Intranasal CRISPR-lipid nanoparticles targeting MAPK9 reduce neuroinflammation after traumatic brain injury

  • bioRxiv. 2026 Apr 26:2026.04.25.720847. doi: 10.64898/2026.04.25.720847.
Goknur Kara  1 Yaqoob Ali  2 Jessica López-Espinosa  1 Peter Park  1 Morgan Holcomb  1 Hannah Flinn  1 Noah Taylor  1 Tyler Galbraith  3 Fransisca Leonard  4 Sonia Villapol  1  5
Affiliations
  • 1. Department of Neurosurgery and Center for Neuroregeneration, Houston Methodist Research Institute, Houston, TX, USA.
  • 2. Department of Neurology, Houston Methodist Research Institute, Houston, TX, USA.
  • 3. Department of Nanomedicine, Houston Methodist Research Institute, Houston, TX, USA.
  • 4. Department of Transplant Oncology, Houston Methodist Research Institute, Houston, TX, USA.
  • 5. Department of Neuroscience in Neurological Surgery, Weill Cornell Medical College, New York, NY, USA.
Abstract

Traumatic brain injury (TBI) triggers a sustained neuroinflammatory response driven by activated microglia, which contributes to secondary injury and long-term neurological dysfunction. Therapeutic reprogramming of microglial activation from a pro-inflammatory (M1-like) to a reparative (M2-like) phenotype represents a promising strategy; however, the lack of cell-specific targeting within an injured brain has limited clinical translation. Here, we developed a targeted gene-editing nanotherapy to modulate post-traumatic innate immune responses. Lipid nanoparticles (LNPs) encapsulating CRISPR-Cas12a components were engineered to target mitogen-activated protein kinase-9 (MAPK9), a key regulator of pro-inflammatory signaling, and were conjugated with an Iba-1 antibody (Iba-1-CRISPR-LNPs) to enable selective targeting of microglia. In vitro, MAPK9 editing in primary macrophages inhibited M1 polarization and promoted an M2-like phenotype, leading to reduced production of proinflammatory cytokines. In a TBI mouse model, intranasal administration of Iba-1-CRISPR-LNPs achieved efficient delivery to the injured brain, with selective localization in Iba-1+ microglia. MAPK9 CRISPR targeting significantly attenuated microglial activation, reduced central and peripheral inflammatory responses, and decreased pro-inflammatory cytokine levels. Importantly, this approach demonstrated a favorable safety profile, with no detectable toxicity across major organs. Collectively, these findings establish a non-viral, intranasal CRISPR-based strategy for cell-specific modulation of neuroinflammation following TBI. Targeted genome editing of MAPK9 effectively reprograms microglial activation and attenuates acute inflammatory responses, highlighting its potential as a promising and translationally relevant therapeutic platform for TBI and related neuroinflammatory disorders.

Keywords
CRISPR; MAPK9; brain trauma; lipid nanoparticles; microglia reprogramming; neuroinflammation.
Products