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701.
Population dynamics of spiders may vary according to biotic and abiotic factors. We studied the phenology of the bark-dwelling spider Eustala perfida over a two-year period and investigated how temperature, precipitation, and prey availability were associated with the population of this species. The population of E. perfida presented a well-defined fluctuation, with one reproductive cycle per year. The recruitment of spiders occurred in summer, followed by successive phenological peaks at all stages of development. The species is protogynic, and the population of adult males peaks in the cold/dry season, indicating a winter mature phenological pattern. The diet of E. perfida is composed mainly of medium-sized homopterans, complemented by small dipterans and hymenopterans. We found that the higher abundance of spiders occurred two months after the highest values of precipitation and temperature, and three months after the higher abundance of potential prey items. These results indicate that spiders require time to respond to changes in environmental conditions. The species’ natural history and the structure of the trunks in which it lives may also affect the number of individuals in a particular area and over time.  相似文献   
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以FeSO4·7H2O和NH3·H20为原料,以水合肼为模板剂和氧化剂,采用水热合成法制备出八面体Fe3O4纳米晶.用x-射线衍射(XRD)、扫描电镜(SEM)和振动样品磁强计(VSM)对样品的结构、形貌和磁性能进行表征.结果显示.实验制备的样品由粒径不同的八面体Fe3O4纳米晶(粒径为100 nm~1μm)组成,具有高饱和磁化强度和较低的矫顽力,分别为93.82 A·m2/kg和3 111.5 A/m.  相似文献   
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The dynamic interactions between a host and its intestinal microflora that lead to commensalism are unclear. Bacteria that colonize the intestinal tract do so despite the development of a specific immune response by the host. The mechanisms used by commensal organisms to circumvent this immune response have yet to be established. Here we demonstrate that the human colonic microorganism, Bacteroides fragilis, is able to modulate its surface antigenicity by producing at least eight distinct capsular polysaccharides-a number greater than any previously reported for a bacterium-and is able to regulate their expression in an on-off manner by the reversible inversion of DNA segments containing the promoters for their expression. This means of generating surface diversity allows the organism to exhibit a wide array of distinct surface polysaccharide combinations, and may have broad implications for how the predominant human colonic microorganisms, the Bacteroides species, maintain an ecological niche in the intestinal tract.  相似文献   
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T O Kleine  W Mohr 《Experientia》1979,35(1):47-48
In calf rib cartilage, about one half of total hyaluronate is soluble with guanidinium hydrochloride, the other half only after collagenase treatment. Evidence is presented for its pericellular and intracellular distribution.  相似文献   
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709.
Myosin VI is an actin-based motor that moves backwards.   总被引:15,自引:0,他引:15  
Myosins and kinesins are molecular motors that hydrolyse ATP to track along actin filaments and microtubules, respectively. Although the kinesin family includes motors that move towards either the plus or minus ends of microtubules, all characterized myosin motors move towards the barbed (+) end of actin filaments. Crystal structures of myosin II (refs 3-6) have shown that small movements within the myosin motor core are transmitted through the 'converter domain' to a 'lever arm' consisting of a light-chain-binding helix and associated light chains. The lever arm further amplifies the motions of the converter domain into large directed movements. Here we report that myosin VI, an unconventional myosin, moves towards the pointed (-) end of actin. We visualized the myosin VI construct bound to actin using cryo-electron microscopy and image analysis, and found that an ADP-mediated conformational change in the domain distal to the motor, a structure likely to be the effective lever arm, is in the opposite direction to that observed for other myosins. Thus, it appears that myosin VI achieves reverse-direction movement by rotating its lever arm in the opposite direction to conventional myosin lever arm movement.  相似文献   
710.
Summary The real density of a porous matter is determined by means of the equationV=a – b · s, whereV is the volume of imbibition, related to the surface tension (s) of the liquid, while a and b are experimental coefficients. The examination of this equation led to the conclusion that a represents the total porous volume, while b is a function of the mean porous radius. The knowledge of the equation related to a given substance, allows to calculate immediately the real density.Furthermore the ratiob/a defines a characteristics porosity index.  相似文献   
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