Ultrafast single-molecule imaging reveals focal adhesion nano-architecture and molecular dynamics

Author:

Fujiwara Takahiro K.1ORCID,Tsunoyama Taka A.2ORCID,Takeuchi Shinji3ORCID,Kalay Ziya1ORCID,Nagai Yosuke3ORCID,Kalkbrenner Thomas4ORCID,Nemoto Yuri L.2ORCID,Chen Limin H.2ORCID,Shibata Akihiro C.E.1ORCID,Iwasawa Kokoro1ORCID,Ritchie Ken P.5ORCID,Suzuki Kenichi G.N.16ORCID,Kusumi Akihiro12ORCID

Affiliation:

1. Institute for Integrated Cell-Material Sciences (WPI-iCeMS), Kyoto University 1 , Kyoto, Japan

2. Membrane Cooperativity Unit, Okinawa Institute of Science and Technology Graduate University (OIST) 2 , Okinawa, Japan

3. Photron Limited 3 , Tokyo, Japan

4. Carl Zeiss Microscopy GmbH 4 , Jena, Germany

5. Department of Physics and Astronomy 5 , Purdue University, West Lafayette, IN, USA

6. Institute for Glyco-core Research, Gifu University 6 , Gifu, Japan

Abstract

Using our newly developed ultrafast camera described in the companion paper, we reduced the data acquisition periods required for photoactivation/photoconversion localization microscopy (PALM, using mEos3.2) and direct stochastic reconstruction microscopy (dSTORM, using HMSiR) by a factor of ≈30 compared with standard methods, for much greater view-fields, with localization precisions of 29 and 19 nm, respectively, thus opening up previously inaccessible spatiotemporal scales to cell biology research. Simultaneous two-color PALM-dSTORM and PALM-ultrafast (10 kHz) single fluorescent-molecule imaging-tracking has been realized. They revealed the dynamic nanoorganization of the focal adhesion (FA), leading to the compartmentalized archipelago FA model, consisting of FA-protein islands with broad diversities in size (13–100 nm; mean island diameter ≈30 nm), protein copy numbers, compositions, and stoichiometries, which dot the partitioned fluid membrane (74-nm compartments in the FA vs. 109-nm compartments outside the FA). Integrins are recruited to these islands by hop diffusion. The FA-protein islands form loose ≈320 nm clusters and function as units for recruiting FA proteins.

Funder

Japan Society for the Promotion of Science

Ministry of Education, Culture, Sports, Science and Technology

Japan Science and Technology Agency

Takeda Foundation

Publisher

Rockefeller University Press

Subject

Cell Biology

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