Multiphoton microscopy of collagen hydrogels produces second harmonic generation (SHG) and two-photon fluorescence (TPF) images, which can be used to noninvasively study gel microstructure at depth ( approximately 1 mm). The microstructure is also a primary determinate of the mechanical properties of the gel; thus, we hypothesized that bulk optical properties (i.e., SHG and TPF) could be used to predict bulk mechanical properties of collagen hydrogels. We utilized polymerization temperature (4-37 degrees C) and glutaraldehyde to manipulate collagen hydrogel fiber diameter, space-filling properties, and cross-link density. Multiphoton microscopy and scanning electron microscopy reveal that as polymerization temperature decreases (37-4 degree...
International audienceWe implemented in situ time-lapse Second Harmonic Generation (SHG) microscopy ...
AbstractFibrillar collagen, being highly noncentrosymmetric, possesses a tremendous nonlinear suscep...
Second-harmonic generation (SHG) imaging has high specificity to collagen, sub-micrometer resolution...
AbstractMultiphoton microscopy of collagen hydrogels produces second harmonic generation (SHG) and t...
Multiphoton microscopy (MPM) holds promise as a noninvasive imaging technique for characterizing col...
Multiphoton microscopy (MPM) holds promise as a noninvasive imaging technique for characterizing col...
Cellularized collagen gels are a common model in tissue engineering, but the relationship between th...
AbstractMultiphoton microscopy (MPM) holds promise as a noninvasive imaging technique for characteri...
AbstractMultiphoton microscopy (MPM) holds promise as a noninvasive imaging technique for characteri...
The goal of tissue engineering is to create the functional engineered tissue to replace or repair th...
Multiphoton microscopy is a powerful, non-invasive technique to image biological specimens. One curr...
AbstractWe quantitatively compare data obtained from imaging two-dimensional slices of three-dimensi...
We investigate the use of a fiber-based, multispectral fluorescence lifetime imaging (FLIm) system t...
A variety of optical microscopy techniques can visualise individual cells in their extracellular mat...
We compared the effects of zero-length cross-linkers 1-ethyl-3 (3dimethylaminopropyl) carbodiimide (...
International audienceWe implemented in situ time-lapse Second Harmonic Generation (SHG) microscopy ...
AbstractFibrillar collagen, being highly noncentrosymmetric, possesses a tremendous nonlinear suscep...
Second-harmonic generation (SHG) imaging has high specificity to collagen, sub-micrometer resolution...
AbstractMultiphoton microscopy of collagen hydrogels produces second harmonic generation (SHG) and t...
Multiphoton microscopy (MPM) holds promise as a noninvasive imaging technique for characterizing col...
Multiphoton microscopy (MPM) holds promise as a noninvasive imaging technique for characterizing col...
Cellularized collagen gels are a common model in tissue engineering, but the relationship between th...
AbstractMultiphoton microscopy (MPM) holds promise as a noninvasive imaging technique for characteri...
AbstractMultiphoton microscopy (MPM) holds promise as a noninvasive imaging technique for characteri...
The goal of tissue engineering is to create the functional engineered tissue to replace or repair th...
Multiphoton microscopy is a powerful, non-invasive technique to image biological specimens. One curr...
AbstractWe quantitatively compare data obtained from imaging two-dimensional slices of three-dimensi...
We investigate the use of a fiber-based, multispectral fluorescence lifetime imaging (FLIm) system t...
A variety of optical microscopy techniques can visualise individual cells in their extracellular mat...
We compared the effects of zero-length cross-linkers 1-ethyl-3 (3dimethylaminopropyl) carbodiimide (...
International audienceWe implemented in situ time-lapse Second Harmonic Generation (SHG) microscopy ...
AbstractFibrillar collagen, being highly noncentrosymmetric, possesses a tremendous nonlinear suscep...
Second-harmonic generation (SHG) imaging has high specificity to collagen, sub-micrometer resolution...