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402 results for “hybrid zone”
Fig. 46 in Hybridization Among Western Whiptail Lizards (Cnemidophorus Tigris) In Southwestern New Mexico: Population Genetics, Morphology, And Ecology In Three Contact Zones
Fig. 46. Polygons and letters representing the scores of 27 specimens of C. tigris on the first two principal components extracted from the correlation matrix of nine morphological characters observed in the southern transect (table 28). P represents 9 punctilinealis from site 36; M, 9 marmoratus from site 48; and H, 9 hybrids from site 42, the center of the southern hybrid zone (fig. 5).
Fig. 44 in Hybridization Among Western Whiptail Lizards (Cnemidophorus Tigris) In Southwestern New Mexico: Population Genetics, Morphology, And Ecology In Three Contact Zones
Fig. 44. Polygons and letters representing the scores of 39 specimens of C. tigris on the first two principal components extracted from the correlation matrix of nine morphological characters observed in the northern transect (table 28). P represents 10 punctilinealis from site 1; M, nine marmoratus from site 7; and H, 20 hybrids from site 3, the center of the northern hybrid zone (fig. 4).
Fig. 45 in Hybridization Among Western Whiptail Lizards (Cnemidophorus Tigris) In Southwestern New Mexico: Population Genetics, Morphology, And Ecology In Three Contact Zones
Fig. 45. Polygons and letters representing the scores of 85 specimens of C. tigris on the first two principal components extracted from the correlation matrix of nine morphological characters observed in the central transect (table 28). P represents 29 punctilinealis from site 20; M, 26 marmoratus from site 29; and H, 30 hybrids from site 26, the center of the central hybrid zone (fig. 5).
Fig. 43 in Hybridization Among Western Whiptail Lizards (Cnemidophorus Tigris) In Southwestern New Mexico: Population Genetics, Morphology, And Ecology In Three Contact Zones
Fig. 43. Scores of sample means for the first principal component extracted from the variance– covariance matrix of arcsine squareroottransformed frequencies of marmoratus alleles at the seven highly polymorphic loci (IDDH, sMDHP, EST2, PEPB, PEPD, GPI, and TF) plotted against sample locality on all three transects of the hybrid zones, as in figure 42. Data are from tables 6, 8, and 10.
Fig. 50 in Hybridization Among Western Whiptail Lizards (Cnemidophorus Tigris) In Southwestern New Mexico: Population Genetics, Morphology, And Ecology In Three Contact Zones
Fig. 50. Grassland WNW of Lordsburg, looking to the NW toward the Summit Hills that are immediately north of site 12 (fig. 49). Dark band of vegetation at the base of the hills is the creosote community. Thin diagonal line across grassland is the railroad, with shrubs along the tracks. Aerial photograph taken on 1 September 1990.
Fig. 41 in Hybridization Among Western Whiptail Lizards (Cnemidophorus Tigris) In Southwestern New Mexico: Population Genetics, Morphology, And Ecology In Three Contact Zones
Fig. 41. Mean frequency of the marmoratus nuclear alleles averaged over all four diagnostic loci of proteins, of the marmoratus 12S ribosomal mtDNA haplotypes, and of the marmoratus coloration hybrid indices at sites along the southern transect (fig. 5). Site 42 represents the center of the southern hybrid zone. Compare with figure 32.
Fig. 42 in Hybridization Among Western Whiptail Lizards (Cnemidophorus Tigris) In Southwestern New Mexico: Population Genetics, Morphology, And Ecology In Three Contact Zones
Fig. 42. Scores of sample means for the first principal component extracted from the variance– covariance matrix of arcsine squareroottransformed frequencies of marmoratus coloration characters plotted against sample locality on all three transects of the hybrid zones: northern (sites 1–7), central (sites 20–30 + 29), and southern (sites 36–40, 42, 44, 46, and 48). Numbers plotted are the collecting site numbers. Data are summarized in table 24.
