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Nose and Nasal Cavity01:24

Nose and Nasal Cavity

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The nose is composed of an observable exterior segment (external nose) and an internal segment within the skull known as the nasal cavity (internal nose). The external nose, visible on the face, consists of a framework of bone and hyaline cartilage enveloped in skin and muscle and lined with a mucous membrane. This structure is supported by the frontal bone, nasal bones, and maxillary bone and is supplemented by a cartilaginous framework comprising the septal nasal cartilage, lateral nasal...
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Cranial Bones: Lateral View01:27

Cranial Bones: Lateral View

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The lateral view of the cranium is dominated by temporal, sphenoid, and ethmoid bones.
The temporal bone forms the lower lateral side of the skull. The temporal bone is subdivided into several regions. The flattened upper portion is the squamous portion of the temporal bone. Below this area and projecting anteriorly is the zygomatic process of the temporal bone, which forms the posterior portion of the zygomatic arch. Posteriorly is the mastoid portion of the temporal bone. Projecting...
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Cranial Bones: Superior and Posterior View01:14

Cranial Bones: Superior and Posterior View

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The superior view of the cranium shows the frontal and paired parietal bones.
The frontal bone is the single bone that forms the forehead. At its anterior midline, between the eyebrows, there is a slight depression called the glabella. The frontal bone also forms the supraorbital margin of the orbit. Near the middle of this margin is the supraorbital foramen, the opening that provides passage for a sensory nerve to the forehead. The frontal bone is thickened just above each supraorbital margin,...
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Suctioning the Nasopharyngeal Airway01:29

Suctioning the Nasopharyngeal Airway

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Nasopharyngeal suctioning is a procedure to remove secretions from the upper part of the respiratory tract that the patient cannot clear independently. It helps maintain airway patency and prevents complications such as aspiration pneumonia.
Equipment Required
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Tooth Anatomy01:21

Tooth Anatomy

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The human tooth enables us to eat a variety of foods, speak clearly, and even aid in shaping our faces. Teeth are composed of various elements that work together. Here's a detailed look at the anatomy of a human tooth.
The Crown, Neck, and Root
The visible part of the tooth is referred to as the crown. It's covered by enamel, the hardest substance in the human body. The crown is uniquely shaped for each type of tooth, allowing for different functions such as cutting, tearing, or...
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What is Monogastric Digestion?01:50

What is Monogastric Digestion?

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The human body contains a monogastric digestive system. In a monogastric digestive system, the stomach only contains one chamber in which it digests food. Several other animal species also have monogastric digestive systems, including pigs, horses, dogs, and birds. This chapter, however, focuses on the human digestive system.
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Related Experiment Video

Updated: Apr 21, 2026

Collection and Processing of Lymph Nodes from Large Animals for RNA Analysis: Preparing for Lymph Node Transcriptomic Studies of Large Animal Species
12:53

Collection and Processing of Lymph Nodes from Large Animals for RNA Analysis: Preparing for Lymph Node Transcriptomic Studies of Large Animal Species

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Snout shape in extant ruminants.

Jonathan P Tennant1, Norman MacLeod2

  • 1Department of Earth Science and Engineering, Imperial College London, London, United Kingdom.

Plos One
|November 6, 2014
PubMed
Summary

Ruminant snout shape alone does not definitively distinguish grazers from browsers, but geometric morphometrics can classify feeding styles with 83.8% accuracy. This method aids in identifying unknown feeding strategies in herbivore species.

Area of Science:

  • Zoology
  • Ecology
  • Evolutionary Biology

Background:

  • Snout shape is crucial for herbivore feeding ecology, influencing forage selectivity and intake rates.
  • Previous studies proposed distinct snout shapes for grazing (blunt) and browsing (pointed) ruminants, with intermediate categories for ambiguous cases.

Purpose of the Study:

  • To analyze ruminant snout shape morphology using geometric morphometrics.
  • To compare the two-dimensional premaxilla profiles of modern ruminant species with known feeding modes.
  • To assess the efficacy of snout shape in discriminating grazing and browsing feeding styles.

Main Methods:

  • Geometric morphometrics was applied to analyze the 2D ventral profiles of the premaxilla in a large sample of modern ruminant species.
  • Feeding modes were determined from secondary criteria.

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  • Discriminant analysis was used to classify feeding styles based on snout profile shape.
  • Main Results:

    • Snout profile shape alone could not unambiguously discriminate between browsing and grazing ruminants, revealing a continuum of morphologies with significant overlap.
    • A post hoc classification based on proximity to group centroids achieved 83.8% accuracy in categorizing feeding styles.
    • Snout shape variance correlated strongly with body mass, suggesting an interaction between snout shape, feeding style, and body size evolution.
    • Phylogenetic control slightly improved classification accuracy.

    Conclusions:

    • While snout shape alone is not a definitive classifier, geometric morphometrics provides a reliable method (83.8% accuracy) for identifying unknown ruminant feeding strategies.
    • The study refines definitions of snout shape varieties using geometric morphometrics.
    • Findings support an evolutionary link between snout shape, feeding ecology, and body size in ruminants.