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Updated: Dec 2, 2025

Lighting Up the Pathways to Caspase Activation Using Bimolecular Fluorescence Complementation
Published on: March 5, 2018
Cell cycle dependence of apoptosis photo-triggered using peptide-photosensitizer conjugate
Hyungjin Kim1,2, Sho Watanabe1, Mizuki Kitamatsu3
1Department of Interdisciplinary Science and Engineering in Health Systems, Okayama University, 3-1-1 Tsushimanaka, Okayama, 700-8530, Japan.
Abstract:
Investigation of the relevance between cell cycle status and the bioactivity of exogenously delivered biomacromolecules is hindered by their time-consuming cell internalization and the cytotoxicity of transfection methods. In this study, we addressed these problems by utilizing the photochemical internalization (PCI) method using a peptide/protein-photosensitizer conjugate, which enables immediate cytoplasmic internalization of the bioactive peptides/proteins in a light-dependent manner with low cytotoxicity. To identify the cell-cycle dependent apoptosis, a TatBim peptide-photosensitizer conjugate (TatBim-PS) with apoptotic activity was photo-dependently internalized into HeLa cells expressing a fluorescent ubiquitination-based cell cycle indicator (Fucci2). Upon irradiation, cytoplasmic TatBim-PS internalization exceeded 95% for all cells classified in the G1, S, and G2/M cell cycle phases with no significant differences between groups. TatBim-PS-mediated apoptosis was more efficiently triggered by photoirradiation in the G1/S transition than in the G1 and S/G2/M phases, suggesting high sensitivity of the former phase to Bim-induced apoptosis. Thus, the cell cycle dependence of Bim peptide-induced apoptosis was successfully investigated using Fucci2 indicator and the PCI method. Since PCI-mediated cytoplasmic internalization of peptides is rapid and does not span multiple cell cycle phases, the Fucci-PCI method constitutes a promising tool for analyzing the cell cycle dependence of peptides/protein functions.
Insights
Photochemical internalization (PCI) rapidly delivers bioactive peptides into cells with low toxicity. This method revealed that the G1/S transition phase is most sensitive to Bim peptide-induced apoptosis, enabling cell cycle analysis.
Area of Science:
- Cell Biology
- Biochemistry
- Molecular Biology
Background:
- Investigating biomacromolecule bioactivity requires understanding cell cycle interactions.
- Traditional transfection methods are slow and cytotoxic, hindering research.
Purpose of the Study:
- To develop a rapid, low-cytotoxicity method for delivering bioactive peptides into specific cell cycle phases.
- To investigate the cell cycle-dependent apoptosis induced by a Bim peptide.
Main Methods:
- Utilized photochemical internalization (PCI) with a TatBim peptide-photosensitizer conjugate (TatBim-PS).
- Employed a fluorescent ubiquitination-based cell cycle indicator (Fucci2) in HeLa cells.
- Analyzed TatBim-PS internalization and apoptosis induction across G1, S, and G2/M phases.
Main Results:
- PCI enabled >95% cytoplasmic internalization of TatBim-PS across all cell cycle phases with minimal cytotoxicity.
- TatBim-PS-mediated apoptosis was most efficiently triggered at the G1/S transition.
- The G1/S phase demonstrated higher sensitivity to Bim peptide-induced apoptosis.
Conclusions:
- The Fucci-PCI method allows rapid, cell cycle-specific delivery of peptides.
- This approach is effective for studying cell cycle-dependent peptide/protein functions and apoptosis.
- PCI offers a promising tool for precise analysis of biomacromolecule bioactivity in relation to the cell cycle.
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