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Fig. 41 in Mammals Of The Rio Juruá And The Evolutionary And Ecological Diversification Of Amazonia
Fig. 41. Ventral color patterns of (from left to right) Marmosops noctivagus (JLP 15306, Penedo [locality 7]); Marmosops impavidus (JLP 15633, Condor [locality 6]; Marmosops impavidus (MNFS 760, Barro Vermelho [locality 12]); Marmosops neblina (JLP 15450, Nova Empresa [locality 8]); Marmosops neblina (MNFS 1067, Igarapé Porongaba [locality 1]); and Marmosa murina (MNFS 746, Barro Vermelho [locality 12]).
Fig. 45 in Mammals Of The Rio Juruá And The Evolutionary And Ecological Diversification Of Amazonia
Fig. 45. Palatal views of: A, Marmosops noctivagus (JLP 15306, Penedo [locality 7]); B, Marmosops impavidus (MNFS 760, Barro Vermelho [locality 12]); and C, Marmosops neblina (JLP 15450, Nova Empresa [locality 8]). All specimens are drawn to the same scale.
Fig. 55 in Mammals Of The Rio Juruá And The Evolutionary And Ecological Diversification Of Amazonia
Fig. 55. Dorsal (top) and ventral (bottom) views of adult crania of Micoureus from the Rio Jurua´ Left: M. demerarae (JLP 16051). Right: M. regina (MNFS 773). Magnification = ×2.
Fig. 38 in Mammals Of The Rio Juruá And The Evolutionary And Ecological Diversification Of Amazonia
Fig. 38. Map of localities for which 660 bp of cytochromeb gene sequences are available for the common opossums, Didelphis marsupialis and D. aurita. Localities are identified as in the tree, fig. 39 and provenance data are listed in table 6.
Fig. 40 in Mammals Of The Rio Juruá And The Evolutionary And Ecological Diversification Of Amazonia
Fig. 40. Chromosome complements of three species of didelphid marsupials from the Rio Juruá with 2n = 22 karyotypes. A, Didelphis marsupialis, MNFS 1035, locality 5; B, Philander opossum, MNFS 623, locality 9; C, Philander mcilhennyi, MNFS 1435, locality 7.
Fig. 70 in Mammals Of The Rio Juruá And The Evolutionary And Ecological Diversification Of Amazonia
Fig. 70. Dorsal views of adult crania contrasting examples of three species of spiny mice, genus Neacomys. Top: N. spinosus (JLP 15314; Penedo [locality 7], right bank Rio Jurua´, Amazonas, Brazil) Middle: N. musseri (MVZ 171488, paratopotype). Bottom: N. minutus (nov. sp.; JUR 487; Colocação ViraVolta [locality 14], left bank Rio Jurua´, Amazonas, Brazil). Magnification = ×4.
Fig. 37 in Mammals Of The Rio Juruá And The Evolutionary And Ecological Diversification Of Amazonia
Fig. 37. Plots of cumulative numbers of species captured on the standardized terrestrial (above) and canopy (below) trap lines at the terra firme site of Penedo (locality 7; solid circles and squares, respectively) and várzea site of Nova Empresa (locality 8; open circles and squares) The terrestrial lines were sampled for 8 continuous days and the canopy platforms were sampled for 11. The numbers of traps available in each habitat and on both the ground and in the canopy over the sampling period at both localities are given in table 2.
Fig. 57 in Mammals Of The Rio Juruá And The Evolutionary And Ecological Diversification Of Amazonia
Fig. 57. Plots of the first (a general size axis) and second PC axes (above, left), of second versus third PC axes (above, right), and histogram of discriminant scores (bottom) for adult specimens of Micoureus demerarae and M. regina from the Rio Jurua´. All localities for each species are pooled.
Fig. 34 in Mammals Of The Rio Juruá And The Evolutionary And Ecological Diversification Of Amazonia
Fig. 34. Detailed maps of the Rio Juruá on the left bank at Colocação ViraVolta and Ilhazinha (localities 14 and 16), illustrating position of camp relative to major habitat types, secondary trap lines (bold numbered and lettered lines) and placement of terra firme and várzea standardized lines (see text for further details). Not drawn to scale.
Fig. 62 in Mammals Of The Rio Juruá And The Evolutionary And Ecological Diversification Of Amazonia
Fig. 62. Localities of Neacomys sampled for sequence variation in the cytochromeb mitochondrial gene. Diagonal hatching indicates distribution of N. spinosus; each of the seven smallbodied haplotype clades identified in the consensus bootstrap maximum parsimony tree (fig. 63) are individually numbered and indicated by stippling. Localities are identified as in table 22. The box circumscribes the Rio Juruá basin of western Brazil, for which the included samples are analyzed and presented separately (fig. 64)
Fig. 35 in Mammals Of The Rio Juruá And The Evolutionary And Ecological Diversification Of Amazonia
Fig. 35. Monthly patterns of trap success (number of captures relative to total number of trap ''nights'') for both terra firme (solid circles) and várzea (stippled squares) forest localities. Each monthly sample is at a different pair of crossriver localities (see text).
