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127 results for “West Virginia”
FIGURE 6 in Cambarus (C.) appalachiensis, a new species of crayfish (Decapoda: Cambaridae) from the New River Basin of Virginia and West Virginia, USA
FIGURE 6. Cambarus appalachiensis chelae morphotypes: (A.) Elongate; (B.) Truncated. Over 90% of C. appalachiensis examined maintained the elongated morphotypes.
FIGURE 2 in Cambarus (C.) appalachiensis, a new species of crayfish (Decapoda: Cambaridae) from the New River Basin of Virginia and West Virginia, USA
FIGURE 2. Cambarus appalachiensis, new species: (A.) Lateral view of carapace; (B.) Lateral and (C.) mesial view of form I gonopod; (D.) Lateral and (E.) mesial view of form II gonopod; (F.) Annulus ventralis; (G.) Dorsal view of carapace; (H.) Right antennal scale; (I.) Dorsal view of right carpus and chelae; (J.) epistome. A-C and G-I from holotype; F from allotype; D- E from morphotypes.
FIGURE 4 in Cambarus (C.) appalachiensis, a new species of crayfish (Decapoda: Cambaridae) from the New River Basin of Virginia and West Virginia, USA
FIGURE 4. Cambarus appalachiensis type locality. Pipestem Creek at intersection of Tom-Honaker Road (CR 20-3) and State Route 20, 3.3 km (2.04 mi) north-east of Pipestem, Summers County, West Virginia—11 October, 2016. (A.) Run downstream of Tom-Honaker Road bridge where holotype and allotype were collected; (B.) pool immediately upstream of Tom-Honaker Road bridge.
FIGURE 1 in Cambarus (C.) appalachiensis, a new species of crayfish (Decapoda: Cambaridae) from the New River Basin of Virginia and West Virginia, USA
FIGURE 1. Sheared PCA plot for (A) form 1 males, (B) form II males, and (C) females of Cambarus appalachiensis and C. sciotensis. Cambarus appalachiensis = solid dots; Cambarus sciotensis = open dots.
Distribution. SE Canada in SE Ontario and SW Quebec, and W USA from SE Oklahoma E to New England, W Virginia, and NW South Carolina; distribution 1s irregular, and most occurrences and largest populations are in New York, Pennsylvania, West Virginia, and W Virginia. in Vespertilionidae
Distribution. SE Canada in SE Ontario and SW Quebec, and W USA from SE Oklahoma E to New England, W Virginia, and NW South Carolina; distribution 1s irregular, and most occurrences and largest populations are in New York, Pennsylvania, West Virginia, and W Virginia.
Subspecies and Distribution. C. t. townsendii Cooper, 1837 — broadly distributed from SW Canada (British Columbia including Vancouver I) S along Pacific coast of USA to coastal regions of Sonoran Desert in Mexico, and E to Colorado Plateau and Black Hills. C. t. australis Handley, 1955 — SC USA (W Texas) S across mountains of N & C Mexico and Chihuahuan Desert to Oaxaca. C. t. ingens Handley, 1955 — S Missouri, E Oklahoma, and NW Arkansas (C USA). C. t. pallescens G. S. Miller, 1897 — S Wyoming or N Colorado S to New Mexico (USA). C. t. virgitnianus Handley, 1955 — C Appalachian Highlands in E Kentucky, W Virginia, and West Virginia (E USA). in Vespertilionidae
Subspecies and Distribution. C. t. townsendii Cooper, 1837 — broadly distributed from SW Canada (British Columbia including Vancouver I) S along Pacific coast of USA to coastal regions of Sonoran Desert in Mexico, and E to Colorado Plateau and Black Hills. C. t. australis Handley, 1955 — SC USA (W Texas) S across mountains of N & C Mexico and Chihuahuan Desert to Oaxaca. C. t. ingens Handley, 1955 — S Missouri, E Oklahoma, and NW Arkansas (C USA). C. t. pallescens G. S. Miller, 1897 — S Wyoming or N Colorado S to New Mexico (USA). C. t. virgitnianus Handley, 1955 — C Appalachian Highlands in E Kentucky, W Virginia, and West Virginia (E USA).
