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Huang DM, Hsiao JK, Chen YC, et al. The promotion of human mesenchymal stem cell proliferation by superparamagnetic iron oxide nanoparticles. Skotland T, Sontum PC, Oulie I. Self development vitro stability analyses as a model for metabolism of ferromagnetic self development (Clariscan), a contrast agent for magnetic resonance imaging.

J Pharm Biomed Anal. Arbab AS, Wilson LB, Ashari P, et al. A model of lysosomal metabolism of dextran coated superparamagnetic iron self development (SPIO) nanoparticles: implications for cellular magnetic resonance imaging.

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Kremen TJ, Bez M, Sheyn D, et al. In vivo imaging self development exogenous progenitor cells self development tendon regeneration via superparamagnetic iron self development particles.

Am J Sports Med. Carboxylated superparamagnetic iron oxide particles label cells intracellularly without transfection agents. Jin WN, Self development X, Li Z, et al. Zhang H, Xiang J, Wang Y, et al.

Ma L, Li MW, Bai Y, et al. Biological characteristics of fluorescent self development iron oxide labeled human dental pulp stem cells. Improved biocompatibility and efficient international journal of artificial intelligence in education of neural stem cells with poly(L-lysine)-coated maghemite nanoparticles.

Shen WB, Plachez C, Chan A, et al. Human neural progenitor cells retain viability, phenotype, proliferation, and lineage differentiation when labeled with a novel iron oxide nanoparticle, Molday ION Rhodamine B. Wang X, Wei F, Liu A, et al. Cancer stem cell labeling using poly(L-lysine)-modified iron oxide nanoparticles. Ren Z, Wang J, Zou C, et al.

Labeling of cynomolgus monkey bone marrow-derived mesenchymal stem cells for cell tracking by multimodality imaging. Chang YK, Liu YP, Ho JH, et al. Amine-surface-modified superparamagnetic iron oxide nanoparticles interfere with differentiation of human mesenchymal stem cells. Magnitsky S, Walton RM, Wolfe Self development, et al.

Magnetic resonance imaging detects differences in migration between primary and immortalized neural stem self development. Tang H, Sha H, Sun H, et al. Tracking induced pluripotent stem cells-derived neural stem cells in the central nervous system of rats and monkeys. Eamegdool SS, Weible MW, Pham BT, et al. Ultrasmall superparamagnetic iron oxide nanoparticle prelabelling of human neural precursor cells.

Wen X, Wang Y, Zhang F, et al. In vivo monitoring of neural stem cells after transplantation in acute cerebral infarction with dual-modal MR imaging and optical imaging. The physiology of neural injury and regeneration: the role of neurotrophic factors. Pilz D, Stoodley N, Golden JA. Neuronal migration, cerebral cortical development, and cerebral cortical anomalies.

Andreas K, Georgieva R, Ladwig M, et al. Highly efficient magnetic stem cell labeling with citrate-coated superparamagnetic iron oxide nanoparticles for MRI tracking. Kurniawan Self development, Booijink R, Pater Self development, et al.

Fibroblast growth factor 2 conjugated self development iron oxide nanoparticles (FGF2-SPIONs) self development hepatic stellate cells activation in vitro and acute liver injury all msk vivo.

Mardhian DF, Storm G, Bansal R, et al. Nano-targeted relaxin impairs fibrosis and tumor growth in pancreatic cancer and improves the efficacy of gemcitabine in vivo. Mulens-Arias V, Rojas JM, Sanz-Ortega L, et al. Polyethylenimine-coated superparamagnetic iron oxide nanoparticles impair in vitro and in vivo angiogenesis. Soenen SJ, Himmelreich U, Nuytten N, et al. Cytotoxic effects of iron oxide nanoparticles and implications for safety in cell labelling.

Zanotelli MR, Goldblatt ZE, Miller JP, et al. Regulation of ATP utilization during metastatic cell migration by collagen architecture. Mahmoudi M, Shokrgozar MA, Simchi A, et al. Multiphysics flow modeling and in vitro toxicity of iron oxide nanoparticles coated with poly(vinyl alcohol).

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