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71.
本文通过层次分析法(Analytical Hierarchy Process,AHP),结合门源县当前畜禽疫病防治现状,对影响畜禽病防治的制约条件进行了研究,表明群众防疫意识的淡薄和防疫费收取困难是首要制约因素,基础设施建设和队伍建设滞后居次位,监督工作较弱也不容忽视。 相似文献
72.
以水貂阿留申病病毒对流免疫电泳(CIEP)细胞抗原为材料,经酶印迹(Westemblotting)测定,水貂阿留申病病毒CIEI细胞抗原与多克隆阳性血清反应,分子量为60000,50000和25000,而与CIEP阴性的抗水貂阿留申病病毒的单克隆抗体(Y—2—9)反应,分子量为60000,50000.因此初步确定水貂阿留申病病毒CIEP细胞抗原决定族位于分子25000蛋白上. 相似文献
73.
2种典型固体表面铺展剂SDS和TX100混合水溶液,无论在其表面层或在混合胶团中两组分之间均存在一定程度的相互作用,使得以廉价的SDS为主的溶液中加入少许TX100组成的复配体系表面活性提高,在植物叶面上的润湿性能改善,并从理论上计算了其相互作用参数,初步解释了实验现象,上述结果不仅对指导优良植物叶面铺展剂配方具有指导意义,也预示了潜在的实用价值. 相似文献
74.
CTGF, a member of the CCN family of immediate early genes, is a recently discovered profibrotic growth factor, which is involved in many pathophysiologic procedures. CTGF acts as a downstream effector of TGF-β acting on interstitial cells to enhance the progression of fibrotic renal diseases. It has been shown that CTGF gene expression can be induced or blocked by some kinds of cytokine and drugs. It is an interesting candidate target for future intervention strategies of renal interstitial fibrosis. 相似文献
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引种草坪草的适应性评价及病害和草害 总被引:10,自引:4,他引:6
1997~1998年,对引自丹麦的草地早熟禾、黑麦草、高羊茅、羊茅、紫羊茅、匍匐剪股颖和白三叶等草坪草的品种在兰州市进行了适应性评价。观测、记载了草坪的成坪期、密度、盖度、颜色、质地、越冬率、越夏率、返青期、枯黄期、青缘期等性状;调查了病害的发病率,并对病株进行了病原物的分离、培养和鉴定,统计了各品种带菌率和真菌的分离率;调查了草坪建植与生长过程中的杂草种类和危害程度。结果表明:除Pichwick和Juventus黑麦草以外的所有参试品种均可在兰州地区种植。其中,白三叶的综合性状最好,具有质地柔滑、成坪较快、覆盖度高、枯黄期晚等特点;其次为ORNAMENTAL和SPORT2个混配型草种,成坪快,但抗病性较差;其余各品种建坪后表现好,但成坪速度较慢。草坪生长过程中的主要病害为交链孢叶斑病、离蠕孢叶斑病、德氏霉叶斑病、壳二孢叶枯病、壳二孢叶斑病、镰刀菌枯萎病和叶点霉叶斑病。苗期主要杂革为狗尾草和田旋花。 相似文献
80.
Sugarcane yields have been severely reduced by white leaf and grassy shoot phytoplasma diseases in many parts of Asia. Australian sugarcane crops are not known to be affected by these diseases, but plant pathogenic phytoplasmas found in other introduced and native grasses in northern Australia could pose a serious threat to the Australian sugarcane industry. To further evaluate this threat, leaves from plants of 20 grass species, with and without symptoms, were collected during field surveys in northern Australia and tested to determine whether phytoplasmas were present and whether symptoms were reliable indicators of phytoplasma presence. Molecular tools were used to detect and characterize phytoplasmas. Four different phytoplasmas were found in seven grass species known to grow near healthy sugarcane crops. All the phytoplasmas were closely related to sugarcane white leaf phytoplasma (SCWL), one of the phytoplasmas that causes disease in sugarcane in Asia. Four of the host plant species and two of the phytoplasmas were new records. The relationship between symptoms and phytoplasma presence was poor. Because some plants with symptoms tested negative for phytoplasmas, a series of surveys was carried out in which flowers, leaves, roots and stems of two known host plant species, Whiteochloa cymbiformis and Sorghum stipoideum, were tested separately on nine occasions during two wet seasons. This was done to investigate the distribution of phytoplasmas within plants over time. Results showed that spatial and temporal variation of phytoplasmas occurred in these two host plant species. Hence, evaluation of disease distribution within a region requires repeated testing of all plant parts from plants without symptoms, as well as those with symptoms. To date, there is no report of a vector capable of transmitting to Australian sugarcane the phytoplasmas found in grasses in this study. If one is present, or occurs in the future, then native and introduced grasses could constitute a large reservoir of phytoplasma for vectors to draw on. This work provides an early warning for the sugarcane industry that the potential for infection exists. 相似文献