MOTS-c – Mitochondrial-Derived Research Peptide
MOTS-c is an advanced mitochondrial-derived peptide composed of 16 amino acids. Its sequence is encoded by a short open reading frame within the mitochondrial 12S ribosomal RNA region, making MOTS-c a distinctive research compound at the intersection of mitochondrial genetics, cellular signalling and metabolic regulation.
Unlike most peptides, which are encoded by genes located in the nuclear genome, MOTS-c originates from mitochondrial DNA. This unusual biological origin makes it particularly relevant for professional laboratory research involving mitochondria-to-nucleus communication, cellular energy sensing, AMPK-related pathways, skeletal-muscle metabolism and adaptive responses to metabolic stress.
MOTS-c is supplied as a premium lyophilised research material in a securely sealed vial with clear batch-specific information, professional packaging and fast delivery from Peptides Divas.
Vigtige produktfunktioner
- Mitochondrial-derived research peptide
- Clearly defined 16-amino-acid structure
- Encoded within the mitochondrial 12S-rRNA region
- Relevant for AMPK-related signalling research
- Suitable for mitochondrial bioenergetics studies
- Useful for cellular energy and metabolic research
- Relevant for skeletal-muscle cell models
- Suitable for stress-response and nuclear-signalling studies
- Leveres som frysetørret forskningsmateriale
- Tydelige batchspecifikke produktoplysninger
- Sikker og diskret emballage
- Hurtig og sporbar levering i Europa
What Is MOTS-c?
MOTS-c stands for Mitochondrial Open Reading Frame of the 12S rRNA Type-c.
It is part of a growing group of mitochondrial-derived peptides produced from short open reading frames found within mitochondrial genetic material. These peptides are studied as signalling molecules that may help mitochondria communicate with other parts of the cell.
MOTS-c consists of 16 amino acids and has been examined in laboratory and preclinical models involving cellular metabolism, energy sensing, mitochondrial function and adaptive stress responses.
Its mitochondrial origin gives MOTS-c a distinctive research profile compared with conventional peptides encoded by nuclear DNA.
Mitochondrial-Derived Peptide Research
Mitochondria are best known for their role in cellular energy production, but they also participate in signalling, stress adaptation and communication with the nucleus.
Mitochondrial-derived peptides are studied as potential molecular messengers within these processes.
MOTS-c may be relevant for research involving:
- Mitochondrial genetic signalling
- Mitochondria-to-nucleus communication
- Cellular energy sensing
- Metabolic adaptation
- Mitochondrial stress responses
- Nuclear gene-expression regulation
- Cellular homeostasis
- Retrograde signalling
- Mitochondrial peptide biology
- Comparative mitochondrial-derived peptide analysis
AMPK-Related Research
AMP-activated protein kinase, commonly known as AMPK, is an important cellular energy sensor.
AMPK activity is studied in relation to how cells detect and respond to changes in available energy. When cellular energy conditions change, AMPK-associated pathways can influence glucose utilisation, fatty-acid metabolism and other energy-producing processes.
MOTS-c has been investigated in relation to AMPK activation and may be relevant for research involving:
- Cellular energy sensing
- AMPK signalling
- AMP-to-ATP balance
- Metabolic stress responses
- Glucose-uptake pathways
- Fatty-acid utilisation
- Cellular substrate selection
- Energy-homeostasis mechanisms
- Metabolisk fleksibilitet
- Comparative AMPK-pathway research
These research areas describe experimental mechanisms and do not represent established therapeutic outcomes.
Folate and Purine Pathway Research
Early mechanistic studies examined the relationship between MOTS-c, the folate cycle and de novo purine biosynthesis.
These pathways are closely connected with nucleotide production, cellular growth and energy-status sensing.
Potential laboratory applications include:
- Folate-cycle metabolism
- De novo purine biosynthesis
- AICAR-related pathway research
- Nucleotide metabolism
- Metabolic-intermediate analysis
- AMPK-associated metabolic responses
- Cellular metabolomics
- Pathway-inhibition studies
- Comparative metabolic profiling
- Biochemical pathway mapping
The relationship between folate metabolism, purine synthesis and AMPK activation makes MOTS-c useful for laboratories studying interconnected cellular metabolic networks.
Mitochondrial Bioenergetics Research
Mitochondrial bioenergetics refers to the processes through which mitochondria convert nutrients into usable cellular energy.
