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inoculation under microscope  (Carl Zeiss)


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    Carl Zeiss inoculation under microscope
    Inoculation Under Microscope, supplied by Carl Zeiss, used in various techniques. Bioz Stars score: 96/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
    https://www.bioz.com/product/microscope+stage/Microscope+stand+Axiolab+5%2C+TL%2C+5x+H+encoded%2C+mechanical+stage+75x50+R/pm41003518-324-9-14
    Average 96 stars, based on 1 article reviews
    inoculation under microscope - by Bioz Stars, 2026-09
    96/100 stars

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    Related Articles

    Microscopy:

    Article Title: In Vitro Screening of the Antifungal and Antimycotoxin Effects of a Stilbenoids-Riche Grapevine Cane Extract on Fusarium graminearum , Aspergillus flavus and Penicillium expansum .
    Article Snippet: .. To monitor germination, three membranes were observed immediately after inoculation under microscope (Axiolab 5, Zeiss, reference 430037-9011-000) combined with a camera (Toupcam, E3ISPM05000KPA, 60N-C, 2/3”, 0.63×, 426113, Touptek photonics) at various magnifications (10×, 20×, 40×) in bright-field mode. ..

    Article Title: In Vitro Screening of the Antifungal and Antimycotoxin Effects of a Stilbenoids-Riche Grapevine Cane Extract on Fusarium graminearum , Aspergillus flavus and Penicillium expansum
    Article Snippet: .. To monitor germination, three membranes were observed immediately after inoculation under microscope (Axiolab 5, Zeiss, reference 430037-9011-000) combined with a camera (Toupcam, E3ISPM05000KPA, 60N-C, 2/3”, 0.63×, 426113, Touptek photonics) at various magnifications (10×, 20×, 40×) in bright-field mode. ..



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    Image Search Results


    A . 2P microscope equipped with a DMD-based pattern stimulation setup and wide field cameras for alignment calibration. Camera 1 was positioned in the conjugate plane of the DMD and was used for alignment of the DMD projected patterns to the 2 P imaging. Camera 2 and Objective 2 are temporarily placed below the sample plane and used to characterize the axial spread of projected patterns. DM - dichoric mirror. B . Left : Images of illuminated areas of different size square patches (NxN) of active DMD pixels taken by Camera 1. Right: Estimated and measured full-width half-maximum (FWHM) of illuminated areas for different patch sizes. C . Left: Images of projected patterns of 20×20 DMD pixels at different positions of the Objective 1 taken by Camera 2. Right: Intensity profiles of projected patterns along the x-axis. Di . 2 P images of the glomerular layer with manually drawn glomerular ROIs. Dii . Corresponding DMD mask patterns; Diii . Image of the glomerular mask pattern with Camera 1. Div . Images of the glomerular mask pattern with Camera 2 at different position of the Objective 1.

    Journal: Nature Neuroscience

    Article Title: Rapid temporal processing in the olfactory bulb underlies concentration-invariant odor identification and signal decorrelation

    doi: 10.1038/s41593-026-02250-y

    Figure Lengend Snippet: A . 2P microscope equipped with a DMD-based pattern stimulation setup and wide field cameras for alignment calibration. Camera 1 was positioned in the conjugate plane of the DMD and was used for alignment of the DMD projected patterns to the 2 P imaging. Camera 2 and Objective 2 are temporarily placed below the sample plane and used to characterize the axial spread of projected patterns. DM - dichoric mirror. B . Left : Images of illuminated areas of different size square patches (NxN) of active DMD pixels taken by Camera 1. Right: Estimated and measured full-width half-maximum (FWHM) of illuminated areas for different patch sizes. C . Left: Images of projected patterns of 20×20 DMD pixels at different positions of the Objective 1 taken by Camera 2. Right: Intensity profiles of projected patterns along the x-axis. Di . 2 P images of the glomerular layer with manually drawn glomerular ROIs. Dii . Corresponding DMD mask patterns; Diii . Image of the glomerular mask pattern with Camera 1. Div . Images of the glomerular mask pattern with Camera 2 at different position of the Objective 1.

    Article Snippet: This algorithm attempted to minimize the difference between the reference image and the FOV by iteratively moving the microscope stage (Thorlabs, cat. no. PLS-XY) to reduce the residual displacement computed using a rigid motion correction package (NoRMCorre, Flatiron Institute) .

    Techniques: Microscopy, Imaging