Therapeutic base editing to generate a gain-of-function <i>F9</i> variant for hemophilia B

N Nemekhbayar Baatartsogt (1Department of Biochemistry, Jichi Medical University School of Medicine, Tochigi, Japan) Y Yuji Kashiwakura T Takafumi Hiramoto R Rina Ito R Rikako Sato (3Laboratory for Molecular Design of Pharmaceutics, Faculty of Pharmaceutical Sciences, Hokkaido University, Hokkaido, Japan) Y Yasumitsu Nagao (4Center for Experimental Medicine, Jichi Medical University, Tochigi, Japan) H Hina Naruoka (5Department of Pharmacokinetics and Biopharmaceutics, Institute of Biomedical Sciences, Tokushima University, Tokushima, Japan) H Haruka Takata (5Department of Pharmacokinetics and Biopharmaceutics, Institute of Biomedical Sciences, Tokushima University, Tokushima, Japan) M Morisada Hayakawa (1Department of Biochemistry, Jichi Medical University School of Medicine, Tochigi, Japan) K Khishigjargal Batjargal (1Department of Biochemistry, Jichi Medical University School of Medicine, Tochigi, Japan) T Tomoki Togashi (1Department of Biochemistry, Jichi Medical University School of Medicine, Tochigi, Japan) A Atsushi Hoshino (Interdisciplinary Research Unit, National Institute for Basic Biology) T Taro Shimizu Y Yusuke Sato T Tatsuhiro Ishida O Osamu Nureki T Tsukasa Ohmori

Abstract

Abstract The repair of pathological gene variants is an ultimate goal in treating genetic diseases; however, developing distinct therapeutic reagents for each of the numerous variants within a gene may not be scalable. Here, we investigated whether base editing to introduce a gain-of-function variant in blood coagulation factor IX (FIX) can increase FIX activity as a targeted therapeutic approach for hemophilia B. We engineered a G:C to A:T substitution at c.1151 of F9 by cytosine base editing to generate R338Q (the Shanghai F9 variant), which markedly increases coagulation factor activity. An adeno-associated virus vector harboring the base editor converted &amp;gt;60% of the target G:C to A:T and increased FIX activity in HEK293 cells harboring patient-derived F9 variants as well as in knock-in mice carrying a human F9 complementary DNA. Furthermore, administration of lipid nanoparticles containing the base-editor mRNA and guide RNA increased FIX activity in mice. These data indicate that cytosine base editing to generate R338Q in FIX is a broadly applicable genome-editing strategy for hemophilia B with residual FIX activity.

Article Details

Journal Blood
Volume / Issue Vol. 147, Issue 4
Published January 22, 2026
Pages 458-470
ISSN 0006-4971
Publisher Elsevier BV

Journal Info

Blood

Elsevier BV

ISSN: 0006-4971 Health Sciences

Authors (17)

N

Nemekhbayar Baatartsogt

1Department of Biochemistry, Jichi Medical University School of Medicine, Tochigi, Japan

Y

Yuji Kashiwakura

T

Takafumi Hiramoto

R

Rina Ito

R

Rikako Sato

3Laboratory for Molecular Design of Pharmaceutics, Faculty of Pharmaceutical Sciences, Hokkaido University, Hokkaido, Japan

Y

Yasumitsu Nagao

4Center for Experimental Medicine, Jichi Medical University, Tochigi, Japan

H

Hina Naruoka

5Department of Pharmacokinetics and Biopharmaceutics, Institute of Biomedical Sciences, Tokushima University, Tokushima, Japan

H

Haruka Takata

5Department of Pharmacokinetics and Biopharmaceutics, Institute of Biomedical Sciences, Tokushima University, Tokushima, Japan

M

Morisada Hayakawa

1Department of Biochemistry, Jichi Medical University School of Medicine, Tochigi, Japan

K

Khishigjargal Batjargal

1Department of Biochemistry, Jichi Medical University School of Medicine, Tochigi, Japan

T

Tomoki Togashi

1Department of Biochemistry, Jichi Medical University School of Medicine, Tochigi, Japan

A

Atsushi Hoshino

Interdisciplinary Research Unit, National Institute for Basic Biology

T

Taro Shimizu

Y

Yusuke Sato

T

Tatsuhiro Ishida

O

Osamu Nureki

T

Tsukasa Ohmori