Distribution. SE Canada (S Ontario and S Quebec) and NE USA (W Maine, New Hampshire, Vermont, New York, Massachusetts, N Connecticut, N Rhode Island, Ohio, Pennsylvania, N New Jersey, West Virginia, NW Maryland, W Virginia, E Kentucky, E Tennessee, W North Carolina, extreme NE Georgia, and extreme NW South Carolina). in Talpidae
Distribution. SE Canada (S Ontario and S Quebec) and NE USA (W Maine, New Hampshire, Vermont, New York, Massachusetts, N Connecticut, N Rhode Island, Ohio, Pennsylvania, N New Jersey, West Virginia, NW Maryland, W Virginia, E Kentucky, E Tennessee, W North Carolina, extreme NE Georgia, and extreme NW South Carolina).
Subspecies and Distribution. C.c.cristataLinnaeus,1758—SECanada(SManitoba,C&SOntario,SQuebec,andNewfoundland)andNEUSA(N&CMinnesota,Wisconsin,Michigan,NewYork,Vermont,NewHampshire,Maine,Massachusetts,Connecticut,RhodeIsland,NOhio,Pennsylvania,NewJersey,EWestVirginia,NVirginia,Maryland,andDelaware). C.c. nigra R. W. Smith, 1940 — E USA (S West Virginia, S Virginia, W & E North Carolina, E Tennessee, E South Carolina, and SE Georgia). in Talpidae
Subspecies and Distribution. C.c.cristataLinnaeus,1758—SECanada(SManitoba,C&SOntario,SQuebec,andNewfoundland)andNEUSA(N&CMinnesota,Wisconsin,Michigan,NewYork,Vermont,NewHampshire,Maine,Massachusetts,Connecticut,RhodeIsland,NOhio,Pennsylvania,NewJersey,EWestVirginia,NVirginia,Maryland,andDelaware). C.c. nigra R. W. Smith, 1940 — E USA (S West Virginia, S Virginia, W & E North Carolina, E Tennessee, E South Carolina, and SE Georgia).
Distribution. SE Pennsylvania, extreme W New Jersey, NE West Virginia, N Maryland and N Delaware (NE USA). in Soricidae
Distribution. SE Pennsylvania, extreme W New Jersey, NE West Virginia, N Maryland and N Delaware (NE USA).
FIGURE 5 in Cambarus fetzneri sp. nov., a new species of burrowing crayfish (Decapoda: Cambaridae) from the Allegheny Mountains of Virginia and West Virginia, USA
FIGURE 5. Differences in coloration between Cambarus monongalensis (Top) and Cambarus fetzneri (Bottom).
FIGURE 2 in Cambarus fetzneri sp. nov., a new species of burrowing crayfish (Decapoda: Cambaridae) from the Allegheny Mountains of Virginia and West Virginia, USA
FIGURE 2. Cambarus fetzneri, new species: (A.) Lateral view of carapace; (B.) mesial and (C.) lateral view of form I gonopod; (D.) mesial and (E.) lateral view of form II gonopod; (F.) annulus ventralis; (G.) dorsal view of carapace; (H.) right antennal scale; (I.) dorsal view of right carpus and chelae; (J.) epistome. A-C and G-J from holotype; F from allotype; D-E from morphotype.
FIGURE 1 in Cambarus fetzneri sp. nov., a new species of burrowing crayfish (Decapoda: Cambaridae) from the Allegheny Mountains of Virginia and West Virginia, USA
FIGURE 1. Sheared PCA plot for (squares) form 1 males, (triangles) form II males, and (circles) females of Cambarus fetzneri and C. monongalensis. Cambarus fetzneri = blacks; Cambarus monongalensis = white.
