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motsc15
Category:

MOTS-c 15MG

Mitochondrial ORF of the 12S rRNA type-cMRWQEMGYIFYPRKLR
A mitochondrial-derived peptide that modulates metabolic processes, with significant implications for exercise metabolism observed in rodent studies.

$50.00

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16
Amino Acids
Encoded in mitochondrial 12S rRNA gene
⚑
42%
AMPK Activation
Skeletal muscle AMPK phosphorylation increase
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60+
Published Studies
Mitochondrial peptide research papers
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99%+
Purity Verified
HPLC tested, COA included

How It Works

Mitochondrial-derived peptide signaling studied in metabolic, aging, and exercise biology research

AMPK Activation

AMP-Activated Protein Kinase Signaling

MOTS-c activates AMP-activated protein kinase (AMPK) in skeletal muscle, adipose tissue, and liver. AMPK is a master metabolic sensor that responds to cellular energy status. MOTS-c–induced AMPK activation in preclinical models was associated with increased glucose uptake, fatty acid oxidation, and mitochondrial biogenesis signaling.

  • Direct AMPK phosphorylation (Thr172) in skeletal muscle
  • Downstream activation of PGC-1Ξ± and mitochondrial biogenesis
  • Enhanced GLUT4 translocation and glucose uptake
mtDNA Origin

Mitochondria-to-Nucleus Retrograde Signaling

MOTS-c is encoded within the 12S rRNA gene of the mitochondrial genome β€” a discovery that established mitochondria as an endocrine organ capable of producing bioactive peptides. Under metabolic stress, MOTS-c translocates from mitochondria to the nucleus where it acts as a transcriptional regulator, modulating antioxidant response element (ARE) gene expression.

  • Encoded in mitochondrial DNA (12S rRNA gene region)
  • Nuclear translocation under metabolic stress conditions
  • Modulates ARE-driven antioxidant gene expression
Exercise Mimetic

Metabolic Homeostasis & Exercise Signaling

MOTS-c levels naturally rise in response to exercise, and exogenous MOTS-c administration in mouse models replicated several exercise-associated metabolic adaptations including improved insulin sensitivity, reduced adiposity, and increased physical endurance β€” even in sedentary animals. It inhibits the folate cycle and purine synthesis under stress, redirecting metabolic flux.

  • Endogenous levels increase with aerobic exercise
  • Improves insulin sensitivity in rodent obesity models
  • Inhibits AICAR-independent AMPK activation via folate cycle
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What Research Has Shown

Key preclinical findings from published mitochondrial peptide studies

AMPK Phosphorylation Increase (Skeletal Muscle) 42%
Fat Mass Reduction (HFD Mouse Models) 30%
Exercise Endurance Improvement (Aged Mice) 55%
Insulin Sensitivity (HOMA-IR Improvement) 38%
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Research Applications

Primary areas of investigation

METABOLIC RESEARCH

Insulin Resistance & Obesity

MOTS-c administration in high-fat diet mouse models improved insulin sensitivity, reduced fat accumulation, and normalized glucose tolerance β€” effects mediated primarily through skeletal muscle AMPK activation.

Lee C et al. 2015 β†—
AGING BIOLOGY

Age-Related Metabolic Decline

Circulating MOTS-c levels decline with age in both humans and rodents. Exogenous MOTS-c restored age-related declines in physical performance and metabolic flexibility in aged mouse models, suggesting its role in mitochondrial-nuclear communication during aging.

Reynolds JC et al. 2021 β†—
EXERCISE BIOLOGY

Exercise Mimicry

Circulating MOTS-c increases significantly with aerobic exercise in humans. In sedentary mouse models, exogenous MOTS-c replicated exercise-related improvements in energy metabolism, mitochondrial biogenesis markers, and physical endurance.

Kim SJ et al. 2022 β†—
LONGEVITY RESEARCH

mtDNA Variation & Longevity

Population studies identified MOTS-c variants (particularly R150Q) enriched in elderly Japanese populations. Genetic variation in MOTS-c sequence correlates with metabolic disease risk, linking mitochondrial peptide biology to human longevity phenotypes.

Zempo H et al. 2016 β†—
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Compound Information

Technical specifications

Chemical Name Mitochondrial Open Reading Frame of the 12S rRNA-c
Sequence MRWQEMGYIFYPRKLR
Molecular Weight 2174.6 Da

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