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Lesnyak A.P. |
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Title ![sorted by Title field, descending order (down)](img/sort_desc.gif) |
Cats in Uzbekistan's fur trade |
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Miscellaneous |
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1984 |
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57-64 |
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Uzbekistan; rare species; Cats; species range; diet; hunting; pelts; poaching; snow leopard.; 7580; Russian |
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Data of distribution, food, and fur trade of Felidae (North Persian leopard, snow leopard, caracal, Turkestan lynx, manul, Turkestan steppe cat, jungle cat [chaus], sand cat) in Uzbekistan is given. Snow leopard is an object of illegal hunting. |
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Full text available in RussianJournal Title: Hunting and nature protection in Uzbekistan. |
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SLN @ rana @ 736 |
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615 |
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Ishunin G.I. |
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Title ![sorted by Title field, descending order (down)](img/sort_desc.gif) |
Cats |
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1964 |
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37-43 |
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Uzbekistan; South Uzbekistan; Cats; distribution; fur-trade; snow leopard.; 6950; Russian |
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It provides information about the cat family species in Uzbekistan (steppe cat Felis libyca, reed cat Felis chaus, Turkistan lynx Felis lynx isabellina, manul Felis manul, sand cat Felis margarita, Turan tiger Felis tigris virgata, Middle Asia leopard Felis pardus tullianus, and snow leopard Felis uncia. Snow leopard is distributed over the Hissar ridge, and the mountains of Kuydytavak, Khoddjachilimakhram, Zardalyupaz, Khodjapiriyah and Belata. Trade significance of snow leopard is negligent. In the Sary-Asia district one skin was traded in 1934 and 1935, three in 1936, four in 1937, one in 1946, and two in 1947. |
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Full text available in RussianJournal Title: Ecology and economic value of vertebrate animals in south Uzbekistan (the Syrdarya river basin). |
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SLN @ rana @ 673 |
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419 |
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Zakirov A. |
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1974 |
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196-198 |
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Uzbekistan; Ferghana valley; mammals; Cats; snow leopard; distribution.; 8680; Russian |
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It describes a fauna complex of the Fergana valley in Uzbekistan. Three cat family species are found there (wild cat, Turkistan lynx and snow leopard). Snow leopard (Uncia uncia) inhabits eastern part of the Chatkal ridge in the mountains of Akchala. Known are cases of snow leopard's preying on sheep in summer but such cases are extremely rare and the harm is negligent. This is a highly endangered species and therefore full prohibition of shooting the animals is required. |
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Full text available in RussianJournal Title: Vertebrates in the Ferghana valley. |
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SLN @ rana @ 845 |
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1070 |
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Mazoomdaar, J. |
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Cat Among the People |
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Magazine Article |
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2011 |
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Open |
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8 August |
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40-45 |
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snow leopard, India, Bhatnagar, Chundawat, Nature Conservation Foundation, Hemis, Kibber, Himmel |
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www.openthemagazine.com |
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http://openthemagazine.com/article/nation/cat-among-the-people |
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1358 |
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Namgail, T.; Fox, J.; Bhatnagar, Y. |
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Carnivore-Caused Livestock Mortality in Trans-Himalaya |
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2007 |
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Environmental Management |
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39 |
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490-496 |
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Gya-Miru; livestock depredation; Lynx; snow leopard; trans-himalaya; wolf |
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The loss of livestock to wild predators is an important livelihood concern among Trans-Himalayan pastoralists. Because of the remoteness and inaccessibility of the region, few studies have been carried out to quantify livestock depredation by wild predators. In the present study, we assessed the intensity of livestock depredation by snow leopard Uncia uncia, Tibetan wolf Canis lupus chanku, and Eurasian lynx Lynx l. isabellina in three villages, namely Gya, Rumtse, and Sasoma, within the proposed Gya-Miru Wildlife Sanctuary in Ladakh, India. The three villages reported losses of 295 animals to these carnivores during a period of 2.5 years ending in early 2003, which represents an annual loss rate of 2.9% of their livestock holdings. The Tibetan wolf was the most important predator, accounting for 60% of the total livestock loss because of predation, followed by snow leopard (38%) and lynx (2%). Domestic goat was the major victim (32%), followed by sheep (30%), yak (15%), and horse (13%). Wolves killed horses significantly more and goats less than would be expected from their relative abundance. Snow leopards also killed horses significantly more than expected, whereas they killed other livestock types in proportion to their abundance. The three villages combined incurred an estimated annual monetary loss of approximately $USD 12,120 amounting to approximately $USD 190/household/y. This relatively high total annual loss occurred primarily because of depredation of the most valuable livestock types such as yak and horse. Conservation actions should initially attempt to target decrease of predation on these large and valuable livestock species. |
