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29 results for “litchi”
Figure 2 in Description of two new Quadrastichus (Hymenoptera: Eulophidae) reared from Litchiomyia chinensis (Diptera: Cecidomyiidae) on commercial lychee (Litchi chinensis; Sapindaceae) in Taiwan
Figure 2. Quadrastichus lasallei, female: a, anterolateral head; b, dorsal mesosoma; c, propodeum; g, lateral flagellum; h, lateral clava. Q. lasallei, male: d, lateral flagellum; e, lateral clava; f, lateral scape.
Figure 1 in Description of two new Quadrastichus (Hymenoptera: Eulophidae) reared from Litchiomyia chinensis (Diptera: Cecidomyiidae) on commercial lychee (Litchi chinensis; Sapindaceae) in Taiwan
Figure 1. (a) Quadrastichus johnlasallei, lateral habitus, female. (b) Quadrastichus lasallei, lateral habitus, female.
Fig. 2 in Erratum: Biological studies of the Oligonychus litchii (Trombidiformes: Tetranychidae) on four commercial litchi cultivars (Florida Entomologist (2019) 102:2 (418-424) DOI: 10.1653/024.102.0220)
Fig. 2. Age-stage-specific survival rate of O. litchii reared on different litchi cultivars at 25 ± 1 °C, 65 to 80% RH, and a photoperiod of 14:10 h (L:D).
Fig. 1 in Erratum: Biological studies of the Oligonychus litchii (Trombidiformes: Tetranychidae) on four commercial litchi cultivars (Florida Entomologist (2019) 102:2 (418-424) DOI: 10.1653/024.102.0220)
Fig. 1. Life stages of Oligonychus litchi: (A) egg; (B) larva; (C) protonymph; (D) deutonymph; (E) adult male; (F) adult female.
Fig. 3 in Erratum: Biological studies of the Oligonychus litchii (Trombidiformes: Tetranychidae) on four commercial litchi cultivars (Florida Entomologist (2019) 102:2 (418-424) DOI: 10.1653/024.102.0220)
Fig. 3. Age-specific survival rate (lx), age-specific fecundity (mx) of O. litchii reared on different litchi cultivars at 25 ± 1 °C, 65 to 80% RH, and a photoperiod of 14:10 h (L:D).
Data from: Perceived and actual ecosystem services by fruit bats, birds, and primates in litchi orchards agroecosystems
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Data from: Identifying litchi (Litchi chinensis Sonn.) cultivars and their genetic relationships using single nucleotide polymorphism (SNP) markers
Litchi is an important fruit tree in tropical and subtropical areas of the world. However, there is widespread confusion regarding litchi cultivar nomenclature and detailed information of genetic relationships among litchi germplasm is unclear. In the present study, the potential of single nucleotide polymorphism (SNP) for the identification of 96 representative litchi accessions and their genetic relationships in China was evaluated using 155 SNPs that were evenly spaced across litchi genome. Ninety SNPs with minor allele frequencies above 0.05 and a good genotyping success rate were used for further analysis. A relatively high level of genetic variation was observed among litchi accessions, as quantified by the expected heterozygosity (He = 0.305). The SNP based multilocus matching identified two synonymous groups, 'Heiye' and 'Wuye', and 'Chengtuo' and 'Baitangli 1'. A subset of 14 SNPs was sufficient to distinguish all the non-redundant litchi genotypes, and these SNPs were proven to be highly stable by repeated analyses of a selected group of cultivars. Unweighted pair-group method of arithmetic averages (UPGMA) cluster analysis divided the litchi accessions analyzed into four main groups, which corresponded to the traits of extremely early-maturing, early-maturing, middle-maturing, and late-maturing, indicating that the fruit maturation period should be considered as the primary criterion for litchi taxonomy. Two subpopulations were detected among litchi accessions by STRUCTURE analysis, and accessions with extremely early- and late-maturing traits showed membership coefficients above 0.99 for Cluster 1 and Cluster 2, respectively. Accessions with early- and middle-maturing traits were identified as admixture forms with varying levels of membership shared between the two clusters, indicating their hybrid origin during litchi domestication. The results of this study will benefit litchi germplasm conservation programs and facilitate maximum genetic gains in litchi breeding programs.
FIGURES 43‒50 in Immatures of Cerambycinae (Coleoptera, Cerambycidae) collected in Litchi chinensis Sonn. (Sapindaceae) in Brazil
FIGURES 43‒50. Retrachydes thoracicus (Olivier, 1790). Larva: 43, head and thorax (dorsal); 44, 47, 48, 49, right mandible (ventral, external, dorsal, internal); 45, 46, 50, left mandible (dorsal, external, internal).
FIGURES 29‒39 in Immatures of Cerambycinae (Coleoptera, Cerambycidae) collected in Litchi chinensis Sonn. (Sapindaceae) in Brazil
FIGURES 29‒39. Retrachydes thoracicus (Olivier, 1790). Larva: 29, 30, head (dorsal, ventral); 31, 32, antenna (dorsal, ventral); 33, clypeus and labrum; 34, 37, maxillae and labium (ventral, dorsal); 35, spiracle thoracic; 36, epipharynx; 38, anterior region of labium (dorsal); 39, leg.
