Sulforaphane (SFA) protects neuronal cells from oxygen & glucose deprivation (OGD)

Zeenat Ladak1, Elizabeth Garcia1, Jenny Yoon1

  • 1Faculty of Medicine & Dentistry, Department of Pediatrics, University of Alberta, Edmonton, Alberta, Canada.

Plos One
|March 18, 2021
PubMed

Insights

Sulforaphane (SFA) shows promise in preventing fetal brain injury from placental insufficiency. Low doses protect neurons and glial cells, but higher doses are toxic, necessitating careful dosing for safety and efficacy in preventing neurodevelopmental disabilities.

Area of Science:

  • Neuroscience
  • Developmental Biology
  • Toxicology

Background:

  • Perinatal brain injury, often caused by placental insufficiency (PI) leading to hypoxic-ischemic (HI) environments, results in neurodevelopmental disabilities (neuroDDs).
  • Over 80% of these injuries occur prenatally, highlighting the need for in-utero preventive strategies.
  • Sulforaphane (SFA), derived from broccoli sprouts, is a potent antioxidant and phase-II enzyme inducer with demonstrated neuroprotective effects in preclinical models.

Purpose of the Study:

  • To investigate the dose-dependent protective and toxic effects of Sulforaphane (SFA) on neuronal and glial cells in vitro.
  • To establish the safe and efficacious dosing range of SFA for potential therapeutic use in preventing fetal brain injury.

Main Methods:

  • Primary cortical neuronal and astrocyte cultures, as well as co-cultures, were established from newborn rodent brains.
  • Oxygen-glucose deprivation (OGD) was used to simulate in-utero hypoxic-ischemic conditions, with LD50 determined for each culture type.
  • Varying doses of SFA were tested for neuroprotective and neurotoxic effects under both OGD and normal conditions, assessed via immunofluorescence and viability assays.

Main Results:

  • The LD50 for OGD was determined to be 2 hours for neurons, 8 hours for astrocytes, and 10 hours for co-cultures.
  • Significant neuroprotection was observed with SFA at 2.5 μM for astrocytes and co-cultures, with a trend towards protection in neurons.
  • SFA demonstrated toxicity at concentrations ≥ 50-100 μM under OGD and ≥ 50 μM in normal conditions, indicating a narrow therapeutic window.

Conclusions:

  • Low doses of SFA exhibit significant neuroprotective potential against simulated fetal ischemic injury in neuronal and glial cells.
  • Higher SFA doses induce toxicity in both normal and OGD conditions, emphasizing the critical need for precise dosing to ensure safety.
  • These findings support SFA's promise as a preventative agent for childhood neurodevelopmental disabilities stemming from perinatal brain injury and guide future therapeutic development.
Abstract