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SLN @ rana @ 924 |
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712 |
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Hellstrom, M., Kruger, E., Naslund, J., Bisther, M., Edlund, A., Hernvall, P., Birgersson, V., Augusto, R., Lancaster, M. L. |
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Capturing environmental DNA in snow tracks of polar bear, Eurasian lynx and snow leopard towards individual identification |
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2023 |
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Frontiers in Conservation Science |
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4 |
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1250996 |
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1-9 |
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nuclear eDNA, snow, snow track, individual, polar bear (Ursus maritimus), Eurasian lynx (Lynx lynx), snow leopard (Panthera uncia), sampling protocol |
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Polar bears (Ursus maritimus), Eurasian lynx (Lynx lynx) and snow leopards (Panthera uncia) are elusive large carnivores inhabiting snow-covered and remote areas. Their effective conservation and management are challenged by inadequate population information, necessitating development of novel data collection methods. Environmental DNA (eDNA) from snow tracks (footprints in snow) has identified species based on mitochondrial DNA, yet its utility for individual-based analyses remains unsolved due to challenges accessing the nuclear genome. We present a protocol for capturing nuclear eDNA from polar bear, Eurasian lynx and snow leopard snow tracks and verify it through genotyping at a selection of microsatellite markers. We successfully retrieved nuclear eDNA from 87.5% (21/24) of wild polar bear snow tracks, 59.1% (26/44) of wild Eurasian lynx snow tracks, and the single snow leopard sampled. We genotyped over half of all wild polar bear samples (54.2%, 13/24) at five loci, and 11% (9/44) of wild lynx samples and the snow leopard at three loci. Genotyping success from Eurasian lynx snow tracks increased to 24% when tracks were collected by trained rather than untrained personnel. Thirteen wild polar bear samples comprised 11 unique genotypes and two identical genotypes; likely representing 12 individual bears, one of which was sampled twice. Snow tracks show promise for use alongside other non-invasive and conventional methods as a reliable source of nuclear DNA for genetic mark-recapture of elusive and threatened mammals. The detailed protocol we present has utility for broadening end user groups and engaging Indigenous and local communities in species monitoring. |
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SLN @ rakhee @ |
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1738 |
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Blomqvist, L. |
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Captive status of the snow leopard in Europe 2001 |
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2003 |
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International Pedigree Book of Snow Leopards |
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8 |
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27-30 |
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captive; status; snow; snow leopard; snow-leopard; leopard |
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SLN @ rana @ 918 |
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170 |
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Flerov K.K. |
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Capra sibirica, Uncia uncia uncia Erxleben |
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1935 |
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115-120 |
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Tajikistan; wild ibex; snow leopard; taxonomy; distribution; behavior.; 6690; Russian |
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It describes identification signs of ibex and snow leopard; provides data concerning taxonomy, distribution and behavioral patterns of the both species. Snow leopard inhibits the mountains of Central Asia, Tarbagatai, Altai, Sayans and southward to the Humalayas. In Tajikistan snow leopard is distributed in Pamir, and probably, along alpine strip of the ridges in northern Tajikistan. The sub-species status is not defined. It is known that the same type inhabits the area from the Sayans to Himalayas. Only in Tibet and highlands of Sychuan and Gansu lives a well-marked sub-species Uncia uncia uncioides Hodgson. |
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Full text available in RussianJournal Title: Animals of Tajikistan, their life and importance for man. |
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SLN @ rana @ 647 |
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278 |
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Christiansen, P. |
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Canine morphology in the larger Felidae: implications for feeding ecology |
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2007 |
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Biological Journal of the Linnean Society |
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91 |
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573-592 |