FIGURES 26‒28 in Immatures of Cerambycinae (Coleoptera, Cerambycidae) collected in Litchi chinensis Sonn. (Sapindaceae) in Brazil
FIGURES 26‒28. Coleoxestia waterhousei (Gounelle, 1909). Adult: 26, habitus (dorsal). Larva: 27, inside larval chamber. Pupa: 28, inside pupal chamber.
FIGURES 16‒23 in Immatures of Cerambycinae (Coleoptera, Cerambycidae) collected in Litchi chinensis Sonn. (Sapindaceae) in Brazil
FIGURES 16‒23. Coleoxestia waterhousei (Gounelle, 1909). Larva: 16, 20, 21, 23, left mandible (dorsal, ventral, external, internal); 17‒19, 22 right mandible (dorsal, external, ventral, internal).
FIGURES 11‒15 in Immatures of Cerambycinae (Coleoptera, Cerambycidae) collected in Litchi chinensis Sonn. (Sapindaceae) in Brazil
FIGURES 11‒15. Coleoxestia waterhousei (Gounelle, 1909). Larva: 11‒13, habitus (dorsal, ventral, lateral); 14‒15, head and thorax (ventral, dorsal).
FIGURES 1‒10 in Immatures of Cerambycinae (Coleoptera, Cerambycidae) collected in Litchi chinensis Sonn. (Sapindaceae) in Brazil
FIGURES 1‒10. Coleoxestia waterhousei (Gounelle, 1909). Larva: 1, 2, head (dorsal, ventral); 3, 4, antenna (dorsal, ventral); 5, 6, maxilla and labium (ventral, dorsal); 7, clypeus and labrum; 8, epipharynx; 9, spiracle thoracic; 10, leg.
FIGURES 40‒42 in Immatures of Cerambycinae (Coleoptera, Cerambycidae) collected in Litchi chinensis Sonn. (Sapindaceae) in Brazil
FIGURES 40‒42. Retrachydes thoracicus (Olivier, 1790). Larva: 40‒42, habitus (dorsal, ventral, lateral).
Figs. 1–12 in First Report of an Invasive Longhorn Beetle,Aristobia reticulator(Voet) (Coleoptera: Cerambycidae) in Litchi,Litichi chinensisSonn. (Sapindaceae), in India
Figs. 1–12. Feeding activities and life stages of Aristobia reticulator. 1) Adult; 2) Adult emerging from pupal cell; 3) Freshly laid egg under bark near fork; 4) Mature larva inside tunnel; 5) Tunnels packed with frass and wooden slivers; 6) Tunnel inside branches; 7) Heavy tunneling in main stem; 8) Mature larva in pupal cell; 9) Hole for ejection of frass; 10) Excreta ejected by larvae; 11) Beetle feeding on red gram; 12) Damaged branch of red gram.
SnRNA-seq and mRNA hybridization indicate key bud events and LcFT1 and LcTFL1-2 mRNA transportability during floral transition in litchi
<p>In flowering plants, floral induction signals intersect at the shoot apex to modulate meristem determinacy and growth form. Herein, we reported a snRNA-seq analysis of litchi apical buds at different developmental stages. A total of 41,641 nuclei expressing 21,402 genes were analyzed, revealing 35 cell clusters corresponding to 12 broad populations. We signature genes associated with floral transition and propose a model that profiles the key events associated with litchi floral meristem identity by analyzing 567 identified floral meristem cells at single-cell resolution. Interestingly, snRNA-seq data indicated that all putative FT and TFL1 genes were not expressed in bud nuclei, but significant expressions of them were detected in bud samples using RT-PCR. Based on the expression patterns and gene silencing results, we highlight the critical role of LcTFL1-2 in inhibiting flowering and propose that LcFT1/LcTFL1-2 expression ratio may determine the success of flower transition. The transport of LcFT1 and LcTFL1-2 mRNA from the leaf to the shoot apical meristem was proposed based on in-situ and dot blot hybridization results. These findings allowed for a more comprehensive understanding of the molecular events that occur during the litchi floral transition, as well as the identification of new regulators.</p>
SnRNA-seq and mRNA hybridization indicate key bud events and LcFT1 and LcTFL1-2 mRNA transportability during floral transition in litchi
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Data from: Identifying litchi (Litchi chinensis Sonn.) cultivars and their genetic relationships using single nucleotide polymorphism (SNP) markers
Open the record for dataset details and reuse information.
Figure 3 in Description of two new Quadrastichus (Hymenoptera: Eulophidae) reared from Litchiomyia chinensis (Diptera: Cecidomyiidae) on commercial lychee (Litchi chinensis; Sapindaceae) in Taiwan
Figure 3. Quadrastichus johnlasallei, female: (a) anterior head; (b) dorsolateral mesosoma; (c) dorsolateral propodeum; (d) lateral flagellum; (e) lateral clava. Q. johnlasallei, male: (f) lateral scape; (g) lateral antenna; (h) lateral clava.
FIGURES 51‒53 in Immatures of Cerambycinae (Coleoptera, Cerambycidae) collected in Litchi chinensis Sonn. (Sapindaceae) in Brazil
FIGURES 51‒53. Retrachydes thoracicus (Olivier, 1790). Pupa: 51, dorsal. 52, ventral. 53, lateral.
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