analysis image 5.0 computer software (Evident Corporation)
90
Structured Review
Evident Corporation
analysis image 5.0 computer software
Analysis Image 5.0 Computer Software, supplied by Evident Corporation, used in various techniques. Bioz Stars score: 90/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
https://www.bioz.com/product/analysis+image+5%2E0+computer+software/analysis+5+0+software/pm38625817-64-31-36
Average 90 stars, based on 1 article reviews
Analysis Image 5.0 Computer Software, supplied by Evident Corporation, used in various techniques. Bioz Stars score: 90/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
https://www.bioz.com/product/analysis+image+5%2E0+computer+software/analysis+5+0+software/pm38625817-64-31-36
Average 90 stars, based on 1 article reviews
analysis image 5.0 computer software - by Bioz Stars,
2026-09
90/100 stars
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Related Articles
Microscopy:Article Title: Disengaging spinal afferent nerve communication with the brain in live mice Article Snippet: Images were captured as TIFF files at ×4 magnification with a CoolSNAPTM camera (Roper Scientific, Tucson, AZ,USA) and AnalySIS Image 5.0 computer software (Olympus-SIS,Münster, Germany). Article Title: The gut-brain axis: spatial relationship between spinal afferent nerves and 5-HT-containing enterochromaffin cells in mucosa of mouse colon. Article Snippet: Cross talk between the gastrointestinal tract and brain is of significant relevance for human health and disease.. However, our understanding of how the gut and brain communicate has been limited by a lack of techniques to identify the precise spatial relationship between extrinsic nerve endings and their proximity to specific cell types that line the inner surface of the gastrointestinal tract.. We used an in vivo anterograde tracing technique, previously developed in our laboratory, to selectively label single spinal afferent axons and their nerve endings in mouse colonic mucosa. Article Title: Identification of spinal afferent nerve endings in the colonic mucosa and submucosa that communicate directly with the spinal cord: The gut-brain axis. Article Snippet: Introduction: The major sensory nerve pathway between the colon and central nervous system (spinal cord and brain) that underlies the gut-brain axis, is via spinal afferent neurons, with cell bodies in dorsal root ganglia (DRG).. Our aim was to identify the sensory nerve endings in the colon that arise from single colorectal-projecting DRG neurons.. Materials and Methods: C57BL/6 mice were anesthetized and lumbosacral L6-S1 DRG injected with dextran biotin. Article Title: Mechanisms underlying the gut-brain communication: How enterochromaffin (EC) cells activate vagal afferent nerve endings in the small intestine. Article Snippet: After fixation, preparations of small intestine were initially viewed with an Olympus IX71 epifluorescence microscope using appropriate discriminating filters and imaged at 4×–40× magnification with a CoolSNAP camera (Roper Scientific) via AnalySIS Image 5.0 computer software (Olympus-SIS). Article Title: Morphological identification of thoracolumbar spinal afferent nerve endings in mouse uterus. Article Snippet: Slides were viewed with an Olympus IX71 epifluorescent microscope (Shinjuku-ku, Tokyo, Japan) using appropriate laser wavelengths, and images captured at 4x to 40x magnification with a CoolSNAPTM camera (Roper Scientific; Tucson, AZ, USA) via AnalySIS Image 5.0 computer software (Olympus-SIS; Münster, Germany). Article Title: Sensory nerve endings arising from single spinal afferent neurons that innervate both circular muscle and myenteric ganglia in mouse colon: colon-brain axis. Article Snippet: There is considerable interest in understanding how contents within the gut wall (including microbiome) can activate sensory nerve endings in the gut that project to the central nervous system.. However, we have only recently begun to understand the location and characteristics of extrinsic spinal afferent nerve endings that innervate the lower gastrointestinal (GI) tract.. Our aim is to identify the nerve endings in the mouse distal colon that arise from single spinal afferent neurons. Software:Article Title: Disengaging spinal afferent nerve communication with the brain in live mice Article Snippet: Images were captured as TIFF files at ×4 magnification with a CoolSNAPTM camera (Roper Scientific, Tucson, AZ,USA) and AnalySIS Image 5.0 computer software (Olympus-SIS,Münster, Germany). Article Title: The gut-brain axis: spatial relationship between spinal afferent nerves and 5-HT-containing enterochromaffin cells in mucosa of mouse colon. Article Snippet: Cross talk between the gastrointestinal tract and brain is of significant relevance for human health and disease.. However, our understanding of how the gut and brain communicate has been limited by a lack of techniques to identify the precise spatial relationship between extrinsic nerve endings and their proximity to specific cell types that line the inner surface of the gastrointestinal tract.. We used an in vivo anterograde tracing technique, previously developed in our laboratory, to selectively label single spinal afferent axons and their nerve endings in mouse colonic mucosa. Article Title: Identification of spinal afferent nerve endings in the colonic mucosa and submucosa that communicate directly with the spinal cord: The gut-brain axis. Article Snippet: Introduction: The major sensory nerve pathway between the colon and central nervous system (spinal cord and brain) that underlies the gut-brain axis, is via spinal afferent neurons, with cell bodies in dorsal root ganglia (DRG).. Our aim was to identify the sensory nerve endings in the colon that arise from single colorectal-projecting DRG neurons.. Materials and Methods: C57BL/6 mice were anesthetized and lumbosacral L6-S1 DRG injected with dextran biotin. Article Title: Mechanisms underlying the gut-brain communication: How enterochromaffin (EC) cells activate vagal afferent nerve endings in the small intestine. Article Snippet: After fixation, preparations of small intestine were initially viewed with an Olympus IX71 epifluorescence microscope using appropriate discriminating filters and imaged at 4×–40× magnification with a CoolSNAP camera (Roper Scientific) via AnalySIS Image 5.0 computer software (Olympus-SIS). Article Title: Morphological identification of thoracolumbar spinal afferent nerve endings in mouse uterus. Article Snippet: Slides were viewed with an Olympus IX71 epifluorescent microscope (Shinjuku-ku, Tokyo, Japan) using appropriate laser wavelengths, and images captured at 4x to 40x magnification with a CoolSNAPTM camera (Roper Scientific; Tucson, AZ, USA) via AnalySIS Image 5.0 computer software (Olympus-SIS; Münster, Germany). Article Title: Sensory nerve endings arising from single spinal afferent neurons that innervate both circular muscle and myenteric ganglia in mouse colon: colon-brain axis. Article Snippet: There is considerable interest in understanding how contents within the gut wall (including microbiome) can activate sensory nerve endings in the gut that project to the central nervous system.. However, we have only recently begun to understand the location and characteristics of extrinsic spinal afferent nerve endings that innervate the lower gastrointestinal (GI) tract.. Our aim is to identify the nerve endings in the mouse distal colon that arise from single spinal afferent neurons. |