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bite force, canine, clouded leopard, feeding behaviour, felid, Homotherium serum, leopard, Megantereoncultridens, morphology, Neofelis nebulosa, paleontology, Panthera pardus, Panthera tigris, puma, Puma concolor, Smilodon fatalis, Smilodon populator, snow leopard, Uncia uncia |
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Canine morphology is analysed at seven intervals along the crown in both
anteroposterior and lateromedial perspective in seven species of large felids. The puma and the snow leopard have stout, rather conical canines, whereas those of lions, jaguars, and tigers bear substantial resemblance to each other, reflecting their phylogenetic relationships, and are less conical and large. The canines of the leopard are intermediate in morphology between those of the other species, probably reflecting its more generalized diet. The clouded leopard has very large and blade-like canines, which are different from the other analysed species. Canine bending strengths to estimated bite forces appear to differ less among the species than morphology,indicating that the evolution of canines has been constricted with respect to their strength in failure, probably owing to their being equally important for species fitness. However, the clouded leopard again stands out, having a high estimated bite force and rather weak canines in bending about the anteroposterior as well as lateromedial planes compared to the other species. Canine morphology to some extent reflects differences in killing mode, but also appears to be related to the phylogeny. The marked divergence of the clouded leopard is presently not understood. |
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1115 |
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Jackson, R.; Roe, J.; Wangchuk, R.; Hunter, D. |
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Title ![sorted by Title field, descending order (down)](img/sort_desc.gif) |
Camera-Trapping of Snow Leopards |
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2005 |
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Cat News |
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42 |
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Spring |
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19-21 |
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camera trapping; snow; snow leopards; snow leopard; snow-leopards; snow-leopard; leopards; leopard; felids; tigers; tiger; techniques; surveys; survey; information; factor; marking; behavior; Ahlborn; Jackson; habitat; status; range; census; India; Hemis; High; national; national park; National-park; park; Ladakh; leh |
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Solitary felids like tigers and snow leopards are notoriously difficult to enumerate, and indirect techniques like pugmark surveys often produce ambiguous information that is difficult to interpret because many factors influence marking behavior and frequency (Ahlborn & Jackson 1988). Considering the snow leopard's rugged habitat, it is not surprising then that information on its current status and occupied range is very limited. We adapted the camera-trapping techniques pioneered by Ullas Karanth and his associates for counting Bengal tigers to the census taking of snow leopards in the Rumbak watershed of the India's Hemis High Altitude National Park (HNP), located in Ladakh near Leh (76ø 50' to 77ø 45' East; 33ø 15' to 34ø 20'North). |
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475 |
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Ming, M. |
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Camera trapping on snow leopards in the Muzat Valley, Reserve, Xinjiang, P.R. China (October-December 2005) |
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2006 |
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behavior; camera trapping; China; feces; ibex; infrared trapping cameras; livestock; population size; snow leopard; Tomur; transect; Xinjiang |
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The main purpose of this work was to study the use of infrared trapping cameras to estimate Snow Leopard population size in a specific study area. This is the first time a study of this nature has taken place in China. During 71 days of field work, a total of 36 cameras were set up in Muzat Valley adjacent to the Tomur Nature Reserve in Xinjiang Province. We expended approximately 2094 trap days total. At least 32 pictures of Snow Leopards, 22 pictures of other wild species and 72 pictures of livestock were taken in the Muzat Valley. Meanwhile, 20 transects were run and 31 feces sample were collected. We also observed the behavior of ibex for 77.3 hours and found a total of approximately 264 ibexes in the research area. |
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682 |
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Ming, M.; Chundawat R.S.; Jumabay, K.; Wu, Y.; Aizeizi, Q.; Zhu, M.H. |
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Title ![sorted by Title field, descending order (down)](img/sort_desc.gif) |
Camera trapping of snow leopards for the photo capture rate and population size in the Muzat Valley of Tianshan Mountains |
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2006 |
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Acta Theriologica Sinica |
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52 |
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4 |
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788-793 |
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behavior; camera trapping; capture; China; Chinese; density; feces; fox; ibex; infrared trapping cameras; livestock; photo; population; research; reserve; sign; snow leopard; survey; Tianshan Mountains; Tomur; transect; Uncia uncia; Xinjiang |
