Downregulation of Nesprin1 by Runx2 deficiency is critical for the development of skeletal laminopathy-like pathology

A Akiko Saito (Department of Biochemistry, Tokyo Dental College) K Kazuaki Nagayama (Department of Mechanical Systems Engineering, Ibaraki University) H Hiroyuki Okada (Division of Clinical Biotechnology, Center for Disease Biology and Integrative Medicine, Graduate School of Medicine, The University of Tokyo) S Shoko Onodera (Department of Biochemistry, Tokyo Dental College) N Natsuko Aida (Department of Biochemistry, Tokyo Dental College) T Takashi Nakamura (RIKEN Center for Biosystems Dynamics Research, 2-1 Hirosawa, Wako, Saitama 351-0198, Japan) T Takashi Sawada (Department of Histology and Developmental Biology, Tokyo Dental College) H Hironori Hojo (Division of Clinical Biotechnology, Center for Disease Biology and Integrative Medicine, Graduate School of Medicine, The University of Tokyo) S Shigeaki Kato (Department of Pharmacology, Iryo Sosei University) T Toshifumi Azuma (Department of Biochemistry, Tokyo Dental College)

Abstract

Runx2 is a master regulator of bone formation, and its dysfunction causes cleidocranial dysplasia (CCD) in humans. When iPS cells were generated from patients with CCD and Runx2-deficient iPS cells were generated using gene-editing techniques, abnormal laminopathy-like nuclei were observed. Runx2-deficient cells showed reduced Lamin A/C expression, but not protein levels. However, in Runx2-deficient cells, both the gene expression and protein levels of Nesprin1 were reduced, perinuclear actin fibers were sparser, and nuclear stiffness was reduced. Forced expression of Lamin A/C increased nuclear stiffness but did not improve nuclear morphology. In contrast, the induction of Nesprin1 expression alone normalized nuclear stiffness and restored nuclear morphology and perinuclear actin distribution. In Runx2-null cells, mechanical stress-induced phosphorylation of emerin was not observed. In contrast, forced expression of Nesprin1 in Runx2-null cells resulted in phosphorylation of emerin, indicating the restoration of intracellular tension. These observations were confirmed by atomic force microscopy. Therefore, the intracellular tension was inferred to pull the nuclear membrane into its normal shape. CUT&RUN assay and single RNA-seq analysis showed that an aberrant nuclear membrane caused loss of nuclear lamina gene regulation machinery, making the progression of normal osteogenic differentiation impossible; however, supplementation with Nesprin1 restored gene regulation mechanisms and promoted preosteoblast formation with normal nuclear morphology. Nesprin1 expression induced by Runx2 is essential for epigenetic regulation of the nuclear lamina. We propose CCD as a type of laminopathy involving defective expression of Nesprin1 regulated by Runx2.

Article Details

Volume / Issue Vol. 122, Issue 15
Published April 15, 2025
ISSN 0027-8424
Publisher National Academy of Sciences

Authors (10)

A

Akiko Saito

Department of Biochemistry, Tokyo Dental College

K

Kazuaki Nagayama

Department of Mechanical Systems Engineering, Ibaraki University

H

Hiroyuki Okada

Division of Clinical Biotechnology, Center for Disease Biology and Integrative Medicine, Graduate School of Medicine, The University of Tokyo

S

Shoko Onodera

Department of Biochemistry, Tokyo Dental College

N

Natsuko Aida

Department of Biochemistry, Tokyo Dental College

T

Takashi Nakamura

RIKEN Center for Biosystems Dynamics Research, 2-1 Hirosawa, Wako, Saitama 351-0198, Japan

T

Takashi Sawada

Department of Histology and Developmental Biology, Tokyo Dental College

H

Hironori Hojo

Division of Clinical Biotechnology, Center for Disease Biology and Integrative Medicine, Graduate School of Medicine, The University of Tokyo

S

Shigeaki Kato

Department of Pharmacology, Iryo Sosei University

T

Toshifumi Azuma

Department of Biochemistry, Tokyo Dental College