MOTS-C 10mg

MOTS-C 10mg

$75.00

Mitochondrial-derived peptide studied for metabolic regulation, glucose metabolism, and cellular energy. 10mg | For research and laboratory use only.

MOTS-c is a mitochondrial-derived peptide encoded within mitochondrial DNA, making it a unique class of signaling molecule involved in cellular energy regulation and metabolic homeostasis. Since its discovery, it has become a key compound in research examining how mitochondria communicate with the rest of the cell to regulate metabolic function.

In laboratory studies, MOTS-c has been investigated for its potential to improve insulin sensitivity, support glucose metabolism, and enhance cellular resilience under metabolic stress. Its influence on the AMPK pathway — a master regulator of cellular energy balance — has made it a valuable compound in exercise physiology and metabolic health research.

Key Research Features:
– Cellular Energy Regulation: Studied for its role in mitochondrial signaling and metabolic homeostasis
– Glucose Metabolism: Investigated for effects on insulin sensitivity and glucose uptake in research models
– AMPK Pathway Activation: Explored for its influence on cellular energy sensing mechanisms
– Exercise Physiology Research: Associated with studies on endurance and metabolic stress responses
– Research-Grade Quality: Intended strictly for laboratory and scientific research purposes only

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Description

MOTS-c is a mitochondrial-derived peptide encoded within mitochondrial DNA, making it a unique class of signaling molecule involved in cellular energy regulation and metabolic homeostasis. Since its discovery, it has become a key compound in research examining how mitochondria communicate with the rest of the cell to regulate metabolic function.

In laboratory studies, MOTS-c has been investigated for its potential to improve insulin sensitivity, support glucose metabolism, and enhance cellular resilience under metabolic stress. Its influence on the AMPK pathway — a master regulator of cellular energy balance — has made it a valuable compound in exercise physiology and metabolic health research.

Key Research Features:
– Cellular Energy Regulation: Studied for its role in mitochondrial signaling and metabolic homeostasis
– Glucose Metabolism: Investigated for effects on insulin sensitivity and glucose uptake in research models
– AMPK Pathway Activation: Explored for its influence on cellular energy sensing mechanisms
– Exercise Physiology Research: Associated with studies on endurance and metabolic stress responses
– Research-Grade Quality: Intended strictly for laboratory and scientific research purposes only

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