Characterization of the capillary network in skeletal muscles from 3D data
Language English Country Czech Republic Media print-electronic
Document type Journal Article, Research Support, Non-U.S. Gov't, Review
    PubMed
          
           20945967
           
          
          
    DOI
          
           10.33549/physiolres.931988
           
          
          
      PII:  931988
  
    Knihovny.cz E-resources
    
  
              
      
- MeSH
- Models, Anatomic MeSH
- Muscle Denervation MeSH
- Capillaries anatomy & histology ultrastructure MeSH
- Microscopy, Confocal MeSH
- Muscle, Skeletal blood supply MeSH
- Rats MeSH
- Rats, Wistar MeSH
- Imaging, Three-Dimensional MeSH
- Animals MeSH
- Check Tag
- Rats MeSH
- Animals MeSH
- Publication type
- Journal Article MeSH
- Research Support, Non-U.S. Gov't MeSH
- Review MeSH
In this review we present immunohistochemical methods for visualization of capillaries and muscle fibres in thick muscle sections. Special attention is paid to the procedures that preserve good morphology. Applying confocal microscopy and virtual 3D stereological grids, or tracing of capillaries in virtual reality, length of capillaries within a muscle volume or length of capillaries adjacent to a muscle fibre per fibre length, fibre surface area or fibre volume can be evaluated by an unbiased approach. Moreover, 3D models of capillaries and muscle fibres can be produced. Comparison of the developed methods with counting capillary profiles from 2D sections is discussed and the reader is warned that counting capillary profiles from 2D sections can underestimate the capillary length by as much as 75 percent. Application of the described 3D methodology is illustrated by the anatomical remodelling of capillarity during acute denervation and early reinnervation in the rat soleus and extensor digitorum longus muscles.
References provided by Crossref.org
Fiber-type composition and 3D capillary analysis of the human splenius capitis muscle
3D analysis of capillary network in skeletal muscle of obese insulin-resistant mice
