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19 results for “Chromolaena”
Figure 1 in Comparing the effectiveness of pitfall traps and active sampling methods for ants and spiders in a Chromolaena odorata invaded site
Figure 1. Individual-based rarefaction/extrapolation sampling curves representing ant (A) and spider (B) sampling size collected by both active and passive sampling strategies used at Buffelsdraai Conservancy [AHC = aerial hand collection above the knee; AHCCRYPTIC = aerial hand collection below the knee cryptic; AHCOBV = aerial hand collection below the knee noticeable or non-cryptic; BB = vegetation beating].
Figure 4 in Comparing the effectiveness of pitfall traps and active sampling methods for ants and spiders in a Chromolaena odorata invaded site
Figure 4. Non-metric Multi-Dimensional Scaling (NMDS) representing the similarity of ant (A) and spider (B) species sampled by active and passive sampling techniques. The count abundance was transformed using square root and the data was analysed using Bray-Curtis similarity to produce a two-dimensional plot with a stress level = 0.07 and = 0.01, respectively [AHC CRYPTIC = aerial hand collection below the knee cryptic; AHC OBV = aerial hand collection below the knee noticeable or non-cryptic; AHC = aerial hand collection above the knee; BB = vegetation beating].
Figure 3 in Comparing the effectiveness of pitfall traps and active sampling methods for ants and spiders in a Chromolaena odorata invaded site
Figure 3. Spider species richness collected using active and passive sampling techniques in Buffelsdraai Conservancy [AHC = aerial hand collection above the knee; AHC CRYPTIC = aerial hand collection below the knee cryptic; AHC OBV = aerial hand collection below the knee noticeable or non-cryptic; BB = vegetation beating].
FIGURES 7–8. Carmenta chromolaenae Eichlin, n in Carmenta chromolaenae Eichlin, a new species (Lepidoptera: Sesiidae) for the biological control of C hromolaena odorata (L.) King & Robinson (Asteraceae)
FIGURES 7–8. Carmenta chromolaenae Eichlin, n. sp. 7. Larval chaetotaxy (lateral view, T1-A10). 8. Larval head with chaetotaxy (frontal view) (OSD).
FIGURES 5–6 in Carmenta chromolaenae Eichlin, a new species (Lepidoptera: Sesiidae) for the biological control of C hromolaena odorata (L.) King & Robinson (Asteraceae)
FIGURES 5–6. Carmenta chromolaenae Eichlin, new sp. 6. Female genitalia. 7. Male genitalia (aedeagus missing), separated left valve (TDE).
FIGURES 1–4. Carmenta chromolaenae Eichlin, n in Carmenta chromolaenae Eichlin, a new species (Lepidoptera: Sesiidae) for the biological control of C hromolaena odorata (L.) King & Robinson (Asteraceae)
FIGURES 1–4. Carmenta chromolaenae Eichlin, n. sp. 1a. Holotype male. 1b. Paratype female. 2. Late instar larva (LWS). 3. Host plant, Chromolaena odorata, showing damage from Carmenta chromolaenae Eichlin, new sp. (LWS). 4. Eggs on host plant (LWS).
FIGURES 9–10. Carmenta chromolaenae Eichlin, n in Carmenta chromolaenae Eichlin, a new species (Lepidoptera: Sesiidae) for the biological control of C hromolaena odorata (L.) King & Robinson (Asteraceae)
FIGURES 9–10. Carmenta chromolaenae Eichlin, n. sp., male pupa. 9. Ventral view. 10. Dorsal view (OSD).
FIGURE 2 in Murichromolaenicola thailandensis sp. nov. (Phaeosphaeriaceae, Dothideomycetes) from Chromolaena odorata (Asteraceae) in northern Thailand
FIGURE 2. Murichromolaenicola thailandensis (holotype, MLFU 23-0324) a, b Appearance of conidiomata on host substrate. c Section through conidioma. d Peridium. e Conidia produced from phialidic conidiogenous cells. f–i Conidia. j–k Conidia with gelatinous cap in Indian ink. l Germinating conidium. m Culture on PDA (left: front view, right: reverse view). n Culture on MEA (left: front view, right: reverse view). Scale bars a, b = 500 µm, c = 100 µm, d = 20 µm, e = 5 µm, f–l = 10 µm.
FIGURE 1 in Murichromolaenicola thailandensis sp. nov. (Phaeosphaeriaceae, Dothideomycetes) from Chromolaena odorata (Asteraceae) in northern Thailand
FIGURE 1. Phylogram generated from maximum likelihood analysis based on combined dataset of LSU, ITS, SSU, tef1-α and rpb2 sequence data. Bootstrap support values for ML equal to or greater than 75% and BYPP equal to or greater than 0.95 are given at the nodes. Newly generated sequences are in dark red bold and type species are in bold.
