Monocytes use protrusive forces to generate migration paths in viscoelastic collagen-based extracellular matrices

K Kolade Adebowale C Cole Allan (Department of Mechanical Engineering, Stanford University) B Byunghang Ha (Department of Mechanical Engineering, Stanford University) A Aashrith Saraswathibhatla (Department of Mechanical Engineering, Stanford University) J Junqin Zhu (Department of Biology, Stanford University) D Dhiraj Indana (Department of Mechanical Engineering, Stanford University) M Medeea C. Popescu (Department of Infectious Diseases, Stanford University) S Sally Demirdjian (Department of Infectious Diseases, Stanford University) H Hunter A. Martinez (Department of Infectious Diseases, Stanford University) A Alex Esclamado (Department of Mechanical Engineering, Stanford University) J Jin Yang M Michael C. Bassik C Christian Franck (Department of Mechanical Engineering, University of Wisconsin-Madison) P Paul L. Bollyky (Department of Infectious Diseases, Stanford University) O Ovijit Chaudhuri

Abstract

Circulating monocytes are recruited to the tumor microenvironment, where they can differentiate into macrophages that mediate tumor progression. To reach the tumor microenvironment, monocytes must first extravasate and migrate through the type-1 collagen rich stromal matrix. The viscoelastic stromal matrix around tumors not only stiffens relative to normal stromal matrix, but often exhibits enhanced viscous characteristics, as indicated by a higher loss tangent or faster stress relaxation rate. Here, we studied how changes in matrix stiffness and viscoelasticity impact the three-dimensional (3D) migration of monocytes through stromal-like matrices. Interpenetrating networks of type-1 collagen and alginate, which enable independent tunability of stiffness and stress relaxation over physiologically relevant ranges, were used as confining matrices for 3D culture of monocytes. Increased stiffness and faster stress relaxation independently enhanced the 3D migration of monocytes. Migrating monocytes have an ellipsoidal or rounded wedge-like morphology, reminiscent of amoeboid migration, with accumulation of actin at the trailing edge. Matrix adhesions were dispensable for monocyte migration in 3D, but migration did require actin polymerization and myosin contractility. Mechanistic studies indicate that actin polymerization at the leading edge generates protrusive forces that open a path for the monocytes to migrate through in the confining viscoelastic matrices. Taken together, our findings implicate matrix stiffness and stress relaxation as key mediators of monocyte migration and reveal how monocytes use pushing forces at the leading edge mediated by actin polymerization to generate migration paths in confining viscoelastic matrices.

Article Details

Volume / Issue Vol. 122, Issue 25
Published June 24, 2025
ISSN 0027-8424
Publisher National Academy of Sciences

Authors (15)

K

Kolade Adebowale

C

Cole Allan

Department of Mechanical Engineering, Stanford University

B

Byunghang Ha

Department of Mechanical Engineering, Stanford University

A

Aashrith Saraswathibhatla

Department of Mechanical Engineering, Stanford University

J

Junqin Zhu

Department of Biology, Stanford University

D

Dhiraj Indana

Department of Mechanical Engineering, Stanford University

M

Medeea C. Popescu

Department of Infectious Diseases, Stanford University

S

Sally Demirdjian

Department of Infectious Diseases, Stanford University

H

Hunter A. Martinez

Department of Infectious Diseases, Stanford University

A

Alex Esclamado

Department of Mechanical Engineering, Stanford University

J

Jin Yang

M

Michael C. Bassik

C

Christian Franck

Department of Mechanical Engineering, University of Wisconsin-Madison

P

Paul L. Bollyky

Department of Infectious Diseases, Stanford University

O

Ovijit Chaudhuri