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Cached seeds are often pilfered by other scatter‐hoarders and either re‐cached, eaten or larder‐hoarded. Such seed movements can influence seedling recruitment, because only seeds remaining in caches are likely to germinate. Although the importance of scatter‐hoarding rodents in the dispersal of western juniper seeds has recently been revealed, the level of pilfering that occurs after initial burial is unknown. Seed traits, soil moisture, and substrate can influence pilfering processes, but less is known about how pilfering varies among caches placed in open versus canopy microsites, or how cache discovery and removal varies among different canopy‐types, tree versus shrub. We compared the removal of artificial caches between open and canopy microsites and between tree and shrub canopies at two sites in northeastern California during late spring and fall. We also used trail cameras at one site to monitor artificial cache removal, identify potential pilferers, and illuminate microsite use by scatter‐hoarders. Removal of artificial caches was faster in open microsites at both sites during both seasons, and more caches were removed from shrub than tree canopies. California kangaroo rats were the species observed most on cameras, foraging most often in open microsites, which could explain the observed pilfering patterns. This is the first study to document pilfering of western juniper seeds, providing further evidence of the importance of scatter‐hoarding rodent foraging behavior in understanding seedling recruitment processes in juniper woodlands.\u003C\u002Fjats:p>","**Mô tả**   Các loài gặm nhấm phân thủy lưu trữ hạt giống khắp nơi trong khu vực hoạt động của chúng trong những hầm chứa nông cạn trên bề mặt, khác với những hạt giống dự trữ sâu trong hang ổ, rất khó bảo vệ. Các hạt giống đã được chôn thường bị trộm cắp bởi các loài gặm nhấm khác và hoặc được tái chôn, ăn hoặc đưa vào kho dự trữ. Những chuyển động của hạt giống như vậy có thể ảnh hưởng đến quá trình nảy mầm vì chỉ những hạt giống còn lại trong kho mới có khả năng nảy mầm. Mặc dù tầm quan trọng của các loài gặm nhấm phân thủy trong việc phân tán hạt giống cây bách phương tây gần đây đã được làm rõ, nhưng mức độ đánh cắp sau lần chôn đầu tiên vẫn chưa được biết. Đặc điểm của hạt giống, độ ẩm đất và chất nền có thể ảnh hưởng đến quá trình đánh cắp, nhưng ít ai biết về sự thay đổi của việc đánh cắp giữa các hầm chứa ở các vi mô trống trải khác nhau so với dưới các tán cây, hoặc cách phát hiện và loại bỏ kho chứa thay đổi giữa các loại tán khác nhau, giữ cây so với bụi cây. Chúng tôi đã so sánh việc loại bỏ các hầm chứa nhân tạo giữa các vi mô trống trải và dưới các tán cây và bụi cây tại hai địa điểm ở đông bắc California vào mùa xuân và mùa thu. Chúng tôi cũng đã sử dụng camera theo dõi tại một địa điểm để giám sát việc loại bỏ hầm chứa nhân tạo, xác định những kẻ đánh cắp có tiềm năng, và làm sáng tỏ cách sử dụng vi mô của các động vật gặm nhấm phân thủy. Loại bỏ hầm chứa nhân tạo diễn ra nhanh chóng hơn ở các vi mô trống trải tại cả hai địa điểm vào cả hai mùa, và nhiều hầm chứa bị loại khỏi dưới tán bụi cây hơn so với dưới tán cây. Chuột kangaroo California là loài được quan sát thấy nhiều nhất trên camera, thường xuyên kiếm ăn trong các vi mô trống trải, điều này có thể giải thích cho mô hình đánh cắp đã quan sát được. Đây là nghiên cứu đầu tiên ghi nhận sự đánh cắp hạt giống bách phương tây, cung cấp thêm bằng chứng về tầm quan trọng của hành vi kiếm ăn của động vật gặm nhấm phân thủy trong việc hiểu rõ quá trình phát triển cây dương sỉ trong khu vực rừng thông juniper.",{"EN":105,"VI":106},"Pilfering of western juniper seed caches by scatter‐hoarding rodents varies by microsite and canopy type","Làm sạch kho hạt giống của cây bách phương tây bởi các động vật gặm nhấm phân thủy, thay đổi theo loại vi mô và loại tán",{"VOID":108},"33433951",{"VOID":110},"10.1111\u002F1749-4877.12517","PUBLICATION","VERIFIED","Auto Verify",[115],"EN",[117],"VI","https:\u002F\u002Fonlinelibrary.wiley.com\u002Fdoi\u002F10.1111\u002F1749-4877.12517",[120,139],{"id":121,"sortIndex":25,"researcher":24,"roles":122,"affiliations":123,"properties":132,"displayName":136,"givenName":24,"familyName":24},"e4901661-3ad3-4595-9761-2f584f522002",[],[124],{"id":125,"sortIndex":25,"affiliation":126,"properties":24},"54c7665d-0764-451a-9fe0-d36073d7fde9",{"id":125,"createTime":24,"updateTime":24,"relativeEntities":127,"slug":24,"properties":128,"entityType":24,"verifyStatus":24,"verifyTime":24,"verifyNote":24,"languages":24,"translateLanguages":24,"viewCount":24,"url":24,"parentIds":131,"statistic":24},[],{"title":129},{"EN":130},"Agricultural Research Service Great Basin Rangeland Research USDA USA",[],{"orcid":133,"title":135,"openalex":137},{"VOID":134},"https:\u002F\u002Forcid.org\u002F0000-0002-0308-9675",{"EN":136},"Lindsay A. 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Differences in isotope ratios between consumers and their diet, termed discrimination factors, are essential for studies of stable isotope ecology and are species‐specific and tissue‐specific. Given the specialized bamboo diet and clear foraging behavior, here, we calculated discrimination factors for carbon and nitrogen isotopes from diet to tissues (tooth enamel, hair keratin and bone collagen) for the giant panda (\u003Cjats:italic>Ailuropoda melanoleuca\u003C\u002Fjats:italic>), a species derived from meat‐eating ancestors. Our results showed that carbon discrimination factor obtained from giant panda tooth enamel (ε \u003Cjats:sup>13\u003C\u002Fjats:sup>C\u003Cjats:sub>diet‐enamel\u003C\u002Fjats:sub> = 10.0‰) and nitrogen discrimination factors from hair keratin (Δ\u003Cjats:sup>15\u003C\u002Fjats:sup>N\u003Cjats:sub>diet‐hair\u003C\u002Fjats:sub> = 2.2‰) and bone collagen (Δ\u003Cjats:sup>15\u003C\u002Fjats:sup>N\u003Cjats:sub>diet‐collagen\u003C\u002Fjats:sub> = 2.3‰) were lower, and carbon discrimination factors from hair keratin (Δ\u003Cjats:sup>13\u003C\u002Fjats:sup>C\u003Cjats:sub>diet‐hair\u003C\u002Fjats:sub> = 5.0‰) and bone collagen (Δ\u003Cjats:sup>13\u003C\u002Fjats:sup>C\u003Cjats:sub>diet‐collagen\u003C\u002Fjats:sub> = 6.1‰) were higher than those of other mammalian carnivores, omnivores and herbivores. Such distinctive values are likely the result of a low‐nutrient and specialized bamboo diet, carnivore‐like digestive system and exceptionally low metabolism in giant pandas.