Fig. 30 in Mammals Of The Rio Juruá And The Evolutionary And Ecological Diversification Of Amazonia
Fig. 30. Detailed map of the Rio Juruá at Jainu and Barro Vermelho (localities 11 and 12), illustrating position of camp relative to major habitat types, secondary trap lines (bold numbered and lettered lines) and placement of terra firme and várzea standardized lines (see text for further details). Not drawn to scale.
Fig. 32 in Mammals Of The Rio Juruá And The Evolutionary And Ecological Diversification Of Amazonia
Fig. 32. Mouth Regional Area of the Rio Juruá in the state of Amazonas, Brazil. The four primary sample localities are indicated by numbers; the single secondary locality by letter (see text for precise locality information). Diagonal hatching along sides of the river indicates the extent of várzea forest, which floods annually. Redrawn directly from RadamBrasil 1:250,000 series, Folha Juruá (SA.19ZD), 1977.
Fig. 58 in Mammals Of The Rio Juruá And The Evolutionary And Ecological Diversification Of Amazonia
Fig. 58. Map of sample localities of species of pouched foureyed opossums (Philander) from the lowland forests of Middle America, Amazonia, and the Atlantic Forest. Localities are numbered or lettered as in table 16, which provides provenance data and catalog numbers of voucher specimens Approximate geographic limits to the ranges of the western Amazonian species P. andersoni and P mcilhennyi are indicated. Sample localities are grouped by symbol into the cytochromeb clades identified in fig. 59.
Fig. 36 in Mammals Of The Rio Juruá And The Evolutionary And Ecological Diversification Of Amazonia
Fig. 36. Number of captures relative to the sevenday trap period for the standardized terra firme (solid circles) and várzea (solid squares) lines at Penedo (locality 7) and Nova Empresa (locality 8) sites, respectively. Regression equations for each relationship are given.
Fig. 69 in Mammals Of The Rio Juruá And The Evolutionary And Ecological Diversification Of Amazonia
Fig. 69. Dorsal, ventral, and lateral views of the cranium of the holotype (MVZ 171486) of Neacomys musseri, an old adult. The skin and maxillary toothrows are illustrated in figures 67 and 70 respectively. Magnification = ×4.
Fig. 43 in Mammals Of The Rio Juruá And The Evolutionary And Ecological Diversification Of Amazonia
Fig. 43. Strict consensus of four equally minimumlength maximum parsimony trees for cytochromeb haplotypes of Amazonian slender mouse opossums, Marmosops. Data are the initial 630 bp of sequence; the tree is rooted by comparison to species of Marmosa (data from Patton et al., 1996); branch lengths are proportional to the number of character changes. Specific localities and specimen voucher numbers are listed in table 7. Haplotypes for specimens from the Rio Juruá are identified by heavy lines and bold type; numbers refer to the specific locality as identified in the text and the map, fig. 1. Bold numbers at internal nodes are bootstrap values, based on 1000 iterations; percentages are average Kimura twoparameter distances. Data are given only for nodes with bootstrap values> 50. Tree length = 530 steps; CI = 0.545; RI = 0.669.
Fig. 31 in Mammals Of The Rio Juruá And The Evolutionary And Ecological Diversification Of Amazonia
Fig. 31. Details of the placement of the standardized sample lines in the várzea forest at Jainu, right bank (locality 11) and in both várzea and terra firme forest on the left bank at Barro Vermelho (locality 12). Distances (in meters) from the edge of the river are noted.
Fig. 46 in Mammals Of The Rio Juruá And The Evolutionary And Ecological Diversification Of Amazonia
Fig. 46. Views of the interorbital region of crania of sameage specimens of: A, Marmosops noctivagus (JLP 15306, Penedo [locality 7]); B, Marmosops impavidus (MNFS 760, Barro Vermelho [locality 12]); and C, Marmosops neblina (JLP 15450, Nova Empresa [locality 8]). All specimens are drawn to the same scale.
Fig. 54 in Mammals Of The Rio Juruá And The Evolutionary And Ecological Diversification Of Amazonia
Fig. 54. Color pattern of the venter of Micoureus demerarae (left, JLP 15741 [Condor, locality 6]) and M. regina (right, MNFS 773 [Jainu, locality 11]) illustrating differences in the degree of encroachment of the lateral graybased hairs onto the midventral region in the thoracic and abdominal regions between the two species.
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Allen Brain Atlas
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International Brain Laboratory public data
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OpenNeuro
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