Pharmacological Stimulation of NADH Oxidation Ameliorates Obesity and Related Phenotypes in Mice

Author:

Hwang Jung Hwan1,Kim Dong Wook1,Jo Eun Jin2,Kim Yong Kyung1,Jo Young Suk1,Park Ji Hoon3,Yoo Sang Ku2,Park Myung Kyu2,Kwak Tae Hwan2,Kho Young Lim4,Han Jin5,Choi Hueng-Sik6,Lee Sang-Hee7,Kim Jin Man7,Lee InKyu8,Kyung Taeyoon9,Jang Cholsoon9,Chung Jongkyeong9,Kweon Gi Ryang3,Shong Minho1

Affiliation:

1. Department of Internal Medicine, Chungnam National University School of Medicine, Daejeon, Korea;

2. Mazence Inc R&D Center, Suwon, Korea;

3. Department of Biochemistry, Chungnam National University School of Medicine, Daejeon, Korea;

4. Department of Environmental Health, Seoul Health College, Sungnam, Korea;

5. Department of Physiology and Biophysics, Inje University College of Medicine, Busan, Korea;

6. Hormone Research Center, Chonnam National University, Kwangju, Korea;

7. Department of Pathology, Chungnam National University School of Medicine, Daejeon, Korea;

8. Section of Endocrinology, Department of Internal Medicine, Kyungpook National University School of Medicine, Junggu, Daegu, Korea;

9. Department of Biological Sciences, Korea Advanced Institute of Science and Technology, Daejeon, Korea.

Abstract

OBJECTIVE Nicotinamide adenine dinucleotides (NAD+ and NADH) play a crucial role in cellular energy metabolism, and a dysregulated NAD+-to-NADH ratio is implicated in metabolic syndrome. However, it is still unknown whether a modulating intracellular NAD+-to-NADH ratio is beneficial in treating metabolic syndrome. We tried to determine whether pharmacological stimulation of NADH oxidation provides therapeutic effects in rodent models of metabolic syndrome. RESEARCH DESIGN AND METHODS We used β-lapachone (βL), a natural substrate of NADH:quinone oxidoreductase 1 (NQO1), to stimulate NADH oxidation. The βL-induced pharmacological effect on cellular energy metabolism was evaluated in cells derived from NQO1-deficient mice. In vivo therapeutic effects of βL on metabolic syndrome were examined in diet-induced obesity (DIO) and ob/ob mice. RESULTS NQO1-dependent NADH oxidation by βL strongly provoked mitochondrial fatty acid oxidation in vitro and in vivo. These effects were accompanied by activation of AMP-activated protein kinase and carnitine palmitoyltransferase and suppression of acetyl-coenzyme A (CoA) carboxylase activity. Consistently, systemic βL administration in rodent models of metabolic syndrome dramatically ameliorated their key symptoms such as increased adiposity, glucose intolerance, dyslipidemia, and fatty liver. The treated mice also showed higher expressions of the genes related to mitochondrial energy metabolism (PPARγ coactivator-1α, nuclear respiratory factor-1) and caloric restriction (Sirt1) consistent with the increased mitochondrial biogenesis and energy expenditure. CONCLUSIONS Pharmacological activation of NADH oxidation by NQO1 resolves obesity and related phenotypes in mice, opening the possibility that it may provide the basis for a new therapy for the treatment of metabolic syndrome.

Publisher

American Diabetes Association

Subject

Endocrinology, Diabetes and Metabolism,Internal Medicine

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