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12篇 您的检索式:作者名="Shuguo L"
    题名 作者 年代 出处 被引量
1The pringle manoeuvre should be avoided in hepatectomy for cancer patients due to its side effects on tumor recurrence and worse prognosis 显示文摘XIAOBIN F ZIPEI L SHUGUO Z 2009Med Hypotheses2009,72,4:1
2The Pringle manoeuvre should be avoided in hepatectomy for cancer patients due to its side effects on tumor recurrence and worse prognosis显示文摘Xiaobin F Zipei L Shuguo Z 2009Med Hypotheses2009,72,4:1
3The Pringle manoeu-vre should be avoided in hepatectomy for cancer patientsdue to its side effects on tumor recurrence and worseprognosis显示文摘Xiaobin F Zipei L Shuguo Z 2009Med Hypotheses2009,72,4:1
4The Pringle manoeuvre should be avoided in hepatectomy for cancer patients due to its side effects on tumor recurrence and worse prognosis 显示文摘Xiaobin F Zipei L Shuguo Z 2009Med Hypotheses2009,72,4:1
5Studies on dynamiccharacteristics of the joint in the aero-engine rotor system显示文摘Shuguo L Yanhong M Dayi Z 2012Mechanical Systems and Signal Processing2012,29,:1
6Mechanism of hypolip idemic effect of crocin in rats:crocetininhibits pancreatic lipase显示文摘L IANG SHENG ZHIYU QIAN SHUGUO ZHENG 2006European Journal ofPharmacolo-gy2006,543,13:1
7The Pringle manoeuvre should be avoided in hepatectomy for cancer patients due to its side effects on tumor recurrence and worse prognosis 显示文摘Xiaobin F Zipei L Shuguo Z 2009Med Hypotheses2009,72,4:1
8The pringle manoeuvre should be avoided in hepatectomy for cancer patients due to its aide effects on tumor recurrence and worse prognosis显示文摘Xiaobin F Zipei L Shuguo Z 2009Med Hypotheses2009,72,4:1
9Mathematical model of torsional dynamic wind loads on rectangular tall buildings显示文摘Liang Shuguo Liu S Zhang L 2001Journal of Wind Engineering2001,89,2:1
10Mathematical model of across-wind dynamic loads on rectangular tall buildings 显示文摘Liang Shuguo Liu S Zhang L 2002Journal of Wind Engineering and Industrial Aerodynamics2002,90,1215:1
11Experimental clearance rate and intraguild predation of jellyfish Cyanea nozakii显示文摘Cyanea nozakii,a common jellyfish distributed in offshore China,has a complex trophic relationship with other zooplankton groups.However,few studies have reported the predation rates and prey selection patterns of C.nozakii medusae on different prey items.Research is also lacking on the intraguild predation of Aurelia coerulea(another common bloom jellyfish in offshore China)by C.nozakii.To address the knowledge gaps,the clearance rates of C.nozakii for different prey items,including copepods(small<1000μm and large>1000μm),fish larvae,and gelatinous prey(hydromedusae,A.coerulea ephyrae,and chaetognaths),were measured.The influence of predator size on the clearance rate was also determined.Additionally,we examined the intraguild predation of C.nozakii on A.coerulea medusae.The clearance rates of C.nozakii varied widely with prey organisms,being independent of prey concentrations.Gelatinous organisms,except for chaetognaths,were captured with considerably high efficiency,followed by fish larvae and copepods,indicating the preferential prey selection of gelatinous organisms by C.nozakii.The clearance rate increased linearly with the cross-sectional area of C.nozakii.Body size in medusae may,to some extents,underpin their capacity to capture more prey by increasing the encounter rate and capture success through ontogeny.C.nozakii preyed voraciously on A.coerulea in high feeding efficiency,but the clearance rate decreased with increasing A.coerulea(as prey)size.This phenomenon of intraguild predation suggests a speculative hypothesis of potential population regulation of A.coerulea by C.nozakii.The information regarding the feeding ecology of C.nozakii reported in this study is important for understanding plankton dynamics in marine ecosystems with extensive occurrences of this jellyfish.Pengpeng WANG Fang ZHANG Song SUN Shuguo LÜ 2024Journal of Oceanology and Limnology2024,42,1:0
12Interaction between macroalgae and microplastics:Caulerpa lentillifera and Gracilaria tenuistipitata as microplastic bio-elimination vectors显示文摘The pollution of microplastics(MPs)in the ocean has become a serious matter of concern.The farmed seaweeds(Caulerpa lentillifera and Gracilaria tenuistipitata)were selected to study their ability of adsorption with two typical classes of MPs(polyamides and polystyrene),thereby revealing the interaction between MPs and macroalgae and exploring novel methods of removing MPs from macroalgae.The results demonstrate that polyamides(PA)fibers had no effect on the various physiological parameters of both seaweeds(e.g.,relative growth rate,photosynthetic oxygen evolution rate,the contents of malondialdehyde and extracellular polymeric substances)after 7 days of exposure,except for the chlorophyll-a concentration.However,the effects of polystyrene(PS)particles on the algae were strongly associated with the concentration of MPs exposure.Exposed to the high concentration(100 mg/L)of PS particles,the relative growth rate of C.lentillifera and G.tenuistipitata decreased by 54.56% and 30.62%,respectively,compared to the control,while no significant(P>0.05)harmful effect of PS particles on seaweeds was observed in an environment with a low content of PS particles(25 mg/L).The PS particles in concentration of 100 mg/L significantly(P<0.05)inhibited photosynthetic oxygen evolution rate and extracellular polymeric substances(EPS)contents in both seaweeds,but increased malondialdehyde(MDA)contents.When exposed for 72 h,the MPs adhesion rate of G.tenuistipitata is higher than that of C.lentillifera,which might be due to the higher EPS content of G.tenuistipitata.The MPs desorption experiment indicated that the combination of dewatering and washing had the highest desorption rate of MPs which could reach to 91.45%and 87.23%for C.lentillifera and G.tenuistipitata,respectively.This research demonstrates the potential of macroalgae as a vector for MPs in aquatic environment and provides methodological insights into decontamination procedures for removing the MPs from macroalgae.Zihao LI Dejiang FU Shuguo Lü Zhiyuan LIU 2023Journal of Oceanology and Limnology2023,41,6:0
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