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The main purpose of this work was to study the use of infrared trapping cameras to estimate snow leopard Uncia uncia population size in a specific study area. This is the first time a study of this nature has taken place in China. During 71 days of field work, a total of 36 cameras were set up in five different small vales of the Muzat Valley adjacent to the Tomur Nature Reserve in Xinjiang Province, E80ø35' – 81ø00' and N42ø00' – 42ø10', elevation 2'300 – 3'000 m, from 18th October to 27th December 2005. We expended approximately 2094 trap days and nights total (c. 50'256 hours). At least 32 pictures of snow leopards, 22 pictures of other wild species (e.g. chukor, wild pig, ibex, red fox, cape hare) and 72 pictures of livestock were taken by the passive Cam Trakker (CT) train monitor in about 16 points of the Muzat Valley. The movement distance of snow leopard was 3-10 km/day. And the capture rate or photographic rate of snow leopard was 1.53%. Meanwhile, 20 transects were run and 31 feces sample were collected. According to 32 photos, photographic rate and sign survey after snowing on the spot, were about 5-8 individuals of snow leopards in the research area, and the minimum density of snow leopard in Muzat Valley was 2.0 – 3.2 individuals/100 km2. We observed the behavior of ibex for 77.3 hours, and found about 20 groups and a total of approximately 264 ibexes in the research area. |
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In Chinese |
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SLN @ rana @ 971 |
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683 |
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Mishra, C., Young, J. C., Fiechter, M., Rutherford, B., Redpath, S. M. |
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Building partnerships with communities for biodiversity conservation: lessons from Asian mountains |
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2017 |
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Journal of Applied Ecology |
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1-9 |
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community engagement, conservation, conservation programmes, Panthera uncia, partnership, snow leopard, stakeholder engagement |
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Applied ecology lies at the intersection of human societies and natural systems. Consequently, applied ecologists are constantly challenged as to how best to use ecological knowledge to influence the management of ecosystems (Habel et al. 2013). As Hulme (2011) has pointed out, to do so effectively we must leave our ivory towers and engage with stakeholders. This engagement is especially important and challenging in areas of the world where poverty, weak institutions and poor governance structures conspire to limit the ability of local communities to contribute to biodiversity conservation. These communities often bear disproportionate costs in the form of curtailed access to natural resources, ecosystem services, and developmental
programmes, and also suffer wildlife-caused damage, including injuries or loss of human life, and economic
and psychological impacts (Madhusudan & Mishra 2003). It is well-recognized that conservation efforts in large parts of the world historically have been perceived to be discriminatory by local people (Mishra 2016). The need for engagement with local communities is therefore embedded in the 2020 Aichi biodiversity targets and is widely thought to be critical to the success of conservation efforts. However, although the need for engagement is clear, as ecologists and practitioners we often have little formal training in how we should engage with local communities and how we can recognize the pitfalls and opportunities provided by developing genuine partnerships. The practical challenges of achieving effective engagement are considerable (Agrawal & Gibson 1999; Waylen et al. 2010, 2013), and such forays are fraught with difficulties and ethical considerations (Chan et al. 2007). When they are done badly, conservation interventions
can damage relationships and trust, and lead to serious injustice to local people and setbacks for ecological
outcomes (Duffy 2010). Much has been written on knowledge exchange and participatory research approaches (e.g. Reed et al. 2014 and references therein). This Practitioner’s Perspective
seeks to focus on the next logical step: the elements that practitioners and researchers need to consider when
engaging with communities to effect conservation. Engagement around the management of protected areas
has been discussed and formalized (e.g. Dudley 2008). Considerable literature has also emerged, particularly
from Africa, on the use and co-management of natural resources, commonly referred to as community-based natural resource management or CBNRM (e.g. Fabricius 2004; Roe, Nelson & Sandbrook 2009; Child & Barnes
2010). There have been attempts to draw general principles for CBNRM (e.g. Thakadu 2005; Gruber 2010). In
the related field of community-based conservation, however, while there have been efforts to draw lessons (e.g. Berkes 2004), little exists in terms of frameworks or guidelines for effectively working with local communities to effect biodiversity conservation in multi-use landscapes
(Mishra 2016). The eight principles for community-based conservation outlined here (Fig. 1) build on ideas developed in fields as diverse as applied ecology, conservation and natural
resource management, community health, social psychology, rural development, negotiation theory, and ethics
(see Mishra 2016). They have been developed, challenged and tested through 20 years of community experience andour own research on the endangered snow leopard Panthera uncia and its mountain ecosystems, in South and Central Asia. We suspect that with contextual adaptations, their relevance for applied ecologists and practitioners may be universal. |
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SLN @ rakhee @ |
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1451 |
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Burgelo T.B. |
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Title ![sorted by Title field, descending order (down)](img/sort_desc.gif) |
Brief information of snow leopard |
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Miscellaneous |
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1986 |
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54-55 |
