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Author |
Jackson, R. |
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Title |
Observations on the status and distribution of snow leopards (Panthera uncia) in Nepal |
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Report |
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Year |
1977 |
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Abbreviated Journal |
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1-12 |
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snow leopard, Nepal |
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SLN @ rana @ |
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1229 |
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Author |
Hall, P.M., Cox, J.H. |
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Title |
Additional range inhabted by bharal (Pseudois nayaur) and snow leopard (Panthera uncia) in Nepal |
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Report |
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Year |
1978 |
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Abbreviated Journal |
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1-5 |
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snow leopard, Nepal, bharal |
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SLN @ rana @ |
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1221 |
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Author |
Jackson, R. |
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Title |
A radio-telemetry study of the snow leopard (Panthera uncia) in Nepal with emphasis on conservation and predator-prey relations |
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Year |
1980 |
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March |
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snow leopard, Nepal, conservation, radio telemetry, prey |
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Draft |
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SLN @ rana @ |
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1260 |
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Rode, J., Pelletier, A., Fumey, J., Rode, S., Cabanat, A. L., Ouvrard, A., Chaix, B., White, B., Harnden, M., Xuan, N. T., Vereshagin, A., Casane, D. |
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Title |
Diachronic monitoring of snow leopards at Sarychat-Ertash State Reserve (Kyrgyzstan) through scat genotyping: a pilot study |
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Journal Article |
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Year |
2020 |
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bioRxiv |
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1-21 |
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snow leopard, noninvasive genotyping, population dynamics, microsatellite, relatedness, diachronic monitoring, citizen science, Central Asia |
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Abstract |
Snow leopards (Panthera uncia) are a keystone species of Central Asia’s high mountain ecosystem. The species is listed as vulnerable and is elusive, preventing accurate population assessments that could inform conservation actions. Non-invasive genetic monitoring conducted by citizen scientists offers avenues to provide key data on this species that would otherwise be inaccessible. From 2011 to 2015, OSI-Panthera citizen science expeditions tracked signs of presence of snow leopards along transects in the main valleys and crests of the Sarychat-Ertash State Reserve (Kyrgyzstan). Scat samples were genotyped at seven autosomal microsatellite loci and at a X/Y locus for sex identification, which allowed estimating a minimum of 11 individuals present in the reserve from 2011 to 2015. The genetic recapture of 7 of these individuals enabled diachronic monitoring, providing indications of individuals’ movements throughout the reserve. We found putative family relationships between several individuals. Our results demonstrate the potential of this citizen science program to get a precise description of a snow leopard population through time. |
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1602 |
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Author |
Poulton, S.M.C. |
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Title |
A report on the feasibility of an ecological study of the snow leopard in northern India |
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Report |
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Year |
1980 |
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Abbreviated Journal |
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November |
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1-13 |
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snow leopard, northern India |
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SLN @ rana @ |
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1189 |
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Author |
Turnbull-Kemp, P. |
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Title |
The Leopard |
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Book Chapter |
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Year |
1967 |
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Abbreviated Journal |
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68-69 |
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snow leopard, ounce |
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SLN @ rana @ |
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1254 |
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Author |
Schaller, G.B. |
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Title |
Mountain mammals in Pakistan |
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Journal Article |
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Year |
1976 |
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Tigerpaper |
Abbreviated Journal |
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Volume |
III |
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4 |
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1-11 |
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snow leopard, Pakistan |
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SLN @ rana @ |
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1201 |
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Author |
Khan, J. |
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Title |
Availability of snow leopard pelt in Pakistan |
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2002 |
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snow leopard, Pakistan, pelt, wildlife trade |
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SLN @ rana @ |
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1246 |
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Author |
Simon, N., Geroudet, P. |
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Title |
Last Survivores: The Natural History of Animals in Danger of Extinction |
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1970 |
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Abbreviated Journal |
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127-131 |
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Keywords ![sorted by Keywords field, ascending order (up)](img/sort_asc.gif) |
snow leopard, Panthera uncia |
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The World Publishing Company |
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New York |
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SLN @ rana @ |
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1186 |
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Korablev, M. P., Poyarkov, A. D., Karnaukhov, A. S., Zvychaynaya, E. Y., Kuksin, A. N., Malykh, S. V., Istomov, S. V., Spitsyn, S. V., Aleksandrov, D. Y., Hernandez-Blanco, J. A., Munkhtsog, B., Munkhtogtokh, O., Putintsev, N. I., Vereshchagin, A. S., Becmurody, A., Afzunov, S., Rozhnov, V. V. |
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Large-scale and fine-grain population structure and genetic diversity of snow leopards (Panthera uncia Schreber, 1776) from the northern and western parts of the range with an emphasis on the Russian population. |
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Journal Article |
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Year |
2021 |
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Conservation Genetics |
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Keywords ![sorted by Keywords field, ascending order (up)](img/sort_asc.gif) |
Snow leopard, Panthera uncia, Microsatellites, Heterozygosity, Population structure, Noninvasive survey, Scat, Subspecies |
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The snow leopard (Panthera uncia Schreber, 1776) population in Russia and Mongolia is situated at the northern edge of the range, where instability of ecological conditions and of prey availability may serve as prerequisites for demographic instability and, consequently, for reducing the genetic diversity. Moreover, this northern area of the species distribution is connected with the western and central parts by only a few small fragments of potential habitats in the Tian-Shan spurs in China and Kazakhstan. Given this structure of the range, the restriction of gene flow between the northern and other regions of snow leopard distribution can be expected. Under these conditions, data on population genetics would be extremely important for assessment of genetic diversity, population structure and gene flow both at regional and large-scale level. To investigate large-scale and fine-grain population structure and levels of genetic diversity we analyzed 108 snow leopards identified from noninvasively collected scat samples from Russia and Mongolia (the northern part of the range) as well as from Kyrgyzstan and Tajikistan (the western part of the range) using panel of eight polymorphic microsatellites. We found low to moderate levels of genetic diversity in the studied populations. Among local habitats, the highest heterozygosity and allelic richness were recorded in Kyrgyzstan (He = 0.66 ± 0.03, Ho = 0.70 ± 0.04, Ar = 3.17) whereas the lowest diversity was found in a periphery subpopulation in Buryatia Republic of Russia (He = 0.41 ± 0.12, Ho = 0.29 ± 0.05, Ar = 2.33). In general, snow leopards from the western range exhibit greater genetic diversity (He = 0.68 ± 0.04, Ho = 0.66 ± 0.03, Ar = 4.95) compared to those from the northern range (He = 0.60 ± 0.06, Ho = 0.49 ± 0.02, Ar = 4.45). In addition, we have identified signs of fragmentation in the northern habitat, which have led to significant genetic divergence between subpopulations in Russia. Multiple analyses of genetic structure support considerable genetic differentiation between the northern and western range parts, which may testify to subspecies subdivision of snow leopards from these regions. The observed patterns of genetic structure are evidence for delineation of several management units within the studied populations, requiring individual approaches for conservation initiatives, particularly related to translocation events. The causes for the revealed patterns of genetic structure and levels of genetic diversity are discussed. |
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1633 |
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