首页 | 本学科首页   官方微博 | 高级检索  
文章检索
  按 检索   检索词:      
出版年份:   被引次数:   他引次数: 提示:输入*表示无穷大
  收费全文   120篇
  免费   16篇
  国内免费   1篇
  2019年   2篇
  2017年   1篇
  2016年   3篇
  2015年   2篇
  2014年   1篇
  2013年   2篇
  2012年   11篇
  2011年   5篇
  2010年   5篇
  2009年   3篇
  2008年   5篇
  2007年   5篇
  2006年   8篇
  2005年   6篇
  2004年   5篇
  2003年   3篇
  2002年   7篇
  2001年   17篇
  2000年   7篇
  1999年   5篇
  1998年   4篇
  1997年   5篇
  1995年   1篇
  1994年   2篇
  1993年   3篇
  1992年   2篇
  1991年   2篇
  1990年   2篇
  1989年   1篇
  1985年   2篇
  1983年   2篇
  1982年   2篇
  1981年   2篇
  1980年   1篇
  1979年   1篇
  1977年   1篇
  1954年   1篇
排序方式: 共有137条查询结果,搜索用时 31 毫秒
1.
Realized heritability (h 2) of resistance to dicrotophos in greenhouse whitefly,Trialeurodes vaporariorum Westwood, was estimated from a laboratory selection experiment. Five generations of selection increased the LC50 approximately 13-fold. Estimatedh 2 of resistance to dicrotophos was 0.40 when calculated with the method of Tabashnik (1992) and 0.35 with the method of Tanaka & Noppun (1989). These results suggest that 35 to 40% of the total phenotypic variation in resistance was caused by additive genetic variation. For thirteen previously reported estimates ofh 2 of insecticide resistance in other insect pests, the mean was 0.29. The relatively highh 2 of dicrotophos resistance forT. vaporariorum is consistent with rapid resistance development in field populations.  相似文献   
2.
Resistance to the insecticidal proteins produced by the soil bacterium Bacillus thuringiensis (Bt) has been documented in more than a dozen species of insect. Nearly all of these cases have been produced primarily by selection in the laboratory, but one pest, the diamondback moth (Plutella xylostella), has evolved resistance in open-field populations. Insect resistance to Bt has immediate and widespread significance because of increasing reliance on Bt toxins in genetically engineered crops and conventional sprays. Furthermore, intense interest in Bt provides an opportunity to examine the extent to which evolutionary pathways to resistance vary among and within species of insect. One mode of resistance to Bt is characterized by more than 500-fold resistance to at least one Cry1A toxin, recessive inheritance, little or no cross-resistance to Cry1C, and reduced binding of at least one Cry1A toxin. Analysis of resistance to Bt in the diamondback moth and two other species of moth suggests that although this particular mode of resistance may be the most common, it is not the only means by which insects can attain resistance to Bt.  相似文献   
3.
The piggyBac transposable element, originally discovered in the cabbage looper, Trichoplusia ni, has been used widely in genetic engineering of insects including the pink bollworm, Pectinophora gossypiella, a major lepidopteran pest of cotton. Previously, we identified an intact copy of a piggyBac-like element (PLE) in pink bollworm, designated as PgPLE1.1. Here we report global variation in the occurrence and sequence of PgPLE1.1 and its flanking sequences. Low to high frequency of the PgPLE1.1 insertion was observed in populations from USA, Mexico, China, India, and Israel, while there is no PgPLE1.1 insertion in the populations from Australia. Investigation of the five haplotypes of PgPLE1.1, their frequency, and the flanking sequences of PgPLE1.1 revealed significant differences of the populations from Australia and China compared to other global populations, although recent occurrences of extensive gene flows among global populations were evident.  相似文献   
4.