\u003C\u002Fjats:p>",{"EN":477},"Distinctive diet‐tissue isotopic discrimination factors derived from the exclusive bamboo‐eating giant 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Beijing Normal University Beijing.",{},{"id":24,"text":1392,"url":24,"identifiers":1393},"10.1111\u002Fizy.12247",{"doi":1392},{"id":24,"text":1395,"url":24,"identifiers":1396},"10.1046\u002Fj.1523-1739.1994.08040961.x",{"doi":1395},{"id":24,"text":1398,"url":24,"identifiers":1399},"10.1016\u002F0006-3207(86)90103-5",{"doi":1398},{"id":24,"text":1401,"url":24,"identifiers":1402},"10.1007\u002Fs10592-014-0603-2",{"doi":1401},{"id":24,"text":1404,"url":24,"identifiers":1405},"10.1177\u002F194008291500800312",{"doi":1404},{"id":24,"text":1407,"url":24,"identifiers":1408},"10.1111\u002F2041-210X.12261",{"doi":1407},{"id":24,"text":1410,"url":24,"identifiers":1411},"NangunheN(2018).General introduction of Nangunhe National Nature Reserve Cangyuan Yunnan National Forestry and Grassland Administration. Available from URL:http:\u002F\u002Fwww.forestry.gov.cn. Accessed May 12 2018.",{},{"id":24,"text":1413,"url":24,"identifiers":1414},"10.1111\u002Fj.1471-8286.2005.01155.x",{"doi":1413},{"id":24,"text":1416,"url":24,"identifiers":1417},"10.1111\u002Fj.0906-7590.2008.5203.x",{"doi":1416},{"id":24,"text":1419,"url":24,"identifiers":1420},"PhillipsSJ DudíkM SchapireRE(2019).Maxent software for modeling species niches and distributions (Version 3.4.0). Available from URL:http:\u002F\u002Fbiodiversityinformatics.amnh.org\u002Fopen_source\u002Fmaxent\u002F",{},{"id":24,"text":1422,"url":24,"identifiers":1423},"R Core Team, 2019, R: A language and environment for statistical computing",{},{"id":24,"text":1425,"url":24,"identifiers":1426},"10.1111\u002Fj.1748-1090.2006.00001.x",{"doi":1425},{"id":24,"text":1428,"url":24,"identifiers":1429},"10.1016\u002FB978-0-12-804088-1.00006-X",{"doi":1428},{"id":24,"text":1431,"url":24,"identifiers":1432},"10.2307\u002F1940795",{"doi":1431},{"id":24,"text":1434,"url":24,"identifiers":1435},"Tang Y, 2019, Population dynamics analysis of Asian elephant in Nangunhe river basin, Forestry Construction, 6, 97",{},{"id":24,"text":1437,"url":24,"identifiers":1438},"10.1046\u002Fj.1365-2028.2000.00236.x",{"doi":1437},{"id":24,"text":1440,"url":24,"identifiers":1441},"10.1016\u002Fj.applanim.2015.09.002",{"doi":1440},{"id":24,"text":1443,"url":24,"identifiers":1444},"Tyson M, 2002, WCS‐Indonesia Sumatran Elephant Project: Six month report for January‐June, 2002",{},{"id":24,"text":1446,"url":24,"identifiers":1447},"Valière N, 2002, GIMLET: A computer program for analysing genetic individual identification data, Molecular Ecology Notes, 2, 377, 10.1046\u002Fj.1471-8286.2002.00228.x-i2",{"doi":1448},"10.1046\u002Fj.1471-8286.2002.00228.x-i2",{"id":24,"text":1450,"url":24,"identifiers":1451},"10.1017\u002FS0030605308010090",{"doi":1450},{"id":24,"text":1453,"url":24,"identifiers":1454},"10.1007\u002Fs10592-007-9301-7",{"doi":1453},{"id":24,"text":1456,"url":24,"identifiers":1457},"10.1073\u002Fpnas.1818019116",{"doi":1456},{"id":24,"text":1459,"url":24,"identifiers":1460},"Wang L, 2015, Preliminary study on strategies and measures on transboundary biodiversity conservation between China and Laos, Forest Inventory and Planning, 40, 149",{},{"id":24,"text":1462,"url":24,"identifiers":1463},"10.1890\u002F10-1171.1",{"doi":1462},{"id":24,"text":1465,"url":24,"identifiers":1466},"10.1080\u002F00063659909477239",{"doi":1465},{"id":24,"text":1468,"url":24,"identifiers":1469},"10.1016\u002Fj.ecolind.2012.08.023",{"doi":1468},{"id":24,"text":1471,"url":24,"identifiers":1472},"10.1016\u002Fj.biocon.2015.05.009",{"doi":1471},{"id":24,"text":1474,"url":24,"identifiers":1475},"10.1007\u002Fs10344-006-0065-z",{"doi":1474},{"id":24,"text":1477,"url":24,"identifiers":1478},"10.1093\u002Fmolbev\u002Fmsm099",{"doi":1477},{"id":24,"text":1480,"url":24,"identifiers":1481},"10.1371\u002Fjournal.pone.0124834",{"doi":1480},{"id":1483,"createTime":1484,"updateTime":1484,"relativeEntities":1485,"slug":1486,"properties":1487,"entityType":111,"verifyStatus":112,"verifyTime":1484,"verifyNote":113,"languages":1498,"translateLanguages":24,"viewCount":25,"primaryUrl":1499,"fullTextUrl":24,"authors":1500,"publicationType":157,"publisherRelationship":1574,"citationCount":1619,"citationInfo":1620,"publishDate":1622,"publishYear":206,"citationAnalyzeStatus":23,"lastCitationAnalyze":24,"indexDatabases":1623,"openAccess":24,"references":1624,"isForceReanalyzing":463},"b02902ab-aef7-493c-8b53-121d575092b7","2024-11-28T09:02:14.074+00:00",[],"Seed-size-affects-rodent-seed-interaction-consistently-across-plant-species-but-not-within-species-evidence-from-a-seed-tracking-experiment-of-41-tree-species",{"openalex":1488,"abstract":1490,"title":1492,"pm":1494,"doi":1496},{"VOID":1489},"W4200092119",{"EN":1491},"\u003Cjats:title>Abstract\u003C\u002Fjats:title>\u003Cjats:p>Scatter‐hoarding rodents play a crucial role in seed survival and seed dispersal. As one of the most important seed traits, seed size and its effect on rodent–seed interaction attract lots of attention. Current studies usually target one or a few species and show inconsistent patterns; however, few experiments include a large number of species although many plant species usually coexist in natural forest and overlap in fruiting time. Here, we tracked the dispersal and predation of 26 100 seeds belonging to 41 tree species in a subtropical forest for 2 years. Most species showed no relationships between seed size and rodent foraging preference, while the remaining species displayed diverse of patterns: monotonic decrease and increase trends, and hump‐shaped and U‐shaped patterns, indicating that a one‐off study with a few species might give misleading information. However, the seed size effect across species was consistent in both years, indicating that including a large number of species that hold a sufficient range of seed size may avoid the aforementioned bias. Interestingly, seed size effect differed among rodent foraging processes: a negative effect on seed harvest, a hump‐shaped effect on seed removal and removal distance, while a positive effect on overwinter survival of cached seeds, indicating that rodents may make trade‐offs between large and small seeds both among foraging processes and within a single process, thus lead to a parabolic relationship between seed size and seed dispersal success, that is medium‐sized seeds were more likely to be removed and cached, and transported with a further distance.\u003C\u002Fjats:p>",{"EN":1493},"Seed size affects rodent–seed interaction consistently across plant species but not within species: evidence from a seed tracking experiment of 41 tree 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The presence of a pronounced sagittal crest in some tapirs (Perissodactyla: Tapiridae) was recently shown to be negatively correlated with hard‐object feeding, in contrast with similar cranial structures in carnivorans. The aim of this study was to investigate bite forces and sagittal crest heights across a wide range of modern and extinct tapirs and apply a comparative investigation to establish whether these features are correlated across a broad phylogenetic scope. We examined a sample of 71 specimens representing 15 tapir species (5 extant, 10 extinct) using the dry‐skull method, linear measurements of cranial features, phylogenetic reconstruction, and comparative analyses. Tapirs were found to exhibit variation in bite force and sagittal crest height across their phylogeny and between different biogeographical realms, with high‐crested morphologies occurring mostly in Neotropical species. The highest bite forces within tapirs appear to be driven by estimates for the masseter–pterygoid muscle complex, rather than predicted forces for the temporalis muscle. Our results demonstrate that relative sagittal crest height is poorly correlated with relative cranial bite force, suggesting high force application is not a driver for pronounced sagittal crests in this sample. The divergent biomechanical capabilities of different contemporaneous tapirids may have allowed multiple species to occupy overlapping territories and partition resources to avoid excess competition. 