Nanoscale distribution of bioactive ligands on biomaterials regulates cell mechanosensing through translocation of actin into the nucleus

X Xiaojing Liu (Department of Molecular and Structural Biochemistry) M Man Zhang (College of Chemistry) P Peng Wang K Kaikai Zheng (College of Polymer Science and Engineering, State Key Laboratory of Polymer Materials and Engineering, Sichuan University) X Xinlei Wang (State Key Laboratory of Molecular Engineering of Polymers, Department of Macromolecular Science, Fudan University) W Wenyan Xie (National Key Laboratory of Biotherapy, Sichuan University) X Xiaokai Pan (College of Polymer Science and Engineering, State Key Laboratory of Polymer Materials and Engineering, Sichuan University) R Runjia Shen (State Key Laboratory of Molecular Engineering of Polymers, Department of Macromolecular Science, Fudan University) R Ruili Liu (State Key Laboratory of Molecular Engineering of Polymers, Department of Macromolecular Science, Fudan University) J Jiandong Ding (State Key Laboratory of Molecular Engineering of Polymers, Department of Macromolecular Science, Fudan University) Q Qiang Wei (Shenzhen Geim Graphene Center, Shenzhen Key Laboratory of Advanced Layered Materials for Value-added Applications, Tsinghua-Berkeley Shenzhen Institute and Institute of Materials Research)

Abstract

Cells respond to adhesive ligands such as arginine-glycine-aspartate (RGD) through integrins, which regulates cellular activities via influencing cytoskeleton assembly. Herein, we report that the nanoscale distribution of active ligands on biomaterials regulates cells through not only cytoplasmic tension but also nuclear tension. This is particularly related to translocation of actin into nucleus and highlighted in our interpretation of an “abnormal” phenomenon that large RGD nanospacing (>70 nm) disassembles integrin clusters, inhibits cell adhesion, but promotes osteogenic differentiation of mesenchymal stem cells. Our studies reveal that the unstable adhesion at the 150 nm RGD distance increases actin dynamics, resulting in the nuclear translocation of globular (G) actin. The compartment polymerization of more G-actins to filamentous actins in nucleus increases nuclear tension, facilitating transcription activity and releasing calcium ions from the endoplasmic reticulum. This noncanonical mechanotransduction process sheds insight into mechanotransduction pertinent to cell–material interactions.

Article Details

Volume / Issue Vol. 122, Issue 10
Published March 11, 2025
ISSN 0027-8424
Publisher National Academy of Sciences

Authors (11)

X

Xiaojing Liu

Department of Molecular and Structural Biochemistry

M

Man Zhang

College of Chemistry

P

Peng Wang

K

Kaikai Zheng

College of Polymer Science and Engineering, State Key Laboratory of Polymer Materials and Engineering, Sichuan University

X

Xinlei Wang

State Key Laboratory of Molecular Engineering of Polymers, Department of Macromolecular Science, Fudan University

W

Wenyan Xie

National Key Laboratory of Biotherapy, Sichuan University

X

Xiaokai Pan

College of Polymer Science and Engineering, State Key Laboratory of Polymer Materials and Engineering, Sichuan University

R

Runjia Shen

State Key Laboratory of Molecular Engineering of Polymers, Department of Macromolecular Science, Fudan University

R

Ruili Liu

State Key Laboratory of Molecular Engineering of Polymers, Department of Macromolecular Science, Fudan University

J

Jiandong Ding

State Key Laboratory of Molecular Engineering of Polymers, Department of Macromolecular Science, Fudan University

Q

Qiang Wei

Shenzhen Geim Graphene Center, Shenzhen Key Laboratory of Advanced Layered Materials for Value-added Applications, Tsinghua-Berkeley Shenzhen Institute and Institute of Materials Research