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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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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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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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Kreuzberg-Mukhina, E.; Esipov A.V.; Bykova, E.A.; Vashetko, E.V.; Aromov, B. |
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Title |
Development of the national Action Plan for the conservation of Snow Leopard in Uzbekistan. Report: 1-51 |
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Report |
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2003 |
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1-51 |
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1-52 |
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development; national; action; plan; conservation; snow; snow leopard; snow-leopard; leopard; Uzbekistan; Report; Chatkal nature reserve; nature; reserve; Hissar nature reserve; Islt; project; strategy; biology; status; factor; conservation measures; conservation measure |
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This document is the final report on the ISLT Project “Development of national Action plan for the conservation of Snow Leopard in Uzbekistan” and a Conservation Strategy for the Snow leopard in Uzbekistan. It includes biology and current status, limiting factors, existing and necessary conservation measures. |
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Uzbekistan |
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Tashkent, Uzbekistan, Institute of Zoology, Chatkal nature reserve, Hissar nature reserve. Final Report on the ISLT project. |
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SLN @ rana @ 969 |
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594 |
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Zhang, F.; Jiang, Z.; Zeng, Y.; McCarthy, T. |
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Development of primers to characterize the mitochondrial control region of the snow leopard (Uncia uncia) |
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Miscellaneous |
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2007 |
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Molecular Ecology Notes |
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7 |
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1196-1198 |
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control region,Felidae,mitochondrial DNA,snow leopard,species-specific primers; genetics; development; mitochondrial; control; region; snow; snow leopard; snow-leopard; leopard; uncia |
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The snow leopard (Uncia uncia) is a rare carnivore living above the snow line in central Asia. Using universal primers for the mitochondrial genome control region hypervariable
region 1 (HVR1), we isolated a 411-bp fragment of HVR1 and then designed specific primers
near each end of this sequence in the conserved regions. These primers were shown to yield
good polymerase chain reaction products and to be species specific. Of the 12 snow leopards
studied, there were 11 segregating sites and six haplotypes. An identification case of snow
leopard carcass (confiscated by the police) proved the primers to be a useful tool for forensic
diagnosis in field and population genetics studies. |
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SLN @ rana @ 911 |
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1073 |
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Author |
Schacter, A.; Fitzgerald, K.; Doherty, J. |
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Development of a snow leopard with and away from mother and siblings in the first six months |
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1980 |
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International Pedigree Book of Snow Leopards |
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2 |
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112-126 |
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development; snow; snow leopard; snow-leopard; leopard; International; pedigree; snow leopards; snow-leopards; leopards |
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Helsinki Zoo |
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Helsinki |
Editor |
Blomqvist, L. |
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SLN @ rana @ 1093 |
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850 |
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Johansson, O., Ullman, K., Lkhagvajav, P., Wiseman, M.,
Malmsten, J., Leijon, M. |
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Title |
Detection and Genetic Characterization of Viruses Present in
Free-Ranging Snow Leopards Using Next-Generation Sequencing |
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Journal Article |
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2020 |
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Frontiers in Veterinary Science |
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7 |
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645 |
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1-9 |
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snow leopard, free-ranging, virome, Mongolia, rectal swabs, next-generating sequencing, Panthera unica |
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Snow leopards inhabit the cold, arid environments of the high
mountains of South and Central Asia. These living conditions likely
affect the abundance and composition of microbes with the capacity to
infect these animals. It is important to investigate the microbes that
snow leopards are exposed to detect infectious disease threats and
define a baseline for future changes that may impact the health of this
endangered felid. In this work, next-generation sequencing is used to
investigate the fecal (and in a few cases serum) virome of seven snow
leopards from the Tost Mountains of Mongolia. The viral species to which
the greatest number of sequences reads showed high similarity was
rotavirus. Excluding one animal with overall very few sequence reads,
four of six animals (67%) displayed evidence of rotavirus infection. A
serum sample of a male and a rectal swab of a female snow leopard
produced sequence reads identical or closely similar to felid
herpesvirus 1, providing the first evidence that this virus infects snow
leopards. In addition, the rectal swab from the same female also
displayed sequence reads most similar to feline papillomavirus 2, which
is the first evidence for this virus infecting snow leopards. The rectal
swabs from all animals also showed evidence for the presence of small
circular DNA viruses, predominantly Circular Rep-Encoding
Single-Stranded (CRESS) DNA viruses and in one case feline anellovirus.
