Přehled o publikaci
2025
AFM application across the life sciences field and its combination with special techniques
HRUŠKA, Jakub; Radka OBOŘILOVÁ; Šimon VRANA; Jakub MÁČALA; Jan PŘIBYL et al.Basic information
Original name
AFM application across the life sciences field and its combination with special techniques
Authors
HRUŠKA, Jakub; Radka OBOŘILOVÁ; Šimon VRANA; Jakub MÁČALA and Jan PŘIBYL
Edition
AFM BioMed Conference 2025, Barcelona, 2025
Other information
Language
English
Type of outcome
Konferenční abstrakta
Country of publisher
Spain
Confidentiality degree
is not subject to a state or trade secret
References:
Marked to be transferred to RIV
No
Organization
Středoevropský technologický institut – Repository – Repository
Keywords in English
AFM; technique combination; advanced AFM techniques; strcture; biomechanical behaviour; microscopy techniques
Links
EH23_015/0008175, research and development project. LM2023042, research and development project. LUC24105, research and development project. MUNI/G/1125/2022, interní kód Repo.
Changed: 28/2/2026 00:51, RNDr. Daniel Jakubík
Abstract
In the original language
These approaches enhance the obtained data by integrating AFM (topography, mechanics) with information from other techniques within the same region of interest. It provides key insights into the structural and biomechanical behaviour of biological systems in their native state and physiological environments, enabling a deeper understanding of complex processes such as biomolecule imaging and cell mechanics. AFM’s versatility is further enhanced through its combination with other techniques, such as Raman spectroscopy, fluorescence microscopy, and scanning electron microscopy (SEM). While Raman spectroscopy provides precise chemical characterization, fluorescence microscopy enables the specific localization of desired interactions. Moreover, the correlative AFM-in-SEM enables precise in-situ data correlation, combining nanoscale topography with different information from SEM channels. Additionally, advanced AFM techniques, such as Fluid AFM, enable nanomanipulation, including single-cell nano-injection, expanding its applications in biomedical research. These combined methodologies provide a deeper understanding across a wide range of life sciences, including cellular processes, biomaterial interactions, and disease-related mechanical alterations, making AFM an excellent and useful tool for modern biological and biomedical research.