Fig. 40 in Hybridization Among Western Whiptail Lizards (Cnemidophorus Tigris) In Southwestern New Mexico: Population Genetics, Morphology, And Ecology In Three Contact Zones
Fig. 40. Mean frequency of the marmoratus nuclear alleles averaged over all four diagnostic loci of proteins, of the marmoratus 12S ribosomal mtDNA haplotypes, and of the marmoratus coloration hybrid indices at sites along the central transect (fig. 5). Site 26 represents the center of the central hybrid zone. Compare with figure 31.
Fig. 39 in Hybridization Among Western Whiptail Lizards (Cnemidophorus Tigris) In Southwestern New Mexico: Population Genetics, Morphology, And Ecology In Three Contact Zones
Fig. 39. Mean frequency of the marmoratus nuclear alleles averaged over all four diagnostic loci of proteins, of the marmoratus 12S ribosomal mtDNA haplotypes, and of the marmoratus coloration hybrid indices at sites along the northern transect (fig. 4). Site 3 represents the center of the northern hybrid zone. Compare with figure 30.
Fig. 32 in Hybridization Among Western Whiptail Lizards (Cnemidophorus Tigris) In Southwestern New Mexico: Population Genetics, Morphology, And Ecology In Three Contact Zones
Fig. 32. Average frequencies of the marmoratus alleles at each of the four diagnostic loci and of the marmoratus mtDNA haplotype at sites along the southern transect (fig. 5). The frequency change in the IDDH aallele, which occurs only in marmoratus, is also shown. The southern hybrid zone was about 5.5 km wide, with the midpoint of gene exchange at site 42 (compare with fig. 41).
Fig. 30 in Hybridization Among Western Whiptail Lizards (Cnemidophorus Tigris) In Southwestern New Mexico: Population Genetics, Morphology, And Ecology In Three Contact Zones
Fig. 30. Average frequencies of the marmoratus alleles at each of the four diagnostic loci and of the marmoratus mtDNA haplotype at sites along the northern transect (fig. 4). The frequency change in the IDDH aallele, which occurs only in marmoratus, is also shown. The northern hybrid zone was about 7.8 km wide, with the midpoint of gene exchange at site 3 (compare with fig. 39).
Fig. 28 in Hybridization Among Western Whiptail Lizards (Cnemidophorus Tigris) In Southwestern New Mexico: Population Genetics, Morphology, And Ecology In Three Contact Zones
Fig. 28. Banding patterns of diagnostic loci sMDHP and PEPB. Top. Gel stained for sMDHP and then counterstained with substrate for PEPB. The sMDHP aallele is diagnostic for marmoratus, the ballele for punctilinealis. Notice how close the a and b bands are to each other. As sMDHP is a tetrameric protein, the fivebanded patterns of heterozygous individuals are often difficult to score with confidence Bottom. Gel stained for PEPB. The ballele is diagnostic for punctilinealis; the c and dalleles are diagnostic for marmoratus. The substrate for PEPB, leucyl.glycyl.glycine, is also a substrate for PEPE which is invariant in C. tigris. Arrows indicate sites of sample application; anode is to the right.
Fig. 27 in Hybridization Among Western Whiptail Lizards (Cnemidophorus Tigris) In Southwestern New Mexico: Population Genetics, Morphology, And Ecology In Three Contact Zones
Fig. 27. Banding patterns of iditol dehydrogenase (IDDH) and diagnostic locus transferrin (TF) Left. Gel stained for IDDH. The ballele occurs in both subspecies; the IDDH aallele is diagnostic for marmoratus, in which it occurs exclusively (excepting hybrids), but at a maximum frequency of about 0.65. Right. Autoradiograph illustrating the localization of TF by binding of radioactive 59Fe. The TF aallele is diagnostic for marmoratus, the ballele for punctilinealis. Arrows indicate sites of sample application; anode is to the right.
Fig. 26 in Hybridization Among Western Whiptail Lizards (Cnemidophorus Tigris) In Southwestern New Mexico: Population Genetics, Morphology, And Ecology In Three Contact Zones
Fig. 26. Differences in the tissue distribution of phosphoglucomutases. Top. Patterns obtained with homogenates of skeletal muscle in which PGM1 and PGM2 are active but PGM3 is not. Bottom. Patterns obtained with homogenates of liver in which PGM2 and PGM3 are active but PGM1 is inactive or of very low activity. Arrows indicate sites of sample application; anode is to the right.
