MOTS-C

Mitochondrial peptide

MOTS-c is a mitochondria-derived peptide studied for its potential role in supporting cellular metabolism and influencing how cells respond to stress. Research suggests it may modulate glucose metabolism, improve mitochondrial function and influence inflammation, making it distinct from many traditional metabolic agents.

Unlike larger peptides, MOTS-c is a small peptide encoded by mitochondrial DNA that can act both locally and systemically. It appears to complement endogenous pathways rather than replace native hormonal signals.

In research, MOTS-c is classified as a mitochondrial-derived signaling peptide (MDP); studies examine its mechanisms, dose-response, tissue distribution, and roles in metabolic regulation and aging.

For laboratory research use only. Not intended for human or animal use.

IMPORTANT: This product is a research chemical sold exclusively for in vitro research, laboratory testing, and non-clinical research applications. It is not an FDA-approved drug. It is not intended to diagnose, treat, cure, mitigate, or prevent any disease or medical condition. Not for human or veterinary use. Purchaser assumes full responsibility for compliance with all applicable federal, state, and local regulations governing the acquisition and use of research chemicals.

Price range: $99.99 through $299.99

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Verified Quality

Rigorous identity & purity verification for every batch.

Third-party Lab Tested

Independent laboratory analysis for unbiased results.

COA Available

Certificate of Analysis available for every batch.

99% Purity Standard

Manufactured to the highest purity benchmark.

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MOTS-C

Price range: $99.99 through $299.99

Handling & Storage

Lyophilized Powder

Store frozen at ≤ −20°C. For long-term storage prefer −80°C. Minimize ambient exposure.

Reconstituted Solution

Refrigerate at 2-8°C. Protect from light, keep capped.

Avoid

Repeated freeze-thaw cycles. Prolonged ambient exposure. Vigorous shaking or vortexing.

Certificate of Analysis & Lab Reports

Every batch is independently tested by an accredited third-party laboratory. Certificates of Analysis confirm purity, identity, and composition — available by lot number. This is our primary commitment to research integrity.

HPLC

High-Performance Liquid Chromatography

Confirms compound identity and
purity profile through retention time analysis.

Laboratory Research

Early laboratory research has examined MOTS-C for its role in the following biological systems. All findings are from preclinical and in vitro models. No human claims are made.

Blood Vessel Growth

In preclinical models, BPC-157 has been observed to promote angiogenesis — the formation of new blood vessels from existing vasculature. Studies suggest it may upregulate VEGF (vascular endothelial growth factor) expression, which plays a central role in endothelial cell proliferation and vessel formation.

Research in rodent models of ischemic injury has shown accelerated vascular repair following BPC-157 administration, with increased capillary density observed at wound sites. These findings point to a potential mechanism involving nitric oxide system modulation.

Additional in vitro studies on human umbilical vein endothelial cells (HUVECs) demonstrated enhanced tube formation and migration when exposed to BPC-157, supporting the hypothesis of direct endothelial activity.

These observations remain limited to preclinical research. No clinical trials have confirmed these effects in humans.

Tissue Rebuilding

Laboratory studies have examined BPC-157’s influence on tissue regeneration across multiple connective tissue types including tendon, ligament, muscle, and bone. In rat models of Achilles tendon transection, BPC-157 treatment was associated with improved tensile strength and accelerated healing.

Fibroblast outgrowth and collagen organization appear enhanced in BPC-157–treated cultures, suggesting a role in extracellular matrix remodeling. Growth hormone receptor expression was also upregulated in some tissue repair models.

Preclinical bone defect models have shown increased osteogenic activity, though the exact signaling cascade remains under investigation. These findings are preliminary and have not been replicated in human studies.

Cell Movement & Growth

In vitro research has demonstrated that BPC-157 may influence cell migration and proliferation pathways. Scratch assay studies on fibroblast and epithelial cell lines showed accelerated wound closure rates compared to untreated controls.

Signaling pathway analysis suggests involvement of FAK (focal adhesion kinase) and paxillin phosphorylation, both critical regulators of cellular motility. MAPK/ERK pathway activation has also been observed in treated cell cultures.

These cellular-level observations provide mechanistic context for the tissue-level healing effects seen in animal models, though direct clinical translation has not been established.

