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| 1 | The global significance of biodiversity science in China: an overview显示文摘Biodiversity science in China has seen rapid growth over recent decades,ranging from baseline biodiversity studies to understanding the processes behind evolution across dynamic regions such as the Qinghai-Tibetan Plateau.We review research,including species catalogues;biodiversity monitoring;the origins,distributions,maintenance and threats to biodiversity;biodiversity-related ecosystem function and services;and species and ecosystems'responses to global change.Next,we identify priority topics and offer suggestions and priorities for future biodiversity research in China.These priorities include(i)the ecology and biogeography of the Qinghai-Tibetan Plateau and surrounding mountains,and that of subtropical and tropical forests across China;(ii)marine and inland aquatic biodiversity;and(iii)effective conservation and management to identify and maintain synergies between biodiversity and socio-economic development to fulfil China's vision for becoming an ecological civilization.In addition,we propose three future strategies:(i)translate advanced biodiversity science into practice for biodiversity conservation;(ii)strengthen capacity building and application of advanced technologies,including high-throughput sequencing,genomics and remote sensing;and(iii)strengthen and expand international collaborations.Based on the recent rapid progress of biodiversity research,China is well positioned to become a global leader in biodiversity research in the near future. | Xiangcheng Mi Gang Feng Yibo Hu Jian Zhang Lei Chen Richard T.Corlett Alice C.Hughes Stuart Pimm Bernhard Schmid Suhua Shi Jens-Christian Svenning Keping Ma | 2021 | National Science Review2021,8,7: | 16 |
| 2 | Impacts of degrading permafrost on streamflow in the source area of Yellow River on the Qinghai-Tibet Plateau,China显示文摘Many observations in and model simulations for northern basins have confirmed an increased streamflow from degrading permafrost,while the streamflow has declined in the source area of the Yellow River(SAYR,above the Tanag hydrological station)on the northeastern Qinghai-Tibet Plateau,West China.How and to what extent does the degrading permafrost change the flow in the SAYR?According to seasonal regimes of hydrological processes,the SAYR is divided intofour sub-basins with varied permafrost extents to detect impacts of permafrost degradation on the Yellow River streamflow.Results show that permafrost degradation may have released appreciable meltwater for recharging groundwater.The potential release rate of ground-ice melt-water in the Sub-basin 1(the headwater area of the Yellow River(HAYR),above the Huangheyan hydrological station)is the highest(5.6 mm per year),contributing to 14.4%of the annual Yellow River streamflow at Huangheyan.Seasonal/intra-and annual shifts of streamflow,a possible signal for the marked alteration of hydrological processes by permafrost degradation,is observed in the HAYR,but the shifts are minor in other sub-basins in the SAYR.Improved hydraulic connectivity is expected to occur during and after certain degrees of permafrost degradation.Direct impacts of permafrost degradation on the annual Yellow River streamflow in the SAYR at Tanag,i.e.,from the meltwater of ground-ice,is estimated at 4.9%that of the annual Yellow River discharge at Tanag,yet with a high uncertainty,due to neglecting of the improved hydraulic connections from permafrost degradation and the flow generation conditions for the ground-ice meltwater.Enhanced evapotranspiration,substantial weakening of the Southwest China Autumn Rain,and anthropogenic disturbances may largely account for the declined streamflow in the SAYR. | MA Qiang JIN Hui-Jun Victor F.BENSE LUO Dong-Liang Sergey S.MARCHENKO Stuart A.HARRIS LAN Yong-Chao | 2019 | Advances in Climate Change Research2019,10,4: | 9 |
