5 research outputs found
Tumor cells-derived extracellular vesicles carry circ_0064516 competitively inhibit microRNA-6805-3p and promote cervical cancer angiogenesis and tumor growth
The current study tried to elucidate the regulatory role of tumor cell-derived exosomes (Exos)-circ_0064516 in angiogenesis and growth of cervical cancer. Related cirRNAs and downstream target genes were identified through bioinformatics analysis. Exos were isolated from cervical cancer cell line CaSki, followed by co-cultured with human umbilical vein endothelial cells (HUVECs). Then, the roles of circ_0064516, miR-6805-3p, and MAPK1 in migration and angiogenesis of HUVECs were assayed. Furthermore, xenografted tumors were transplanted into nude mice for in vivo validation. In vitro assay validated highly expressed circ_0064516 in cervical cancer cells. Tumor cell-derived Exos carried circ_0064516 to HUVECs. circ_0064516 increased MAPK1 expression by binding to miR-6805-3p, thus enhancing migration and angiogenesis. Exos containing circ_0064516 also promoted tumorigenesis of cervical cancer cells in nude mice. We confirmed the oncogenic role of tumor cell-derived Exos carrying circ_0064516 in cervical cancer progression through miR-6805-3p/MAPK1.</p
Media 1: High-order all-optical differential equation solver based on microring resonators
Originally published in Optics Letters on 01 October 2013 (ol-38-19-3735
Near-Native Imaging of Label-Free Silver Nanoparticles-Triggered 3D Subcellular Ultrastructural Reorganization in Microalgae
Understanding
the spatial orientation of nanoparticles and the
corresponding subcellular architecture events favors uncovering fundamental
toxic mechanisms and predicting response pathways of organisms toward
environmental stressors. Herein, we map the spatial location of label-free
citrate-coated Ag nanoparticles (Cit-AgNPs) and the corresponding
subcellular reorganization in microalgae by a noninvasive 3D imaging
approach, cryo-soft X-ray tomography (cryo-SXT). Cryo-SXT near-natively
displays the 3D maps of Cit-AgNPs presenting in rarely identified
sites, namely, extracellular polymeric substances (EPS) and the cytoplasm.
By comparative 3D morphological assay, we observe that Cit-AgNPs disrupt
the cellular ultrastructural homeostasis, triggering a severe malformation
of cytoplasmic organelles with energy-producing and stress-regulating
functions. AgNPs exposure causes evident disruption of the chloroplast
membrane, significant attenuation of the pyrenoid matrix and starch
sheath, extreme swelling of starch granules and lipid droplets, and
shrinkage of the nucleolus. In accompaniment, the number and volume
occupancy of starch granules are significantly increased. Meanwhile,
the spatial topology of starch granules extends from the chloroplast
to the cytoplasm with a dispersed distribution. Linking the dynamics
of the internal structure and the alteration of physiological properties,
we derive a comprehensive cytotoxic and response pathway of microalgae
exposed to AgNPs. This work provides a perspective for assessing the
toxicity at subcellular scales to achieve label-free nanoparticle-caused
ultrastructure remodeling of phytoplankton
Near-Native Imaging of Label-Free Silver Nanoparticles-Triggered 3D Subcellular Ultrastructural Reorganization in Microalgae
Understanding
the spatial orientation of nanoparticles and the
corresponding subcellular architecture events favors uncovering fundamental
toxic mechanisms and predicting response pathways of organisms toward
environmental stressors. Herein, we map the spatial location of label-free
citrate-coated Ag nanoparticles (Cit-AgNPs) and the corresponding
subcellular reorganization in microalgae by a noninvasive 3D imaging
approach, cryo-soft X-ray tomography (cryo-SXT). Cryo-SXT near-natively
displays the 3D maps of Cit-AgNPs presenting in rarely identified
sites, namely, extracellular polymeric substances (EPS) and the cytoplasm.
By comparative 3D morphological assay, we observe that Cit-AgNPs disrupt
the cellular ultrastructural homeostasis, triggering a severe malformation
of cytoplasmic organelles with energy-producing and stress-regulating
functions. AgNPs exposure causes evident disruption of the chloroplast
membrane, significant attenuation of the pyrenoid matrix and starch
sheath, extreme swelling of starch granules and lipid droplets, and
shrinkage of the nucleolus. In accompaniment, the number and volume
occupancy of starch granules are significantly increased. Meanwhile,
the spatial topology of starch granules extends from the chloroplast
to the cytoplasm with a dispersed distribution. Linking the dynamics
of the internal structure and the alteration of physiological properties,
we derive a comprehensive cytotoxic and response pathway of microalgae
exposed to AgNPs. This work provides a perspective for assessing the
toxicity at subcellular scales to achieve label-free nanoparticle-caused
ultrastructure remodeling of phytoplankton
Additional file 2: of Predominant cerebral cytokine release syndrome in CD19-directed chimeric antigen receptor-modified T cell therapy
Preparation of chimeric antigen receptor-modified (CAR) T cells targeting CD19 (CART19). (DOCX 16.7 KB