Blood Flow Signaling

Research indicates BPC-157 may interact with the nitric oxide (NO) system, a key regulator of vascular tone and blood flow. In rodent models of experimentally induced hypertension and hypotension, BPC-157 appeared to normalize blood pressure toward baseline values.

Studies have shown modulation of both endothelial nitric oxide synthase (eNOS) and inducible NOS (iNOS) expression in treated vascular tissues. This dual-directional activity is unusual among peptide compounds studied in this context.

Dopaminergic and serotonergic system interactions have also been noted, suggesting possible cross-talk between vascular signaling and neurotransmitter regulation. All findings remain preclinical.

Cell Communication

Preclinical research has explored BPC-157’s influence on intercellular signaling cascades. GAP junction activity and paracrine signaling appear modulated in BPC-157–treated tissue cultures, potentially enhancing coordinated cellular responses during repair processes.

Cytokine profiling in inflammatory models has shown altered expression of TNF-α, IL-6, and IL-10, suggesting immunomodulatory properties that may contribute to the tissue-protective effects observed in vivo.

Gene expression studies have identified upregulation of growth factor receptors and wound-healing associated genes, though the precise molecular targets of BPC-157 remain an active area of investigation. No clinical data currently support these mechanisms in humans.

Research Context

MOTS-c (Mitochondrial Open Reading Frame of the 12S rRNA Type-c) is a 16-amino-acid peptide encoded by mitochondrial DNA. It is studied in controlled research settings for its interactions with AMPK signaling, glucose metabolism, and mitochondrial function. Unlike nuclear-encoded peptides, MOTS-c is a mitochondrial-derived signaling peptide (MDP) that has been observed to act both locally and systemically in preclinical models.

For laboratory research use only. Not intended for human or animal use.

TECHNICAL SPECIFICATIONS

CAS Number 1627580-64-6
Molecular Formula C101H152N28O22S2
Molecular Weight 2,174.62 g/mol
Amino Acid Sequence Met–Arg–Trp–Gln–Glu–Met–Gly–Tyr–Ile–Phe–Tyr–Pro–Arg–Lys–Leu–Arg
Chemical Class Polypeptide / Mitochondrial-derived peptide
Appearance White to off-white lyophilized powder
Solubility Soluble in sterile water or sterile reconstitution solution
Storage (Lyophilized) ≤ −20°C; protect from light and moisture
Storage (Reconstituted) 2–8°C
SUPPORT & RESOURCES

Frequently Asked Questions

How should MOTS-C be stored?

Lyophilized (powder) form: Store at ≤ −20°C. For long-term storage, −80°C is preferred. Keep sealed and protect from light and moisture. Reconstituted solution: Refrigerate at 2–8°C, keep capped. Avoid repeated freeze–thaw cycles.

Is MOTS-C intended for human or veterinary use?

No. This product is sold exclusively as a research chemical for in vitro and preclinical laboratory investigation. It is not an FDA-approved drug and is not intended to diagnose, treat, cure, or prevent any disease or medical condition. Not for human or veterinary use.

Can MOTS-C be combined with other peptides in research?

Some researchers combine peptides in preclinical protocols to study potential synergistic effects. Combination protocols should be based on peer-reviewed literature and institutional approval.

Which routes of administration are used in preclinical studies?

Published preclinical studies have used intraperitoneal, subcutaneous, intragastric, and topical routes of administration. Route selection depends on the research model and target tissue.

What are MOTS-C’s main areas of preclinical study?

Preclinical research has explored this compound in controlled laboratory settings using cell cultures and animal models. Specific research areas vary by compound. All findings are limited to in vitro and animal studies and do not constitute evidence of efficacy in humans.

What quality documentation is available?

Velari Labs provides a Certificate of Analysis (COA) for every batch, including HPLC purity data and identity confirmation from an accredited third-party laboratory. COAs are available by lot number upon request.

IMPORTANT: This product is a research chemical sold exclusively for in vitro research, laboratory testing, and non-clinical research applications. It is not an FDA-approved drug. Not for human or veterinary use. It is not intended to diagnose, treat, cure, mitigate, or prevent any disease or medical condition. Purchaser assumes full responsibility for compliance with all applicable federal, state, and local regulations governing the acquisition and use of research chemicals. Velari Labs is not a compounding pharmacy or outsourcing facility as defined under Sections 503A or 503B of the Federal Food, Drug, and Cosmetic Act.