Considerable effort has been expended to determine if crops genetically engineered to produce Bacillus thuringiensis (Bt) toxins harm non‐target arthropods. However, if Bt crops kill target pests and thereby reduce insecticide use, this could benefit some non‐target arthropods. We analyzed data from 21 commercial cotton fields in Arizona to test the effects of Bt cotton on insecticide use and abundance of two non‐target arthropods, the generalist predators Chrysoperla carnea Stephens (Neuroptera: Chrysopidae) and Orius tristicolor (White) (Heteroptera: Anthocoridae). The number of insecticide sprays was more than double for non‐Bt cotton compared with Bt cotton that produced Cry1Ac. The abundance of both predators was negatively associated with the number of insecticide sprays, although significantly so for only one of two sampling periods for each species tested. With the effects of insecticides statistically removed, field type (Bt or non‐Bt cotton) did not affect the abundance of either predator. Accordingly, without adjusting for the effects of insecticide sprays, the abundance of C. carnea was higher in Bt cotton fields than in non‐Bt cotton fields, but significantly so during only one of two sampling periods. The abundance of O. tristicolor did not differ between field types, even without adjusting for effects of insecticide sprays. The results indicate that Bt crops can affect insecticide use, which in turn can affect the relative abundance of non‐target arthropods in Bt and non‐Bt fields. Thus, environmental impact assessment should incorporate analysis of the effects of transgenic crops on management practices, as well as evaluation of the direct effects of such crops.  相似文献   
5.
Ophioglossum petiolatum . Unlike Angiopteris (Marattiales), which is monoplastidic, Ophioglossum undergoes polyplastidic meiosis like members of the fern-seed plant clade. The meiotic spindle is distinctly multipolar in origin and is consolidated into a bipolar spindle that is variously twisted and curved to accommodate the large number of chromosomes. Although a phragmoplast forms after first meiosis, no wall is deposited. Instead, an organelle band consisting of intermingled plastids and mitochondria is formed in the equatorial region between the dyad domains. Following second meiosis, a complex of phragmoplasts forms among sister and non-sister nuclei. Cell plates are deposited first between sister nuclei and then in the region of the organelle band resulting in a tetrad of spores each with a equal allotment of organelles. Received 30 January 2001/ Accepted in revised form 24 April 2001  相似文献   
6.
Widespread planting of transgenic insecticidal (TI) crops for pest control has raised concerns about potential harm to nontarget arthropods. Because the first generation of TI crops produce single Bacillus thuringiensis (Bt) toxins causing little or no harm to most nontarget arthropods, they are not likely to cause such negative effects. However, varieties of transgenic crops with multiple Bt toxins or novel toxins might be more harmful to nontarget arthropods. Field studies assessing nontarget effects typically compare the relative abundance of nontarget arthropods in TI crop fields to non-TI crop fields. However, for nontarget arthropods that are killed by TI crops, such analyses may miss important effects. Results from simulations of a spatially explicit population dynamics model show that large-scale planting of TI crops could cause three types of negative effects on nontarget arthropods that suffer mortality caused by TI crops: (1) lower abundance in TI fields than non-TI fields with little or no effect on abundance in non-TI fields, (2) lower abundance in TI fields than non-TI fields and decreased abundance in non-TI fields, and (3) loss of the arthropod from TI and non-TI fields. Simulation results show that factors increasing the potential for negative effects of TI crops on nontarget arthropods in non-TI fields are low reproduction, high emigration, high adoption of TI crops, high mortality in TI fields, insecticide sprays, and rotation of TI and non-TI fields. The results suggest that risk assessment should consider the regional distribution of transgenic crops and the life history traits of nontarget arthropods to identify the most vulnerable regions and nontarget species.  相似文献   
7.
Toxins from Bacillus thuringiensis (Bt) are widely used for pest control. In particular, Bt toxin Cry1Ac produced by transgenic cotton kills some key lepidopteran pests. We found that Cry1Ac binds to recombinant peptides corresponding to extracellular regions of a cadherin protein (BtR) in a major cotton pest, pink bollworm (Pectinophora gossypiella) (PBW). In conjunction with previous results showing that PBW resistance to Cry1Ac is linked with mutations in the BtR gene, the results reported here support the hypothesis that BtR is a receptor for Cry1Ac in PBW. Similar to other lepidopteran cadherins that bind Bt toxins, BtR has at least two Cry1Ac-binding domains in cadherin-repeat regions 10 and 11, which are immediately adjacent to the membrane proximal region. However, unlike cadherins from Manduca sexta and Bombyx mori, toxin binding was not seen in regions more distal from the membrane proximal region. We also found that both the protoxin and activated toxin forms of Cry1Ac bound to recombinant BtR fragments, suggesting that Cry1Ac activation may occur either before or after receptor binding.  相似文献   
8.
