Metabolic Category
BAM-15
THE CALORIE BURNER
N5,N6-Bis(2-fluorophenyl)-1,2,5-oxadiazole-3,4-diamine
BAM-15 makes your mitochondria work less efficiently on purpose. This "inefficiency" means your cells burn more calories to produce the same energy - like running your car with the AC on full blast. Unlike older uncouplers (like DNP), BAM-15 does this safely without dangerous overheating. The result is increased fat burning, better insulin sensitivity, and improved metabolic health.
BAM-15 Evidence Snapshot
How these guides are reviewed- Regulatory status
- Not FDA approved · research use only
- Dosing guidance
- Reviewed by our clinical team
- Linked evidence
- 2 research sources
- Content updated
- May 8, 2026
Dose and schedule recommendations shown below come from The Peptide App Clinical Team. Research links are provided so readers can inspect the supporting evidence directly. Review the sources.
Quick Answers About BAM-15
Is BAM-15 FDA approved?
No. This profile records BAM-15 as not FDA approved and for research use only.
More context
Review the regulatory and source details on this page for the current context.
What dose does The Peptide App Clinical Team recommend for BAM-15?
Dose: 25-50 mg daily.
More context
Schedule: daily. Cycle: 2-8 weeks on, then assess. This is clinical-team guidance for reference and does not replace individualized instructions from a licensed clinician.
What research supports this BAM-15 guide?
This guide links to 2 curated or current research sources.
More context
Open the research section to inspect the source titles, publication details, study types, and available abstracts directly.
Review the BAM-15 research sourcesStudied Effects & Mechanisms
Mitochondrial Uncoupling
Makes cells burn extra calories by disrupting energy efficiency
Fat Oxidation
Forces the body to burn fat for fuel
Insulin Sensitivity
Improves glucose metabolism and reduces fatty liver
Oxidative Protection
Reduces harmful reactive oxygen species in mitochondria
Who is this for
People struggling with stubborn body fat · Those with fatty liver disease · Anyone wanting to boost resting metabolism · Longevity enthusiasts · Metabolic syndrome patients
Research-Market Price Snapshot
A compact market signal for this profile. The dedicated pricing page owns vendor, vial-size, and price-per-mg comparisons.
Updated Jul 19, 2026
- Vendors
- 1
- Listings
- 1
- Observed range
- $169–$169
BAM-15 Research
Live PubMed intelligence from the research crawler
Endogenous Energy Stores Maintain a High ATP Concentration for Hours in Glucose-Depleted Cultured Primary Rat Astrocytes.
Neurochemical research · Jul 1, 2023
Adenosine triphosphate (ATP) is the central energy currency of all cells. Cultured primary rat astrocytes contain a specific cellular ATP content of 27.9 ± 4.7 nmol/mg. During incubation in a glucose- and amino acid-free incubation buffer, this high cellular ATP content was maintained for at least 6 h, while within 24 h the levels of ATP declined to around 30% of the initial value without compromising cell viability. In contrast, cells exposed to 1 mM and 5 mM glucose maintained the initial high cellular ATP content for 24 and 72 h, respectively. The loss in cellular ATP content observed during a 24 h glucose-deprivation was fully prevented by the presence of glucose, fructose or mannose as well as by the mitochondrial substrates lactate, pyruvate, β-hydroxybutyrate or acetate. The high initial specific ATP content in glucose-starved astrocytes, was almost completely abolished within 30 min after application of the respiratory chain inhibitor antimycin A or the mitochondrial uncoupler BAM-15, while these inhibitors lowered in glucose-fed cells the ATP content only to 60% (BAM-15) and 40% (antimycin A) within 5 h. Inhibition of the mitochondrial pyruvate carrier by UK5099 alone or of mitochondrial fatty acid uptake by etomoxir alone hardly affected the high ATP content of glucose-deprived astrocytes during an incubation for 8 h, while the co-application of both inhibitors depleted cellular ATP levels almost completely within 5 h. These data underline the importance of mitochondrial metabolism for the ATP regeneration of astrocytes and demonstrate that the mitochondrial oxidation of pyruvate and fatty acids strongly contributes to the maintenance of a high ATP concentration in glucose-deprived astrocytes.
Research references
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