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124 results for “Monacha”
Figure 66 from: Pieńkowska JR, Manganelli G, Giusti F, Barbato D, Kosicka E, Hallgass A, Lesicki A (2020) Redescription of Monacha pantanellii (De Stefani, 1879), a species endemic to the central Apennines, Italy (Gastropoda, Eupulmonata, Hygromiidae) by an integrative molecular and morphological approach. ZooKeys 988: 17-61. https://doi.org/10.3897/zookeys.988.56397
Figure 66 Box plots for genital characters of the ten Monacha species or molecular lineages investigated. The lower and upper limits of the rectangular boxes indicate the 25th to 75th percentile range, and the horizontal line within the boxes is the median (50th percentile).
Figures 67- 68 from: Pieńkowska JR, Manganelli G, Giusti F, Barbato D, Kosicka E, Hallgass A, Lesicki A (2020) Redescription of Monacha pantanellii (De Stefani, 1879), a species endemic to the central Apennines, Italy (Gastropoda, Eupulmonata, Hygromiidae) by an integrative molecular and morphological approach. ZooKeys 988: 17-61. https://doi.org/10.3897/zookeys.988.56397
Figures 67- 68 Principal component analysis (PCA) and Redundancy analysis (RDA) with population constraint applied to the original genital matrix (67) and shape-related Z-matrix (68) of specimens of Monacha pantanellii.
Figures 60-63 from: Pieńkowska JR, Manganelli G, Giusti F, Barbato D, Kosicka E, Hallgass A, Lesicki A (2020) Redescription of Monacha pantanellii (De Stefani, 1879), a species endemic to the central Apennines, Italy (Gastropoda, Eupulmonata, Hygromiidae) by an integrative molecular and morphological approach. ZooKeys 988: 17-61. https://doi.org/10.3897/zookeys.988.56397
Figures 60-63 Internal structure of distal genitalia of Monacha pantanellii from Valle dell'Aniene, Roccagiovine [Ani] (FGC 42974) (60), Via Salaria, Ornaro Alto [Alt] (FGC 41553) (61), Turania [Tur1] (FGC 42971) (62) and road to Montenero Sabino [Sab] (FGC 41552) (63).
Figures 49-52 from: Pieńkowska JR, Manganelli G, Giusti F, Barbato D, Kosicka E, Hallgass A, Lesicki A (2020) Redescription of Monacha pantanellii (De Stefani, 1879), a species endemic to the central Apennines, Italy (Gastropoda, Eupulmonata, Hygromiidae) by an integrative molecular and morphological approach. ZooKeys 988: 17-61. https://doi.org/10.3897/zookeys.988.56397
Figures 49-52 Genitalia (proximal parts excluded) (49), internal structure of distal genitalia (50), transverse sections of medial epiphallus (51) and apical penial papilla (52) of Monacha pantanellii from Valle dell'Aniene, Roccagiovine [Ani] (FGC 42974).
Figures 45-48 from: Pieńkowska JR, Manganelli G, Giusti F, Barbato D, Kosicka E, Hallgass A, Lesicki A (2020) Redescription of Monacha pantanellii (De Stefani, 1879), a species endemic to the central Apennines, Italy (Gastropoda, Eupulmonata, Hygromiidae) by an integrative molecular and morphological approach. ZooKeys 988: 17-61. https://doi.org/10.3897/zookeys.988.56397
Figures 45-48 Genitalia (proximal parts excluded) (45), internal structure of distal genitalia (46), transverse sections of medial epiphallus (47) and apical penial papilla (48) of Monacha pantanellii from Vallonina [Val] (FGC 25345).
Figures 35- 36 from: Pieńkowska JR, Manganelli G, Giusti F, Barbato D, Kosicka E, Hallgass A, Lesicki A (2020) Redescription of Monacha pantanellii (De Stefani, 1879), a species endemic to the central Apennines, Italy (Gastropoda, Eupulmonata, Hygromiidae) by an integrative molecular and morphological approach. ZooKeys 988: 17-61. https://doi.org/10.3897/zookeys.988.56397
Figures 35- 36 Principal component analysis (PCA) and Redundancy analysis (RDA) with population constraint applied to the original shell matrix (35) and shape-related Z-matrix (36) of specimens of Monacha pantanellii.
Figures 57-59 from: Pieńkowska JR, Manganelli G, Giusti F, Barbato D, Kosicka E, Hallgass A, Lesicki A (2020) Redescription of Monacha pantanellii (De Stefani, 1879), a species endemic to the central Apennines, Italy (Gastropoda, Eupulmonata, Hygromiidae) by an integrative molecular and morphological approach. ZooKeys 988: 17-61. https://doi.org/10.3897/zookeys.988.56397
Figures 57-59 Genitalia (proximal parts excluded) (57), internal structure of distal genitalia (58) and transverse section of apical penial papilla (59) of Monacha pantanellii from Lago del Turano [Tur2] (FGC 41654).
