Banerjee Tuhina, Tummala Tanuja, Elliott Rebekah, Jain Vedant, Brantley Wesley, Hadorn Laci, Santra Santimukul
Department of Chemistry, Pittsburg State University, 1701 S. Broadway Street, Pittsburg, KS 66762, USA.
ACS Appl Nano Mater. 2019 Sep 27;2(9):5587-5593. doi: 10.1021/acsanm.9b01158. Epub 2019 Aug 19.
Detection of bacterial contaminants in blood and platelet concentrates (PCs) continues to be challenging in clinical settings despite available current testing methods. At the same time, it is important to detect the low bacterial contaminants present at the time of transfusion. Herein, we report the design and synthesis of a dual-modal magneto-fluorescent nanosensor (MFnS) by integrating magnetic relaxation and fluorescence modalities for the wide-range detection of blood-borne pathogens. In this study, functional MFnS are designed to specifically detect and , two of the predominant bacterial contaminants of PCs. Specific interaction between the target pathogen and functional MFnS resulted in the change of water proton's magnetic relaxation time (T2 MR), indicative of sensitive detection of the target bacteria from low to high colony forming unit (CFU). In addition, the acquired MR signal of MFnS further facilitated the quantitative assessment of the slow and fast growth kinetics of target pathogens. Moreover, the presence of fluorescence modality in MFnS allowed for the detection of multi-contaminants. The bacterial detection was also performed in complex media including whole blood and platelet concentrates, which further demonstrated for it's robust detection sensitivity. Overall, our study indicated that the designer MFnS will have potential for the wide-range detection of blood-borne pathogens, and features desirable qualities including timeliness, sensitivity and, specificity.
尽管目前有可用的检测方法,但在临床环境中,检测血液和血小板浓缩物(PCs)中的细菌污染物仍然具有挑战性。同时,在输血时检测存在的低水平细菌污染物很重要。在此,我们报告了一种双模态磁荧光纳米传感器(MFnS)的设计与合成,该传感器通过整合磁弛豫和荧光模式来广泛检测血源性病原体。在本研究中,功能性MFnS被设计用于特异性检测PCs的两种主要细菌污染物 和 。目标病原体与功能性MFnS之间的特异性相互作用导致水质子的磁弛豫时间(T2 MR)发生变化,这表明能够从低到高菌落形成单位(CFU)灵敏地检测目标细菌。此外,MFnS获得的MR信号进一步有助于对目标病原体的缓慢和快速生长动力学进行定量评估。而且,MFnS中荧光模式的存在允许检测多种污染物。还在包括全血和血小板浓缩物在内的复杂介质中进行了细菌检测,这进一步证明了其强大的检测灵敏度。总体而言,我们的研究表明,设计的MFnS在广泛检测血源性病原体方面具有潜力,并具有及时性、灵敏度和特异性等理想特性。