A new mechanism of fibronectin fibril assembly revealed by live imaging and super-resolution microscopy

Author:

Tomer Darshika1,Arriagada Cecilia1ORCID,Munshi Sudipto2,Alexander Brianna E.13,French Brenda2,Vedula Pavan4,Caorsi Valentina5,House Andrew6,Guvendiren Murat6,Kashina Anna4ORCID,Schwarzbauer Jean E.7,Astrof Sophie1ORCID

Affiliation:

1. Cardiovascular Research Institute, Rutgers Biomedical, and Health Sciences 1 Department of Cell Biology and Molecular Medicine , , 185 South Orange Ave, Newark, NJ 07103 , USA

2. Center for Translational Medicine, Sidney Kimmel Medical College of Thomas Jefferson University 2 , Philadelphia, PA 19107 , USA

3. Rutgers Biomedical and Health Sciences 3 Multidisciplinary Ph.D. Program in Biomedical Sciences. Cell Biology, Neuroscience and Physiology track , , Newark, NJ 07103 , USA

4. University of Pennsylvania 4 Department of Biomedical Sciences , , Philadelphia, PA 19104 , USA

5. Abbelight 5 , 191 Avenue Aristide Briand, 94230 Cachan , France

6. New Jersey Institute of Technology 6 Otto H. York Chemical and Materials Engineering, Department of Biomedical Engineering , , Newark, NJ 07102 , USA

7. Princeton University 7 Department of Molecular Biology , , Princeton, NJ 08544-1014 , USA

Abstract

ABSTRACT Fibronectin (Fn1) fibrils have long been viewed as continuous fibers composed of extended, periodically aligned Fn1 molecules. However, our live-imaging and single-molecule localization microscopy data are inconsistent with this traditional view and show that Fn1 fibrils are composed of roughly spherical nanodomains containing six to eleven Fn1 dimers. As they move toward the cell center, Fn1 nanodomains become organized into linear arrays, in which nanodomains are spaced with an average periodicity of 105±17 nm. Periodical Fn1 nanodomain arrays can be visualized between cells in culture and within tissues; they are resistant to deoxycholate treatment and retain nanodomain periodicity in the absence of cells. The nanodomain periodicity in fibrils remained constant when probed with antibodies recognizing distinct Fn1 epitopes or combinations of antibodies recognizing epitopes spanning the length of Fn1. Treatment with FUD, a peptide that binds the Fn1 N-terminus and disrupts Fn1 fibrillogenesis, blocked the organization of Fn1 nanodomains into periodical arrays. These studies establish a new paradigm of Fn1 fibrillogenesis. This article has an associated First Person interview with the first author of the paper.

Funder

National Heart, Lung, and Blood Institute

American Heart Association

NIH Office of the Director

National Institute of General Medical Sciences

National Institute of Arthritis and Musculoskeletal and Skin Diseases

National Science Foundation

Publisher

The Company of Biologists

Subject

Cell Biology

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