Resistance of greenhouse-selected strains of the cabbage looper, Trichoplusia ni, to Bacillus thuringiensis subsp. kurstaki was countered by a hybrid strain of B. thuringiensis and genetically modified toxins Cry1AbMod and Cry1AcMod, which lack helix α-1. Resistance to Cry1AbMod and Cry1AcMod was >100-fold less than resistance to native toxins Cry1Ab and Cry1Ac.Insecticidal proteins from Bacillus thuringiensis are used widely for pest control, but evolution of resistance by pests can reduce their efficacy (3, 4, 6, 14). Resistance to B. thuringiensis toxins has been reported in field populations of four species of Lepidoptera, one species in response to sprays (3, 14) and three species in response to transgenic crops (10, 15, 16). Here, we focus on understanding and countering resistance to sprays of Bacillus thuringiensis subsp. kurstaki that evolved in commercial greenhouse populations of the cabbage looper, Trichoplusia ni (7, 17).We compared responses to single toxins and formulations of B. thuringiensis by two resistant strains (GipBtR and GlenBtR) and two related susceptible strains (GipS and GlenS) of T. ni. All four strains were started by the collection of larvae in 2001 from commercial greenhouses near Vancouver in British Columbia, Canada (7). Resistance evolved in the greenhouses in response to repeated sprays of DiPel (7), a formulation of B. thuringiensis subsp. kurstaki strain HD1 containing Cry1Aa, Cry1Ab, Cry1Ac, and Cry2Aa (9). Previously reported concentrations required to kill 50% of larvae (LC50s) indicated that, relative to a susceptible laboratory strain, initial resistance to DiPel was 113-fold in the Gip population (labeled T2c in reference 7) and 24-fold in the Glen population (labeled P5 in reference 7).We reared larvae on a wheat germ diet (5) at 26°C on a light-to-dark schedule of 16 h:8 h. GipS and GlenS were reared on diet without B. thuringiensis toxins, which allowed resistance to decline (7). To maintain resistance, GipBtR and GlenBtR were reared each generation on a diet treated with 5 or 10 mg of DiPel WP (Abbott Laboratories, Ontario, Canada) per milliliter of diet (7). In bioassays, groups of five third-instar larvae were put in 60-ml plastic cups containing diet, and mortality was assessed after 3 days by gently probing larvae for movement.We used diet overlay bioassays to evaluate the toxicity to GipBtR and GipS of the protoxin forms of Cry1Ab, Cry1Ac, Cry1AbMod, and Cry1AcMod produced in B. thuringiensis strains (12). Cry1AbMod and Cry1AcMod are genetically engineered variants of Cry1Ab and Cry1Ac, respectively, each lacking 56 amino acids from the amino-terminal region, including helix α-1 (12). An 80-μl aliquot containing distilled water and toxin was dispensed evenly over the surfaces of 2 ml of diet (a mean surface area of 7.1 cm2) and allowed to dry. Fifty to 200 larvae from each strain were tested at five to eight concentrations of each toxin.We used diet incorporation bioassays (7) to evaluate the toxicities of DiPel and Agree WG (Certis, Columbia, MD) to GipS, GipBtR, GlenS, and GlenBtR. Agree is a formulation of hybrid strain GC91, which was created from the conjugation-like transfer of a plasmid from B. thuringiensis subsp. kurstaki strain HD191 into B. thuringiensis subsp. aizawai strain HD135, and it contains Cry1Ac, Cry1C, and Cry1D (1, 8). DiPel and Agree were diluted in distilled water and mixed into diet (7). Twenty-five to 50 larvae from each strain were tested at six to seven concentrations of DiPel and Agree.We used probit analysis (13) to estimate the LC50s and their 95% fiducial limits (FL), as well as the slopes of concentration-mortality lines and their standard errors. The mortality of larvae fed treated diet was not adjusted for the mortality of control larvae on untreated diet, because the control mortality was low (mean, 3.6%; range, 0 to 16%). LC50s with nonoverlapping 95% FL are significantly different. Resistance ratios were calculated as the LC50 of a resistant strain (GipBtR or GlenBtR) divided by the LC50 of its susceptible counterpart (GipS or GlenS).The genetically modified toxins Cry1AbMod and Cry1AcMod were much more effective than the native toxins Cry1Ab and Cry1Ac against larvae of T. ni from the resistant GipBtR strain (Table (Table1).1). Resistance ratios of GipBtR were 580 for Cry1Ab and 1,400 for Cry1Ac but only 5.5 for Cry1AbMod and 9.3 for Cry1AcMod (Table (Table1).1). Against GipBtR, the LC50 was 53-fold higher for Cry1Ab than for Cry1AbMod and 11-fold higher for Cry1Ac than for Cry1AcMod (Table (Table1).1). Against GipS, however, the LC50 was 2-fold higher for Cry1AbMod than for Cry1Ab and 14-fold higher for Cry1AcMod than for Cry1Ac (Table (Table11).

