Skeletal Remains Analysis

Skeletal remains analysis is the systematic examination of human or animal bones and teeth to identify biological information preserved after soft tissues decay. In biology, researchers assess bone morphology, measurements, microscopic structure, damage, and chemical or genetic signals while considering decomposition and environmental alteration. These observations can support estimates of age, stature, population affinity, species, and trauma, and can help distinguish activity-related changes from postmortem damage. Applied to archaeology, forensic science, and zoology, skeletal remains analysis reconstructs aspects of past lives, death circumstances, and biological variation while linking anatomy with taphonomy and evidence-based interpretation.

Skeletal Remains Analysis - Related Videos

Research

JoVE Journal - Medicine

Scanning Skeletal Remains for Bone Mineral Density in Forensic Contexts

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Cited by 13 •

2018

Bone mineral density (BMD) is an important factor in understanding nutritional intake. For human skeletal remains, it is a useful metric to assess quality of life in both juveniles and adults, particularly in fatal starvation and neglect cases. This paper provides guidelines for scanning human skeletal remains for forensic purposes.

Research

JoVE Journal - Medicine
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Myo-mechanical Analysis of Isolated Skeletal Muscle

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Cited by 25 •

2011

To assess the in vivo effects of therapeutic interventions for muscle disease, methods are needed to quantitate force generation and fatigability in treated muscle. We detail an approach to evaluating myo-mechanical properties in explanted mouse hindlimb muscle. This analysis provides a robust approach to quantitating the effects of genetic modification on muscle function, as well as comparison of therapies in mouse models of muscle disease.

Analysis of Embryonic and Larval Zebrafish Skeletal Myofibers from Dissociated Preparations

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Cited by 21 •

2013

Zebrafish are an emerging system for modeling human disorders of the skeletal muscle. We describe a fast and efficient method to isolate skeletal muscle myofibers from embryonic and larval zebrafish. This method yields a high-density myofiber preparation suitable for study of single skeletal muscle fiber morphology, protein subcellular localization, and muscle physiology.

Analysis of Skeletal Muscle Defects in Larval Zebrafish by Birefringence and Touch-evoke Escape Response Assays

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Cited by 93 •

2013

The zebrafish is now an established and powerful tool for modeling muscular dystrophies, congenital myopathies, and related neuromuscular diseases. Birefringence and touch-evoked escape behavior are two common noninvasive assays used to determine the degree of muscular disorganization and locomotive impairment of zebrafish embryos during early development.

Semi-automated Analysis of Mouse Skeletal Muscle Morphology and Fiber-type Composition

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Cited by 26 •

2017

Immunohistochemical staining of myosin heavy chain isoforms has emerged as the state-of-the-art discriminator of skeletal muscle fiber-type (i.e., type I, type IIA, type IIX, type IIB). Here, we present a staining protocol along with a novel semi-automated algorithm that facilitates rapid assessment of fiber-type and fiber morphology.

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