Long-term changes in occurrence, relative abundance, and reproductive fitness of bat species in relation to arrival of White-nose Syndrome in West Virginia, USA
<p>White-nose syndrome (WNS) is a disease caused by the fungus Pseudogymnoascus destructans which has resulted in the deaths of millions of bats across eastern North America. To date, hibernacula counts have been the predominant means of tracking the spread and impact of this disease on bat populations. However, an understanding of the impacts of WNS on demographic parameters outside the winter season is critical to conservation and recovery of bat populations impacted by this disease. We used long-term monitoring data to examine WNS-related impacts to summer populations in West Virginia, where WNS has been documented since 2009. Using capture data from 290 mist-net sites surveyed from 2003–2019 on the Monongahela National Forest, we estimated temporal patterns in presence and relative abundance for each bat species. For species that exhibited a population-level response to WNS, we investigated post-WNS changes in adult female reproductive state and body mass. Myotis lucifugus (little brown bat), M. septentrionalis (northern long-eared bat), and Perimyotis subflavus (tri-colored bat) all showed significant decreases in presence and relative abundance during and following the introduction of WNS, while Eptesicus fuscus (big brown bat) and Lasiurus borealis (eastern red bat) responded positively during the WNS invasion. Probability of being reproductively active was not significantly different for any species, though a shift to earlier reproduction was estimated for E. fuscus and M. septentrionalis. For some species, body mass appeared to be influenced by the WNS invasion, but the response differed by species and reproductive state. Results suggest that continued long-term monitoring studies, additional research into impacts of this disease on the fitness of WNS survivors, and a focus on providing optimal non-wintering habitat may be valuable strategies for assessing and promoting recovery of WNS-affected bat populations.</p>
Figure 4 in Cambarus loughmani, a new species of crayfish (Decapoda: Cambaridae) endemic to the pre-glacial Teays River Valley in West Virginia, USA
Figure 4. Cambarus loughmani sp. nov.; all taken from holotype male, Form I (NCSM 90082), except E and F from morphotype male, Form II (NCSM 90084), and I from allotype female (NCSM 90083): (a) lateral aspect of carapace; (b–d) mesial and lateral aspect of Form I male gonopod; (e–f) mesial and lateral aspect of Form II male gonopod; (g) ventral aspect of epistome; (h) dorsal aspect of carapace; (i) ventral aspect of annulus ventralis; (j) dorsal aspect of the antennal scale; (k) dorsal aspect of distal podomere of right cheliped. Note that the red lining of the rostrum and purpleish hue of the animal during the time of the photo are a byproduct of recent preservation in ethanol and colours in this plate are not representative of those in life. Photo plate by Dr Guenter Schuster.
Figure 3 in Cambarus loughmani, a new species of crayfish (Decapoda: Cambaridae) endemic to the pre-glacial Teays River Valley in West Virginia, USA
Figure 3. Dorsal view of a female specimen of Cambarus loughmani collected from the type locality, burrows adjacent to Little Island Creek, Lincoln County, West Virginia, displaying typical life colours for the species. Photo by Dr Guenter Schuster.
Figure 5 in Cambarus loughmani, a new species of crayfish (Decapoda: Cambaridae) endemic to the pre-glacial Teays River Valley in West Virginia, USA
Figure 5. Known range of Cambarus loughmani in West Virginia with sites designated by Jezerinac et al. (1995) combined with those collected during the study, and showing introduced population present at Chief Logan State Park.
Figure 1. Sheared principal component analysis plot depicting morphometric variation among Cambarus aff. dubius, C. pauleyi, C in Cambarus loughmani, a new species of crayfish (Decapoda: Cambaridae) endemic to the pre-glacial Teays River Valley in West Virginia, USA
Figure 1. Sheared principal component analysis plot depicting morphometric variation among Cambarus aff. dubius, C. pauleyi, C. loughmani, and nominate C. dubius.
Figure 2 in Cambarus loughmani, a new species of crayfish (Decapoda: Cambaridae) endemic to the pre-glacial Teays River Valley in West Virginia, USA
Figure 2. Bayesian phylogenetic tree based on partial sequences from the mitochondrial COI gene that was generated using the software program MrBayes and using the HKY+G model of sequence evolution. The tree depicts relationships among Cambarus loughmani sp. nov. (in bold) and several other species formerly considered part of the C. dubius species complex. Also represented are other related burrowing crayfish from the genus Cambarus as well as additional taxa from two other genera that are included as outgroups. Numbers at the nodes of the tree indicate Bayesian posterior probabilities.
FIGURE 1. Cambarus theepiensis n in Cambarus (P.) theepiensis, a new species of crayfish (Decapoda:Cambaridae) from the coalfields region of Eastern Kentucky and Southwestern West Virginia, USA
FIGURE 1. Cambarus theepiensis n. sp.: A. lateral view of carapace; B. lateral (left) and mesial (right) view of left first gonopod of form I male; C. lateral (left) and mesial (right) view of form II male gonopod; D, antennal scale; E. dorsal view of carapace; F. dorsal view of distal podomere of right cheliped of form I male; G. caudal view of in situ form I male gonopods; H. annulus ventralis; I. ischial hook of form I male; J. epistome; A, B, D–G, J, I from holoype; H from allotype; C from morphotype.
Help Arthritis With Exercise in West Virginia
ClinicalTrials.gov study NCT00526201. IPD Sharing: Not stated. Countries: 1. Publications: 1.
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