Several of the viruses implicated in the present study could affect the
health of snow leopards. In animals which are under environmental
stress, for example, young dispersing individuals and lactating females,
health issues may be exacerbated by latent virus infections. |
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1612 |
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Author |
Sukhbat, K.; Munkhtsog, B. |
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Title |
Density and Distribution of Ibex and Argali Sheep in Mongolia |
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Conference Article |
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1997 |
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121-123 |
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Mongolia; argali; habitat; predator; prey; ibex; ungulates; snow-leopard; snow leopard; browse; 2840 |
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Islt |
Place of Publication |
Lahore, Pakistan |
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R.Jackson; A.Ahmad |
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Full Text at URLTitle, Monographic: Eighth International Snow Leopard SymposiumPlace of Meeting: Islamabad, PakistanDate of Copyright: 1997 |
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SLN @ rana @ 329 |
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942 |
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Author |
Zamoshnikov V.D. |
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Title |
Current status of biodiversity of Western Tien Shan |
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Miscellaneous |
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2002 |
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101-108 |
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Kyrgyzstan; biodiversity; Red Data book; snow leopard.; 8700; Russian |
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This paper deals with current status of biodiversity of Western Tien Shan. Just from mammals 6 species: Menzbier's marmot, dhole, Central Asian otter, snow leopard, Turkestan lynx, Tien Shan argali are included in Red dada Book of Kyrgyzstan. |
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Full text available in RussianJournal Title: Biodiversity of Western Tien Shan. Status and perspectives. |
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SLN @ rana @ 847 |
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1072 |
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Author |
Esipov A.V. |
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Title |
Current state of snow leopard and its main preys in Hissar nature reserve |
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Miscellaneous |
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2000 |
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61-67 |
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Uzbekistan; Hissar nature reserve; number; distribution; threats; snow leopard; Siberian ibex; long-tailed marmot.; 6630; Russian |
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An expert evaluation of the numbers of snow leopard and its preys, Siberian ibex and long-tailed marmot, was made on the basis of surveys conducted in Hissar nature reserve in 1999. The total number of the snow leopard is estimated at 12-16 individuals, whereas that of the Siberian ibex at 1000 individuals. An average density of the population of the long tailed marmot ranges at 4,8 individuals per ha. The ratio of the numbers between the snow leopard, Siberian ibex and long tailed marmot is 1:68:450. The major threats for the snow leopard are poaching on the borders of the nature reserve, a decrease in of preys, shrinking of the range in areas adjoining the nature reserve as a result of intensification of industrial activities and disturbing factors. For the Siberian ibex and long tailed marmot the major limiting factors are the shrinking of the areas and deterioration of the forage value of the high-mountain pastures, as well as the direct competition for forage with domestic animals at the sites adjoining the territory of the nature, as well as disturbing factors. |
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Full text available in RussianJournal Title: Conservation of biodiversity in strictly protected territories of Uzbekistan. |
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SLN @ rana @ 641 |
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257 |
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Author |
Koshkarev E. |
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Title |
Critical Ranges as Centres of Biodiversity |
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Miscellaneous |
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1998 |
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N 14 |
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37-38 |
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Central Asia; biodiversity; rare species; species survival; snow leopard.; 7270; Russian |
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A high percentage of rare species in Central Asia experience limited conditions for distribution. Geographic centers with higher species diversity are generally constrained in terms of territory: they are formed when ranges overlap. But in Central Asia and along its borders with Russia, centers of biodiversity overlap at the very marginal edges of ranges. Central Asian species cross into Russian territory, where desert and steppe are replaced by thick forest. Here the northern borders of their ranges are sharply fragmented and isolated. Typical examples for Central Asia are the ranges of the cheetah (Acinonyx jubatus), Asian leopard (Panthera pardus caucasica), striped hyena (Hyaena hyaena), Bukhara deer (Census elaphus bactrianus), markhor (Capra falconeri), blue sheep (Pseudois nayauf) and argali (Ovis ammon). In Russia are the Altai subspecies of argali, the Siberian argali (O.a.ammon), the mountain goat (Capra sibirica), Mongolian gazelle (Procapra gutturosa), snow leopard (Uncia uncia), Pallas' cat (Felis manul), dhole (Cuon alpinus), grey marmot (Marmota baibacina), Mongolian marmot (M. sibirica) and tolai hare (Lepus tolai). Where the numbers o f individuals has fallen to extreme lows, the most effective mechanism for species survival may be supporting the integrity of ranges, in order to preserve population exchanges between neighboring groups. The geographic location of reserves and other protected territories is vitally important for the survival of Central Asian species, given the acute fragmentation of their ranges. These reserves should include significant, viable centers of population the key places. Wherever the creation of permanent protected territories is impossible, a new tactic must be found, such as introducing temporary limitations on the use of land for agriculture and hunting. But all protected territories, whether temporary or permanent, should be connected, forming a core and periphery. The marginal range areas must not be forgotten, if total protection of endangered populations is to be accomplished. |
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Full text available in RussianJournal Title: Russian Conservation News. |
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SLN @ rana @ 705 |
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555 |
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Gao, Y., Wang, Y., Lee, A. T. L., Liu, Y., Luo, Y., Orrick, K., Alexander, J. S., Sangpo, J. T., Clark, S. G. |
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Title |
Contextualizing sociodemographic differences in Tibetan attitudes toward large carnivores |
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2023 |
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Conservation Science and Practice |
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e13049 |
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1-15 |
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ABC model, brown bear, gray wolf, snow leopard, Tibet |
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Fostering human–wildlife coexistence necessitates a thorough and nuanced grasp of local attitudes toward wildlife. Attitudes can vary substantially based on the sociodemographic backgrounds of individuals within a society. This study examines Tibetan attitudes toward large carnivores, emphasizing the importance of contextualization in discerning the effects of sociodemographic factors on attitudes. We began by analyzing existing research on Tibetan attitudes toward wildlife in China, identifying previously studied sociodemo- graphic variables. We then executed an online survey to evaluate the affective, behavioral, cognitive, and overall attitudes of ethnic Tibetans in China toward snow leopards (Panthera uncia), gray wolves (Canis lupus), and brown bears (Ursus arctos). Our findings show that while factors such as gender, age, religious identity, and level of education shape these attitudes, their influence differs depending on the specific attitude component and the target animal under examination. Therefore, making broad generalizations about sociodemographic differences in attitudes can be misleading. It is imperative for attitude research to clearly define the attitude component (what type of attitude), object (attitude toward what), and circumstance (attitude in which situation) being studied. Conducting ethnographic fieldwork in collaboration with local cultural experts can deepen our understanding of local perspectives and the ways sociodemographic factors influence attitudes. Such insights are pivotal for developing conservation strategies attuned to local sociocultural contexts. |
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SLN @ rakhee @ |
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1736 |
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