| 3 | The use of in-situ cosmogenic ^(21)Ne in studies on long-term landscape development显示文摘Cosmogenic Ne isotopes are stable and are routinely used for constraining the timing of events and the rate of surface change beyond the limit that can be studied with radionuclides ^(10)Be,^(26)Al, and ^(36)Cl. Cosmogenic Ne analysis can be used in quartz and in a range of other minerals. Analysis typically requires significantly less material than do cosmogenic ^(10)Be and^(26)Al, opening up the technique for small samples—individual pebbles in river sediments, for example. Analysis is easier and faster than for radionuclides, not least because Ne measurements do not require significant chemical procedures. However, the presence of other sources of Ne in minerals tends to restrict the use of cosmogenic ^(21)Ne to old landscapes and long exposure durations. In this review we briefly outline the background of cosmogenic Ne production in rocks and minerals at the Earth's surface, then document the key uses of the technique by highlighting some earlier studies, and finish with a short perspective on the future of the technique. | Yan Ma Finlay M. Stuart | 2018 | Acta Geochimica2018,37,2: | 3 |
| 4 | Emerging applications of stimuli-responsive polymer materials显示文摘 | Stuart MA Huck WT Genzer J | 2010 | Nat Mater2010,9,: | 1 |
| 5 | Shear thickening in aqueous solutions of hydrocarbon end-capped poly(ethylene oxi-de) 显示文摘 | Sharon X Ma Stuart L Cooper | 2001 | Macromolecules2001,34,10: | 1 |
| 6 | E-government in China:bringing economic development through administrative reform显示文摘 | Ma Lianjie Chung Jongpil Thorson Stuart | 2005 | Government Information Quarterly2005,22,1: | 1 |
| 7 | E-government in China: Bringing economic development through administrative reform显示文摘 | Ma Lianjie Chung Jongpil Thorson Stuart | 2005 | Government Information Quarterly2005,22,1: | 1 |
| 8 | Kinetics of Polymer Adsorption and Desorption in Capillary Flow显示文摘 | DIJT JC COHEN STUART MA FLEER G J | 1992 | Macromelecular1992,25,20: | 1 |
| 9 | Collagen - induced arthritis inrats显示文摘 | Stuart JM Cremer MA Kang AH | 1979 | Arthritis Rheum1979,,2: | 1 |
| 10 | Kinetics of Adsorption and Desorption of Polystyrene on Silica from Decalino显示文摘 | DIJT JC COHEN STUART MA FLEER GJ | 1994 | Macromelecular1994,27,12: | 1 |
| 11 | Effect of Block and Graft Copolymer on the Stability of Colloidal Silica显示文摘 | BIJSTERBOSCH HD COHEN STUART MA FLEER GJ | 1999 | Journal of colloid and interface science1999,210,1: | 1 |
| 12 | Carbapenem-resistant Klebsiella pneumoniae following foreign travel显示文摘 | Leverstein-van Hall MA Stuart JC Voets GM | 2010 | Ned Tijdschr Geneeskd2010,154,37: | 1 |
| 13 | Kinetic aspects of polymer bridging: equilibrium flocculation and nonequilibrium flocculation 显示文摘 | Pelssers EGM Stuart MA Fleer G J | 1989 | Colloids Surfaces1989,38,3: | 1 |
| 14 | Molecular dynam- ics simulations of peptide-surface interactions 显示文摘 | Raut VP Agashe MA Stuart SJ | 2005 | Lang- muir2005,21,4: | 1 |
| 15 | Shear thickening in aqueous solutions of hydrocarbon end-capped poly (ethylene oxide) 显示文摘 | Sharon X Ma Stuart L Cooper | 2001 | Macromolecules2001,34,10: | 1 |
| 16 | E-government in China:Bringing economic development through administrative reform显示文摘 | Ma Lianjie Chung Jongpil Thorson Stuart | 2005 | Government Information Quarterly2005,22,1: | 1 |
| 17 | An amino terminal DAX-I(NROBI)missense mutation associated with isolated mineralocorticoid deficiency 显示文摘 | Verrijn Stuart AA Ozisik G de Vroede MA | 2007 | J Clin Endocrinol Metab2007,92,3: | 1 |
| 18 | Temporal Relationship and Predictive Value of Urinary Acute Kidney Injury Biomarkers After Pediatric Cardiopulmonary Bypass显示文摘 | Catherine D. Krawczeski Stuart L. Goldstein Jessica G. Woo Yu Wang Nuntawan Piyaphanee Qing Ma Michael Bennett Prasad Devarajan | 2011 | Journal of the American College of Cardiology2011,,22: | 1 |
| 19 | Comparative protein structure modeling of genes and genomes显示文摘 | Mart -Renorn MA Stuart AC Fiser A | 2000 | Ann Rev Bio phys Biomol Struc2000,29,1: | 1 |
| 20 | E-government in China: Bringing economic development through administrative reform显示文摘 | Lianjie Ma Jongpil Chung Stuart Thorson | 2005 | Government Information Quarterly2005,22,1: | 1 |