| Literature DB >> 34067696 |
Daniil V Kladko1, Aleksandra S Falchevskaya1, Nikita S Serov1, Artur Y Prilepskii1.
Abstract
Nanomaterials are proven to affect the biological activity of mammalian and microbial cells profoundly. Despite this fact, only surface chemistry, charge, and area are often linked to these phenomena. Moreover, most attention in this field is directed exclusively at nanomaterial cytotoxicity. At the same time, there is a large body of studies showing the influence of nanomaterials on cellular metabolism, proliferation, differentiation, reprogramming, gene transfer, and many other processes. Furthermore, it has been revealed that in all these cases, the shape of the nanomaterial plays a crucial role. In this paper, the mechanisms of nanomaterials shape control, approaches toward its synthesis, and the influence of nanomaterial shape on various biological activities of mammalian and microbial cells, such as proliferation, differentiation, and metabolism, as well as the prospects of this emerging field, are reviewed.Entities:
Keywords: anisotropic; crystal growth; mammalian cell; microbial cell; nanoparticle; shape
Year: 2021 PMID: 34067696 PMCID: PMC8156540 DOI: 10.3390/ijms22105266
Source DB: PubMed Journal: Int J Mol Sci ISSN: 1422-0067 Impact factor: 5.923
Figure 1Main mechanisms underlying nanomaterial shape control.
Figure 2Main approaches for nanomaterial shape control.
Figure 3Different mechanisms of nanoparticle action on cells.