Related Experiment Video
Updated: May 12, 2026

Ex vivo Mechanical Loading of Tendon
Published on: May 28, 2007
Muscle loading is necessary for the formation of a functional tendon enthesis
A G Schwartz1, J H Lipner, J D Pasteris
1Department of Orthopaedic Surgery, Washington University, St Louis, MO 63110, USA.
Insights
Muscle unloading via botulinum toxin (BtxA) impairs developing tendon enthesis function. This leads to reduced mechanical strength and altered collagen and mineral composition, impacting skeletal development.
Area of Science:
- Biomechanical Engineering
- Developmental Biology
- Orthopedic Research
Background:
- Muscle forces are critical for skeletal development and joint formation.
- Muscle paralysis, such as from neonatal brachial plexus palsy, causes bone and joint deformities.
- Botulinum toxin (BtxA)-induced rotator cuff paralysis in mice models this condition, affecting the tendon enthesis.
Purpose of the Study:
- To investigate the functional effects of muscle unloading on the developing supraspinatus tendon enthesis.
- To identify structural and compositional changes in the tendon enthesis due to BtxA-induced paralysis.
- To correlate these changes with impaired biomechanical performance.
Main Methods:
- Postnatal BtxA-induced muscle unloading in mouse rotator cuffs.
- Biomechanical testing of supraspinatus tendon attachment (load, stiffness, strength, modulus, toughness).
- Microscopic analysis (polarized-light microscopy for collagen alignment) and Raman spectroscopy for mineral composition (hydroxylapatite crystallinity and carbonate content).
Main Results:
- Muscle unloading significantly decreased maximum endurable load and stiffness.
- Tendon strength, modulus, and toughness were reduced, indicating lower tissue quality.
- Collagen fiber alignment decreased, and hydroxylapatite crystallinity was reduced with increased carbonate substitution in the enthesis.
Conclusions:
- Muscle unloading negatively impacts the biomechanical function of the developing tendon enthesis.
- Reduced collagen alignment and altered mineral composition contribute to impaired mechanical properties.
- These findings highlight the crucial role of muscle loading in normal tendon enthesis development and function.
Abstract:
Muscle forces are essential for skeletal patterning during development. Eliminating muscle forces, e.g., through paralysis, leads to bone and joint deformities. Botulinum toxin (BtxA)-induced paralysis of mouse rotator cuffs throughout postnatal development closely mimics neonatal brachial plexus palsy, a significant clinical condition in infants. In these mice, the tendon-to-bone attachment (i.e., the tendon enthesis) presents defects in mineral accumulation and fibrocartilage formation, presumably impairing the function of the tissue. The objective of the current study was to investigate the functional consequences of muscle unloading using BtxA on the developing supraspinatus tendon enthesis. We found that the maximum endurable load and stiffness of the supraspinatus tendon attachment decreased after four and eight weeks of post-natal BtxA-muscle unloading relative to controls. Tendon cross-sectional area was not significantly reduced by BtxA-unloading, while, strength, modulus, and toughness were decreased in the BtxA-unloaded group compared to controls, indicating a decrease in tissue quality. Polarized-light microscopy and Raman microprobe analysis were used to determine collagen fiber alignment and mineral characteristics, respectively, in the tendon enthesis that might contribute to the reduced biomechanical performance in BtxA-unloaded shoulders. Collagen fiber alignment was significantly reduced in BtxA-unloaded shoulders. The mineral-to-matrix ratio in mineralized fibrocartilage was not affected by loading. However, the crystallographic atomic order of the hydroxylapatite phase (a measure of crystallinity) was reduced and the amount of carbonate (substituting for phosphate) in the hydroxylapatite crystals was increased. Taken together, these micrometer-scale structural and compositional changes partly explain the observed decreases in the mechanical functionality of the tendon enthesis in the absence of muscle loading.
Related Concept Videos
Motor Unit Stimulation
The latent period of contraction marks the onset of excitation-contraction coupling, when the action potential propagates across the sarcolemma, preparing the muscle fibers for contraction. As the fibers enter the contraction phase, the...
Gross Anatomy of Skeletal Muscles
Exercise and Muscle Performance
Endurance exercises
Endurance exercises involve running, swimming, or cycling, which require repetitive movements with low force output. When a person engages in endurance exercise, a few noticeable changes occur in their skeletal muscles. For instance, the number of capillaries...
Excitation-Contraction Coupling in Skeletal Muscles
When an action potential...
Muscle Stimulation Frequency
Wave summation
At low firing rates, motor neurons induce individual twitch contractions in muscle fibers. These twitches...
Isotonic and Isometric Muscle Contractions
Isotonic contractions
Isotonic contractions occur when a muscle changes length while the...