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107",{},{"id":24,"text":2232,"url":24,"identifiers":2233},"10.1016\u002Fj.mambio.2015.11.001",{"doi":2232},{"id":24,"text":2235,"url":24,"identifiers":2236},"10.5772\u002F35361",{"doi":2235},{"id":24,"text":2238,"url":24,"identifiers":2239},"10.3109\u002F19401736.2015.1022766",{"doi":2238},{"id":24,"text":2241,"url":24,"identifiers":2242},"10.1111\u002Fj.1420-9101.2009.01922.x",{"doi":2241},{"id":24,"text":2244,"url":24,"identifiers":2245},"10.3732\u002Fajb.93.10.1531",{"doi":2244},{"id":24,"text":2247,"url":24,"identifiers":2248},"10.1111\u002Fj.1365-2435.2010.01703.x",{"doi":2247},{"id":24,"text":2250,"url":24,"identifiers":2251},"Savage RJG, 1986, Mammal Evolution: An Illustrated Guide",{},{"id":24,"text":2253,"url":24,"identifiers":2254},"10.1080\u002F02724634.2011.550360",{"doi":2253},{"id":24,"text":2256,"url":24,"identifiers":2257},"10.1038\u002Fnmeth.2019",{"doi":2256},{"id":24,"text":2259,"url":24,"identifiers":2260},"Schoch RM, 1984, The type specimens of Tapiravus validus and Tapiravus rams (Mammalia, Perissodactyla), with a review of the genus, and a new report of Miotapirus (Miotapirus marslandensis Schoch and Prins, new species) from Nebraska, Postilla, 195, 1",{},{"id":24,"text":2262,"url":24,"identifiers":2263},"Schultz CB, 1975, Middle and Late Cenozoic tapirs from Nebraska, Bulletin of the University of Nebraska State Museum, 10, 1",{},{"id":24,"text":2265,"url":24,"identifiers":2266},"Sellards EH, 1918, The skull of a Pleistocene tapir including description of a new species and a note on the associated fauna and flora, Florida Geological Survey Annual Report, 10, 57",{},{"id":24,"text":2268,"url":24,"identifiers":2269},"10.7717\u002Fpeerj.514",{"doi":2268},{"id":24,"text":2271,"url":24,"identifiers":2272},"10.1111\u002Fjoa.12456",{"doi":2271},{"id":24,"text":2274,"url":24,"identifiers":2275},"10.1086\u002F285648",{"doi":2274},{"id":24,"text":2277,"url":24,"identifiers":2278},"10.1111\u002Fj.1420-9101.2009.01845.x",{"doi":2277},{"id":24,"text":2280,"url":24,"identifiers":2281},"10.1371\u002Fjournal.pone.0118380",{"doi":2280},{"id":24,"text":2283,"url":24,"identifiers":2284},"10.1111\u002Fj.1558-5646.1969.tb03552.x",{"doi":2283},{"id":24,"text":2286,"url":24,"identifiers":2287},"10.1111\u002Fj.1095-8312.2008.01052.x",{"doi":2286},{"id":24,"text":2289,"url":24,"identifiers":2290},"10.1017\u002FS0952836905007430",{"doi":2289},{"id":24,"text":2292,"url":24,"identifiers":2293},"10.1139\u002Fz91-327",{"doi":2292},{"id":24,"text":2295,"url":24,"identifiers":2296},"10.1111\u002Fevo.13357",{"doi":2295},{"id":24,"text":2298,"url":24,"identifiers":2299},"10.1371\u002Fjournal.pone.0124020",{"doi":2298},{"id":24,"text":2301,"url":24,"identifiers":2302},"10.2307\u002F3038066",{"doi":2301},{"id":24,"text":2304,"url":24,"identifiers":2305},"10.1093\u002Ficb\u002Ficm016",{"doi":2304},{"id":24,"text":2307,"url":24,"identifiers":2308},"10.1016\u002Fj.jhevol.2014.05.007",{"doi":2307},{"id":24,"text":2310,"url":24,"identifiers":2311},"10.1093\u002Ficb\u002F45.2.256",{"doi":2310},{"id":24,"text":2313,"url":24,"identifiers":2314},"Wortman JL, 1893, Ancestors of the tapir from the lower Miocene of Dakota, Bulletin of the American Museum of Natural History, 5, 159",{},{"id":24,"text":2316,"url":24,"identifiers":2317},"10.1098\u002Frsbl.2003.0095",{"doi":2316},{"id":24,"text":2319,"url":24,"identifiers":2320},"10.1098\u002Frspb.2004.2986",{"doi":2319},{"id":2322,"createTime":2323,"updateTime":2323,"relativeEntities":2324,"slug":2325,"properties":2326,"entityType":111,"verifyStatus":112,"verifyTime":2323,"verifyNote":113,"languages":2339,"translateLanguages":24,"viewCount":25,"primaryUrl":2340,"fullTextUrl":24,"authors":2341,"publicationType":157,"publisherRelationship":2378,"citationCount":2423,"citationInfo":2424,"publishDate":2427,"publishYear":2425,"citationAnalyzeStatus":23,"lastCitationAnalyze":24,"indexDatabases":2428,"openAccess":24,"references":2429,"isForceReanalyzing":463},"e11ff8d6-fcca-4edf-a9ae-e194f13c22d3","2024-11-26T03:52:27.606+00:00",[],"Sumatran-tiger-i-Panthera-tigris-sumatrae-i-A-review-of-conservation-status",{"openalex":2327,"mag":2329,"abstract":2331,"title":2333,"pm":2335,"doi":2337},{"VOID":2328},"W2126644005",{"VOID":2330},"2126644005",{"EN":2332},"\u003Cjats:title>Abstract\u003C\u002Fjats:title>\u003Cjats:p>The majority of wild Sumatran tigers are believed to live in 12 Tiger Conservation Landscapes covering approximately 88 000 km\u003Cjats:sup>2\u003C\u002Fjats:sup>. However, the actual distribution of tigers across Sumatra has never been accurately mapped. Over the past 20 years, conservation efforts focused on the Sumatran tigers have increased, but the population continues to decline as a result of several key threats. To identify the status of the Sumatran tiger distribution across the island, an island‐wide questionnaire survey comprised of 35 respondents from various backgrounds was conducted between May and June 2010. The survey found that Sumatran tigers are positively present in 27 habitat patches larger than 250 km\u003Cjats:sup>2\u003C\u002Fjats:sup> and possibly present in another 2. In addition, a review on major published studies on the Sumatran tiger was conducted to identify the current conservation status of the Sumatran tiger. Collectively, these studies have identified several key factors that have contributed to the decline of Sumatran tiger populations, including: forest habitat fragmentation and loss, direct killing of tigers and their prey, and the retaliatory killing of tigers due to conflict with villagers. The present paper provides management authorities and the international community with a recent assessment and a base map of the actual distribution of Sumatran tigers as well as a general overview on the current status and possible future conservation challenges of Sumatran tiger management.