MOTS-c may be relevant for studies involving:
- Mitochondrial respiration
- Oxidative phosphorylation
- Oxygen-consumption analysis
- Mitochondrial efficiency
- Cellular ATP-related pathways
- Electron-transport activity
- Reactive oxygen species
- Redox handling
- Mitochondrial integrity
- Metabolic substrate utilisation
- PGC-1α-related pathways
- AMPK-dependent mitochondrial responses
Recent preclinical research has continued to investigate how MOTS-c interacts with AMPK and PGC-1α-dependent pathways involved in muscle mitochondrial function.
Skeletal-Muscle Research
Skeletal muscle is a major site of cellular energy use and metabolic adaptation.
MOTS-c has been examined in skeletal-muscle cells and animal models involving:
- Muscle-cell metabolism
- Myoblast adaptation
- Mitochondrial activity in muscle
- Glucose-utilisation pathways
- Aminosyremetabolisme
- Glycolytic pathways
- Oxidative muscle characteristics
- Metabolisk fleksibilitet
- Cellular responses to energetic demand
- Exercise-associated molecular signalling
- Age-related muscle metabolism
- Comparative muscle-cell assays
These studies make MOTS-c particularly relevant for researchers investigating how mitochondrial signals influence muscle-cell energy systems.
Metabolic Stress Research
Cells are continually exposed to changing conditions involving nutrient availability, oxidative stress, temperature and energy demand.
MOTS-c has been studied as part of adaptive cellular responses to metabolic stress.
Potential research areas include:
- Nutrient-deprivation models
- Glucose-restriction research
- Oxidative-stress pathways
- Heat-stress responses
- Cellular proteostasis
- Stress-responsive gene expression
- Mitochondrial adaptation
- Cellular survival signalling
- Homeostatisk regulering
- HSF1-related pathways
- Stress-induced nuclear translocation
Laboratory findings suggest that MOTS-c may relocate to the nucleus under certain metabolic-stress conditions, where it can participate in the regulation of stress-responsive gene expression.
Mitochondria-to-Nucleus Communication
Mitochondria and the nucleus continuously exchange information to coordinate metabolism and cellular adaptation.
MOTS-c is studied as a potential mitochondrial signal involved in retrograde communication from mitochondria to the nucleus.
Relevant research applications include:
- Nuclear translocation
- Mitochondrial retrograde signalling
- Adaptive gene expression
- Stress-responsive transcription
- Nuclear–mitochondrial coordination
- Metabolic gene regulation
- Cellular homeostasis
- Transcription-factor interactions
- Chromatin-associated signalling
- Comparative gene-expression analysis
This research area helps expand the traditional view of mitochondria from energy-producing organelles to active participants in cellular communication.
Exercise-Associated Research
Endogenous MOTS-c has been studied in relation to exercise and skeletal-muscle activity.
Human observational research has examined changes in naturally produced MOTS-c in skeletal muscle and circulation following exercise. Experimental administration studies have largely been performed in mice and cellular models.
Potential research topics include:
- Exercise-induced peptide expression
- Skeletal-muscle adaptation
- Metabolic demand signalling
- Physical-stress responses
- Muscle mitochondrial function
- Energi-substratudnyttelse
- Exercise-responsive gene expression
- Age-related metabolic adaptation
- Cellular endurance pathways
- Comparative exercise models
MOTS-c should not be presented as a replacement for exercise or as a proven performance-enhancing product.
Age-Related Research Models
Mitochondrial function and metabolic flexibility can change with age.
MOTS-c has been investigated in preclinical aging models involving:
- Age-related mitochondrial changes
- Skeletal-muscle metabolism
- Cellular energy regulation
- Metabolisk fleksibilitet
- Stress adaptation
- Proteostasis
- Physical-capacity models
- Mitochondrial gene signalling
- Redox balance
- Comparative young and aged cell models
Results from animal studies should not automatically be interpreted as evidence of anti-aging effects in humans.
Potentielle forskningsanvendelser
MOTS-c may be suitable for controlled scientific studies involving:
- Mitochondrial-derived peptide biology
- Mitochondrial genome signalling
- AMPK-associated pathways
- Cellular energy metabolism
- Mitochondrial respiration
- Oxidative phosphorylation
- Skeletal-muscle metabolism
- Metabolic-stress responses
- Folate-cycle research
- Purine biosynthesis
- Nuclear translocation
- Adaptive gene expression
- Metabolisk fleksibilitet
- Exercise-associated signalling
- Aging-related cellular models
- Redox and oxidative-stress research
- Analytisk peptidkarakterisering
- Stabilitets- og nedbrydningstest
The exact experimental concentrations, controls, solvents and analytical procedures should be determined by the qualified laboratory conducting the research.