Figures 64- 65 from: Pieńkowska JR, Manganelli G, Giusti F, Barbato D, Kosicka E, Hallgass A, Lesicki A (2020) Redescription of Monacha pantanellii (De Stefani, 1879), a species endemic to the central Apennines, Italy (Gastropoda, Eupulmonata, Hygromiidae) by an integrative molecular and morphological approach. ZooKeys 988: 17-61. https://doi.org/10.3897/zookeys.988.56397
Figures 64- 65 Principal component analysis (PCA) and Redundancy analysis (RDA) with species or molecular lineage constraint applied to the original genital matrix (64) and shape-related Z-matrix (65).
Figures 53-56 from: Pieńkowska JR, Manganelli G, Giusti F, Barbato D, Kosicka E, Hallgass A, Lesicki A (2020) Redescription of Monacha pantanellii (De Stefani, 1879), a species endemic to the central Apennines, Italy (Gastropoda, Eupulmonata, Hygromiidae) by an integrative molecular and morphological approach. ZooKeys 988: 17-61. https://doi.org/10.3897/zookeys.988.56397
Figures 53-56 Genitalia (proximal parts excluded) (53), internal structure of distal genitalia (54), transverse sections of medial epiphallus (55) and apical penial papilla (56) of Monacha pantanellii from Carsoli [Car] (FGC 41651).
Figure 2 from: Pieńkowska JR, Manganelli G, Giusti F, Barbato D, Kosicka E, Hallgass A, Lesicki A (2020) Redescription of Monacha pantanellii (De Stefani, 1879), a species endemic to the central Apennines, Italy (Gastropoda, Eupulmonata, Hygromiidae) by an integrative molecular and morphological approach. ZooKeys 988: 17-61. https://doi.org/10.3897/zookeys.988.56397
Figure 2 Maximum Likelihood (ML) tree of concatenated COI and 16S rDNA haplotypes of Monacha pantanellii (see Table 4). New COI and 16S rDNA sequences of M. pantanellii (Table 1) were compared with COI and 16S rDNA sequences of M. cantiana s. l. and M. parumcincta obtained from GenBank (Tables 2, 4). Numbers next to branches indicate bootstrap support above 50% calculated on 1000 replicates (Felsenstein 1985). The tree was rooted with M. cartusiana concatenated sequences obtained from GenBank (Table 2).
Figures 41-44 from: Pieńkowska JR, Manganelli G, Giusti F, Barbato D, Kosicka E, Hallgass A, Lesicki A (2020) Redescription of Monacha pantanellii (De Stefani, 1879), a species endemic to the central Apennines, Italy (Gastropoda, Eupulmonata, Hygromiidae) by an integrative molecular and morphological approach. ZooKeys 988: 17-61. https://doi.org/10.3897/zookeys.988.56397
Figures 41-44 Genitalia (proximal parts excluded) (41), internal structure of distal genitalia (42), transverse sections of medial epiphallus (43) and apical penial papilla (44) of Monacha pantanellii from Monte Fionchi, Torrecola [Fio2] (FGC 38944).
Figure 1 from: Pieńkowska JR, Manganelli G, Giusti F, Barbato D, Kosicka E, Hallgass A, Lesicki A (2020) Redescription of Monacha pantanellii (De Stefani, 1879), a species endemic to the central Apennines, Italy (Gastropoda, Eupulmonata, Hygromiidae) by an integrative molecular and morphological approach. ZooKeys 988: 17-61. https://doi.org/10.3897/zookeys.988.56397
Figure 1 Localities of Monacha pantanellii and M. cartusiana populations listed in Tables 1, 3 (M. pantanellii black circles Table 1, grey circles Table 3). Details of localities of other Monacha species and their molecular lineages were provided in previous papers (Pieńkowska et al. 2015, 2018a, 2018b, 2019b).
Figures 37-40 from: Pieńkowska JR, Manganelli G, Giusti F, Barbato D, Kosicka E, Hallgass A, Lesicki A (2020) Redescription of Monacha pantanellii (De Stefani, 1879), a species endemic to the central Apennines, Italy (Gastropoda, Eupulmonata, Hygromiidae) by an integrative molecular and morphological approach. ZooKeys 988: 17-61. https://doi.org/10.3897/zookeys.988.56397
Figures 37-40 Genitalia (proximal parts excluded) (37), internal structure of distal genitalia (38), transverse sections of medial epiphallus (39) and apical penial papilla (40) of Monacha pantanellii from Monte Fionchi summit [Fio1] (FGC 8140).
