Stroke and Neurogenesis: Bridging Clinical Observations to New Mechanistic Insights from Animal Models

Transl Stroke Res. 2024 Feb;15(1):53-68. doi: 10.1007/s12975-022-01109-1. Epub 2022 Dec 3.

Abstract

Stroke was the 2nd leading cause of death and a major cause of morbidity. Unfortunately, there are limited means to promote neurological recovery post-stroke, but research has unearthed potential targets for therapies to encourage post-stroke neurogenesis and neuroplasticity. The occurrence of neurogenesis in adult mammalian brains, including humans, was not widely accepted until the 1990s. Now, adult neurogenesis has been extensively studied in human and mouse neurogenic brain niches, of which the subventricular zone of the lateral ventricles and subgranular zone of the dentate gyrus are best studied. Numerous other niches are under investigation for neurogenic potential. This review offers a basic overview to stroke in the clinical setting, a focused summary of recent and foundational research literature on cortical neurogenesis and post-stroke brain plasticity, and insights regarding how the meninges and choroid plexus have emerged as key players in neurogenesis and neuroplasticity in the context of focal cerebral ischemia disrupting the anterior circulation. The choroid plexus and meninges are vital as they are integral sites for neuroimmune interactions, glymphatic perfusion, and niche signaling pertinent to neural stem cells and neurogenesis. Modulating neuroimmune interactions with a focus on astrocyte activity, potentially through manipulation of the choroid plexus and meningeal niches, may reduce the exacerbation of stroke by inflammatory mediators and create an environment conducive to neurorecovery. Furthermore, addressing impaired glymphatic perfusion after ischemic stroke likely supports a neurogenic environment by clearing out inflammatory mediators, neurotoxic metabolites, and other accumulated waste. The meninges and choroid plexus also contribute more directly to promoting neurogenesis: the meninges are thought to harbor neural stem cells and are a niche amenable to neural stem/progenitor cell migration. Additionally, the choroid plexus has secretory functions that directly influences stem cells through signaling mechanisms and growth factor actions. More research to better understand the functions of the meninges and choroid plexus may lead to novel approaches for stimulating neuronal recovery after ischemic stroke.

Keywords: Adult stem cell; Brain; Central nervous system (CNS); Choroid plexus; Inflammation; Ischemia; Meninges; Neural stem cell; Neurogenesis; Plasticity; Regeneration; Remodeling; Stroke; Tissue stem cell.

Publication types

  • Review

MeSH terms

  • Adult
  • Animals
  • Humans
  • Inflammation Mediators
  • Ischemic Stroke*
  • Mammals
  • Mice
  • Models, Animal
  • Neurogenesis / physiology
  • Stroke*

Substances

  • Inflammation Mediators