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Kazakhstan; snow leopard; records; analysis of food remains; captive breeding.; 6400; Russian |
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This article describes the encounters with snow leopard and their traces in various areas of Kazakhstan. In the Aksu Djabagly nature reserve, population of snow leopard does not exceed 10-12 animals. There were found remains of moral, argali, ibex, small birds, red-tailed marmot, hare (Lepus talai), mouse rodents and plants. One encounter with snow leopard is known to have occurred in the Greater Almaty Canyon in 1971-1981. There are no less than 25 snow leopards in the Jungar Ala-Tau. Snow leopard was found in the Aksu river valley, ridge Saur, and South Altai. The following number of snow leopards was kept in Kazakhstan's zoos, as of January 1, 1984: two males in Alma-Ata, one female in Chimkent. In 1976, one cub was born in the Alma-Ata zoo. |
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Full text available in RussianJournal Title: Rare animals of Kazakhstan. |
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SLN @ rana @ 618 |
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201 |
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Clevenger, S., S. |
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Breeding snow leopards in the north 40 |
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1979 |
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Zoosounds |
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12-13 |
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snow leopard, captivity, breeding, Oklahoma City Zoo |
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1197 |
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Rieger, I. |
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Breeding ounces, Uncia uncia (Schreber, 1775) in zoological gardens |
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1982 |
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International Pedigree Book of Snow Leopards, Vol. 3 |
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3 |
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49-50 |
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breeding; captive; International; ounce; pedigree; snow-leopard; snow-leopards; snow leopard; uncia; Uncia-uncia; Uncia uncia; zoo; zoological; zoological-gardens; zoological gardens |
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Helsinki Zoo |
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Helsinki |
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Blomqvist, L. |
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SLN @ rana @ 1038 |
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822 |
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Freeman, H. |
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Breeding and behavior of the snow leopard |
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1980 |
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snow leopard, captivity, breeding, behavior, Woodland Park Zoo, Seattle |
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1239 |
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Berens K.R |
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Bold pathfinders |
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1972 |
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Kyrgyzstan; hunt; snow leopard.; 6260; Russian |
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A hunt for snow leopard in Kyrgyzstan is described in a popular way. The hunters, people of the Issyk-Kul, caught alive five mature snow leopards by means of traps for less than 1.5 month. Such a quantity within such a minimal period of time is a record, since a total number of snow leopards caught per year is no more than 112 animals. All the animals were safely delivered to the Moscow “ZooCenter”. |
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Full text available in RussianJournal Title: Under the sky of mountainous Kyrgyzstan. |
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SLN @ rana @ 604 |
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129 |
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Fox, J.L.; Jackson, R.M. |
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Blue Sheep and Snow Leopards in Bhutan and Trans-Himalayan Nepal: Recent Status Evaluations and Their Application to Research and Conservation |
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2002 |
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blue; sheep; Nepal; snow; leopard; status; Himalaya; Himalayan; Bhutan; population; indices; conservation; monitoring; 4930 |
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Islt |
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abstract onlyTitle, Monographic: Proceedings of the Snow Leopard Survival SummitPlace of Meeting: Seattle,WA |
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SLN @ rana @ 479 |
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311 |
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Marma, B.B., Yunchis, V.V. |
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Biology of the snow leopard (Panthera uncia uncia) |
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1969 |
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Zoologicheskii Zhurnal |
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47 |
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11 |
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1689-1694 |
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snow leopard, captivity, Panthera uncia, reproduction, Kaunas Zoo, Lithuania |
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The methods to obtain progeny of the snow-leopard (Panthera uncia uncia) in captivity were being elaborated in the zoological garden of Kaunas, Lithuanian SSR. The blood characteristics for snow-leopards is given and compared to that for African lions and Sumatran tigers. A series of internal, external and clinical indices is established. The rut lasts for 5-7 day, the duration of pregnancy equals 98 days. The duration of lactation varies from 3 to 4 months. Sexual maturity is attained on the 3rd-4th year. From 1960 to 1967 in zoological ghardens of the world abuot 29 snow-leopards were born. 14 of them -- in the Kauna zoological garden. |
