Rational Polypharmacology: Systematically Identifying and Engaging Multiple Drug Targets To Promote Axon Growth

Hassan Al-Ali, Do-Hun Lee, Matt C Danzi

  • 1⊥Core Machine Learning Science Team, Amazon, Seattle, Washington 98109, United States.

ACS Chemical Biology
|June 10, 2015
PubMed

Insights

New drug discovery methods combine target-based and phenotypic screening to identify compounds that promote central nervous system (CNS) axon repair. This approach identified polypharmacology drugs that enhance neurite outgrowth and functional recovery after spinal cord injury.

Area of Science:

  • Neuroscience
  • Pharmacology
  • Drug Discovery

Background:

  • Mammalian central nervous system (CNS) neurons exhibit poor axon regeneration after injury, leading to permanent functional deficits.
  • Developing effective therapeutics for CNS axon repair is challenging due to the complex, multifactorial nature of regenerative failure.

Purpose of the Study:

  • To develop a systematic method for discovering multi-target drugs that promote CNS axon regeneration.
  • To identify specific molecular targets and drug candidates that enhance neurite outgrowth.

Main Methods:

  • Combined target-based kinase assays with phenotypic screening of primary CNS neurons.
  • Utilized machine learning and information theory to correlate kinase inhibition profiles with neurite outgrowth.
  • Screened compounds for their ability to promote axon growth in a rodent spinal cord injury model.

Main Results:

  • Compounds inhibiting multiple kinase targets (polypharmacology) significantly promoted neurite outgrowth in vitro.
  • Identified specific kinases that, when inhibited, promote axon regeneration, and others whose inhibition should be avoided.
  • One exemplary polypharmacology compound demonstrated axon growth promotion in a rodent spinal cord injury model.

Conclusions:

  • A novel integrated drug discovery approach effectively identifies multi-target therapeutics for CNS repair.
  • Polypharmacology is a promising strategy for enhancing axon regeneration and functional recovery.
  • The methodology shows broader applicability in deconvolving drug targets in other diseases, such as cancer.

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