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NIR-emitting molecular-based nanoparticles as new two-photon absorbing nanotools for single particle tracking

机译:基于NIR发射分子的纳米粒子,作为用于单粒子跟踪的新型双光子吸收纳米工具

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In order to provide a green alternative to QDs for bioimaging purposes and aiming at designing bright nanoparticles combining both large one- and two-photon brightness, a bottom-up route based on the molecular engineering of dedicated red to NIR emitting dyes that spontaneously form fluorescent organic nanoparticles (FONs) has been implemented. These fully organic nanoparticles built from original quadrupolar dyes are prepared using a simple, expeditious and green protocol that yield very small molecular-based nanoparticles (radius ~7 nm) suspension in water showing a nice NIR emission (λ_(em)=710 nm). These FONs typically have absorption coefficient more than two orders larger than popular NIR-emitting dyes (such as Alexa Fluor 700, Cy5.5 ....) and much larger Stokes shift values (i.e. up to over 5500 cm~(-1)). They also show very large two-photon absorption response in the 800-1050 nm region (up to about 10~6 GM) of major promise for two-photon excited fluorescence microscopy. Thanks to their brightness and enhanced photostability, these FONs could be imaged as isolated nanoparticles and tracked using wide-field imaging. As such, thanks to their size and composition (absence of heavy metals), they represent highly promising alternatives to NIR-emitting QDs for use in bioimaging and single particle tracking applications. Moreover, efficient FONs coating was achieved by using a polymeric additive built from a long hydrophobic (PPO) and a short hydrophilic (PEO) segment and having a cationic head group able to interact with the highly negative surface of FONs. This electrostatically-driven interaction promotes both photoluminescence and two-photon absorption enhancement leading to an increase of two-photon brightness of about one order of magnitude. This opens the way to wide-field single particle tracking under two-photon excitation.
机译:为了为生物成像目的提供QD的绿色替代物,并旨在设计结合大的单光子和双光子亮度的明亮纳米颗粒,这是一种基于分子结构的自下而上的途径,该分子工程是由红色到NIR发射的自发形成荧光的专用染料有机纳米颗粒(FONs)已被实施。这些由原始四极染料制成的完全有机的纳米粒子是使用简单,快速且绿色的方案制备的,该协议可在水中产生非常小的基于分子的纳米粒子(半径约7 nm)悬浮液,显示出良好的近红外发射(λ_(em)= 710 nm)。 。这些FON通常具有比流行的发射NIR的染料(例如Alexa Fluor 700,Cy5.5 ....)大两倍以上的吸收系数,并且具有更大的斯托克斯位移值(即高达5500 cm〜(-1)以上)。 )。它们还在800-1050 nm区域(高达约10-6 GM)显示出非常大的双光子吸收响应,这是双光子激发荧光显微镜的主要前景。由于它们的亮度和增强的光稳定性,这些FON可以成像为孤立的纳米颗粒,并可以使用宽视场成像进行跟踪。因此,由于它们的大小和组成(不存在重金属),它们代表了用于生物成像和单粒子跟踪应用中的近红外发射量子点的极有希望的替代品。此外,通过使用由长的疏水性(PPO)和短的亲水性(PEO)链段组成的聚合物添加剂,并具有能够与FONs高度负性表面相互作用的阳离子头基,可以实现有效的FONs涂层。这种静电驱动的相互作用既促进了光致发光又促进了双光子吸收增强,从而导致双光子亮度增加了大约一个数量级。这为双光子激发下的宽视野单粒子跟踪开辟了道路。

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