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04/07/2026
04/07/2026

The Emerging Science of Fascia and Expanding Our Understanding

Modern research has shown that fascia is far more than connective tissue. It forms a continuous body-wide network that senses mechanical forces, communicates with the nervous system, distributes load, stores and returns elastic energy, and adapts to training, injury, and rehabilitation.

Some researchers have even proposed that the fascial network—and perhaps its water-rich extracellular matrix—functions as a highly responsive biological communication system, or even an “antenna” for mechanical information. While this hypothesis remains under active investigation, it reflects just how rapidly our understanding of fascia is evolving.

As scientists continue to study this remarkable tissue, fascia is emerging as one of the most important integrative systems in the horse’s body, influencing movement, coordination, performance, and recovery in ways that were unimaginable only a few decades ago.

Fascia is a Sensory Hub

Many fascial tissues contain substantially more sensory nerve endings than adjacent muscle, including mechanoreceptors that detect tension, pressure, stretch, vibration, and movement. These receptors continuously send information to the nervous system about body position, loading, and movement, contributing to proprioception and motor control.

Rather than acting as an inert wrapping around muscles, fascia functions as an active sensory interface between the body and the nervous system.

Movement begins before muscles contract.

Emerging research suggests that the fascial network is continually maintained under a degree of resting tension, sometimes referred to as pre-stress. This tension may help pre-position and pre-load the body, allowing movement to begin more efficiently.

Instead of movement being initiated solely by muscle contraction, fascia participates in preparing the body for movement while simultaneously providing continuous sensory feedback to the nervous system.

Fascia, it seems, contributes to movement in ways that extend beyond far beyond simply connecting muscles together.

Fascia Transfers Force Throughout the Body

Fascia forms a continuous three-dimensional connective tissue network that links muscles, tendons, ligaments, bones, and organs.

Through this network, fascial pathways distribute force is across multiple regions of the body.

A well-conditioned fascial network improves the efficiency of force transmission, coordination, and movement while also contributing to elastic energy storage and return during locomotion.

Fascia is Dynamic and Adaptable

Fascial tissues constantly respond to movement and loading.

Their mechanical properties change with exercise, training, injury, hydration, age, and recovery stage. Fascia continually remodels in response to the demands placed upon it.

This adaptability helps explain why movement quality, conditioning, recovery, and bodywork can all influence how the body functions.

Fascia Also Has Unique Electrical Properties

Collagen-rich fascial tissues exhibit piezoelectric properties, meaning that mechanical loading can generate tiny electrical potentials within the tissue.

These signals are thought to contribute to cellular communication, tissue adaptation, and remodeling. The water-rich extracellular matrix surrounding fascial tissues also plays an important role in their mechanical and electrical behavior, making this an active area of research in mechanobiology.

An Expanding Understanding

Modern fascia research increasingly recognizes fascia as one of the body’s primary integrative tissues, linking sensation, movement, force transmission, adaptation, and communication. As our understanding continues to expand, fascia is reshaping how we think about equine movement, performance, rehabilitation, and bodywork.

https://koperequine.com/fascial-integration-in-the-equine-forelimb-a-dynamic-shock-absorption-system/

27/06/2026
27/06/2026

Equine Insulin
Brian S. Burks, DVM
Diplomate of the American Board of Veterinary Practitioners®
394 Fox Road
Apollo, PA 15613

(724) 727-3481
www.foxrunequine.com

Glucose, the simplest sugar molecule, is the energy currency of the body. Although horses derive free fatty acids from the forage consumed and digested in the colon, there are many cells in the body that require glucose to function, particularly brain and renal cells. Without glucose, these cells cease to function and the organ will die. This molecule requires help getting from the digestive system into the bloodstream and then into various organs and cells.

Insulin is secreted by the pancreas when glucose is ingested, ensuring that it gets into the cells; without insulin and glucose, the cells, and ultimately the body, cannot survive. If the body signals for too much insulin, things can go awry quickly. In some horses, this is a genetic trait, such as Arabians, Morgans, ponies, and some Warmbloods, that causes insulin overproduction.

Horses, like humans, that are insulin resistant continue to overproduce insulin in response to insensitivity, but in humans the pancreas eventually wears out and shuts down insulin production, which is Type 2 diabetes. Unlike humans, horses have a much greater capacity for insulin production, making diabetes rare in horses.

Horses that are overfed carbohydrates can develop laminitis. Insulin activates a cell receptor to allow glucose to enter the cell. There is similar receptor with a different function called insulin-like growth factor (IGF). There is evidence that the lamellar cells in the hoof grow too fast because this cell receptor is accidentally activated and cellular attachment is disrupted, leading to laminitis, a most devastating side effect of insulin dysregulation.

Insulin anomalies do not change equine activity levels, but excessive insulin can damage other organs and can lead to obesity. This may lead to benign fatty tumors/pedunculated limpomas that can twist around the intestine, causing strangulating incarceration and intestinal death, requiring colic surgery. Excessive weight also stresses bones and joints.

Horses with insulin dysregulation are best fed limited carbohydrate diets. Additionally, horses require exercise, medications, and endocrine testing. This typically means avoiding lush green pastures and supplemental concentrates. Severely affected horses should have their hay tested for ethanol soluble carbohydrate (ESC) and starch concentrations, which should not exceed 10% of the daily ration.

Exercise is important to improve insulin sensitivity in both horses and humans. Daily lunging or riding at a trot or canter is required, not just turn out to wander in the pasture. They need to break a sweat. Of course, horses with laminitis may not be able to exercise due to compromise of the feet.

Horses that cannot exercise often benefit from synthetic thyroxine to speed up metabolism and reduce development of fat deposits. It also improves insulin sensitivity.

Older horses are at risk for diseases such as pituitary pars intermedia dysfunction (PPID, or equine Cushing’s disease). Age and body condition will affect insulin concentrations, so an annual test would be wise in a previously diagnosed case.

Radiographs of the feet can also be quite helpful. Laminitis can be quite insidious and the horse might not be overtly lame, but radiographic changes can be significant.

30/04/2026
30/04/2026

Event starts: Tuesday, May 5, 2026 06:00 PM Europe/Warsaw

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