Spatially Precise Neuron Formation via Hydrogel-Mediated Modulation of the Host Astrocyte Response
Negar Mahmoudi, Alan R. Harvey, Niamh Moriarty, Morteza Mahmoudi, Wei Tong, Toon Goris, Nathan Reynolds, Noorya Y. Ahmed, Nathalie Dehorter, Leszek Lisowski, Clare L. Parish, Richard J. Williams, David R. NisbetAbstract
The central nervous system exhibits limited capacity for regeneration following injury or disease. Although genetic and epigenetic reprogramming of non-neuronal cells into induced neurons offers a promising route for neuronal replacement and circuit reconstruction, its therapeutic potential remains constrained by low reprogramming efficiency and inadequate control over factor delivery. Here, we report a high-efficiency astrocyte-to-neuron reprogramming strategy enabled by ectopic expression of the transcription factor SOX2 delivered via adeno-associated viral vectors. We further engineered an implantable hybrid composite biomaterial that functions as a localized “reprogramming workshop”, performing sequential operations within the lesion microenvironment. Upon injection, the material forms a tissue-mimetic hydrogel that recruits endogenous astrocytes, concentrates reprogramming cues, and spatially confines their presentation. This system effectively entrapped astrocytes, guided their transition through a neuroblast-like intermediate state, and yielded robust populations of mature neurons. Incorporation of sustained valproic acid release further enhanced neuronal maturation. Together, these results present a design-led strategy for minimally invasive, tissue-optimized delivery of reprogramming factors and demonstrate a multifunctional biomaterial platform that significantly enhances neural repair potential.