Ras-mediated dynamic and biphasic regulation of cell migration

Y Yiyan Lin (Department of Cell Biology and Center for Cell Dynamics, School of Medicine, Johns Hopkins University) E Eleana Parajón (Department of Cell Biology and Center for Cell Dynamics, School of Medicine, Johns Hopkins University) Q Qinling Yuan (Department of Chemical and Biomolecular Engineering, Whiting School of Engineering, Johns Hopkins University) S Siyu Ye (Department of Cell Biology and Center for Cell Dynamics, School of Medicine, Johns Hopkins University) G Guanghui Qin (Microsoft Research) Y Yu Deng J Jane Borleis (Department of Cell Biology and Center for Cell Dynamics, School of Medicine, Johns Hopkins University) A Ariel Koyfman (Department of Computer Science, Whiting School of Engineering, Johns Hopkins University) P Pablo A. Iglesias (Department of Cell Biology and Center for Cell Dynamics, School of Medicine, Johns Hopkins University) K Konstantinos Konstantopoulos (Institute for NanoBioTechnology) D Douglas N. Robinson (Department of Cell Biology and Center for Cell Dynamics, School of Medicine, Johns Hopkins University) P Peter N. Devreotes (Department of Cell Biology and Center for Cell Dynamics, School of Medicine, Johns Hopkins University)

Abstract

Ras has traditionally been regarded as a positive regulator and therapeutic target due to its role in cell proliferation, but recent findings indicate a more nuanced role in cell migration, where suppressed Ras activity can unexpectedly promote migration. To clarify this complexity, we systematically modulate Ras activity using various RasGEF and RasGAP proteins and assess their effects on migration dynamics. Leveraging optogenetics, we assess the immediate, nontranscriptional effects of Ras signaling on migration. Local RasGEF recruitment to the plasma membrane induces protrusions and new fronts to effectively guide migration, even in the absence of GPCR/G-protein signaling, whereas global recruitment causes immediate cell spreading halting cell migration. Local RasGAP recruitment suppresses protrusions, generates new backs, and repels cells, whereas global relocation either eliminates all protrusions to inhibit migration or preserves a single protrusion to maintain polarity. Consistent local and global increases or decreases in signal transduction and cytoskeletal activities accompany these morphological changes. Additionally, we performed cortical tension measurements and found that Ras activity is regulated by guanine nucleotide exchange factors generally increase cortical tension while Ras activity is regulated by GTPase-activating proteins decrease it. Our results reveal a biphasic relationship between Ras activity and cellular dynamics, reinforcing our previous findings that optimal Ras activity and cortical tension are critical for efficient migration.

Article Details

Volume / Issue Vol. 122, Issue 30
Published July 29, 2025
ISSN 0027-8424
Publisher National Academy of Sciences

Authors (12)

Y

Yiyan Lin

Department of Cell Biology and Center for Cell Dynamics, School of Medicine, Johns Hopkins University

E

Eleana Parajón

Department of Cell Biology and Center for Cell Dynamics, School of Medicine, Johns Hopkins University

Q

Qinling Yuan

Department of Chemical and Biomolecular Engineering, Whiting School of Engineering, Johns Hopkins University

S

Siyu Ye

Department of Cell Biology and Center for Cell Dynamics, School of Medicine, Johns Hopkins University

G

Guanghui Qin

Microsoft Research

Y

Yu Deng

J

Jane Borleis

Department of Cell Biology and Center for Cell Dynamics, School of Medicine, Johns Hopkins University

A

Ariel Koyfman

Department of Computer Science, Whiting School of Engineering, Johns Hopkins University

P

Pablo A. Iglesias

Department of Cell Biology and Center for Cell Dynamics, School of Medicine, Johns Hopkins University

K

Konstantinos Konstantopoulos

Institute for NanoBioTechnology

D

Douglas N. Robinson

Department of Cell Biology and Center for Cell Dynamics, School of Medicine, Johns Hopkins University

P

Peter N. Devreotes

Department of Cell Biology and Center for Cell Dynamics, School of Medicine, Johns Hopkins University