Figure 2 in Comparing the effectiveness of pitfall traps and active sampling methods for ants and spiders in a Chromolaena odorata invaded site
Figure 2. Ant species richness collected using active and passive sampling techniques in Buffelsdraai Conservancy [AHC = aerial hand collection above the knee; AHC CRYPTIC = aerial hand collection below the knee cryptic; AHC OBV = aerial hand collection below the knee noticeable or non-cryptic; BB = vegetation beating].
Supplementary material 1 from: Yusuf H, Kamarlis RK, Yusni Y, Fahriani M (2021) The anticancer activity of ethanol extract of Chromolaena odorata leaves in 7,12-Dimethylbenz[a]anthracene in (DMBA) induced breast cancer Wistar rats (Rattus novergicus). Pharmacia 68(2): 493-499. https://doi.org/10.3897/pharmacia.68.e63956
Table S1
Data from: High-density native-range species affects the invasive plant Chromolaena odorata more strongly than species from its invasive range
Invasive plant species often form dense mono-dominant stands in areas they have invaded, while having only sparse distribution in their native ranges, and the reasons behind this phenomenon are a key point of research in invasive species biology. Differences in species composition between native and invasive ranges may contribute to the difference in distribution status. In this study, we found that the high-density condition had a more negative effect on C. odorata than the low-density condition when co-grown with neighbor plants from its native range in Mexico, while this pattern was not in evidence when it was grown with neighbors from its invasive range in China. Different competitive ability and coevolutionary history with C. odorata between native-range neighbors and invasive-range neighbors may lead to the inconsistent patterns.
Figure 5 from: Yusuf H, Kamarlis RK, Yusni Y, Fahriani M (2021) The anticancer activity of ethanol extract of Chromolaena odorata leaves in 7,12-Dimethylbenz[a]anthracene in (DMBA) induced breast cancer Wistar rats (Rattus novergicus). Pharmacia 68(2): 493-499. https://doi.org/10.3897/pharmacia.68.e63956
Figure 5 The means of AgNOR point on breast cancer tissue of experimental animals.
Figure 2 from: Yusuf H, Kamarlis RK, Yusni Y, Fahriani M (2021) The anticancer activity of ethanol extract of Chromolaena odorata leaves in 7,12-Dimethylbenz[a]anthracene in (DMBA) induced breast cancer Wistar rats (Rattus novergicus). Pharmacia 68(2): 493-499. https://doi.org/10.3897/pharmacia.68.e63956
Figure 2 The means of nodules volume observed on T1, T6, and T1.
Figure 1 from: Yusuf H, Kamarlis RK, Yusni Y, Fahriani M (2021) The anticancer activity of ethanol extract of Chromolaena odorata leaves in 7,12-Dimethylbenz[a]anthracene in (DMBA) induced breast cancer Wistar rats (Rattus novergicus). Pharmacia 68(2): 493-499. https://doi.org/10.3897/pharmacia.68.e63956
Figure 1 The means of total nodules observed on T5, T6, T11, and T17.
Figure 4 from: Yusuf H, Kamarlis RK, Yusni Y, Fahriani M (2021) The anticancer activity of ethanol extract of Chromolaena odorata leaves in 7,12-Dimethylbenz[a]anthracene in (DMBA) induced breast cancer Wistar rats (Rattus novergicus). Pharmacia 68(2): 493-499. https://doi.org/10.3897/pharmacia.68.e63956
Figure 4 The means of body weight of experimental animals observed during the experiment.
Figure 3 from: Yusuf H, Kamarlis RK, Yusni Y, Fahriani M (2021) The anticancer activity of ethanol extract of Chromolaena odorata leaves in 7,12-Dimethylbenz[a]anthracene in (DMBA) induced breast cancer Wistar rats (Rattus novergicus). Pharmacia 68(2): 493-499. https://doi.org/10.3897/pharmacia.68.e63956
Figure 3 The means of nodules weight observed on week 16th.
Data from: High-density native-range species affects the invasive plant Chromolaena odorata more strongly than species from its invasive range
Open the record for dataset details and reuse information.
Study of gene expression in Chromolaena odorata cuttings using a combination of RNA-seq and digital gene expression analysis
GEO Series GSE42283. Chromolaena odorata. 2 samples. Type: Expression profiling by high throughput sequencing.
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