• 제목/요약/키워드: glycolytic switch

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HMGB1/Snail cascade에 의한 epithelial-mesenchymal transition 및 glycolytic switch, mitochondrial repression 유도 (High-mobility Group Box 1 Induces the Epithelial-mesenchymal Transition, Glycolytic Switch, and Mitochondrial Repression via Snail Activation)

  • 이수연;주민경;전현민;김초희;박혜경;강호성
    • 생명과학회지
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    • 제29권11호
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    • pp.1179-1191
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    • 2019
  • 암세포는 epithelial mesenchymal transition (EMT)를 통해 tumor invasion과 metastasis가 일어나며, 또한 정상세포와 다른 oncogenic metabolic phenotypes 획득 즉, glycolytic switch 등이 암 발생과 진행에 깊이 연관되어 있음이 잘 알려져 있다. High-mobility group box 1 (HMGB1)은 chromatin-associated nuclear protein으로 알려져 있으나, dying cells 또는 immune cells로부터 방출되기도 한다. 방출된 HMGB1은 damage-associated molecular pattern (DAMP)로서 작용하여 EMT 및 invasion, metastasis를 유도함으로서 tumor progression에 기여한다고 알려졌다. 본 연구에서 HMGB1에 의해 EMT와 glycolytic switch 유도되며, 이 과정은 Snail 의존적임을 확인하였다. 또한 HMGB1/Snail cascade는 COX subunits인 COXVIIa와 COXVIIc의 발현 억제를 통해 mitochondrial repression과 cytochrome c oxidase (COX) inhibition을 유도하였다. HMGB1은 Snail를 통해 glycolytic switch의 주요 효소인 hexokinase 2 (HK2), phosphofructokinase-2/fructose-2,6-bisphosphatase 2 (PFKFB2), phosphoglycerate mutase 1 (PGAM1)의 발현을 증가시켰다. 이들 효소는 glycolytic switch에 중요하게 관여하는 것으로 알려져 있다. 이들 해당과정의 효소들을 knockdown한 결과 HMGB1에 의한 EMT를 억제함으로써 glycolysis와 HMGB1-induced EMT가 밀접하게 연관되어 있을 제시하였다. 이상의 연구 결과들은 HMGB1/Snail cascade가 EMT 및 glycolytic switch, mitochondrial repression에 중요하게 작용할 것임을 시사한다.

Wnt에 의한 epithelial-to-mesenchymal transition에서 PFKFB2의 역할 (The Role of Phosphofructokinase-2/Fructose-2,6-bisphosphatase 2 (PFKFB2) in Wnt-induced Epithelial-mesenchymal Transition)

  • 이수연;주민경;전현민;김초희;박혜경;강호성
    • 생명과학회지
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    • 제27권11호
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    • pp.1245-1255
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    • 2017
  • 암세포는 정상세포와는 다른 metabolism 특히 glycolytic switch를 나타낸다. Glycolytic switch는 암세포가 정상세포와 달리 산소가 충분한 상태에서도 미토콘드리아에 의존하지 않고 glycolysis를 통해 대부분의 ATP 에너지를 생성하는 현상이다. 또한 암세포는 invasion 및 metastasis 능력을 획득하기 위해 epithelial-mesenchymal transition (EMT)를 나타낸다. EMT와 glycolytic switch는 암세포의 생존 및 증식에 관여하는 중요한 현상이지만, 이들 상호작용 및 그 기작에 대한 연구는 아직 밝혀져 있지 않다. Snail은 EMT를 유도하는 주요한 전사인자이다. 본 연구진은 이전 연구에서 Snail이 발생 및 암성장에 관여하는 전사인자인 Dlx-2에 의해 조절됨을 밝혔다. 또한 Wnt가 Dlx-2/Snail cascade을 통하여 EMT 및 glycolytic switch을 유도함을 밝혔다. 본 연구에서는 glycolytic switch가 Wnt에 의한 EMT에 미치는 영향을 규명하고자 하였다. Dlx-2/Snail의 glycolytic switch target 유전자로 phosphofructokinase-2/fructose-2,6-bisphosphatase 2 (PFKFB2)를 발굴하였다. PFKFB2는 fructose-2,6-bisphosphate (F2,6BP)의 합성 및 분해에 관여하는 효소로서 glycolysis에서 중요하게 작용한다. Wnt에 의해 PFKFB2 발현이 Dlx-2/Snail 의존적으로 증가함을 관찰하였다. 또한 PFKFB2를 knockdown한 결과 Wnt에 의한 EMT가 억제되므로 glycolytic switch가 Wnt에 의한 EMT에 관여할 가능성이 높을 것으로 보인다. 뿐만 아니라 PFKFB2 shRNA가 xenograft mouse model에서 tumor 성장 및 metastasis를 억제하는 것으로 나타났다. 또한 Human 암조직에서 정상조직에 비해 PFKFB2의 발현이 높음을 관찰하였다. 따라서 PFKFB2가 Wnt-Dlx-2/Snail-induced EMT 및 metastasis에서 중요한 역할을 할 것으로 예상된다.