Fig. 24 in Hybridization Among Western Whiptail Lizards (Cnemidophorus Tigris) In Southwestern New Mexico: Population Genetics, Morphology, And Ecology In Three Contact Zones
Fig. 24. Dotblot illustrating determination of the 12S ribosomal mtDNA haplotypes of individual lizards from 20 collecting sites across the contact region. The blot was first hybridized with the ASOMAR probe specific for the marmoratus haplotype (Top). After stripping, the blot was hybridized with the ASOPUN probe specific for the punctilinealis haplotype (Bottom). Spillage caused the absence of reactions at positions E10 and G2. DNA of C. inornatus gave the weak positive reaction at position G12 (Top), as discussed by Dessauer et al. (1996b).
Fig. 23 in Hybridization Among Western Whiptail Lizards (Cnemidophorus Tigris) In Southwestern New Mexico: Population Genetics, Morphology, And Ecology In Three Contact Zones
Fig. 23. Dotblot illustrating specificity of the allelespecific oligonucleotide probes (ASOs) DNA samples from 24 lizards from 12 different sites were applied in rows A and C of a strip of nitrocellulose paper. After heat denaturation, the blot was hybridized successively with ASOPUN (Tucson) (Top), ASOMar (Middle), and ASO PUN (Bottom). Note that C. t. punctilinealis samples from sites 49 and 56, west of the contact region, hybridized only to ASOPUN (Tucson (positions 1–3 of row A), in contrast to samples of punctilinealis from the contact region, which hybridized only with ASOPUN (positions 5 and 7 of row C). DNA of C. t. marmoratus from all sites paired with ASOMAR (positions 4–12 of row A, and positions 1–4, 6, and 8–12 of row C)
Fig. 22. Habitats S in Hybridization Among Western Whiptail Lizards (Cnemidophorus Tigris) In Southwestern New Mexico: Population Genetics, Morphology, And Ecology In Three Contact Zones
Fig. 22. Habitats S of the southern transect, along NM Hwy 80 S of Road Forks (tables 2, 3; figs 3, 5; appendix 1), 22 August 1990. Top. Looking NE in Granite Gap, from the same place as figure 21, bottom. Bottom. Looking NE at Granite Gap from 20.7 km (by road) S of Road Forks; site 39 is 1.2 km to the NE (on left).
Fig. 34 in Hybridization Among Western Whiptail Lizards (Cnemidophorus Tigris) In Southwestern New Mexico: Population Genetics, Morphology, And Ecology In Three Contact Zones
Fig. 34. Western whiptail lizards (Cnemidophorus tigris) from the contact region. Top. Pure C. t punctilinealis male, AMNH R139694, from site 20, body length 87 mm. Middle. Hybrid C. t. punctilinealis × C. t. marmoratus, male, AMNH R139719, from site 3, body length 96 mm. Bottom. Pure C. t. marmoratus male, AMNH R139711, from site 29, body length 77 mm.
Fig. 20 in Hybridization Among Western Whiptail Lizards (Cnemidophorus Tigris) In Southwestern New Mexico: Population Genetics, Morphology, And Ecology In Three Contact Zones
Fig. 20. Habitats near the southern transect, along NM Hwy 80 S of Road Forks (tables 2, 3; figs 3, 5; appendix 1), 22 August 1990. Top. Looking E from 12.8 km (by road) S of Road Forks; site 33 is 0.8 km to the E (on left). Bottom. Looking SW at Granite Gap in the Peloncillo Mountains from 17.7 km (by road) S of Road Forks.
Fig. 19. Habitats near the southern transect, W in Hybridization Among Western Whiptail Lizards (Cnemidophorus Tigris) In Southwestern New Mexico: Population Genetics, Morphology, And Ecology In Three Contact Zones
Fig. 19. Habitats near the southern transect, W of Cotton City (tables 2, 3; figs. 3, 5; appendix 1), 22 August 1990. Top. Site 41, Crystal Mine, looking W from NM Hwy 80, at 13.7 km (by road) S of Road Forks. Bottom. Looking SE from the same place as the top photograph; Table Top Mountain (site 47) is the low butte in the distant right.
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