Department of Mechanical Engineering, Pohang University of Science and Technology (POSTECH), Pohang, Gyeong-buk 37673, Republic of Korea.
School of Interdisciplinary Bioscience and Bioengineering, Pohang University of Science and Technology (POSTECH), Pohang, Gyeong-buk 37673, Republic of Korea.
ACS Biomater Sci Eng. 2020 Nov 9;6(11):6063-6068. doi: 10.1021/acsbiomaterials.0c01157. Epub 2020 Oct 29.
Cell-engineered nanovesicles (CNVs) are considered as an alternative to exosomes, because they can be produced efficiently on a large scale and have been successfully reported in several applied research studies. However, CNVs may originate from various organelles, i.e., some of them may cause adverse effects on recipient cells, and their origin has not yet been identified. In this study, we air-sprayed human embryonic kidney 293 (HEK293) cells into lipid-bilayer CNVs. To identify the subcellular origin of the CNVs, we prepared nine different HEK293 cell lines by transfection with organelle-specific fluorescent protein plasmids that target the plasma membrane, peroxisome, lysosome, early endosome, late endosome, nucleus, mitochondrion, Golgi apparatus, and endoplasmic reticulum. The origin of CNVs were identified by measuring fluorescence expressions for organelle-specific markers using fluorescence nanoparticle tracking analysis (NTA). In the results, we found that CNVs derived from the plasma membrane constituted the largest portion, but CNVs derived from the other organelles comprised a non-negligible portion as well. This information will be useful to guide advanced research on outer membrane vesicles and exosome-mimetic nanovesicles engineered from cells.
细胞工程纳米囊泡 (CNVs) 被认为是外泌体的替代品,因为它们可以大规模高效生产,并在几项应用研究中成功报道。然而,CNVs 可能来源于各种细胞器,即其中一些可能对受体细胞产生不良影响,并且它们的来源尚未确定。在本研究中,我们将人胚肾 293(HEK293)细胞空气喷射到脂质双层 CNVs 中。为了鉴定 CNVs 的亚细胞起源,我们通过转染靶向质膜、过氧化物酶体、溶酶体、早期内体、晚期内体、核、线粒体、高尔基体和内质网的细胞器特异性荧光蛋白质粒,制备了九种不同的 HEK293 细胞系。通过使用荧光纳米颗粒跟踪分析 (NTA) 测量细胞器特异性标记物的荧光表达来鉴定 CNVs 的起源。结果表明,源自质膜的 CNVs 构成了最大部分,但源自其他细胞器的 CNVs 也构成了不可忽视的部分。这些信息将有助于指导对细胞膜囊泡和细胞工程的外泌体模拟纳米囊泡的进一步研究。