\u003C\u002Fjats:p>",{"EN":2334},"Sumatran tiger (\u003Ci>Panthera tigris sumatrae\u003C\u002Fi>): A review of conservation status",{"VOID":2336},"21392349",{"VOID":2338},"10.1111\u002Fj.1749-4877.2010.00219.x",[115],"https:\u002F\u002Fonlinelibrary.wiley.com\u002Fdoi\u002F10.1111\u002Fj.1749-4877.2010.00219.x",[2342,2361],{"id":2343,"sortIndex":25,"researcher":24,"roles":2344,"affiliations":2345,"properties":2354,"displayName":2358,"givenName":24,"familyName":24},"48f10bd0-750a-4639-aaaf-6c6aed70093e",[],[2346],{"id":2347,"sortIndex":25,"affiliation":2348,"properties":24},"a728eabf-0b7c-46d1-8440-b478c92974dc",{"id":2347,"createTime":24,"updateTime":24,"relativeEntities":2349,"slug":24,"properties":2350,"entityType":24,"verifyStatus":24,"verifyTime":24,"verifyNote":24,"languages":24,"translateLanguages":24,"viewCount":24,"url":24,"parentIds":2353,"statistic":24},[],{"title":2351},{"EN":2352},"Wildlife Conservation Society, Indonesia Program, West Java, IndonesiaHarimauKita, The Sumatran Tiger Conservation Forum, West Java, Indonesia.",[],{"orcid":2355,"title":2357,"openalex":2359},{"VOID":2356},"https:\u002F\u002Forcid.org\u002F0000-0002-0311-3700",{"EN":2358},"Hariyo T. Wibisono",{"VOID":2360},"A5014910631",{"id":2362,"sortIndex":141,"researcher":24,"roles":2363,"affiliations":2364,"properties":2371,"displayName":2375,"givenName":24,"familyName":24},"5f30a86e-304b-4c20-945f-f9ff316f19f3",[],[2365],{"id":2347,"sortIndex":25,"affiliation":2366,"properties":24},{"id":2347,"createTime":24,"updateTime":24,"relativeEntities":2367,"slug":24,"properties":2368,"entityType":24,"verifyStatus":24,"verifyTime":24,"verifyNote":24,"languages":24,"translateLanguages":24,"viewCount":24,"url":24,"parentIds":2370,"statistic":24},[],{"title":2369},{"EN":2352},[],{"orcid":2372,"title":2374,"openalex":2376},{"VOID":2373},"https:\u002F\u002Forcid.org\u002F0000-0001-9909-0920",{"EN":2375},"Wulan Pusparini",{"VOID":2377},"A5001133075",{"url":24,"publisher":2379,"properties":2417},{"id":6,"createTime":7,"updateTime":8,"relativeEntities":2380,"slug":10,"properties":2381,"entityType":22,"verifyStatus":23,"verifyTime":24,"verifyNote":24,"languages":24,"translateLanguages":24,"viewCount":25,"subjectFields":2386,"manageAffiliations":2391,"indexDatabases":2402,"url":83,"thumbnailPath":24,"statistic":24,"gsStatistic":24,"type":24,"analyzePriority":24},[],{"country":2382,"eissn":2383,"issn":2384,"title":2385},{"VOID":13},{"VOID":15},{"VOID":17},{"EN":19},[2387],{"id":28,"createTime":24,"updateTime":24,"relativeEntities":2388,"label":2389,"description":2390,"parentId":24,"standard":24,"scholarHubFieldId":24},[],{"EN":31},{},[2392,2397],{"id":35,"createTime":24,"updateTime":24,"relativeEntities":2393,"slug":24,"properties":2394,"entityType":24,"verifyStatus":24,"verifyTime":24,"verifyNote":24,"languages":24,"translateLanguages":24,"viewCount":24,"url":24,"parentIds":2396,"statistic":24},[],{"title":2395},{"EN":39},[],{"id":42,"createTime":24,"updateTime":24,"relativeEntities":2398,"slug":24,"properties":2399,"entityType":24,"verifyStatus":24,"verifyTime":24,"verifyNote":24,"languages":24,"translateLanguages":24,"viewCount":24,"url":24,"parentIds":2401,"statistic":24},[],{"title":2400},{"EN":46},[],[2403,2410],{"id":50,"indexDatabase":2404,"url":63,"indexYears":24,"academicFieldIds":2409,"indexDatabaseRanking":24},{"id":52,"createTime":24,"updateTime":24,"relativeEntities":2405,"label":2406,"description":2407,"key":59,"publicationTags":2408,"standard":24},[],{"EN":55,"VI":55},{"EN":57,"VI":58},[61,62],[65],{"id":67,"indexDatabase":2411,"url":78,"indexYears":79,"academicFieldIds":2416,"indexDatabaseRanking":82},{"id":69,"createTime":24,"updateTime":24,"relativeEntities":2412,"label":2413,"description":2414,"key":75,"publicationTags":2415,"standard":24},[],{"EN":72,"VI":72},{"EN":72,"VI":74},[77],[81],{"issue":2418,"pages":2420,"volume":2422},{"VOID":2419},"4",{"VOID":2421},"313-323",{"VOID":1615},44,{"total":2423,"publishYear":2425,"statisticByYear":2426},2010,{"2012":209,"2013":563,"2014":209,"2015":208,"2016":141,"2017":141,"2018":209,"2019":563,"2020":208,"2021":204,"2022":581,"2023":581,"2024":141},"2010-12-01",[77,61],[2430,2433,2436,2439,2442,2445,2448,2451,2454,2457,2460,2463,2466,2469,2472,2475,2478,2481,2484,2487,2490,2493,2496,2499,2502,2505,2508,2511,2514,2517,2520,2523,2526,2529,2532,2535,2538,2541,2544,2547,2550,2553,2556,2559,2562,2565,2568,2571,2574,2577,2580],{"id":24,"text":2431,"url":24,"identifiers":2432},"10.1126\u002Fscience.1070656",{"doi":2431},{"id":24,"text":2434,"url":24,"identifiers":2435},"Bennett EL, 2000, Toward Environmentally and Socially Sustainable Development, Environment Department Paper No. 76 (Biodiversity Series: Impact Studies)",{},{"id":24,"text":2437,"url":24,"identifiers":2438},"Borner M, 1978, Status and conservation of the Sumatran tiger, Carnivore, 1, 97",{},{"id":24,"text":2440,"url":24,"identifiers":2441},"Committee on Data for Science and Technology, 2009, Global Roads Data Development Working Group and Center for International Earth Science Information Network (CIESIN)",{},{"id":24,"text":2443,"url":24,"identifiers":2444},"Dinata Y, 2008, Assessing the population status and management of tigers in the Batang Hari Landscape, West Sumatra, Indonesia (MSc Dissertation)",{},{"id":24,"text":2446,"url":24,"identifiers":2447},"DinataY GemitaE LinkieM(2010).Protecting sumatra tigers and rhinos inside and outside of the Batang Hari Tropical Forests Sumatra Indonesia. Unpublished Technical Report to the US Fish and Wildlife Service. Durrell Trust for Conservation Biology UK.",{},{"id":24,"text":2449,"url":24,"identifiers":2450},"Fauna Flora International (FFI)(2010).Tentang FFI. [Cited 9 July 2010.] Available from URL:http:\u002F\u002Fwww.ffi.or.id\u002Ftentangkami.php.",{},{"id":24,"text":2452,"url":24,"identifiers":2453},"10.1007\u002Fs002679900049",{"doi":2452},{"id":24,"text":2455,"url":24,"identifiers":2456},"Forest Watch Indonesia\u002FGlobal Forest Watch (FWI\u002FGFW), 2002, Forest Watch Indonesia and Global Forest Watch",{},{"id":24,"text":2458,"url":24,"identifiers":2459},"Franklin N, 2002, Conservation biology of the Sumatran tiger in Way Kambas National Park, Sumatra, Indonesia (PhD Dissertation)",{},{"id":24,"text":2461,"url":24,"identifiers":2462},"Gaveau DLA, 2007, Interactive CD‐ROM. Wildlife Conservation Society Indonesia Program, Conservation International and Directorate General of Forest Protection and Nature Conservation",{},{"id":24,"text":2464,"url":24,"identifiers":2465},"10.1111\u002Fj.1365-2699.2009.02147.x",{"doi":2464},{"id":24,"text":2467,"url":24,"identifiers":2468},"Government of India(2005).Joining the dots: The report of the tiger task force.Union Ministry of Environment and Forests (Project Tiger) New Delhi India.",{},{"id":24,"text":2470,"url":24,"identifiers":2471},"Griffith M, 1994, Sumatran Tiger Populations and Habitat Viability Analysis, 93",{},{"id":24,"text":2473,"url":24,"identifiers":2474},"HolmesD(2000).Deforestation in Indonesia: A view of the situation in 1999. A Report to the World Bank.",{},{"id":24,"text":2476,"url":24,"identifiers":2477},"Indonesian Ministry of Forestry, 2000, Forestry statistics of Indonesia 2000",{},{"id":24,"text":2479,"url":24,"identifiers":2480},"Indonesian Ministry of Forestry, 2007, Strategy and action plan for the Sumatran Tiger (Panthera tigris sumatrae) 2007–2017",{},{"id":24,"text":2482,"url":24,"identifiers":2483},"10.1017\u002FS003060530899030X",{"doi":2482},{"id":24,"text":2485,"url":24,"identifiers":2486},"Karanth UK, 1999, Riding the Tiger: Tiger Conservation in Human‐Dominated Landscape, 100",{},{"id":24,"text":2488,"url":24,"identifiers":2489},"10.1046\u002Fj.1523-1739.2002.99290.x",{"doi":2488},{"id":24,"text":2491,"url":24,"identifiers":2492},"10.1046\u002Fj.1523-1739.2003.02040.x",{"doi":2491},{"id":24,"text":2494,"url":24,"identifiers":2495},"LaumonierY