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1.
粘虫飞行肌中与能量代谢有关的酶活性研究   总被引:2,自引:1,他引:2  
该文报道粘虫Mythimna separata (Walker ) 蛹及不同日龄成虫飞行肌中与3 种代谢途径有关的5 种酶,即3-磷酸甘油醛脱氢酶(GAPDH)、3-磷酸甘油脱氢酶(GDH)、乳酸脱氢酶(LDH)、3-羟酰辅酶A 脱氢酶(HOAD)、柠檬酸合成酶(CS)活性的变化。成虫羽化后,这5 种酶的活性大多数都高于蛹期,表明成虫飞行肌与能量代谢有关的活动比蛹期高。不同日龄成虫飞行肌的能量代谢特点为:成虫羽化后糖酵解循环的活性增加;1 日龄进行糖酵解的能力较强,2 日龄即具备较强的脂肪代谢能力,2~5日龄糖及脂肪代谢的能力基本相当,但7日龄脂肪代谢的能力较强。1~7日龄粘虫蛾飞行肌具有较高的GDH 和LDH活性,这既是粘虫蛾飞行肌能进行高度有氧代谢的重要标志,也是其具有一定无氧代谢能力的最好说明,而飞行肌中较高的CS活性则是粘虫蛾具有较强飞行能力的重要保证。对成虫GAPDH∶HOAD 活性进行分析比较的结果还显示,粘虫蛾持续飞行的能源物质既有脂类也有糖类,而不仅仅只限于脂类。  相似文献   

2.
饥饿和交配对小地老虎飞行肌发育的影响   总被引:1,自引:0,他引:1  
王伟  尹姣  曹雅忠  李克斌 《昆虫知识》2013,(6):1573-1585
小地老虎Agrotis ypsilon(Rottemburg)成虫飞行肌的发育常受一些因素影响而发生变化,为探讨饥饿和交配行为对飞行肌发育的影响,通过电子显微镜对雌虫飞行肌(背纵肌)的肌原纤维、线粒体结构进行观察,结果显示:4日龄饥饿雌虫,肌原纤维直径、肌节长度、肌原纤维体积均显著(P<0.05)小于取食的。7日龄饥饿雌虫肌原纤维直径、肌节长度、肌原纤维体积分数较4日龄的差异均不显著(P≥0.05),而7日龄饥饿的肌原纤维直径显著(P<0.05)大于7日龄取食的;羽化10 d后,饥饿雌虫肌节长度显著(P<0.05)大于取食雌虫的,而肌纤维体积分数和线粒体体积分数均却小于后者。7、10、13日龄交配雌虫肌原纤维横切直径分别显著(P<0.05)小于同日龄非交配的;7、10、13日龄交配雌虫肌原纤维体积分数显著(P<0.05)小于非交配的,线粒体体积分数虽然无差异(P≥0.05),但是交配雌虫的早在4日龄便已明显(P<0.05)减小。上述结果表明:正常取食的小地老虎飞行肌4日龄后会发生降解现象;饥饿抑制飞行肌前期发育和中期的降解,而促进成虫末期肌原纤维的分解;交配能促进飞行肌的降解。  相似文献   

3.
昆虫飞行肌蛋白质   总被引:1,自引:1,他引:0  
昆虫飞行肌的肌原纤维不仅含有粗肌丝、细肌丝、纤肌丝,还含有很多其它蛋白质参与肌原纤维的组装和调节,文章介绍了10余种蛋白质的结构、功能及其在肌原纤维中的位置和功能,对于了解昆虫飞行肌的发育和探索昆虫飞行能力差异的原因具有重要意义。  相似文献   

4.
粘虫蛾飞行肌超微结构的研究   总被引:6,自引:4,他引:2  
罗礼智  李光博 《昆虫学报》1996,39(2):141-148
应用电子显微镜对粘虫雌蛾Mythimna separata(Walker)飞行(背纵)肌的研究结果表明,其肌原纤维由500-700根肌球蛋白丝(粗丝)组成,每根粗丝由6根肌动蛋白丝(细丝)环绕排列成六角形,每根细丝精确地位于两根粗丝间1/2处,从而使粗丝和细丝的比为1:3。肌节较短,长度约2.2-2.6μm。肌原纤维之间充满着线粒体和横管。每个肌节约有线粒体三个,横管二根。线粒体约占肌纤维体积的40%,而横管为7%。每根横管准确地位于肌节的1/4、3/4处,或Z线和中膈的中央,并与肌质网交接形成二位体(dyads)或三位体(triads)。肌质网相当不发达,约占肌纤维体积的2.5%。但其分布很有特色,即除了紧贴于肌原纤维周围的由单层液泡组成的肌质网以外,在中膈处还有一层横穿于肌原纤维的肌质网。和其它同步飞行肌的结构和功能分析比较的结果还表明,粘虫蛾飞行肌具有较善于飞行的结构。  相似文献   

