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Conci, C.

Publications and source records attributed to Conci, C..

2 recordsLinked to original sources

Engineering macrophage responses through 3D scaffold microarchitecture

Biomaterial implantation in living organisms triggers a physiological response known as foreign body reaction, leading to the recruitment of macrophages, that can polarize either into a pro-inflammatory (M1) or an anti-inflammatory (M2) phenotype. Currently, there is growing interest in tailoring the physical properties of tissues and biomaterials to promote efficient tissue regeneration. Tridimensionality can profoundly influence macrophage behaviour; however, there is no clear consensus on the underlying mechanisms. 3D microstructures may play a crucial role in modulating immune cells, promoting anti-inflammatory responses, and supporting effective tissue repair and regeneration. In this study, we used two-photon polymerization to fabricate 3D scaffolds with large pores, measuring 50x50x20 m3, and small pores, measuring 15x15x15 m3. Both microstructures effectively influenced macrophage cytoskeletal organization and cellular metabolic activity. Notably, they were not sufficient to induce spontaneous macrophage polarization, indicating that they are intrinsically immunologically inert. When combined with chemical stimulation, as typically occurs in vivo, they elicited distinct responses. Specifically, as evidenced by the slight upregulation of the Arg1 marker, large pore sizes promoted an anti-inflammatory phenotype. Conversely, iNOS expression measurements indicated that small pores, which impose spatial constraints on macrophages, favoured a massive pro-inflammatory state. Our results demonstrate that 3D microstructures are versatile tools for multiple applications. Their precisely tunable architecture enables fine control over macrophage behaviour and immunomodulation, opening new avenues both for tissue engineering, by preventing fibrosis and promoting anti-inflammatory and pro-regenerative responses in vivo, and for the development of in vitro platforms to model inflamed tissues for screening anti-inflammatory drugs.

bioengineering↗

Microlenses fabricated by two-photon laser polymerisation for intravital cell imaging with non-linear excitation microscopy

Non-linear excitation microscopy offers several advantages for in-vivo imaging compared to conventional confocal techniques. However, tissue penetration can still be an issue due to scattering and spherical aberrations induced on focused beams by the tissue. The use of low numerical aperture objectives to pass through the outer layers of the skin, together with high dioptric power microlenses implanted in-vivo close to the observation volume, can be beneficial to the reduction of optical aberrations. Here, we develop and test on fibroblast cell culture plano-convex microlenses to be used for non-linear imaging of biological tissue. The microlenses can be used as single lenses or multiplexed in an array. A thorough test of the lenses wavefront is reported together with the modulation transfer function and wavefront profile. We could retrieve magnified fluorescence images through the microlenses coupled to commercial confocal and two-photon excitation scanning microscopes. The signal-to-noise ratio of the images is not substantially affected by the use of the microlenses and the magnification can be adjusted by changing the relative position of the microlens array to the microscope objective and the immersion medium. These results are opening the way to the application of implanted micro-optics for optical in-vivo inspection of biological processes.

bioengineering↗