Deletion of the lactoperoxidase gene causes multisystem inflammation and tumors in mice

被引:0
作者
Jayden Yamakaze
Zhe Lu
机构
[1] University of Pennsylvania,Department of Physiology, Perelman School of Medicine
来源
Scientific Reports | / 11卷
关键词
D O I
暂无
中图分类号
学科分类号
摘要
Strongly oxidative H2O2 is biologically important, but if uncontrolled, would lead to tissue injuries. Lactoperoxidase (LPO) catalyzes the redox reaction of reducing highly reactive H2O2 to H2O while oxidizing thiocyanate (SCN−) to relatively tissue-innocuous hypothiocyanite (OSCN−). SCN− is the only known natural, effective reducing-substrate of LPO; humans normally derive SCN− solely from food. While its enzymatic mechanism is understood, the actual biological role of the LPO-SCN− system in mammals remains unestablished. Our group previously showed that this system protected cultured human cells from H2O2-caused injuries, a basis for the hypothesis that general deficiency of such an antioxidative mechanism would lead to multisystem inflammation and tumors. To test this hypothesis, we globally deleted the Lpo gene in mice. The mutant mice exhibited inflammation and lesions in the cardiovascular, respiratory, digestive or excretory systems, neuropathology, and tumors, with high incidence. Thus, this understudied LPO-SCN− system is an essential protective mechanism in vivo.
引用
收藏
相关论文
共 185 条
[1]  
Valko M(2007)Free radicals and antioxidants in normal physiological functions and human disease Int. J. Biochem. Cell Biol. 39 44-84
[2]  
van der Vliet A(2014)Hydrogen peroxide as a damage signal in tissue injury and inflammation: Murderer, mediator, or messenger? J. Cell Biochem. 115 427-435
[3]  
Janssen-Heininger YM(1991)Hydrogen peroxide-induced oxidative stress to the mammalian heart-muscle cell (cardiomyocyte): Lethal peroxidative membrane injury J. Cell Physiol. 149 347-364
[4]  
Janero DR(2001)Oxidative stress and lung inflammation in airways disease Eur. J. Pharmacol. 429 195-207
[5]  
Hreniuk D(1991)Hydrogen peroxide-induced renal injury. A protective role for pyruvate in vitro and in vivo J. Clin. Invest. 88 1886-1893
[6]  
Sharif HM(2017)Pathomechanisms of oxidative stress in inflammatory bowel disease and potential antioxidant therapies Oxid. Med. Cell Longev. 2017 4535194-620
[7]  
MacNee W(2014)Review article: The role of oxidative stress in pathogenesis and treatment of inflammatory bowel diseases Naunyn Schmiedebergs Arch. Pharmacol. 387 605-1737
[8]  
Salahudeen AK(2018)Catalase and nonalcoholic fatty liver disease Pflugers Arch. 470 1721-158
[9]  
Clark EC(2020)Molecular mechanisms that link oxidative stress, inflammation, and fibrosis in the liver Antioxidants 12 149-193
[10]  
Nath KA(2010)Role of metabolically generated reactive oxygen species for lipotoxicity in pancreatic beta-cells Diabetes Obes. Metab. 2 184-12