5.
为了解林分因子与昆嵛山腮扁叶蜂发生的关系,为昆嵛山赤松纯林的营林措施和昆嵛山腮扁叶蜂的防控技术提供理论指导,本研究在昆嵛山区域选取林龄相对一致(34±2 a)的赤松纯林为对象,调查林分密度、郁闭度、草本盖度、树高、枝下高、胸径、冠幅7个林分因子以及昆嵛山腮扁叶蜂虫巢数。依据虫情指数的分布范围,将样地分为4组,通过方差分析和多重比较研究了4组样地中各项林分因子的差异性。采用逐步回归法,筛选出影响昆嵛山腮扁叶蜂虫情指数的关键因子,在此基础上通过偏相关分析和单因素方差分析法进一步阐明关键因子与虫情指数之间的关系。结果表明,7个林分因子在4组样地中均存在极显著的组间差异。逐步回归筛选出冠幅、枝下高和林分密度为影响昆嵛山腮扁叶蜂发生的关键因子,根据关键因子建立了虫情指数的线性预测方程。冠幅和枝下高对昆嵛山腮扁叶蜂虫情指数的影响均达到极显著正相关水平(P0.01),林分密度对昆嵛山腮扁叶蜂虫情指数的影响为极显著负相关(P0.01)。影响虫情指数的关键因子可能会因林分的不同而不一致,因此要根据关键因子调整林分结构,以达到控制虫害流行的目的。  相似文献   

6.
粘虫蛾飞行肌的发育:超微结构特征分析   总被引:2,自引:5,他引:2  
罗礼智 《昆虫学报》1996,39(4):366-374
应用电子显微镜对正常条件下饲养的0-16日龄粘虫Mythimna separata (Walker)雌蛾飞行肌超微结构的研究结果表明:肌原纤维直径。线粒体和横管的体积分量均随蛾龄的增加而增加,到7日龄达到最大值以后又随蛾龄的增加而下降;但是,肌节长度则随蛾龄的增加而缩短,到7日龄达到最短后又随蛾龄的增加而延长,从而使整条发育曲线呈“V”字形;肌原纤维和肌质网体积分量变化不大或无规律可寻;二位体在发育初期和未期的比例较高,而三位体在4和7口龄比例较高;肌丝排列从0~7日龄均是有序的,肌动蛋白丝(细丝)和肌球蛋白丝(粗丝)的数量比为3:1,粗丝的数量变化也不大,每根肌原纤维约有600根。但从10日龄开始肌丝排列出现紊乱,细丝全部消失,粗丝降解、数量减少了30%,从而使肌原纤维留下一片片的空白。根据这些结果,把7日龄前的飞行肌发育过程视为生长过程,而把10日龄后的视作降解过程。最后对粘虫蛾飞行肌与卵巢发育及其飞行能力变化的关系进行了讨论。  相似文献   

7.
甜菜夜蛾飞行肌中与能量代谢有关的酶活性   总被引:2,自引:0,他引:2  
通过生化方法测定了参与飞行能源物质代谢的5种酶活力的变化,即3-磷酸甘油醛脱氢酶(GAPDH)、3-磷酸甘油脱氢酶(GDH)、乳酸脱氢酶(L DH)、柠檬酸合酶(CS)和3-羟酰辅酶A脱氢酶(HOAD)。结果表明,1、3、5日龄处女蛾的GAPDH和CS酶活力显著高于7日龄蛾;但HOAD的活性恰恰与之相反,其酶活力随日龄的增加逐渐增强。GDH初羽化时活性较低,但到3日龄后增加到最大值,以后随日龄的增加活性逐渐下降,L DH的活性一直比较低,且不同日龄的酶活力差异不显著。交配状况和幼虫期饥饿处理对成虫的代谢酶活力没有显著影响。在第7代选育家系中,强飞家系的GAPDH酶活力显著高于短飞和不飞;而在第8代中强飞家系的上述5种酶的活性均高于短飞家系,而第10代中仅有CS的活性在强飞和短飞家系中存在显著差异,其他均差异不显著。这说明甜菜夜蛾在初始阶段主要利用糖类作为能源物质,而后期飞行又可通过脂类代谢提供能量,且不同日龄的处女蛾和选择家系的飞行能力与代谢酶活性呈现一定的正相关关系。  相似文献   

