TY - JOUR
T1 - Collective cell motility promotes chemotactic prowess and resistance to chemorepulsion
AU - Malet-Engra, Gema
AU - Yu, Weimiao
AU - Oldani, Amanda
AU - Rey-Barroso, Javier
AU - Gov, Nir
AU - Scita, Giorgio
AU - Dupre, Loic
N1 - We thank S. Barozzi and R. D’antuono (IFOM imaging facility) as well as S. Allart, A. Canivet, and D. Sapede (INSERM UMR1043 imaging facility) for technical assistance; the A∗STAR Joint Council Office for the funding dedicated to the image analysis work (1st A∗STAR JCO Career Development Grant; proposal ID 11302002); S. Valitutti for helpful discussion; and L. Ysebaert for providing CLL patient samples. The data presented in this manuscript are tabulated in the main paper and in the Supplemental Information. This work is supported by grants from the European Community (Marie Curie Excellence grant, contract MEXT-CT-2005-025032 to L.D.), the European Research Council (268836-MetaEndoMatrix to G.S.), the Ligue Contre le Cancer (grant from the Comité Régional de Haute-Garonne to L.D.), the French Agence Nationale de la Recherche (ANR-13-BSV1-0031 to L.D.), the Associazione Italiana per la Ricerca sul Cancro (AIRC10- IG-14104 to G.S.), the Italian Ministries of Education-University-Research (MIUR-PRIN-2010-2012 to G.S.), Regione Lombardia (RL-ACC.IST-09 DIVA to G.S.), the Association for International Cancer Research (to G.S.), and the CARIPLO Foundation (to G.S.). G.M.-E. was supported by short-term fellowships from EMBO (ASTF 151-2012) and FEBS (261793) and by a TRAIN fellowship (“Training through Research Application Italian iNitiative,” an EC Marie Curie and Italian Ministry of Health COFUND action). N.S.G. wishes to thank the ISF for funding (grant no. 580/12).
PY - 2015/1/19
Y1 - 2015/1/19
N2 - Collective cell migration is a widespread biological phenomenon, whereby groups of highly coordinated, adherent cells move in a polarized fashion [1, 2]. This migration mode is a hallmark of tissue morphogenesis during development and repair and of solid tumor dissemination [1]. In addition to circulating as solitary cells, lymphoid malignancies can assemble into tissues as multicellular aggregates [3]. Whether malignant lymphocytes are capable of coordinating their motility in the context of chemokine gradients is, however, unknown. Here, we show that, upon exposure to CCL19 or CXCL12 gradients, malignant B and T lymphocytes assemble into clusters that migrate directionally and display a wider chemotactic sensitivity than individual cells. Physical modeling recapitulates cluster motility statistics and shows that intracluster cell cohesion results in noise reduction and enhanced directionality. Quantitative image analysis reveals that cluster migration runs are periodically interrupted by transitory rotation and random phases that favor leader cell turnover. Additionally, internalization of CCR7 in leader cells is accompanied by protrusion retraction, loss of polarity, and the ensuing replacement by new leader cells. These mechanisms ensure sustained forward migration and resistance to chemorepulsion, a behavior of individual cells exposed to steep CCL19 gradients that depends on CCR7 endocytosis. Thus, coordinated cluster dynamics confer distinct chemotactic properties, highlighting unexpected features of lymphoid cell migration.
AB - Collective cell migration is a widespread biological phenomenon, whereby groups of highly coordinated, adherent cells move in a polarized fashion [1, 2]. This migration mode is a hallmark of tissue morphogenesis during development and repair and of solid tumor dissemination [1]. In addition to circulating as solitary cells, lymphoid malignancies can assemble into tissues as multicellular aggregates [3]. Whether malignant lymphocytes are capable of coordinating their motility in the context of chemokine gradients is, however, unknown. Here, we show that, upon exposure to CCL19 or CXCL12 gradients, malignant B and T lymphocytes assemble into clusters that migrate directionally and display a wider chemotactic sensitivity than individual cells. Physical modeling recapitulates cluster motility statistics and shows that intracluster cell cohesion results in noise reduction and enhanced directionality. Quantitative image analysis reveals that cluster migration runs are periodically interrupted by transitory rotation and random phases that favor leader cell turnover. Additionally, internalization of CCR7 in leader cells is accompanied by protrusion retraction, loss of polarity, and the ensuing replacement by new leader cells. These mechanisms ensure sustained forward migration and resistance to chemorepulsion, a behavior of individual cells exposed to steep CCL19 gradients that depends on CCR7 endocytosis. Thus, coordinated cluster dynamics confer distinct chemotactic properties, highlighting unexpected features of lymphoid cell migration.
UR - https://www.scopus.com/pages/publications/84921437341
U2 - 10.1016/j.cub.2014.11.030
DO - 10.1016/j.cub.2014.11.030
M3 - Article
SN - 0960-9822
VL - 25
SP - 242
EP - 250
JO - Current Biology
JF - Current Biology
IS - 2
ER -