Hondl Nikolaus, Neubauer Lena, Ramos-Garcia Victoria, Kuligowski Julia, Bishara Marina, Sevcsik Eva, Lendl Bernhard, Ramer Georg
Institute of Chemical Technologies and Analytics, TU Wien, 1060 Vienna, Austria.
Christian Doppler Laboratory for Advanced Mid-Infrared Laser Spectroscopy in (Bio-)Process Analytics, TU Wien, 1060 Vienna, Austria.
ACS Meas Sci Au. 2025 Apr 3;5(4):469-476. doi: 10.1021/acsmeasuresciau.5c00001. eCollection 2025 Aug 20.
Extracellular vesicles (EVs) are nanosized particles that are associated with various physiological and pathological functions. They play a key role in intercell communication and are used as transport vehicles for various cell components. In human milk, EVs are believed to be important for the development of acquired immunity. State-of-the-art analysis methods are not able to provide label-free chemical information at the single-vesicle level. We introduce a protocol to profile the structure and composition of individual EVs with the help of atomic force microscopy infrared spectroscopy (AFM-IR), a nanoscale chemical imaging technique. The protocol includes the immobilization of EVs onto a silicon surface functionalized with anti-CD9 antibodies via microcontact printing. AFM-IR measurements of immobilized EVs provide size information and mid-infrared spectra at subvesicle spatial resolution. The received spectra compare favorably to bulk reference spectra. A key part of our protocol is a technique to acquire spectral information about a large number of EVs through hyperspectral imaging combined with image processing to correct for image drift and select individual vesicles.
细胞外囊泡(EVs)是与多种生理和病理功能相关的纳米级颗粒。它们在细胞间通讯中起关键作用,并用作各种细胞成分的运输载体。在人乳中,EVs被认为对获得性免疫的发育很重要。目前的分析方法无法在单囊泡水平提供无标记的化学信息。我们介绍了一种借助原子力显微镜红外光谱(AFM-IR)(一种纳米级化学成像技术)来分析单个EVs结构和组成的方案。该方案包括通过微接触印刷将EVs固定在经抗CD9抗体功能化的硅表面上。对固定的EVs进行AFM-IR测量可提供亚囊泡空间分辨率下的尺寸信息和中红外光谱。所获得的光谱与大量参考光谱相比具有优势。我们方案的一个关键部分是一种通过高光谱成像结合图像处理来获取大量EVs光谱信息的技术,以校正图像漂移并选择单个囊泡。