Optogenetically engineered Ca2+ oscillation-mediated DRP1 activation promotes mitochondrial fission and cell death

Author:

Lai Yi-Shyun1ORCID,Chang Cheng-Chi1ORCID,Chen Yong-Yi1ORCID,Nguyen Thi My Hang1ORCID,Xu Jixuan1ORCID,Chen Ying-Chi2ORCID,Chang Yu-Fen3ORCID,Wang Chia-Yih45ORCID,Chen Pai-Sheng65ORCID,Lin Shih-Chieh5ORCID,Peng I-Chen7ORCID,Tsai Shaw-Jenq58ORCID,Chiu Wen-Tai159ORCID

Affiliation:

1. National Cheng Kung University 1 Department of Biomedical Engineering , , Tainan 701 , Taiwan

2. National Cheng Kung University 2 Department of Chemistry , , Tainan 701 , Taiwan

3. LumiSTAR Biotechnology 3 , Taipei 115 , Taiwan

4. National Cheng Kung University 4 Department of Cell Biology and Anatomy , , Tainan 701 , Taiwan

5. Institute of Basic Medical Sciences, National Cheng Kung University 6 , Tainan 701 , Taiwan

6. National Cheng Kung University 5 Department of Medical Laboratory Science and Biotechnology , , Tainan 701 , Taiwan

7. National Cheng Kung University 7 Department of Life Sciences , , Tainan 701 , Taiwan

8. National Cheng Kung University 8 Department of Physiology , , Tainan 701 , Taiwan

9. Medical Device Innovation Center, National Cheng Kung University 9 , Tainan 701 , Taiwan

Abstract

ABSTRACT Mitochondrial dynamics regulate the quality and morphology of mitochondria. Calcium (Ca2+) plays an important role in regulating mitochondrial function. Here, we investigated the effects of optogenetically engineered Ca2+ signaling on mitochondrial dynamics. More specifically, customized illumination conditions could trigger unique Ca2+ oscillation waves to trigger specific signaling pathways. In this study, we found that modulating Ca2+ oscillations by increasing the light frequency, intensity and exposure time could drive mitochondria toward the fission state, mitochondrial dysfunction, autophagy and cell death. Moreover, illumination triggered phosphorylation at the Ser616 residue but not the Ser637 residue of the mitochondrial fission protein, dynamin-related protein 1 (DRP1, encoded by DNM1L), via the activation of Ca2+-dependent kinases CaMKII, ERK and CDK1. However, optogenetically engineered Ca2+ signaling did not activate calcineurin phosphatase to dephosphorylate DRP1 at Ser637. In addition, light illumination had no effect on the expression levels of the mitochondrial fusion proteins mitofusin 1 (MFN1) and 2 (MFN2). Overall, this study provides an effective and innovative approach to altering Ca2+ signaling for controlling mitochondrial fission with a more precise resolution than pharmacological approaches in the temporal dimension.

Funder

National Science and Technology Council

Publisher

The Company of Biologists

Subject

Cell Biology

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