Characterization of Novel Diphenylamine Compounds as Ferroptosis Inhibitors

L Hinder1, A L Pfaff1, R E Emmerich1

  • 1Departments of Pharmacology & Clinical Pharmacy (L.H., S.M., C.C.) and Pharmaceutical Chemistry (A.L.P., R.E.E., M.S.), University of Marburg, Marburg, Germany, and Center for Mind, Brain and Behavior (CMBB), Marburg, Germany (L.H., S.M., C.C.).

Insights

Novel diphenylamine (DPA) compounds protect neuronal cells from ferroptosis, a form of oxidative cell death. These compounds block reactive oxygen species (ROS) and preserve mitochondrial function, offering potential treatments for neurodegenerative diseases.

Area of Science:

  • Biochemistry
  • Cell Biology
  • Neuroscience

Background:

  • Ferroptosis is a critical oxidative cell death pathway implicated in neurodegeneration and other diseases.
  • Neuronal ferroptosis involves lipid reactive oxygen species (ROS) accumulation and mitochondrial dysfunction.
  • Targeting ferroptosis presents a therapeutic avenue for neurodegenerative disorders.

Purpose of the Study:

  • To develop and evaluate novel compounds that inhibit ferroptosis in neuronal cells.
  • To investigate the protective mechanisms of these compounds against ferroptosis-induced cellular damage.

Main Methods:

  • Structural modification of the BI-6c9 ferroptosis inhibitor by incorporating a diphenylamine (DPA) moiety.
  • Testing DPA compounds in HT22 neuronal cells induced to undergo ferroptosis by erastin and Ras-selective lethal small molecule 3.
  • Assessing cellular protection, ROS levels (lipid, cytosolic, mitochondrial), and mitochondrial parameters (morphology, membrane potential, respiration).

Main Results:

  • DPA compounds demonstrated enhanced protection against ferroptotic cell death compared to the parent compound BI-6c9.
  • These compounds effectively abrogated lipid, cytosolic, and mitochondrial ROS formation in a dose- and time-dependent manner.
  • Mitochondrial morphology, membrane potential, and respiration were preserved, indicating protection against ferroptosis-induced mitochondrial impairment.

Conclusions:

  • The novel DPA compounds are potent inhibitors of ferroptosis in neuronal cells.
  • Their efficacy stems from blocking ROS production and providing significant mitochondrial protection.
  • These findings highlight the therapeutic potential of DPA compounds for neurodegenerative diseases characterized by ferroptosis.

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