UryuY StüweM BudimanA SetiabudiB HadianO(2010).Eco‐floristic sectors and deforestation threats in Sumatra: Identifying new conservation area network priorities for ecosystem‐based land use planning.Biodiversity Conservation. doi:10.1007s10531‐010‐9784‐2.http:\u002F\u002Fwww.springerlink.com\u002Fcontent\u002Fc77376k574051178\u002F.",{},{"id":24,"text":2497,"url":24,"identifiers":2498},"10.1017\u002FS0030605303000103",{"doi":2497},{"id":24,"text":2500,"url":24,"identifiers":2501},"10.1023\u002FB:BIOC.0000035867.90891.ea",{"doi":2500},{"id":24,"text":2503,"url":24,"identifiers":2504},"10.1111\u002Fj.1365-2664.2006.01153.x",{"doi":2503},{"id":24,"text":2506,"url":24,"identifiers":2507},"10.1111\u002Fj.1523-1739.2008.00906.x",{"doi":2506},{"id":24,"text":2509,"url":24,"identifiers":2510},"Maddox T, 2007, Rapid Survey for Tigers and Other Large Mammals: SM Bentayang, SM Dangku, South Sumatra",{},{"id":24,"text":2512,"url":24,"identifiers":2513},"Mills JA, 1994, Killed for a cure: A review of the worldwide trade in tiger bone",{},{"id":24,"text":2515,"url":24,"identifiers":2516},"Nelson A, 2002, Global Roads Data: Asia, Indonesia",{},{"id":24,"text":2518,"url":24,"identifiers":2519},"Ng J, 2007, A TRAFFIC Southeast Asia Report",{},{"id":24,"text":2521,"url":24,"identifiers":2522},"Nowell K, 2000, Far from a cure: The tiger trade revisited",{},{"id":24,"text":2524,"url":24,"identifiers":2525},"Nowell K, 1996, Wild Cats: Status Survey and Conservation Action Plan",{},{"id":24,"text":2527,"url":24,"identifiers":2528},"10.1017\u002FS0030605304000110",{"doi":2527},{"id":24,"text":2530,"url":24,"identifiers":2531},"10.1017\u002FS1367943003003172",{"doi":2530},{"id":24,"text":2533,"url":24,"identifiers":2534},"Quintero J, 2009, The Working Report on Tiger‐friendly Infrastructure",{},{"id":24,"text":2536,"url":24,"identifiers":2537},"Roosita H, 2010, Peta Jalan Menuju Penyelamatan Ekosistem Sumatera: Visi Sumatera 2020",{},{"id":24,"text":2539,"url":24,"identifiers":2540},"10.3106\u002F041.034.0303",{"doi":2539},{"id":24,"text":2542,"url":24,"identifiers":2543},"10.1046\u002Fj.1523-1739.1997.96300.x",{"doi":2542},{"id":24,"text":2545,"url":24,"identifiers":2546},"Sanderson E, 2006, Setting Priorities for the Conservation and Recovery of Wild Tigers: 2005–2015: The Technical Assessment",{},{"id":24,"text":2548,"url":24,"identifiers":2549},"Santiapillai C, 1987, Tigers of the World: The Biology, Biopolitics, Management, and Conservation of an Endangered Species, 85",{},{"id":24,"text":2551,"url":24,"identifiers":2552},"Schaller GB, 1967, The Deer and the Tiger: A Study of Wildlife in India",{},{"id":24,"text":2554,"url":24,"identifiers":2555},"Seidensticker J, 1986, Cats of the World: Biology, Conservation, and Management, 1",{},{"id":24,"text":2557,"url":24,"identifiers":2558},"Seidensticker J, 1999, Riding the Tiger: Tiger Conservation in Human‐Dominated Landscape, 1",{},{"id":24,"text":2560,"url":24,"identifiers":2561},"Sheppard CR, 2004, Nowhere to Hide: The Trade in Sumatran Tiger",{},{"id":24,"text":2563,"url":24,"identifiers":2564},"Sumatran Tiger Conservation Program (TCP)(2010).Senepis Buluhala Tiger Conservation Area – Dumai. [Cited 10 July 2010.] Available from URL:http:\u002F\u002Fwww.tigertrust.info\u002Fsumatran_tiger_where.asp?ID=NPF&catID=10.",{},{"id":24,"text":2566,"url":24,"identifiers":2567},"10.5479\u002Fsi.00810282.336",{"doi":2566},{"id":24,"text":2569,"url":24,"identifiers":2570},"Tilson RL, 1994, Sumatran Tiger Populations and Habitat Viability Analysis",{},{"id":24,"text":2572,"url":24,"identifiers":2573},"Walston J, 2010, Avoiding the unthinkable: What will it cost to prevent tigers becoming extinct in the wild? Technical Report",{},{"id":24,"text":2575,"url":24,"identifiers":2576},"Wibisono HT, 2005, Population ecology of Sumatran tigers (Panthera tigris sumatrae) and their prey in Bukit Barisan Selatan National Park, Sumatra, Indonesia (Masters Thesis)",{},{"id":24,"text":2578,"url":24,"identifiers":2579},"10.1017\u002FS003060530999055X",{"doi":2578},{"id":24,"text":2581,"url":24,"identifiers":2582},"World Wildlife Fund (WWF)(2004).WWF's Riau camera trap survey in progress. Tesso Nilo Newsletter December 2004.",{},{"id":2584,"createTime":2585,"updateTime":2585,"relativeEntities":2586,"slug":2587,"properties":2588,"entityType":111,"verifyStatus":112,"verifyTime":2585,"verifyNote":113,"languages":2601,"translateLanguages":24,"viewCount":25,"primaryUrl":2602,"fullTextUrl":24,"authors":2603,"publicationType":157,"publisherRelationship":2623,"citationCount":1159,"citationInfo":2667,"publishDate":2669,"publishYear":2425,"citationAnalyzeStatus":23,"lastCitationAnalyze":24,"indexDatabases":2670,"openAccess":24,"references":2671,"isForceReanalyzing":463},"2195aaf7-7790-482c-a4ad-f95197fc9228","2024-09-30T16:00:38.403+00:00",[],"Some-biological-consequences-of-environmental-change-A-study-using-barnacles-Cirripedia-Balanomorpha-and-gum-trees-Angiospermae-Myrtaceae-",{"openalex":2589,"mag":2591,"abstract":2593,"title":2595,"pm":2597,"doi":2599},{"VOID":2590},"W2024883933",{"VOID":2592},"2024883933",{"EN":2594},"\u003Cjats:title>Abstract\u003C\u002Fjats:title>\u003Cjats:p>Uniformitarianism permits understanding of the past on the basis of the present, and modeling the future through consideration of the fossil record. The present paper addresses the impact environmental (climatic) change has had on acorn barnacles and eucalyptus trees. Acorn barnacles (Balanomorpha) are first recorded after the K\u002FT mass‐extinction event. In the Paleogene, rapid radiation resulted in their occupying most marine environments. That balanomorphs survived both the Paleocene–Eocene thermal maximum and the Pleistocene glaciation is testament to their ability to adapt to opportunities; they are known from the littoral (\u003Cjats:italic>Chamaesipho\u003C\u002Fjats:italic>) to depths of 3600 m (\u003Cjats:italic>Tetrachaelasma\u003C\u002Fjats:italic>) and within this from diverse substrates: rock, wood and miscellaneous flotsam, plus in symbiosis or commensalism with most larger marine organisms. Darwin's (1854) view of the late Tertiary as the age of barnacles is reflected in their diversity, distribution and biomass. Barnacles are contrasted with the Australian Myrtaceae: plants ranging from woody shrubs to tall trees. The most significant is \u003Cjats:italic>Eucalyptus sensu lato\u003C\u002Fjats:italic>, which typifies Australia's flora, and is characterized by aromatic leaves that produce eucalyptol. \u003Cjats:italic>Eucalyptus\u003C\u002Fjats:italic> has evolved strategies that result in its domination of Australian open woodlands: these include production of highly flammable eucalyptol oil (with a flashpoint of 49 °C) and an unprecedented ability to regenerate following forest fires. Gum trees and barnacles first appear in the Paleogene, their earliest records are Australasian, and they both demonstrate extraordinary resilience when environmental conditions are optimal.