NEUROD1 efficiently converts peripheral blood cells into neurons with partial reprogramming by pluripotency factors

Y Yoichi Saito (Keio University Regenerative Medicine Research Center) M Mitsuru Ishikawa (Keio University Regenerative Medicine Research Center) M Mahito Ohkuma (Department of Physiology, Fujita Health University School of Medicine) J Jonathan Moody (RIKEN Center for Integrative Medical Sciences) Y Yo Mabuchi (Department of Clinical Regenerative Medicine, Fujita Medical Innovation Center, Fujita Health University) T Tsukasa Sanosaka (Department of Physiology, Keio University School of Medicine) Y Yoshinari Ando (RIKEN Center for Integrative Medical Sciences) T Takayuki Yamashita (Department of Physiology, Fujita Health University School of Medicine) C Chung Chau Hon (RIKEN Center for Integrative Medical Sciences) J Jay W. Shin (RIKEN Center for Integrative Medical Sciences) W Wado Akamatsu (Department of Physiology, Keio University School of Medicine) H Hideyuki Okano

Abstract

The direct reprogramming of cells has tremendous potential in in vitro neurological studies. Previous attempts to convert blood cells into induced neurons have presented several challenges, necessitating a less invasive, efficient, rapid, and convenient approach. The current study introduces an optimized method for converting somatic cells into neurons using a nonsurgical approach that employs peripheral blood cells as an alternative source to fibroblasts. We have demonstrated the efficacy of a unique combination of transcription factors, including NEUROD1, and four Yamanaka reprogramming factors (OCT3/4, SOX2, KLF4, and c-MYC), in generating glutamatergic neurons within 3 wk. This approach, which requires only five pivotal factors (NEUROD1, OCT3/4, SOX2, KLF4, and c-MYC), has the potential to create functional neurons and circumvents the need for induced pluripotent stem cell (iPSC) intermediates, as evidenced by single-cell RNA sequencing and whole-genome bisulfite sequencing, along with lineage-tracing experiments using Cre-LoxP system. While fibroblasts have been widely used for neuronal reprogramming, our findings suggest that peripheral blood cells offer a potential alternative, particularly in contexts where minimally invasive sampling and procedures convenient for patients are emphasized. This method provides a rapid strategy for modeling neuronal diseases and contributes to advancements in drug discovery and personalized medicine.

Article Details

Volume / Issue Vol. 122, Issue 18
Published May 06, 2025
ISSN 0027-8424
Publisher National Academy of Sciences

Authors (12)

Y

Yoichi Saito

Keio University Regenerative Medicine Research Center

M

Mitsuru Ishikawa

Keio University Regenerative Medicine Research Center

M

Mahito Ohkuma

Department of Physiology, Fujita Health University School of Medicine

J

Jonathan Moody

RIKEN Center for Integrative Medical Sciences

Y

Yo Mabuchi

Department of Clinical Regenerative Medicine, Fujita Medical Innovation Center, Fujita Health University

T

Tsukasa Sanosaka

Department of Physiology, Keio University School of Medicine

Y

Yoshinari Ando

RIKEN Center for Integrative Medical Sciences

T

Takayuki Yamashita

Department of Physiology, Fujita Health University School of Medicine

C

Chung Chau Hon

RIKEN Center for Integrative Medical Sciences

J

Jay W. Shin

RIKEN Center for Integrative Medical Sciences

W

Wado Akamatsu

Department of Physiology, Keio University School of Medicine

H

Hideyuki Okano