induced impairment of neurotransmission at low concentrations (0.03-10.0x10(-6) mol l(-1)).
  • New derivatives exhibited strong antioxidant activity in brain homogenates and reduced acute toxicity compared to stobadine, partly by eliminating alpha (1)-adrenolytic activity.

Conclusions:

  • The novel pyridoindole derivatives possess significant neuroprotective and antioxidant properties, outperforming stobadine in efficacy and safety.
  • These compounds represent a promising new class of neuroprotectants for conditions involving oxidative stress.
  • Further development of these derivatives could lead to more effective clinical treatments for neuronal pathologies.