\u003C\u002Fjats:p>",{"EN":2596},"Some biological consequences of environmental change: A study using barnacles (Cirripedia: Balanomorpha) and gum trees (Angiospermae: Myrtaceae)",{"VOID":2598},"21392330",{"VOID":2600},"10.1111\u002Fj.1749-4877.2010.00195.x",[115],"https:\u002F\u002Fonlinelibrary.wiley.com\u002Fdoi\u002F10.1111\u002Fj.1749-4877.2010.00195.x",[2604],{"id":2605,"sortIndex":25,"researcher":24,"roles":2606,"affiliations":2607,"properties":2616,"displayName":2620,"givenName":24,"familyName":24},"b90fc6e9-058e-4fe5-8fd0-47316bda9d47",[],[2608],{"id":2609,"sortIndex":25,"affiliation":2610,"properties":24},"a7cf9bf0-04bf-43dc-9d5c-321ac73f682f",{"id":2609,"createTime":24,"updateTime":24,"relativeEntities":2611,"slug":24,"properties":2612,"entityType":24,"verifyStatus":24,"verifyTime":24,"verifyNote":24,"languages":24,"translateLanguages":24,"viewCount":24,"url":24,"parentIds":2615,"statistic":24},[],{"title":2613},{"EN":2614},"Earth and Oceanic Systems, RMIT University, Melbourne, Australia",[],{"orcid":2617,"title":2619,"openalex":2621},{"VOID":2618},"https:\u002F\u002Forcid.org\u002F0000-0001-6510-5629",{"EN":2620},"John S. Buckeridge",{"VOID":2622},"A5048098365",{"url":24,"publisher":2624,"properties":2662},{"id":6,"createTime":7,"updateTime":8,"relativeEntities":2625,"slug":10,"properties":2626,"entityType":22,"verifyStatus":23,"verifyTime":24,"verifyNote":24,"languages":24,"translateLanguages":24,"viewCount":25,"subjectFields":2631,"manageAffiliations":2636,"indexDatabases":2647,"url":83,"thumbnailPath":24,"statistic":24,"gsStatistic":24,"type":24,"analyzePriority":24},[],{"country":2627,"eissn":2628,"issn":2629,"title":2630},{"VOID":13},{"VOID":15},{"VOID":17},{"EN":19},[2632],{"id":28,"createTime":24,"updateTime":24,"relativeEntities":2633,"label":2634,"description":2635,"parentId":24,"standard":24,"scholarHubFieldId":24},[],{"EN":31},{},[2637,2642],{"id":35,"createTime":24,"updateTime":24,"relativeEntities":2638,"slug":24,"properties":2639,"entityType":24,"verifyStatus":24,"verifyTime":24,"verifyNote":24,"languages":24,"translateLanguages":24,"viewCount":24,"url":24,"parentIds":2641,"statistic":24},[],{"title":2640},{"EN":39},[],{"id":42,"createTime":24,"updateTime":24,"relativeEntities":2643,"slug":24,"properties":2644,"entityType":24,"verifyStatus":24,"verifyTime":24,"verifyNote":24,"languages":24,"translateLanguages":24,"viewCount":24,"url":24,"parentIds":2646,"statistic":24},[],{"title":2645},{"EN":46},[],[2648,2655],{"id":50,"indexDatabase":2649,"url":63,"indexYears":24,"academicFieldIds":2654,"indexDatabaseRanking":24},{"id":52,"createTime":24,"updateTime":24,"relativeEntities":2650,"label":2651,"description":2652,"key":59,"publicationTags":2653,"standard":24},[],{"EN":55,"VI":55},{"EN":57,"VI":58},[61,62],[65],{"id":67,"indexDatabase":2656,"url":78,"indexYears":79,"academicFieldIds":2661,"indexDatabaseRanking":82},{"id":69,"createTime":24,"updateTime":24,"relativeEntities":2657,"label":2658,"description":2659,"key":75,"publicationTags":2660,"standard":24},[],{"EN":72,"VI":72},{"EN":72,"VI":74},[77],[81],{"issue":2663,"pages":2664,"volume":2666},{"VOID":199},{"VOID":2665},"122-131",{"VOID":1615},{"total":1159,"publishYear":2425,"statisticByYear":2668},{"2012":141,"2013":141,"2015":141,"2017":141,"2020":141,"2023":141,"2024":141},"2010-06-01",[77,61],[2672,2675,2678,2681,2684,2687,2690,2693,2696,2699,2703,2706,2709,2712,2715,2718,2721,2724,2727,2730,2733,2736,2739,2742,2745,2748,2751,2754,2757,2760],{"id":24,"text":2673,"url":24,"identifiers":2674},"10.1071\u002FBT9840475",{"doi":2673},{"id":24,"text":2676,"url":24,"identifiers":2677},"10.1071\u002F9780643069701",{"doi":2676},{"id":24,"text":2679,"url":24,"identifiers":2680},"Buckeridge JS, 1983, The fossil barnacles (Cirripedia: Thoracica) of New Zealand and Australia, New Zealand Geological Survey Paleontological Bulletin, 50, 1",{},{"id":24,"text":2682,"url":24,"identifiers":2683},"Buckeridge JS, 1996, Phylogeny and Biogeography of the Primitive Sessilia and a consideration of a Tethyan origin for the group, Crustacean Issues, 10, 255",{},{"id":24,"text":2685,"url":24,"identifiers":2686},"10.1080\u002F00288330.1999.9516897",{"doi":2685},{"id":24,"text":2688,"url":24,"identifiers":2689},"Buckeridge JS, 2007, Gauging priorities for the ethical use of water, Issues, 79, 23",{},{"id":24,"text":2691,"url":24,"identifiers":2692},"Buckeridge JS, 2009, The ongoing evolution of humanness: Perspectives from Darwin to de Chardin, South African Journal of Science, 105, 427",{},{"id":24,"text":2694,"url":24,"identifiers":2695},"Buckeridge JS, 2010, The New Zealand Inventory of Biodiversity",{},{"id":24,"text":2697,"url":24,"identifiers":2698},"10.1111\u002Fj.1749-4877.2009.00145.x",{"doi":2697},{"id":24,"text":2700,"url":24,"identifiers":2701},"Buckeridge JS, 2010, A review of the subfamily Elminiinae (Cirripedia: Thoracica: Austrobalanidae), including a new genus, Protelminius nov. from the Oligocene of New Zealand, Zootaxa, 2349, 39, 10.11646\u002Fzootaxa.2349.1.3",{"doi":2702},"10.11646\u002Fzootaxa.2349.1.3",{"id":24,"text":2704,"url":24,"identifiers":2705},"Climate Research Unit University of East Anglia United Kingdom(2010).[Cited 22 Jan 2010.] Available from URL:http:\u002F\u002Fwww.uea.ac.uk\u002Fmac\u002Fcomm\u002Fmedia\u002Fpress\u002F2009\u002Fnov\u002FCRUupdate",{},{"id":24,"text":2707,"url":24,"identifiers":2708},"Darwin C, 1854, A Monograph on the sub‐class Cirripedia. The Balanidae and Verrucidae",{},{"id":24,"text":2710,"url":24,"identifiers":2711},"Darwin C, 1859, On the Origin of Species by Means of Natural Selection",{},{"id":24,"text":2713,"url":24,"identifiers":2714},"Florence RG, 1996, Ecology and Silviculture of Eucalypt Forests",{},{"id":24,"text":2716,"url":24,"identifiers":2717},"Foster BA, 1987, Crustacean Issues 5: Barnacle Biology, 43",{},{"id":24,"text":2719,"url":24,"identifiers":2720},"Jones DS, 1990, Technical Reports of the Australian Museum",{},{"id":24,"text":2722,"url":24,"identifiers":2723},"10.1080\u002F03115517808527776",{"doi":2722},{"id":24,"text":2725,"url":24,"identifiers":2726},"10.3354\u002Fmeps08099",{"doi":2725},{"id":24,"text":2728,"url":24,"identifiers":2729},"National Forest Inventory (NFI), 2005, Report on the National Forest Inventory Workshop on Monitoring Forest Extent and Condition; 15–16 November 2005, Melbourne, Australia",{},{"id":24,"text":2731,"url":24,"identifiers":2732},"NewmanWA RossA(1976).Revision of the balanomorph barnacles; including a catalog of the species.San Diego Society of Natural History Memoir 9 pp.1–108.",{},{"id":24,"text":2734,"url":24,"identifiers":2735},"NFPA, 2001, Fire Protection Guide to Hazardous Materials",{},{"id":24,"text":2737,"url":24,"identifiers":2738},"Nicholson PH, 1981, Fire and the Australian Biota, 55",{},{"id":24,"text":2740,"url":24,"identifiers":2741},"Rozefelds AC, 1996, Eucalyptus phylogeny and history: A brief summary, Tasforests, 8, 15",{},{"id":24,"text":2743,"url":24,"identifiers":2744},"Scher HD, 2006, Timing and climatic consequences of the opening of Drake Passage, Science, 428, 