Skeletal tissue regulation by catalase overexpression in mitochondria
Ann-Sofie Schreurs1,2, Samantha Torres1,3, Tiffany Truong1,3
1Space Biosciences Division, NASA Ames Research Center, Moffett Field, California.
Abstract:
Accumulation of oxidative damage from excess reactive oxygen species (ROS) may contribute to skeletal aging and mediate adverse responses to physiological challenges. Wild-type (WT) mice and transgenic mice (male, 16 wk of age) with human catalase targeted to the mitochondria (mCAT) were analyzed for skeletal responses to the remodeling stimuli of combined hind-limb unloading and exposure to ionizing radiation (137Cs, 2 Gy). Treatment for 2 wk caused lipid peroxidation in the bones WT but not mCAT mice, showing that transgene expression mitigated oxidative stress. Ex vivo osteoblast colony growth rate was 95% greater in mCAT than WT mice and correlated with catalase activity levels (P < 0.005, r = 0.67), although terminal osteoblast and osteoclast differentiation were unaffected. mCAT mice had lower cancellous bone volume and cortical size than WT mice. Ambulatory control mCAT animals also displayed reduced cancellous and cortical structural properties compared with control WT mice. In mCAT but not WT mice, treatment caused an unexpectedly rapid radial expansion (+8% cortical area, +22% moment of inertia), reminiscent of compensatory bone growth during advancing age. In contrast, treatment caused similar structural deficits in cancellous tissue of mCAT and WT mice. In sum, mitochondrial ROS signaling via H2O2 was important for the acquisition of adult bone structure and catalase overexpression failed to protect cancellous tissue from treatment. In contrast, catabolic stimuli caused radial expansion in mCAT not WT mice, suggesting that mitochondrial ROS in skeletal cells act to suppress tissue turnover in response to remodeling challenges.
Insights
Mitochondrial reactive oxygen species (ROS) are crucial for adult bone structure. Overexpressing catalase in mice did not prevent bone loss but unexpectedly promoted radial expansion, suggesting ROS suppresses tissue turnover during challenges.
Area of Science:
- Skeletal Biology
- Mitochondrial Medicine
- Oxidative Stress Research
Background:
- Oxidative damage from excess reactive oxygen species (ROS) contributes to skeletal aging and impairs responses to physiological challenges.
- Mitochondrial ROS signaling is implicated in bone health and disease.
Purpose of the Study:
- To investigate the role of mitochondrial ROS in skeletal responses to unloading and radiation.
- To determine if mitigating mitochondrial oxidative stress impacts bone structure and remodeling.
Main Methods:
- Analysis of wild-type (WT) and mitochondrial catalase (mCAT) transgenic mice subjected to hind-limb unloading and ionizing radiation.
- Assessment of bone structure, lipid peroxidation, and osteoblast function.
- Correlation of catalase activity with osteoblast growth rate.
Main Results:
- mCAT mice showed mitigated oxidative stress and increased osteoblast growth rate compared to WT mice.
- While cancellous bone volume was reduced in mCAT mice, these mice exhibited radial expansion of cortical bone in response to stimuli.
- Catalase overexpression did not protect cancellous bone but influenced cortical bone's response to catabolic stimuli.
Conclusions:
- Mitochondrial ROS signaling is vital for acquiring adult bone structure.
- Catalase overexpression in mitochondria does not protect against bone loss from unloading and radiation but alters cortical bone's compensatory response.
- Mitochondrial ROS may suppress skeletal tissue turnover under remodeling challenges.
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