TABLE 1.

Responses of resistant (GipBtR and GlenBtR) and susceptible (GipS and GlenS) strains of T. ni to native toxins (Cry1Ab and Cry1Ac), modified toxins (Cry1AbMod and Cry1AcMod), and formulations (DiPel and Agree)
Toxin or formulationStrainNo. of larvaeLC50 (95% FL)aSlope ± SEResistance ratiob
Cry1AbGipBtR400180 (59-2,900)c0.41 ± 0.09580
GipS3760.30 (0.21-0.41)0.56 ± 0.06
Cry1AbModGipBtR4003.4 (2.6-4.6)0.52 ± 0.055.5
GipS3750.62 (0.51-0.75)0.99 ± 0.09
Cry1AcGipBtR60054 (35-110)d0.50 ± 0.071,400
GipS1,4500.038 (0.031-0.046)0.44 ± 0.02
Cry1AcModGipBtR6005.1 (4.4-5.8)0.85 ± 0.069.3
GipS1,1450.55 (0.47-0.64)0.60 ± 0.03
DiPelGipBtR12566 (21-420,000)e0.43 ± 0.17370
GipS1250.18 (0.08-0.27)0.73 ± 0.16
AgreeGipBtR3004.9 (3.6-7.7)0.81 ± 0.129.9
GipS3000.49 (0.42-0.57)1.4 ± 0.14
DiPelGlenBtR1503.2 (2.7-3.9)1.9 ± 0.2726
GlenS1250.13 (0.05-0.17)1.5 ± 0.44
AgreeGlenBtR3002.0 (1.7-2.4)1.2 ± 0.125.9
GlenS2950.34 (0.29-0.39)1.4 ± 0.17
Open in a separate windowaConcentration that killed 50% and its 95% FL in mg protoxin per cm2 diet for toxins and mg formulation per ml of diet for DiPel and Agree.bLC50 of the resistant strain divided by the LC50 of the related susceptible strain for each toxin or formulation.cTotal of 17% mortality at the highest toxin concentration tested (17 mg protoxin/cm2 diet).dTotal of 35% mortality at the highest toxin concentration tested (23 mg protoxin/cm2 diet).eTotal of 24% mortality at the highest toxin concentration tested (15 mg DiPel/ml diet).Agree was more effective than DiPel against the two resistant strains GipBtR and GlenBtR (Table (Table1).1). Resistance ratios for DiPel were 370 for GipBtR and 26 for GlenBtR compared to resistance ratios for Agree, which were 9.9 for GipBtR and 5.9 for GlenBtR (Table (Table1).1). For the two resistant strains, LC50s were higher for DiPel than for Agree (13-fold higher against GipBtR and 1.6-fold higher against GlenBtR) (Table (Table1).1). Conversely, against the two susceptible strains, the LC50s were higher for Agree than for DiPel (2.7-fold higher against GipBtR and 2.6-fold higher against GlenBtR).The resistant GipBtR strain examined here (Table (Table1)1) and the resistant GLEN-Cry1Ac-BCS strain of T. ni studied by Wang et al. (17) had >500-fold resistance to Cry1Ab and Cry1Ac. Both GipBtR and GLEN-Cry1Ac-BCS were derived from greenhouse populations of T. ni that had been sprayed repeatedly with DiPel (7, 17), which contains Cry1Ab and Cry1Ac but not Cry1C or Cry1D (9). The GLEN-Cry1Ac-BCS strain had cross-resistance of only 2.5-fold to Cry1C and 2.4-fold to Cry1D (17). Agree contains Cry1C and Cry1D (8), which probably boosted its efficacy against GipBtR and GlenBtR (Table (Table11).The results here with Cry1AbMod and Cry1AcMod extend those of previous work indicating that modified toxins killed larvae of Manduca sexta in which susceptibility to Cry1Ab was decreased via RNA interference and also killed larvae of Pectinophora gossypiella that had laboratory-selected, genetically based resistance to Cry1Ab and Cry1Ac (12). The efficacy of Cry1AbMod and Cry1AcMod against greenhouse-selected T. ni suggests that the modified toxins may be useful against resistance that evolves in commercial agricultural settings. The results here also increase the number of lepidopteran species against which the modified toxins were effective to three, with each species representing a different family (Sphingidae, Gelechiidae, and Noctuidae). In the two other species, decreased susceptibility to native Cry1A toxins was mediated by alterations in a cadherin protein that binds Cry1Ac (2, 11, 12), whereas the role of cadherin in T. ni resistance has not been demonstrated or excluded.Similar to patterns