312",{},{"id":24,"text":2746,"url":24,"identifiers":2747},"10.1007\u002FBF00385245",{"doi":2746},{"id":24,"text":2749,"url":24,"identifiers":2750},"10.1023\u002FA:1005523330643",{"doi":2749},{"id":24,"text":2752,"url":24,"identifiers":2753},"10.1029\u002F2001JD002042",{"doi":2752},{"id":24,"text":2755,"url":24,"identifiers":2756},"10.1006\u002Fmpev.1995.1023",{"doi":2755},{"id":24,"text":2758,"url":24,"identifiers":2759},"White ME, 1986, The Greening of Gondwana. The 400 Million Year Story of Australia's plants",{},{"id":24,"text":2761,"url":24,"identifiers":2762},"White ME, 1994, After the Greening: The Browning of Australia",{},{"id":2764,"createTime":2765,"updateTime":2765,"relativeEntities":2766,"slug":2767,"properties":2768,"entityType":111,"verifyStatus":112,"verifyTime":2765,"verifyNote":113,"languages":2781,"translateLanguages":24,"viewCount":25,"primaryUrl":2782,"fullTextUrl":24,"authors":2783,"publicationType":157,"publisherRelationship":2818,"citationCount":2862,"citationInfo":2863,"publishDate":2866,"publishYear":2864,"citationAnalyzeStatus":23,"lastCitationAnalyze":24,"indexDatabases":2867,"openAccess":24,"references":2868,"isForceReanalyzing":463},"d24a8a3d-c8e1-4707-bd4f-1a8a2d9cc0f2","2024-09-28T00:25:34.007+00:00",[],"Physiological-adaptations-of-small-mammals-to-desert-ecosystems",{"openalex":2769,"mag":2771,"abstract":2773,"title":2775,"pm":2777,"doi":2779},{"VOID":2770},"W2005792479",{"VOID":2772},"2005792479",{"EN":2774},"\u003Cjats:title>Abstract\u003C\u002Fjats:title>\u003Cjats:p>Adaptations of animals to the xeric environment have been studied in various taxonomic groups and across several deserts. Despite the impressive data that have been accumulated, the focus in most of these studies is mainly on the significance of one variable at a time. Here, we attempt to integrate between responses of several physiological systems, challenged by increasing diet and water salinity and extreme temperatures, acquired in different studies of thermo and osmo‐regulatory adaptations, of small rodents, to the xeric environment. Studies have shown differential thermoregulatory responses to increased dietary salinity, which were attributed to habitat and habits of the relevant species. In the thermoregulatory studies, a potential adaptive significance of low metabolic rate was demonstrated. From an evolutionary point of view, the most important adaptation is in the timing of reproduction, as it enables the transfer of genetic properties to the next generation in an unpredictable ecosystem, where reproduction might not occur every year. Results in this aspect show that increased dietary salinity, through an increase in vasopressin plasma levels, plays an important role as a regulator of the reproductive system. We assume that the amount of food existing in the habitat and the amount of reserves in the animal in the form of white adipose tissue are important for reproduction. Photoperiod affects all studied physiological responses, emphasizing the importance of pre‐acclimation to seasonal characteristics. We summarize the existing data and suggest neuro‐endocrine pathways, which have a central role in these adaptations by affecting thermoregulation, osmoregulation and reproduction to create the optimal response to xeric conditions. These hypotheses can be used as the basis for future studies.\u003C\u002Fjats:p>",{"EN":2776},"Physiological adaptations of small mammals to desert ecosystems",{"VOID":2778},"21392308",{"VOID":2780},"10.1111\u002Fj.1749-4877.2009.00176.x",[115],"https:\u002F\u002Fonlinelibrary.wiley.com\u002Fdoi\u002F10.1111\u002Fj.1749-4877.2009.00176.x",[2784,2801],{"id":2785,"sortIndex":25,"researcher":24,"roles":2786,"affiliations":2787,"properties":2796,"displayName":2798,"givenName":24,"familyName":24},"6daff30e-1503-4909-81ec-1a39f3fc1598",[],[2788],{"id":2789,"sortIndex":25,"affiliation":2790,"properties":24},"b66bb866-a7e1-436e-b2ae-ffd6975cefc7",{"id":2789,"createTime":24,"updateTime":24,"relativeEntities":2791,"slug":24,"properties":2792,"entityType":24,"verifyStatus":24,"verifyTime":24,"verifyNote":24,"languages":24,"translateLanguages":24,"viewCount":24,"url":24,"parentIds":2795,"statistic":24},[],{"title":2793},{"EN":2794},"Department of Biology, The University of Haifa, Haifa, Israel.",[],{"title":2797,"openalex":2799},{"EN":2798},"Hagit Schwimmer",{"VOID":2800},"A5048822033",{"id":2802,"sortIndex":141,"researcher":24,"roles":2803,"affiliations":2804,"properties":2811,"displayName":2815,"givenName":24,"familyName":24},"b361c98a-b53c-49fb-8ad0-d0b8d5516231",[],[2805],{"id":2789,"sortIndex":25,"affiliation":2806,"properties":24},{"id":2789,"createTime":24,"updateTime":24,"relativeEntities":2807,"slug":24,"properties":2808,"entityType":24,"verifyStatus":24,"verifyTime":24,"verifyNote":24,"languages":24,"translateLanguages":24,"viewCount":24,"url":24,"parentIds":2810,"statistic":24},[],{"title":2809},{"EN":2794},[],{"orcid":2812,"title":2814,"openalex":2816},{"VOID":2813},"https:\u002F\u002Forcid.org\u002F0000-0002-0284-8035",{"EN":2815},"Abraham 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FH, 1989, Mammalian Reproductive Biology",{},{"id":24,"text":2879,"url":24,"identifiers":2880},"10.1016\u002FS1087-0792(98)90020-X",{"doi":2879},{"id":24,"text":2882,"url":24,"identifiers":2883},"Cloudsly‐Thompson JL, 1977, Men and the Biology of Arid Zones",{},{"id":24,"text":2885,"url":24,"identifiers":2886},"10.1007\u002F978-3-642-60351-8",{"doi":2885},{"id":24,"text":2888,"url":24,"identifiers":2889},"10.1007\u002FBF00301624",{"doi":2888},{"id":24,"text":2891,"url":24,"identifiers":2892},"10.1152\u002Fjapplphysiol.00304.2002",{"doi":2891},{"id":24,"text":2894,"url":24,"identifiers":2895},"Friedman MI, 1990, Body fat and metabolic control of food intake, International Journal of Obesity, 14, 53",{},{"id":24,"text":2897,"url":24,"identifiers":2898},"10.1159\u002F000124795",{"doi":2897},{"id":24,"text":2900,"url":24,"identifiers":2901},"10.1016\u002F0306-4565(78)90097-9",{"doi":2900},{"id":24,"text":2903,"url":24,"identifiers":2904},"10.1007\u002FBF00688974",{"doi":2903},{"id":24,"text":2906,"url":24,"identifiers":2907},"Haim A, 2006, Metabolic and osmoregulatory responses of Wagner's Gerbil Gerbillus dasyurus from a salt marsh habitat to increasing salinity in their water source, Hystrix Italian Journal of Mammalogy, 62",{},{"id":24,"text":2909,"url":24,"identifiers":2910},"10.1007\u002FBF02249790",{"doi":2909},{"id":24,"text":2912,"url":24,"identifiers":2913},"10.1016\u002F0306-4565(93)90019-P",{"doi":2912},{"id":24,"text":2915,"url":24,"identifiers":2916},"10.1007\u002FBF00114202",{"doi":2915},{"id":24,"text":2918,"url":24,"identifiers":2919},"Haim A, 2000, The effect of different treatments on the community composition of small mammals in a post‐fire pine forest, Journal of Mediterranean Ecology, 3, 249",{},{"id":24,"text":2921,"url":24,"identifiers":2922},"10.1016\u002F0306-4565(92)90044-G",{"doi":2921},{"id":24,"text":2924,"url":24,"identifiers":2925},"Haim A, 1993, Food and energy consumption in rodents from different environments: the role of photoperiod in seasonal acclimatization, Water Science and Technology, 27, 505, 