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1249 |
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Zimina R.P. |
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Biology and biotopical distribution of mammals. Predators. Distribution of mammals by vertical zones |
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1964 |
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Kyrgyzstan; Issy-Kul derression; fauna; snow leopard; distribution.; 8820; Russian |
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Fauna of the Issyk-Kul depression and the surrounding ridges consists of heterogeneous elements different in their ecologic features and origin. In highlands, more common are species of Central Asia's origin (gray marmot, snow leopard, dhole, ibex, argali, etc.). Snow leopard is met in Terskey-Alatau. Each year hunters catch/shoot one to three snow leopards in the Chon-Kizilsu river basin. In the Djeti-Oguz district, up to five eight snow leopards are caught each winter. Snow leopard is also caught/shot in the river basins Chon-Kizilsu, Karabatkak, Ortok, Archtor, Tekeletor, and Shatly. |
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Full text available in RussianJournal Title: Regularities of vertical distribution of mammals. |
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SLN @ rana @ 859 |
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1090 |
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Biological resources |
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2002 |
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Uzbekistan; biodiversity; vertebrates; snow leopard.; 6290; Russian |
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It provides a summary of plant and animal resources in Uzbekistan. Among 15,000 animal species, 664 are vertebrate species including 424 bird, 97 mammal, 83 fish, 59 reptile and three amphibian species. Snow leopard, snow cock, ibex, and other species are typical for highlands. |
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Full text available in Russian Journal Title: First national report of the Republic of Uzbekistan on Framework Convention of UN on climate change. |
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Biological diversity conservation. National strategy and action plan of the Republic of Uzbekistan |
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1998 |
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Uzbekistan; national strategy and action plan; biodiversity; endangered species; snow leopard; distribution; number; conservation measures.; 6280; Russian |
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The National strategy and action plan of the Republic of Uzbekistan was signed on April 1, 1998. Snow leopard was included in the list of rare and endangered animal species and referred to category 2 a rare, not endangered species. It is distributed in highlands of the West Tien Shan and Pamiro-Alay. Its population is 30-50 animals. Snow leopard is protected in the Chatkal, Gissar nature reserve, and Ugam-Chatkal national park. |
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Full text available in Russian |
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Mitropolskiy O.V. |
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Biodiversity of mammals in Uzbekistan: results of the studies; conservation, use and monitoring projects |
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2004 |
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N 8. |
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Western Tien Shan; rare species; status; threats; conservation measures; snow leopard; brown bear; Tien Shan argali; Karatau argali; Menzbier's marmot.; 7660; Russian |
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The article reviews conservation projects regarding valuable species of the West Tien Shan such as snow leopard, Tien Shan brown bear, Tien Shan and Karatau argali, Menzbier's marmot. The questioning revealed three cases of poaching snow leopard in the West Tien Shan in Kazakhstan, and 11 in Uzbekistan. A necessity to severely suppress any acts of poaching or skin trade is emphasized. A number of measures is suggested to preserve the species. |
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Full text available in RussianJournal Title: Information bulletin/digest of Central Asia transboundary biodiversity project. |
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699 |
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Abdunazarov B.B. |
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Biodiversity of mammals in the Western Tien Shan and its conservation |
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2002 |
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Uzbekistan; biodiversity; mammals; mountain ecosystems; Western Tien Shan; Pamir-Alai; endemic; number; human influence; illegal hunting; habitat degradation; snow leopard.; 5770; Russian |
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The mammal fauna of Uzbekistan's mountain ecosystems is represented by some 60 species. Data on mammal species composition in the Western Tien Shan (48 species) and Pamir-Alai (57 species) is given. A quantity of species endemic to the mountainous ecosystems of Uzbekistan is defined. Quantities of nine rare species inhabiting the mountain ecosystems, including snow leopard, are given. Number of snow leopard in Pamir-Alai and the Western Tien Shan is estimated to be 30-50 animals. |
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Expedition |
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Conference |
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Notes |
Full text available in RussianJournal Title: Biodiversity of the Western Tien Shan: protection and sustainable use. |
Approved |
no |
|
|
Call Number |
SLN @ rana @ 557 |
Serial |
22 |
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Permanent link to this record |