observed with P. gossypiella (12), modified toxins were more effective than native toxins against resistant T. ni larvae, but native toxins were more effective than modified toxins against susceptible T. ni larvae (Table (Table1).1). This raises the intriguing possibility that combinations of native and modified toxins might be especially effective against populations with a mixture of susceptible and resistant individuals. In any case, the Cry1AMod toxins and hybrid B. thuringiensis products applied either jointly or separately may be useful for countering or delaying evolution of resistance in T. ni. However, further work is needed to determine how native and modified toxins interact when used in combination and how modified toxins perform in the greenhouse and field.  相似文献   
9.
We evaluated effects of the insect growth regulator pyriproxyfen on Bemisia tabaci (Gennadius) (B biotype) (Hemiptera: Aleyrodidae) males and females in laboratory bioassays. Insects were treated with pyriproxyfen as either eggs or nymphs. In all tests, the LC50 for a laboratory-selected resistant strain was at least 620 times greater than for an unselected susceptible strain. When insects were treated as eggs, survival did not differ between males and females of either strain. When insects were treated as nymphs, survival did not differ between susceptible males and susceptible females, but resistant males had higher mortality than resistant females. The dominance of resistance decreased as pyriproxyfen concentration increased. Resistance was partially or completely dominant at the lowest concentration tested and completely recessive at the highest concentration tested. Hybrid female progeny from reciprocal crosses between the susceptible and resistant strains responded alike in bioassays; thus, maternal effects were not evident. Rapid evolution of resistance to pyriproxyfen could occur if individuals in field populations had resistance with traits similar to those of the laboratory-selected strain examined here.  相似文献   
10.
Crops genetically engineered to produce Bacillus thuringiensis toxins for insect control can reduce use of conventional insecticides, but insect resistance could limit the success of this technology. The first generation of transgenic cotton with B. thuringiensis produces a single toxin, Cry1Ac, that is highly effective against susceptible larvae of pink bollworm (Pectinophora gossypiella), a major cotton pest. To counter potential problems with resistance, second-generation transgenic cotton that produces B. thuringiensis toxin Cry2Ab alone or in combination with Cry1Ac has been developed. In greenhouse bioassays, a pink bollworm strain selected in the laboratory for resistance to Cry1Ac survived equally well on transgenic cotton with Cry1Ac and on cotton without Cry1Ac. In contrast, Cry1Ac-resistant pink bollworm had little or no survival on second-generation transgenic cotton with Cry2Ab alone or with Cry1Ac plus Cry2Ab. Artificial diet bioassays showed that resistance to Cry1Ac did not confer strong cross-resistance to Cry2Aa. Strains with >90% larval survival on diet with 10 microg of Cry1Ac per ml showed 0% survival on diet with 3.2 or 10 microg of Cry2Aa per ml. However, the average survival of larvae fed a diet with 1 microg of Cry2Aa per ml was higher for Cry1Ac-resistant strains (2 to 10%) than for susceptible strains (0%). If plants with Cry1Ac plus Cry2Ab are deployed while genes that confer resistance to each of these toxins are rare, and if the inheritance of resistance to both toxins is recessive, the efficacy of transgenic cotton might be greatly extended.  相似文献   
设为首页 | 免责声明 | 关于勤云 | 加入收藏

Copyright©北京勤云科技发展有限公司  京ICP备09084417号