8.
Zhu B  Wang XR  Li J 《生理科学进展》2009,40(4):329-332
心肌能量代谢状况是其结构与功能的重要决定因素,调节能量代谢是心脏疾病的有效疗法之一.脂质过氧化物酶体增殖物激活受体(PPARs)是一组具有复杂功能的核受体超家族成员,与脂肪形成、糖脂代谢、炎症及肿瘤发生等多种生物过程有关.PPARs可通过调控编码脂肪酸与糖类氧化相关酶的基因转录而调节心肌代谢,在心脏多种疾病病理过程中其表达与活性均有明显变化,因此已被作为心脏病的治疗靶点之一.本文对PPARs在心脏生理与病理中的作用进行简要介绍.  相似文献   

9.
线粒体是真核生物进行能量代谢的主要场所,在自由基产生、细胞凋亡、衰老等生理病理活动中也起到重要作用。线粒体功能受核基因和线粒体基因共同调控,microRNA(miRNA)介导的基因转录后调控是重要机制之一。核基因编码的miRNA不仅可以通过调控核基因编码的线粒体相关蛋白的表达影响线粒体结构和功能,而且可以进入线粒体并调控线粒体基因的表达。另一方面,线粒体基因也可能编码miRNA,直接调控线粒体基因表达或转运至胞质调控核基因的表达。  相似文献   

10.
群居型和散居型东亚飞蝗雌成虫飞行肌的超微结构   总被引:3,自引:0,他引:3  
刘辉  李克斌  尹姣  杜桂林  曹雅忠 《昆虫学报》2008,51(10):1033-1038
应用电子显微镜对群居型和散居型东亚飞蝗Locusta migratoria manilensis(Meyen)雌成虫背纵肌进行了比较观察。结果表明:群居型和散居型成虫背纵肌具有类似的亚细胞结构,飞行肌的肌原纤维具有1∶3粗细丝比例,每根粗丝由6根细丝环绕排列成六角形结构。飞行肌的发育和线粒体的形成均是渐进的过程,在不同日龄成虫间存在差异。肌节长度为2.1~3.4 μm;7和10日龄时群居型成虫肌节长度小于散居型;7日龄群居型肌原纤维直径显著大于散居型。背纵肌内线粒体含量约占肌纤维的20%~43%,两型飞蝗之间存在着显著的差异,7日龄时群居型线粒体占肌原纤维的比例高达42.96%,而散居型的只有22.45%;10日龄群居型线粒体含量为41.32%,散居型线粒体29.98%。上述差异可能是东亚飞蝗群居型成虫飞行能力显著强于散居型成虫的重要原因之一。  相似文献   

11.
袁瑞玲  王晓渭  杨珊  陈鹏 《昆虫学报》2015,58(5):471-478
【目的】明确桔小实蝇Bactrocera dorsalis(Hendel)飞行肌对能源物质的利用。【方法】通过生化方法测定了能源物质代谢相关5种酶[3-磷酸甘油醛脱氢酶(GAPDH)、3-磷酸甘油脱氢酶(GDH)、乳酸脱氢酶(LDH)、柠檬酸合酶(CS)和3-羟酰辅酶A脱氢酶(HOAD)]活性的变化。【结果】桔小实蝇成虫中所测的5种酶活性随日龄的变化而变化,4日龄GAPDH,GDH,LDH和CS活性最高,20日龄HOAD活性最高。吊飞过程中,GAPDH,GDH和CS的活性变化基本一致,随吊飞时间的延长活性逐渐升高;LDH和HOAD的活性变化雌、雄虫完全不同。雄虫LDH活性除吊飞2 h外其他时间均高于静息状态,雌虫则始终低于静息状态;雄虫HOAD活性只有吊飞24 h低于静息状态水平,而雌虫吊飞后HOAD活性一直在静息状态水平及以下波动。【结论】桔小实蝇飞行所利用的能源物质包括糖类和脂肪,以糖类能源为主。吊飞过程中,雄虫除可以进行高速有氧代谢以外,还具备一定的无氧代谢能力,而雌虫只进行有氧代谢;雄虫能利用脂肪供给能量,雌虫则几乎不动用脂肪。研究结果为进一步阐明桔小实蝇的迁飞行为机制提供了依据。  相似文献   

