Kinectin-mediated endoplasmic reticulum dynamics supports focal adhesion growth in the cellular lamella

Author:

Zhang Xin1,Tee Yee Han23,Heng Justin K.23,Zhu Yajuan14,Hu Xian23,Margadant Felix23,Ballestrem Christoph5,Bershadsky Alexander36,Griffiths Gareth7,Yu Hanry12389

Affiliation:

1. Graduate Program in Bioengineering, NUS Graduate School for Integrative Sciences and Engineering, 28 Medical Drive, 117456, Singapore

2. Department of Physiology, Yong Loo Lin School of Medicine, National University of Singapore, 117597, Singapore

3. Centre for Mechanobiology, Temasek Laboratories, National University of Singapore, 5A Engineering Drive 1, 117411, Singapore

4. Department of Immunology, Yale School of Medicine, New Haven, CT 06520, USA

5. Faculty of Life Sciences, The University of Manchester, Manchester M13 9PT, UK

6. Department of Molecular Cell Biology, Weizmann Institute of Science, Rehovot, 76100, Israel

7. IMBV, University of Oslo, 0371, Norway

8. Institute of Bioengineering and Nanotechnology, A*STAR, 138669, Singapore

9. Singapore-MIT Alliance, E4-04-10, 4 Engineering Drive 3, 117576, Singapore

Abstract

Focal adhesions (FAs) control cell shape and motility, which are important processes that underlie a wide range of physiological functions. FA dynamics is regulated by cytoskeleton, motor proteins and small GTPases. Kinectin is an integral endoplasmic reticulum (ER) membrane protein that extends the ER along microtubules. Here, we investigated the influence of the ER on FA dynamics within the cellular lamella by disrupting the kinectin–kinesin interaction by overexpressing the minimal kinectin–kinesin interaction domain on kinectin in cells. This perturbation resulted in a morphological change to a rounded cell shape and reduced cell spreading and migration. Immunofluorescence and live-cell imaging demonstrated a kinectin-dependent ER extension into the cellular lamella and ER colocalisation with FAs within the cellular lamella. FRAP experiments showed that ER contact with FAs was accompanied with an increase in FA protein recruitment to FAs. Disruption of the kinectin–kinesin interaction caused a reduction in FA protein recruitment to FAs. This suggests that the ER supports FA growth within the cellular lamella. Microtubule targeting to FAs is known to promote adhesion disassembly; however, ER contact increased FA size even in the presence of microtubules. Our results suggest a scenario whereby kinectin–kinesin interaction facilitates ER transport along microtubules to support FA growth.

Publisher

The Company of Biologists

Subject

Cell Biology

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