Suppression of SIRT2 and altered acetylation status of human pluripotent stem cells: possible link to metabolic switch during reprogramming

  • Kwon, Ok-Seon;Han, Min-Joon;Cha, Hyuk-Jin
    • BMB Reports
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    • 제50권9호
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    • pp.435-436
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    • 2017
  • Primed human pluripotent stem cells (hPSCs) are highly dependent on glycolysis rather than oxidative phosphorylation, which is similar to the metabolic switch that occurs in cancer cells. However, the molecular mechanisms that underlie this metabolic reprogramming in hPSCs and its relevance to pluripotency remain unclear. Cha et al. (2017) recently revealed that downregulation of SIRT2 by miR-200c enhances acetylation of glycolytic enzymes and glycolysis, which in turn facilitates cellular reprogramming, suggesting that SIRT2 is a key enzyme linking the metabolic switch and pluripotency in hPSCs.

Targeting Cancer Metabolism - Revisiting the Warburg Effects

  • Tran, Quangdon;Lee, Hyunji;Park, Jisoo;Kim, Seon-Hwan;Park, Jongsun
    • Toxicological Research
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    • 제32권3호
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    • pp.177-193
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    • 2016
  • After more than half of century since the Warburg effect was described, this atypical metabolism has been standing true for almost every type of cancer, exhibiting higher glycolysis and lactate metabolism and defective mitochondrial ATP production. This phenomenon had attracted many scientists to the problem of elucidating the mechanism of, and reason for, this effect. Several models based on oncogenic studies have been proposed, such as the accumulation of mitochondrial gene mutations, the switch from oxidative phosphorylation respiration to glycolysis, the enhancement of lactate metabolism, and the alteration of glycolytic genes. Whether the Warburg phenomenon is the consequence of genetic dysregulation in cancer or the cause of cancer remains unknown. Moreover, the exact reasons and physiological values of this peculiar metabolism in cancer remain unclear. Although there are some pharmacological compounds, such as 2-deoxy-D-glucose, dichloroacetic acid, and 3-bromopyruvate, therapeutic strategies, including diet, have been developed based on targeting the Warburg effect. In this review, we will revisit the Warburg effect to determine how much scientists currently understand about this phenomenon and how we can treat the cancer based on targeting metabolism.

Glyceraldehyde-3-Phosphate, a Glycolytic Intermediate, Plays a Key Role in Controlling Cell Fate Via Inhibition of Caspase Activity

  • Jang, Mi;Kang, Hyo Jin;Lee, Sun Young;Chung, Sang J.;Kang, Sunghyun;Chi, Seung Wook;Cho, Sayeon;Lee, Sang Chul;Lee, Chong-Kil;Park, Byoung Chul;Bae, Kwang-Hee;Park, Sung Goo
    • Molecules and Cells
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    • 제28권6호
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    • pp.559-563
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    • 2009
  • Glyceraldehyde-3-phosphate is a key intermediate in several central metabolic pathways of all organisms. Aldolase and glyceraldehyde-3-phosphate dehydrogenase are involved in the production or elimination of glyceraldehyde-3-phosphate during glycolysis or gluconeogenesis, and are differentially expressed under various physiological conditions, including cancer, hypoxia, and apoptosis. In this study, we examine the effects of glyceraldehyde-3-phosphate on cell survival and apoptosis. Overexpression of aldolase protected cells against apoptosis, and addition of glyceraldehyde-3-phosphate to cells delayed apoptosis. Additionally, delayed apoptotic phenomena were observed when glyceraldehyde-3-phosphate was added to a cell-free system, in which artificial apoptotic process was induced by adding dATP and cytochrome c. Surprisingly, glyceraldehyde-3-phosphate directly suppressed caspase-3 activity in a reversible noncompetitive mode, preventing caspase-dependent proteolysis. Based on these results, we suggest that glyceraldehyde-3-phosphate, a key molecule in several central metabolic pathways, functions as a molecule switch between cell survival and apoptosis.

Glyceraldehyde-3-Phosphate, a Glycolytic Intermediate, Prevents Cells from Apoptosis by Lowering S-Nitrosylation of Glyceraldehyde-3-Phosphate Dehydrogenase

  • Lee, Sun-Young;Kim, Jeong-Hoon;Jung, Hye-Yun;Chi, Seung-Wook;Chung, Sang-J.;Lee, Chong-Kil;Park, Byoung-Chul;Bae, Kwang-Hee;Park, Sung-Goo
    • Journal of Microbiology and Biotechnology
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    • 제22권4호
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    • pp.571-573
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    • 2012
  • Glyceraldehyde-3-phosphate (G-3-P), the substrate of glyceraldehyde-3-phosphate dehydrogenase (GAPDH), is a key intermediate in several metabolic pathways. Recently, we reported that G-3-P directly inhibits caspase-3 activity in a reversible noncompetitive mode, suggesting the intracellular G-3-P level as a cell fate decision factor. It has been known that apoptotic stimuli induce the generation of NO, and NO S-nitrosylates GAPDH at the catalytic cysteine residue, which confers GAPDH the ability to bind to Siah-1, an E3 ubiquitin ligase. The GAPDH-Siah-1 complex is translocated into the nucleus and subsequently triggers the apoptotic process. Here, we clearly showed that intracellular G-3-P protects GAPDH from S-nitrosylation at above a certain level, and consequently maintains the cell survival. In case G-3-P drops below a certain level as a result of exposure to specific stimuli, G-3-P cannot inhibit S-nitrosylation of GAPDH anymore, and consequently GAPDH translocates with Siah-1 into the nucleus. Based on these results, we suggest that G-3-P functions as a molecule switch between cell survival and apoptosis by regulating S-nitrosylation of GAPDH.