Minocycline inhibits poly(ADP-ribose) polymerase-1 at nanomolar concentrations

Conrad C Alano1, Tiina M Kauppinen, Andreu Viader Valls

  • 1Department of Neurology, University of California-San Francisco and Veterans Affairs Medical Center, 4150 Clement Street, San Francisco, CA 94121, USA.

Insights

Minocycline and other tetracyclines directly inhibit Poly(ADP-ribose) polymerase-1 (PARP-1) enzymatic activity. This PARP-1 inhibition significantly reduces neuronal death and may explain the neuroprotective effects of these compounds.

Area of Science:

  • Neuroscience
  • Pharmacology
  • Molecular Biology

Background:

  • Poly(ADP-ribose) polymerase-1 (PARP-1) activation by DNA damage contributes to cell death and inflammation.
  • Tetracycline derivatives, including minocycline, exhibit known neuroprotective and anti-inflammatory properties.

Purpose of the Study:

  • To investigate the direct inhibitory effect of minocycline and related tetracyclines on PARP-1 enzymatic activity.
  • To determine if PARP-1 inhibition mediates the neuroprotective actions of these compounds.

Main Methods:

  • Cortical neuron cultures were treated with genotoxic agents (MNNG or SIN-1) to induce PARP-1 activation.
  • Neuronal death, NAD+ depletion, and poly(ADP-ribose) formation were assessed in the presence of minocycline or other tetracycline derivatives.
  • Inhibition kinetics of minocycline on recombinant PARP-1 were determined using cell-free assays.

Main Results:

  • Minocycline (100 nM) significantly reduced neuronal death (>80%) induced by genotoxic agents.
  • Minocycline blocked PARP-1 activation markers, including NAD+ depletion and poly(ADP-ribose) formation.
  • Minocycline demonstrated direct, competitive inhibition of PARP-1 with a K(i) of 13.8 nM; potency correlated with neuroprotection across tetracycline derivatives.

Conclusions:

  • Minocycline and other tetracycline derivatives are direct inhibitors of PARP-1 enzymatic activity.
  • PARP-1 inhibition is a key mechanism underlying the neuroprotective and anti-inflammatory effects of these compounds at low concentrations.
  • These findings suggest a novel therapeutic strategy targeting PARP-1 for neurological disorders.

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