10.2166\u002Fwst.1993.0588",{"doi":2926},"10.2166\u002Fwst.1993.0588",{"id":24,"text":2928,"url":24,"identifiers":2929},"10.1016\u002F0306-4565(82)90023-7",{"doi":2928},{"id":24,"text":2931,"url":24,"identifiers":2932},"10.1080\u002F09291019209360176",{"doi":2931},{"id":24,"text":2934,"url":24,"identifiers":2935},"10.1016\u002FS0306-4565(97)00016-8",{"doi":2934},{"id":24,"text":2937,"url":24,"identifiers":2938},"10.1016\u002Fj.ceb.2004.03.005",{"doi":2937},{"id":24,"text":2940,"url":24,"identifiers":2941},"10.1016\u002FS1095-6433(01)00500-1",{"doi":2940},{"id":24,"text":2943,"url":24,"identifiers":2944},"10.1016\u002FS0079-6123(06)62021-9",{"doi":2943},{"id":24,"text":2946,"url":24,"identifiers":2947},"10.1016\u002F0300-9629(83)90374-2",{"doi":2946},{"id":24,"text":2949,"url":24,"identifiers":2950},"10.1515\u002FJBCPP.1993.4.1-2.139",{"doi":2949},{"id":24,"text":2952,"url":24,"identifiers":2953},"10.1093\u002Fbfgp\u002Fell030",{"doi":2952},{"id":24,"text":2955,"url":24,"identifiers":2956},"10.1002\u002Fbies.20140",{"doi":2955},{"id":24,"text":2958,"url":24,"identifiers":2959},"10.1038\u002Fng1089",{"doi":2958},{"id":24,"text":2961,"url":24,"identifiers":2962},"10.1111\u002Fj.1469-185X.1973.tb01115.x",{"doi":2961},{"id":24,"text":2964,"url":24,"identifiers":2965},"Keil R, 1994, Hypothalamic thermal stimulation modulates vasopressin release in hyperosmotically stimulated rabbits, The American Journal of Physiology, 267, R1089‐97",{},{"id":24,"text":2967,"url":24,"identifiers":2968},"Kennaway DJ, 1995, Melatonin binding sites and their role in seasonal reproduction, Journal of Reproduction and Fertility, 49, 423",{},{"id":24,"text":2970,"url":24,"identifiers":2971},"10.1146\u002Fannurev.ph.23.030161.000311",{"doi":2970},{"id":24,"text":2973,"url":24,"identifiers":2974},"Louw GN, 1982, Ecology of Desert Organisms",{},{"id":24,"text":2976,"url":24,"identifiers":2977},"10.1086\u002F303383",{"doi":2976},{"id":24,"text":2979,"url":24,"identifiers":2980},"Maloyan A, 1999, Heat acclimation increases the basal HSP72 level and alters its production dynamics during heat stress, The American Journal of Physiology, 276, R1506‐15",{},{"id":24,"text":2982,"url":24,"identifiers":2983},"McGinnies WG, 1968, Deserts of the World",{},{"id":24,"text":2985,"url":24,"identifiers":2986},"10.1016\u002F0010-406X(68)90338-1",{"doi":2985},{"id":24,"text":2988,"url":24,"identifiers":2989},"10.1152\u002Fajpregu.2000.279.1.R77",{"doi":2988},{"id":24,"text":2991,"url":24,"identifiers":2992},"Nelson RJ, 2005, An Introduction To Behavioral Endocrinology",{},{"id":24,"text":2994,"url":24,"identifiers":2995},"10.1146\u002Fannurev.es.04.110173.000325",{"doi":2994},{"id":24,"text":2997,"url":24,"identifiers":2998},"10.1016\u002FS0140-1963(02)00284-7",{"doi":2997},{"id":24,"text":3000,"url":24,"identifiers":3001},"10.1111\u002Fj.1742-4658.2006.05322.x",{"doi":3000},{"id":24,"text":3003,"url":24,"identifiers":3004},"10.1007\u002FBF01923947",{"doi":3003},{"id":24,"text":3006,"url":24,"identifiers":3007},"Romer AS, 1972, The Vertebrates 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temperature regulation of East African ungulates, The American Journal of Physiology, 219, 1136, 10.1152\u002Fajplegacy.1970.219.4.1136",{"doi":3038},"10.1152\u002Fajplegacy.1970.219.4.1136",{"id":24,"text":3040,"url":24,"identifiers":3041},"Turlejska‐Stelmasiak E, 1974, The influence of dehydration on heat dissipation mechanisms in the rabbit, Journal de Physiologie, 68, 5",{},{"id":24,"text":3043,"url":24,"identifiers":3044},"Weissenberg S, 1994, Metabolic rate and water economy in the desert and Mediterranean populations of the common spiny mouse (Acomys cahirinus) in Israel, Israel Journal of Zoology, 40, 135",{},{"id":24,"text":3046,"url":24,"identifiers":3047},"Willmer P, 2004, Environmental Physiology of Animals",{},{"id":24,"text":3049,"url":24,"identifiers":3050},"10.1016\u002Fj.cbpa.2008.06.027",{"doi":3049},{"id":24,"text":3052,"url":24,"identifiers":3053},"10.1016\u002Fj.jaridenv.2007.06.014",{"doi":3052},{"id":24,"text":3055,"url":24,"identifiers":3056},"10.1038\u002F372425a0",{"doi":3055},{"id":3058,"createTime":3059,"updateTime":3059,"relativeEntities":3060,"slug":3061,"properties":3062,"entityType":111,"verifyStatus":112,"verifyTime":3075,"verifyNote":113,"languages":3076,"translateLanguages":24,"viewCount":25,"primaryUrl":3077,"fullTextUrl":24,"authors":3078,"publicationType":157,"publisherRelationship":3135,"citationCount":3180,"citationInfo":3181,"publishDate":3185,"publishYear":3182,"citationAnalyzeStatus":23,"lastCitationAnalyze":24,"indexDatabases":3186,"openAccess":24,"references":3187,"isForceReanalyzing":463},"032d6313-b64e-498a-8d32-db9cbfa3b1b6","2024-08-31T00:42:16.656+00:00",[],"Cultivated-walnut-trees-showed-earlier-but-not-final-advantage-over-its-wild-relatives-in-competing-for-seed-dispersers",{"openalex":3063,"mag":3065,"abstract":3067,"title":3069,"pm":3071,"doi":3073},{"VOID":3064},"W2530185124",{"VOID":3066},"2530185124",{"EN":3068},"\u003Cjats:title>Abstract\u003C\u002Fjats:title>\u003Cjats:p>Little is known about seeding regeneration of cultivated trees compared to wild relatives in areas where seed dispersers are shared. Here, we investigated the differences in seed fates of cultivated walnut (\u003Cjats:italic>Juglans regia\u003C\u002Fjats:italic>) and wild Manchurian walnut (\u003Cjats:italic>Juglans mandshurica\u003C\u002Fjats:italic>) trees under rodent predation and dispersal. \u003Cjats:italic>J. regia\u003C\u002Fjats:italic> seeds have higher nutritional value (large size, mass and kernel mass) and lower mechanical defensiveness (thin endocarp) than \u003Cjats:italic>J. mandshurica\u003C\u002Fjats:italic> seeds. We tracked seeds of \u003Cjats:italic>J. regia\u003C\u002Fjats:italic> and \u003Cjats:italic>J. mandshurica\u003C\u002Fjats:italic> under both enclosure and field conditions to assess differences in competing for seed dispersers of the two co‐occurring tree species of the same genus. We found that rodents preferred to harvest, eat and scatter‐hoard seeds of \u003Cjats:italic>J. regia\u003C\u002Fjats:italic> as compared to those of \u003Cjats:italic>J. mandshurica\u003C\u002Fjats:italic>. Seeds of \u003Cjats:italic>J. regia\u003C\u002Fjats:italic> were removed and scatter‐hoarded faster than those of \u003Cjats:italic>J. mandshurica\u003C\u002Fjats:italic>. Caches of \u003Cjats:italic>J. regia\u003C\u002Fjats:italic> were more likely to be rediscovered by rodents than those of \u003Cjats:italic>J. mandshurica\u003C\u002Fjats:italic>. These results suggest that \u003Cjats:italic>J. regia\u003C\u002Fjats:italic> showed earlier dispersal fitness but not the ultimate dispersal fitness over \u003Cjats:italic>J. mandshurica\u003C\u002Fjats:italic> in seeding regeneration under rodent mediation, implying that \u003Cjats:italic>J. regia\u003C\u002Fjats:italic> has little effect on seeding regeneration of \u003Cjats:italic>J. mandshurica\u003C\u002Fjats:italic> in the field. The effects of seed traits on seed dispersal fitness may vary at different dispersal stages under animal mediation.\u003C\u002Fjats:p>",{"EN":3070},"Cultivated walnut trees showed earlier but not final advantage over its wild relatives in competing for seed 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