Detail of Fig4_CellDiv

(Too many images for preview; see images in SSBD:OMERO Dataset)


Project
Title
Time-lapse images of Cyanidioschyzon merolae cells stably expressing beta-tubulin-sfGFP
Description
Time-lapse images of red algae (Cyanidioschyzon merolae) cells stably expressing beta-tubulin-sfGFP. Beta-tubulin change its distribution during a certain period of the cell cycle. After cell division, beta-tubulin-sfGFP is observed in the daughter cells for 90 min and then disappeared during the G1 phase.. Channel1; sfGFP, Channel2 ; auto-fluorescence of chlorophyll, Channel3; bright field
Release, Updated
2025-01-31
License
CC BY
Kind
Image data
File Formats
.tif
Data size
930.3 MB

Organism
Cyanidioschyzon merolae ( NCBI:txid45157 )
Strain(s)
T1
Cell Line
-

Datatype
-
Molecular Function (MF)
tubulin binding ( GO:0015631 )
Biological Process (BP)
cell cycle ( GO:0007049 ) cell division ( GO:0051301 )
Cellular Component (CC)
Biological Imaging Method
fluorescence microscopy ( Fbbi:00000246 )
X scale
1 micrometer
Y scale
1 micrometer
Z scale
-
T scale
15 minutes

Image Acquisition
Experiment type
-
Microscope type
-
Acquisition mode
-
Contrast method
-
Microscope model
-
Detector model
-
Objective model
-
Filter set
-

Summary of Methods
Ichinose TM, Iwane AH. Long-term live cell cycle imaging of single Cyanidioschyzon merolae cells. Protoplasma. 2021 May;258(3):651-660.
Related paper(s)

Takako M Ichinose, Atsuko H Iwane (2021) Long-term live cell cycle imaging of single Cyanidioschyzon merolae cells., Protoplasma, Volume 258, Number 3, pp. 651-660

Published in 2021 May (Electronic publication in Jan. 5, 2021, midnight )

(Abstract) Live cell imaging by fluorescence microscopy is a useful tool for elucidating the localization and function of proteins and organelles in single cells. Especially, time-lapse analysis observing the same field sequentially can be used to observe cells of many organisms and analyze the dynamics of intracellular molecules. By single-cell analysis, it is possible to elucidate the characteristics and fluctuations of individual cells, which cannot be elucidated from the data obtained by averaging the characteristics of an ensemble of cells. The primitive red alga Cyanidioschyzon merolae has a very simple structure and is considered a useful model organism for studying the mechanism of organelle division, since the division is performed synchronously with the cell cycle. However, C. merolae does not have a rigid cell wall, and environmental changes such as low temperature or high pH cause morphological change and disruption easily. Therefore, morphological studies of C. merolae typically use fixed cells. In this study, we constructed a long-term time-lapse observation system to analyze the dynamics of proteins in living C. merolae cells. From the results, we elucidate the cell division process of single living cells, including the function of intracellular components.
(MeSH Terms)

Contact
Atsuko H Iwane , RIKEN BDR , Laboratory for Cell Field Structure , Laboratory for Cell Field Structure
Contributors
Takako M Ichinose

OMERO Dataset
OMERO Project
Source