Functionalized Magnetic Particles-assisted Highly Sensitive Detection of Bacteria Based on Polymeras

来源 :第九届全国微全分析系统学术会议、第四届全国微纳尺度生物分离分析学术会议、2014国际微流控芯片与微纳尺度生物分离分析学术 | 被引量 : 0次 | 上传用户:iloveyouggyy
下载到本地 , 更方便阅读
声明 : 本文档内容版权归属内容提供方 , 如果您对本文有版权争议 , 可与客服联系进行内容授权或下架
论文部分内容阅读
  Bacteria are found all over nature and the environment.They are widely existed in soil,nature waters,intestinal tract and skin of human and animals.Most of bacteria do their duty in ecological system,and many are closely related to plants or animals in beneficial relations.However,some of infectious diseases can be caused by the inbreak of bacteria into the viscera.Therefore,the development of detection and identification methods for bacteria is necessary in public health,water and food safety.The conventional plate-counting method is an effective way to get an accuracy result for bacteria detection.However,the method is extremely time-consuming since it usually takes several days on average to get a result.Based on this condition,a large number of other methods have been developed,such as immuno-based methods,PCR-based methods,biosensor-based methods,and so on.Although immuno-based,biosensor-based,and normal PCR-based methods can effectively reduce the detection time for bacteria,the detection limits for bacteria are usually in the range of 103 to 104 cfu mL-1,or just qualitative results are provided.Real-time PCR-based method can effectively improve the detection sensitivity of bacteria with a detection limit lower than 102 cfu g-1.However,culture enrichment was still a necessary step for high sensitivity,which is time-consuming and limits the rapid detection of low concentration of bacteria.Herein,we report a method for rapid and sensitive detection and quantification of L.monocytogenes and E.coli.Silica coated magnetic particles functionalized with Nmethylimidazolium ion(MIm-MPs)were prepared and characterized by Fourier transform infrared spectroscopy,transmission electron microscopy,zeta potential,and vibrating sample magnetometry.They were found to enable effective capture of bacteria as confirmed by TEM imaging of the conjugates.The factors including pH of binding buffer,concentration of elution buffer and elution time which may affect the capture and elution efficiencies are optimized.The adsorption capacities of the MIm-MPs for L.monocytogenes and E.coli are 6.2 × 108 and 1.3 × 108 cfu mg-1,respectively.And their efficiency for capturing L.monocytogenes and E.coli from tap water and mineral water is >98% when applying less than 80 mg of Mim-MPs and an adsorption time of 10 min.The Mim-MPs were used to capture bacteria from large volumes of aqueous solutions.A combination of polymerase chain reaction(PCR)with capillary electrophoresis(CE)allows for a quantification of low levels of L.monocytogenes(102 cfu mL-1)and E.coli(101 cfu mL-1).The whole process takes <6 h which is much less than in case of the traditional plate-counting method which can take several days.Good agreements were obtained between the data obtained by the Mim-MPs-PCR-CE-based method and the plate-counting method.
其他文献
  石墨烯片层之间的堆叠使得基于石墨烯的超级电容器的比电容值远低于其理论值。为了有效地阻止氧化石墨烯纳米片在还原过程中的层层堆叠,我们利用聚乙烯吡咯烷酮(PVP)插层
会议
胡萝卜软腐果胶杆菌是一种强致病性革兰氏阴性植物致病菌,通过分泌果胶酶、纤维素酶、蛋白酶等酶系降解植物的维管束细胞,导致植物罹患软腐病。胡萝卜软腐果胶杆菌胡萝卜亚种PC1菌株(Pectobacterium carotovorum PC1, Pct)的宿主范围分布广泛,造成了该菌种难以根治的局面,每年都带来巨大的农业经济损失。由于缺少专一性的杀菌剂,目前针对植物软腐病仍主要采用预防为主的手段。全基因组
  作为一种新型的储能装置,柔性固态超级电容器因具有功率密度高,充放电速率快,循环稳定性好等众多优点而受到人们广泛的关注[1].然而,为了满足后代人对能源日益增长的需求
会议
  由于太阳光能在未来是一种很有潜力且有很大经济价值的能源,因此太阳光能的有效利用收到了广泛的关注1,2.最近有研究表明,氧化镉和硫化镉有着合适的能隙,可以用于水的氧
  以细菌纤维素为媒介通过一步酯化反应连接氧化石墨烯片制备了细菌纤维素/氧化石墨烯纳米复合材料.对合成的复合材料进行了结构、形貌的表征以及机械拉伸、电导率和电化学
会议
  超级电容器是一种储能装置,具有很高的能量密度,很好的循环和快速充放电能力.NiO 由于它的高理论电容(2573 F g-1在 0.5 V 时)[1],高的化学稳定性,低价格,污染小的特点[3
会议
  在碳布柔性衬底上,用化学气相沉积的方法在 750oC 合成了新颖的 SnO2纳米片结构。对合成产物进行一系列的表征。室温下的光致发光谱显示在 436 nm 和 526nm 有两个发射峰
  燃料电池因发电效率高、环境污染少等优点而备受能源科学家的青睐[1],而影响其发电效率的阴极电极材料目前主要是基于铂的贵金属材料,因此寻找可替代铂的非贵族金属材料
会议
  目前,提高锂离子电池能量密度的关键在于提高其正极材料的性能.富锂层状正极材料(xLi2MnO3--(1-x)LiM’O2(M=Ni,Co,Mn,Fe,Cr))因为其高比容量的优势而成为有希望的下一代
会议
  随着柔性电子器件(如:便携电子器件、可卷曲显示器、微型生物医学设备等)的快速发展,人类对柔性、轻质、环保型储能设备的需求日益增强.作为一种新型的储能装置,柔性固态超
会议