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Experimental Protocol for Detecting Mitochondrial Function in Hepatocytes Exposed to Organochlorine Pesticides
Published on: September 16, 2020
Persistent Organic Pollutants released from decomposed adipose tissue affect mitochondrial enzyme function in the
Dongshin Yang1, Eun Ko2,3, Hwayeon Lim1
1Department of Biotechnology and Bioengineering, College of Engineering, Chonnam National University, 77 Yongbong-Ro, Buk-Gu, Gwangju, 61186, Republic of Korea.
Abstract:
Persistent organic pollutants (POPs) are toxic chemicals that can accumulate in the human body, and particularly in adipose tissue. POPs can induce metabolic diseases via mitochondrial dysfunction and can also cause cancer, obesity, and cardiovascular and neurodegenerative diseases. Although the effects of POPs were studied by evaluating mitochondrial function, which is fundamental in investigating the etiologies of various metabolic diseases, the physiological impact of POPs released by the decomposition of fat in adipose tissue is barely understood. Therefore, to investigate the mitochondrial dysfunction caused by POPs released from adipose tissue to other organs, zebrafish were exposed to POPs and placed into four groups: control (C), obesity control (OC), obesity control with POPs (OP), and POP exposure with obesity and caloric restriction (OPR). Next, the activities of the mitochondrial respiratory complexes and the levels of ATP production, reactive oxygen species/reactive nitrogen species (ROS/RNS), and antioxidants, such as glutathione and superoxide dismutase, were measured in the brain, eyes, and liver, as these are the major organs most susceptible to metabolic diseases. POPs released from adipose tissue showed a stronger effect than the direct effects of obesity and POPs on mitochondrial enzyme activity in the brain and eye. Released POPs increased mitochondrial complex I activity and decreased mitochondrial complex II activity compared with normal, obesity, and POP-treated conditions in the brain and eyes. However, the mitochondrial complexes' activities in the liver were affected more by obesity and POPs. In the liver, the mitochondrial enzyme activities of the OPR group seemed to recover to the control level, but it was slightly lowered in the OC and OP groups. Independently, the ROS/RNS and antioxidant levels were not affected by obesity, POPs, or the released POPs in the brain, eye, and liver. The results indicate that POPs stored in adipose tissue and released during fat decomposition did not affect oxidative stress but could affect mitochondrial respiratory enzymes in organ dependent manner. This study is meaningful in that it provides experimental evidence that stored POPs affect specific organs for prolonged periods and can be linked to various diseases in advance.
Insights
Persistent organic pollutants (POPs) stored in fat tissue can impact organ function when released. This study shows POPs affect mitochondrial enzymes in the brain and eyes, but not oxidative stress levels.
Area of Science:
- Environmental toxicology
- Mitochondrial biology
- Metabolic disease research
Background:
- Persistent organic pollutants (POPs) accumulate in adipose tissue and are linked to metabolic diseases, cancer, and cardiovascular issues.
- Mitochondrial dysfunction is a key factor in metabolic diseases, yet the impact of POPs released from fat decomposition is poorly understood.
- Understanding POPs' physiological effects from adipose tissue is crucial for preventing POP-induced diseases.
Purpose of the Study:
- To investigate mitochondrial dysfunction caused by POPs released from adipose tissue.
- To compare the effects of released POPs versus direct POP exposure and obesity on organ systems.
- To evaluate the impact on mitochondrial respiratory complexes, ATP production, and oxidative stress markers.
Main Methods:
- Zebrafish were exposed to POPs and divided into control, obesity control, obesity with POPs, and POP exposure with obesity and caloric restriction groups.
- Mitochondrial respiratory complex activities, ATP levels, reactive oxygen/nitrogen species (ROS/RNS), and antioxidant levels were measured in brain, eyes, and liver.
- Organ-specific effects of POPs released from adipose tissue were analyzed.
Main Results:
- Released POPs significantly altered mitochondrial enzyme activity in the brain and eyes, increasing Complex I and decreasing Complex II activity.
- Obesity and POPs had a greater impact on mitochondrial complex activity in the liver compared to the brain and eyes.
- Oxidative stress markers (ROS/RNS, antioxidants) were not significantly affected by obesity, POPs, or released POPs in any measured organ.
Conclusions:
- POPs stored in adipose tissue and released during fat decomposition can affect mitochondrial respiratory enzymes in an organ-dependent manner.
- The study provides evidence that stored POPs have prolonged effects on specific organs, potentially contributing to various diseases.
- Released POPs from adipose tissue pose a distinct risk to mitochondrial function, independent of direct POP exposure or obesity alone.