MOTS-c Versus Conventional Peptides
MOTS-c differs from many commonly studied peptides because its natural sequence is encoded within mitochondrial rather than nuclear genetic material.
| Karakteristisk |
MOTS-c |
| Peptide category |
Mitochondrial-derived peptide |
| Peptidlængde |
16 amino acids |
| Genetic origin |
Mitochondrial 12S-rRNA region |
| Primary research areas |
Energy metabolism and mitochondrial signalling |
| Related pathway |
AMPK-associated cellular energy sensing |
| Research format |
Synthetic lyophilised peptide |
This unusual origin makes MOTS-c particularly valuable for research into mitochondrial genetics and inter-organelle communication.
Produktspecifikationer
| Produktkarakteristik |
Information |
| Produktnavn |
MOTS-c |
| Fulde navn |
Mitochondrial Open Reading Frame of the 12S rRNA Type-c |
| Produktkategori |
Mitochondrial-derived research peptide |
| Peptidlængde |
16 amino acids |
| Genetic origin |
Mitochondrial 12S-rRNA region |
| Primary research focus |
Mitochondrial and metabolic signalling |
| Related pathway |
AMPK-associated energy sensing |
| Form |
Frysetørret forskningsmateriale |
| Præsentation |
Sikkert forseglet forskningsflaske |
| Dokumentation |
Batchspecifikke analytiske oplysninger |
| Emballage |
Sikker og diskret emballage |
| Tilsigtet anvendelse |
Videnskabelig, analytisk og laboratorieforskning |
Frysetørret forskningsformat
MOTS-c is supplied as a lyophilised research material in a securely sealed vial.
Lyophilisation removes moisture and helps support peptide stability during controlled storage and transport. Minor differences in appearance may occur because of production conditions, quantity and residual moisture.
Product identity, purity and analytical quality should be confirmed through the documentation associated with the applicable batch rather than physical appearance alone.
Kvalitet og produkttransparens
Peptides Divas focuses on clear product information, professional handling and batch-level traceability.
Available analytical documentation may include:
- Produktidentifikation
- Amino-acid sequence
- Batch- eller lotnummer
- Rapporteret renhed
- HPLC-analyse
- Massespektrometridata
- Testoplysninger
- Produktets udseende
- Opbevaringsanbefalinger
This provides researchers with clear and traceable product information for the applicable batch.
Opbevaringsoplysninger
Store MOTS-c in its original sealed packaging under the conditions stated on the product label and applicable batch documentation.
Protect the research material from:
- Direkte sollys
- Overdreven varme
- Fugtighed
- Forurening
- Beskadiget emballage
- Gentagne temperaturudsving
- Unødvendig eksponering for luft
The receiving laboratory is responsible for establishing appropriate preparation, handling and storage procedures for its specific research protocol.
Why Choose MOTS-c?
MOTS-c offers a distinctive research profile for laboratories studying mitochondrial communication, cellular energy sensing and metabolic adaptation.
Key research advantages include:
- Unique mitochondrial genetic origin
- Clearly defined 16-amino-acid structure
- Relevant for AMPK-pathway research
- Suitable for mitochondrial bioenergetics studies
- Useful for skeletal-muscle cell models
- Relevant for metabolic-stress research
- Valuable for mitochondria-to-nucleus signalling studies
- Convenient lyophilised research format
- Tydelige batchspecifikke produktoplysninger
Hvorfor bestille fra Peptides Divas?
Peptides Divas combines carefully selected research materials with fast, reliable and professional service.
Customers benefit from:
- Tydelig viste produktspecifikationer
- Batchspecifikke analytiske oplysninger
- Hurtig ordrebehandling
- Sikker og diskret emballage
- Sporbare forsendelsesmuligheder
- Omhyggelig beskyttelse af hætteglasset
- Responsiv kundesupport
- Pålidelig europæisk levering
Choose MOTS-c from Peptides Divas for advanced laboratory research involving mitochondrial signalling, cellular energy metabolism, AMPK pathways and adaptive stress responses.
For laboratory research use only. Not intended for human or veterinary use.