Data from: "NGS based generation of expressed sequence tags for Lymantria dispar and Lymantria monacha, two closely related lepidopteran species with different responses to parasitism by Glyptapanteles liparidis" in Genomic Resources Notes accepted 1 December 2013 to 31 January 2014
Introduction: The gypsy moth, Lymantria dispar, and the nun moth, Lymantria monacha, are closely related species (Lepidoptera, Lymantriidae), co-seasonal and economically important forest pests on broadleaf and coniferous trees. In Central Europe, gypsy moth larvae are frequently parasitized by the gregarious, endoparasitic wasp Glyptapanteles liparidis (Hymenoptera, Braconidae). At oviposition, the female wasp injects between 10 and up to 100 eggs into the hemocoel of a single host larva, together with venom and calyx fluid containing polydnavirus (PDV) particles that subsequently play a critical role in suppressing the host immune response so that successful development of the parasitoid can proceed (Schopf 2007). These viruses, which are integrated in the genomic DNA of the wasp and undergo replication only in the female's ovary, rapidly enter host hemocytes, fat body, and nervous system following parasitization, and viral genes are expressed. In L. dispar larvae parasitized by G. liparidis, the host's hemocytes alter their behavior, fail to spread properly (thereby inhibiting the encapsulation response) and partly undergo programmed cell death (apoptosis), resulting in a dramatic drop in the host's total hemocyte number (Schafellner and Schläger 2009).
Supplementary material 9 from: Pieńkowska JR, Manganelli G, Proćków M, Barbato D, Sosnowska K, Giusti F, Lesicki A (2024) Next step in Monacha cantiana (Montagu, 1803) phylogeography: northern French and Dutch populations (Eupulmonata, Stylommatophora, Hygromiidae). ZooKeys 1198: 55-86. https://doi.org/10.3897/zookeys.1198.119738
Maximum Likelihood (ML) tree of 16SrDNA haplotypes of Monacha cantiana
Supplementary material 8 from: Pieńkowska JR, Manganelli G, Proćków M, Barbato D, Sosnowska K, Giusti F, Lesicki A (2024) Next step in Monacha cantiana (Montagu, 1803) phylogeography: northern French and Dutch populations (Eupulmonata, Stylommatophora, Hygromiidae). ZooKeys 1198: 55-86. https://doi.org/10.3897/zookeys.1198.119738
Maximum Likelihood (ML) tree of 16SrDNA haplotypes of Monacha cantiana
Supplementary material 5 from: Pieńkowska JR, Manganelli G, Proćków M, Barbato D, Sosnowska K, Giusti F, Lesicki A (2024) Next step in Monacha cantiana (Montagu, 1803) phylogeography: northern French and Dutch populations (Eupulmonata, Stylommatophora, Hygromiidae). ZooKeys 1198: 55-86. https://doi.org/10.3897/zookeys.1198.119738
Concatenated sequences of COI+16SrDNA used in NJ/ML-MEGA7/IQ Tree/RAxML/BI analysis (Fig. 9)
Supplementary material 4 from: Pieńkowska JR, Manganelli G, Proćków M, Barbato D, Sosnowska K, Giusti F, Lesicki A (2024) Next step in Monacha cantiana (Montagu, 1803) phylogeography: northern French and Dutch populations (Eupulmonata, Stylommatophora, Hygromiidae). ZooKeys 1198: 55-86. https://doi.org/10.3897/zookeys.1198.119738
ITS2 sequences from GenBank used for molecular analysis comparisons (haplotypes in bold)
Supplementary material 1 from: Pieńkowska JR, Manganelli G, Proćków M, Barbato D, Sosnowska K, Giusti F, Lesicki A (2024) Next step in Monacha cantiana (Montagu, 1803) phylogeography: northern French and Dutch populations (Eupulmonata, Stylommatophora, Hygromiidae). ZooKeys 1198: 55-86. https://doi.org/10.3897/zookeys.1198.119738
COI sequences from GenBank used for molecular analysis comparisons (haplotypes in bold)
Supplementary material 10 from: Pieńkowska JR, Manganelli G, Proćków M, Barbato D, Sosnowska K, Giusti F, Lesicki A (2024) Next step in Monacha cantiana (Montagu, 1803) phylogeography: northern French and Dutch populations (Eupulmonata, Stylommatophora, Hygromiidae). ZooKeys 1198: 55-86. https://doi.org/10.3897/zookeys.1198.119738
Maximum Likelihood (ML) tree of ITS2 (flanked with 5.8S and 28SrDNA) haplotypes of Monacha cantiana
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