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Enzymological and Radiotracer Studies of lipid Metabolism in the Flight-Capable and Flightless Morphs of the Wing-Polymorphic Cricket, \u3ci\u3eGryllus firmus\u3c/i\u3e

机译:酶学和放射性示踪研究翼 - 多晶蟋蟀的飞行能力和无飞行形态的脂质代谢,\ u3ci \ u3eGryllus firmus \ u3c / i \ u3e

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摘要

The flight-capable morph of the wing-polymorphic cricket, Gryllus firmus, exhibited significantly higher activities of each of five lipogenic enzymes compared with the obligately flightless morph on a standard and a high-carbohydrate diet during early adulthood. Similarly, the rate of incorporation of [14C]-acetate into total lipid was higher in the flight-capable morph during this time. By contrast, activities of lipogenic enzymes and rates of lipid biosynthesis, in general, did not differ between morphs on a low nutrient diet during early adulthood. Differences in lipid biosynthesis account for previously documented differences in lipid reserves between morphs on some, but not all, diets. Results of the present and previous studies indicate that increased lipid biosynthesis in the flight capable morph on standard and high-carbohydrate diets constitutes an important adaptation for flight (production of lipid flight fuel). Lipid biosynthesis is negatively correlated with ovarian growth, and may be an important biochemical component of the trade-off between flight capability and ovarian growth in G. firmus. Morphs also differed in activities of three enzymes of lipid catabolism. However, the extent to which variation in activities of these enzymes between morphs results in variation in lipid catabolism is unclear. Finally, the flight-capable morph had a substantially higher activity of alanine aminotransferase in the fat body. Amino acids may be utilized for lipid biosynthesis or energy production to a greater degree in the dispersing morph compared with the oligately flightless morph. This study is the first to document differences in intermediary metabolism that underlie adaptations of morphs of a dispersal-polymorphic species for flight vs. egg production.
机译:与成年早期在标准饮食和高碳水化合物饮食中专心飞舞的变态相比,机翼多态坚硬的鹰ry(Gryllus firmus)具有飞行能力的变体表现出明显更高的五种脂肪酶的活性。同样,在这段时间内,能够飞行的形态中[14C]-乙酸酯掺入总脂质的比率更高。相比之下,成年早期低脂饮食中的脂肪形成酶活性和脂质生物合成速率一般没有差异。脂质生物合成的差异解释了先前记录的某些(但不是全部)饮食中不同形态之间脂质储备的差异。目前和以前的研究结果表明,在标准和高碳水化合物饮食中,能够飞行的形态中增加的脂质生物合成构成了飞行的重要适应性(脂质飞行燃料的产生)。脂质的生物合成与卵巢的生长呈负相关,并且可能是固氮菌飞行能力和卵巢生长之间权衡的重要生化成分。形态在脂质分解代谢的三种酶的活性上也不同。但是,这些酶在形态之间的活性变化导致脂质分解代谢变化的程度尚不清楚。最后,能够飞行的形态在脂肪体内具有显着更高的丙氨酸氨基转移酶活性。与寡聚的,不飞行的形态相比,氨基酸可以更大程度地用于分散形态中的脂质生物合成或能量产生。这项研究是第一个记录中间代谢差异的文献,这些差异构成了分散多态性物种的形态适应飞行和产卵的基础。

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    Zhao, Z.; Zera, Anthony J.;

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