Adenosine diphosphate released from stressed cells triggers mitochondrial transfer to achieve tissue homeostasis

Author:

Li Hao,Yu Hongping,Liu Delin,Liao Peng,Gao Chuan,Zhou Jian,Mei Jialun,Zong Yao,Ding Peng,Yao Meng,Wang Bingqi,Lu Yafei,Huang Yigang,Gao YoushuiORCID,Zhang Changqing,Zheng Minghao,Gao JunjieORCID

Abstract

Cell-to-cell mitochondrial transfer has recently been shown to play a role in maintaining physiological functions of cell. We previously illustrated that mitochondrial transfer within osteocyte dendritic network regulates bone tissue homeostasis. However, the mechanism of triggering this process has not been explored. Here, we showed that stressed osteocytes in mice release adenosine diphosphate (ADP), resulting in triggering mitochondrial transfer from healthy osteocytes to restore the oxygen consumption rate (OCR) and to alleviate reactive oxygen species accumulation. Furthermore, we identified that P2Y2 and P2Y6 transduced the ADP signal to regulate osteocyte mitochondrial transfer. We showed that mitochondrial metabolism is impaired in aged osteocytes, and there were more extracellular nucleotides release into the matrix in aged cortical bone due to compromised membrane integrity. Conditioned medium from aged osteocytes triggered mitochondrial transfer between osteocytes to enhance the energy metabolism. Together, using osteocyte as an example, this study showed new insights into how extracellular ADP triggers healthy cells to rescue energy metabolism crisis in stressed cells via mitochondrial transfer in tissue homeostasis.

Funder

National Natural Science Foundation of China

Frontiers Science Center for Shanghai Municipality

Shanghai Frontiers Science Center of Degeneration and Regeneration in Skeletal System

Shanghai Municipal Hospital Orthopedic Specialist Alliance, Shanghai Municipal Health Commission key priority discipline project

Shanghai Spinal Disease and Trauma Orthopedics Research Center

Publisher

Public Library of Science (PLoS)

Reference78 articles.

1. Mitochondrial network morphology: building an integrative, geometrical view;SM Rafelski;BMC Biol,2013

2. Mitochondrial genome acquisition restores respiratory function and tumorigenic potential of cancer cells without mitochondrial DNA;AS Tan;Cell Metab,2015

3. Reactivation of Dihydroorotate Dehydrogenase-Driven Pyrimidine Biosynthesis Restores Tumor Growth of Respiration-Deficient Cancer Cells;M Bajzikova;Cell Metab,2019

4. Platelets Facilitate the Wound-Healing Capability of Mesenchymal Stem Cells by Mitochondrial Transfer and Metabolic Reprogramming [published correction appears in Cell Metab. 2021 Mar 2;33(3):688–690];J Levoux;Cell Metab,2021

5. Stable heteroplasmy at the single-cell level is facilitated by intercellular exchange of mtDNA;AD Jayaprakash;Nucleic Acids Res,2015

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