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Histological demonstration of glucose transporters, fructose-1,6-bisphosphatase, and glycogen in gas gland cells of the swimbladder: Is a metabolic futile cycle operating?

机译:泳囊气腺细胞中葡萄糖转运蛋白,1,6-果糖,1,6-二磷酸果糖酶和糖原的组织学证明:新的无用循环正在运行吗?

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Luminal surface of the swimbladder is covered by gas gland epithelial cells and is responsible for inflating the swimbladder by generating O 2 from Root-effect hemoglobin that releases O 2 under acidic conditions. Acidification of blood is achieved by lactic acid secreted from gas gland cells, which are poor in mitochondria but rich in the glycolytic activity. The acidic conditions are locally maintained by a countercurrent capillary system called rete mirabile. To understand the regulation of anaerobic metabolism of glucose in the gas gland cells, we analyzed the glucose transporter expressed there and the fate of ATP generated by glycolysis. The latter is important because the ATP should be immediately consumed otherwise it strongly inhibits the glycolysis rendering the cells unable to produce lactic acid anymore. Expression analyses of glucose transporter (glut) genes in the swimbladder of fugu (Takifugu rubripes) by RT-PCR and in situ hybridization demonstrated that glut1a and glut6 are expressed in gas gland cells. Immunohistochemical analyses of metabolic enzymes demonstrated that a gluconeogenesis enzyme fructose-1,6-bisphosphatase (Fbp1) and a glycolytic enzyme glyceraldehyde-3-phosphate dehydrogenase (Gapdh) are highly expressed in gas gland cells. The simultaneous catalyses of glycolysis and gluconeogenesis reactions suggest the presence of a futile cycle in gas gland cells to maintain the levels of ATP low and to generate heat that helps reduce the solubility of O 2.
机译:游泳囊的发光表面被气腺上皮细胞覆盖,并通过在酸性条件下从根效应血红蛋白生成O 2来使游泳囊膨胀,该血红蛋白会在血液中产生O 2。血液的酸化是通过气腺细胞分泌的乳酸来实现的,线粒体中的乳酸很弱,但糖酵解活性却很高。酸性条件是通过逆流毛细管系统(rete mirabile)局部维持的。为了了解气腺细胞中葡萄糖厌氧代谢的调控,我们分析了其中表达的葡萄糖转运蛋白和糖酵解产生的ATP的命运。后者很重要,因为ATP应该立即消耗掉,否则将强烈抑制糖酵解,使细胞不再产生乳酸。通过RT-PCR和原位杂交技术分析了河豚(Takifugu rubripes)的游泳膀胱中的葡萄糖转运蛋白(glut)基因的表达,证明了glut1a和glut6在胃腺细胞中表达。代谢酶的免疫组织化学分析表明,糖原异生酶果糖-1,6-双磷酸酶(Fbp1)和糖酵解酶甘油醛-3-磷酸脱氢酶(Gapdh)在气腺细胞中高表达。糖酵解和糖异生反应的同时催化表明,气腺细胞中存在无效的循环,以保持较低的ATP含量并产生有助于降低O 2溶解度的热量。

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