Aug 2026· Frontiers in Neuroscience· Vol 20· 0 citations· 142 references
Medicine
TL;DR
The current applications of direct neuronal reprogramming technology in several neurological diseases are discussed and the potential contamination issues in adeno-associated virus (AAV) delivery systems are highlighted and a code of conduct is proposed to avoid artifacts and pitfalls.
Abstract
Neurological diseases, often caused by irreversible loss of terminally differentiated neurons, present considerable challenges to treatment due to the limited regenerative capacity of these neurons. Although induced pluripotent stem cells hold promise for neuronal regeneration, their clinical application is constrained by risks, including tumorigenicity, incomplete neuronal maturation, and immune rejection. Recent advancements in direct neuronal reprogramming, which bypasses the intermediate pluripotent stage by directly converting non-neuronal cells into functional neurons, offer a compelling alternative for in situ neuronal replacement in neurodegenerative diseases. Key transcription factors, such as NeuroD1, Ascl1, Sox2, as well as CRISPR activation (CRISPRa) of NGN2 and ISL1, have been explored to convert glial cells into neurons. However, several challenges remain. This review discusses the current applications of direct neuronal reprogramming technology in several neurological diseases. We further highlight the potential contamination issues in adeno-associated virus (AAV) delivery systems and propose a code of conduct to avoid artifacts and pitfalls. Finally, we point out future directions for expanding direct reprogramming targets, integrating organoid-based disease modeling, and advancing reprogramming regulation techniques.
The article traces the trend of directed differentiation technologies evolving from two-dimensional culture to three-dimensional organoids and details their practical applications in diseases such as stroke, Alzheimer's disease, and spinal cord injury—particularly in spinal cord injury models, where transplanted cells...
Dai-Yi Yang· International Journal of Bio...· 0 citations
It is shown that media composition is a key parameter influencing dopaminergic reprogramming efficiency across starting cell types in vitro, and the two starting cell types benefited from different culture conditions.
Kerstin Laurin, Janko Kajtez, J. Wickham et al.· Scientific Reports· 0 citations
ABSTRACT Direct reprogramming, which converts somatic cells from one lineage to another without passing through a pluripotent state, represents a promising therapeutic strategy for regenerative medicine. Recent advancements in identifying reprogramming factors and understanding molecular barriers have enabled efficient...
R. Singh, Mauro Calvoli, Kyeong Kyu Kim· Advancement of science· 0 citations
Overall, available evidence suggests that MSCs may support neural function and repair through neurotrophic, anti-inflammatory, immunomodulatory, and regenerative mechanisms, but current clinical evidence remains limited and heterogeneous.
Mohammed S. Al-lami, Zainab Alnaji, E. Mohammed· International Journal of Hem...· 0 citations
In the context of global ageing, the prevalence of neurodegenerative diseases (NDDs), such as Alzheimer's disease (AD), Parkinson's disease (PD), and amyotrophic lateral sclerosis (ALS), is rapidly increasing. However, current symptomatic treatments have achieved limited benefits in clinical settings and fundamentally...
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 r...
Negar Mahmoudi, Alan R. Harvey, N. Moriarty et al.· ACS Nano· 0 citations
We use cookies to run the site and, with your consent, for analytics and to show ads.
See our Cookie Policy.