12.
The highest capacity for flight was demonstrated in males reared in long day conditions. During flight there is a significant decrease in proline content and to a lesser extent in glutamate. At the same time alanine accumulates, but its accumulation does not show stoichiometry with the decline in proline and glutamate during the first minutes of flight. This failure in stoichiometry suggests that glutamate dehydrogenase plays an important role in the early phases of flight.  相似文献   

13.
A major goal of flight research has been to establish the relationship between the mechanical power requirements of flight and flight speed. This relationship is central to our understanding of the ecology and evolution of bird flight behaviour. Current approaches to determining flight power have relied on a variety of indirect measurements and led to a controversy over the shape of the power-speed relationship and a lack of quantitative agreement between the different techniques. We have used a new approach to determine flight power at a range of speeds based on the performance of the pectoralis muscles. As such, our measurements provide a unique dataset for comparison with other methods. Here we show that in budgerigars (Melopsittacus undulatus) and zebra finches (Taenopygia guttata) power is modulated with flight speed, resulting in U-shaped power-speed relationship. Our measured muscle powers agreed well with a range of powers predicted using an aerodynamic model. Assessing the accuracy of mechanical power calculated using such models is essential as they are the basis for determining flight efficiency when compared to measurements of flight metabolic rate and for predicting minimum power and maximum range speeds, key determinants of optimal flight behaviour in the field.  相似文献   

14.
Hummingbirds (Trochilidae) are widely known for their insect-like flight strokes characterized by high wing beat frequency, small muscle strains and a highly supinated wing orientation during upstroke that allows for lift production in both halves of the stroke cycle. Here, we show that hummingbirds achieve these functional traits within the limits imposed by a vertebrate endoskeleton and muscle physiology by accentuating a wing inversion mechanism found in other birds and using long-axis rotational movement of the humerus. In hummingbirds, long-axis rotation of the humerus creates additional wing translational movement, supplementing that produced by the humeral elevation and depression movements of a typical avian flight stroke. This adaptation increases the wing-to-muscle-transmission ratio, and is emblematic of a widespread scaling trend among flying animals whereby wing-to-muscle-transmission ratio varies inversely with mass, allowing animals of vastly different sizes to accommodate aerodynamic, biomechanical and physiological constraints on muscle-powered flapping flight.  相似文献   

15.
We used acid digestion and glycogen depletion to determine fascicle organization, fiber morphology, and physiological and anatomical features of individual motor units of an in-series muscle, the pectoralis (pars thoracicus) of the pigeon (Columba livia). Most fascicles are attached at one end to connective tissue. Average fiber length in the four regions examined range from 42% to 66% of average fascicle length. More than 65% of fibers are blunt at one end of a fascicle and taper intrafascicularly. Fibers with blunt–blunt endings range from 13% to 31% of the population in different regions; taper–taper fibers range from 2% to 17%. Pigeon pectoralis fibers are distinguished histochemically into fast-twitch glycolytic (FG) and fast-twitch oxidative-glycolytic (FOG) populations. Three units composed of FG fibers (FG units) contract more quickly than three units composed of FOG fibers (FOG units) (range 31–37 vs 47–62 msec), produce more tetanic force (0.11–0.32 vs 0.02–0.05 N) and are more fatigable (<18% initial force vs >50% after repeated stimulation). Most motor units are confined to one of the four muscle regions. Territory of two FOG units is <30% of parent fascicle length. Territories of other units spanned parent fascicles; most fibers in these units do not extend the full fascicle length. Compared to FG units, FOG units have lower maximum innervation ratios and density indices (ratio of depleted/total FOG fibers in territory 8–14% vs 58–76% for FG units). These differences support the hypothesis that FG units are organized to produce substantial force and power for takeoff, landing and other ballistic movements whereas FOG units are suited for sustained flight when power requirements are reduced. Implications of findings for understanding the control of in-series muscles and the use of connective tissue elastic elements during wing movements are discussed. J.Morphol. 236:179–208, 1998. © 1998 Wiley-Liss, Inc.  相似文献   

16.
Space flight experiments have suggested that microgravity can affect cellular processes in microorganisms. To simulate the microgravity environment on earth, several models have been developed and applied to examine the effect of microgravity on secondary metabolism. In this paper, studies of effects of space flight on secondary metabolism are exemplified and reviewed along with the advantages and disadvantages of the current models used for simulating microgravity. This discussion is both signi?cant and timely to researchers considering the use of simulated microgravity or space flight to explore effects of weightlessness on secondary metabolism.  相似文献   

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