
This program combines the frequencies of peptides and a new form of frequencies called the Resonant Recognition Model. Fungus Detox addresses molds, Candida, yeast, Ringworm, mycotoxins, Aspergillus fungi, Cryptococcus neoformans or gattii, and Histoplasma capsulatum.
NOTE: It is recommended to do the Peptide Detox and Deep Detox before beginning the Fungus Program.
Antifungal (General)
Peptides address general antifungal activity, including membrane disruption, pore formation, intracellular targeting, immunomodulation, and cell wall interference.
Aspergillosis
Aspergillosis refers to a spectrum of diseases caused by Aspergillus fungi, most commonly A. fumigatus, including invasive aspergillosis in immunocompromised patients, chronic forms, and allergic bronchopulmonary aspergillosis.
Peptides address antifungal activity, mitochondrial dysfunction, membrane disruption, growth inhibition, and reduce excessive inflammation.
Candidiasis
Candidiasis refers to opportunistic infections caused by Candida species (primarily Candida albicans), ranging from superficial (oral, vaginal) to invasive systemic forms, often in immunocompromised individuals. Key axes include fungal membrane integrity, biofilm formation, hyphal morphogenesis, ROS-mediated cell death, and virulence factor expression.
Peptides address membrane disruption, ROS induction, mitochondrial targeting, pore formation, and biofilm/hyphal inhibition.
Chronic Invasive Mold Infection with Stroke-Like Neurological Symptoms
Chronic invasive mold infections (e.g., invasive aspergillosis or mucormycosis with CNS extension) cause stroke-like neurological symptoms via hyphal angioinvasion, thrombosis, and cerebral infarction, compounded by neuroinflammation and oxidative stress.
Peptides target fungal clearance, fungal membrane disruption, ischemic neuroprotection, mitochondrial function, antifungal activity, nerve outgrowth stimulation, extracellular matrix remodeling, growth factor expression, and antioxidant effects to support neural recovery, anti-inflammatory, and repair pathways in cerebral ischemia models without hematopoietic effects.
Cryptococcosis
Cryptococcosis is an invasive fungal infection caused by Cryptococcus neoformans or gattii, commonly affecting immunocompromised individuals with pulmonary or central nervous system involvement, chronic inflammation, and high mortality if untreated.
Peptides target fungicidal mechanisms, membrane disruption, immune enhancement, and inflammation control to eradicate the pathogen and support host recovery.
Cutaneous Candidiasis
Cutaneous candidiasis is a superficial fungal infection of the skin caused primarily by Candida albicans, often occurring in warm, moist areas and leading to redness, itching, and maceration. Standard treatments involve topical antifungals, but resistance is increasing.
Peptides address antifungal properties, membrane disruption, adhesion inhibition, apoptosis, intracellular targeting, immunomodulation, and antimicrobial activity.
Histoplasmosis
Histoplasmosis is a systemic fungal infection caused by the dimorphic fungus Histoplasma capsulatum, primarily affecting the lungs but potentially disseminating in immunocompromised individuals, characterized by intracellular survival in macrophages, granuloma formation, inflammation, and tissue damage.
Peptides target immune stimulation, direct membrane disruption, innate antimicrobial defense, anti-inflammatory control, and regenerative repair to enhance fungal clearance, modulate host response, and support tissue recovery.
Mycotoxicosis
Mycotoxicosis is the clinical syndrome resulting from exposure to mycotoxins, toxic secondary metabolites produced by molds such as Aspergillus, Fusarium, and Penicillium species contaminating crops, foods, and feeds. Major mycotoxins include aflatoxin B1 (hepatocarcinogenic), ochratoxin A (nephrotoxic), zearalenone (estrogen-like reproductive effects), fumonisins (neurotoxic), and trichothecenes such as deoxynivalenol (DON, causes emesis and feed refusal) and T-2 toxin (severe cytotoxicity). Acute exposure leads to symptoms like vomiting, diarrhea, anorexia, hemorrhage, and immune suppression; chronic exposure contributes to organ damage (liver, kidney), growth impairment, immunosuppression, and increased cancer risk.
Peptides target mycotoxin toxicity, oxidative stress, GI tract protection, antioxidant defenses, and mycotoxin absorption reduction.
Nail Fungus
Nail fungus, also known as onychomycosis, is a prevalent fungal infection affecting the nails, primarily caused by dermatophytes such as Trichophyton rubrum, leading to symptoms like nail thickening, discoloration, and brittleness. It poses challenges due to the nail’s barrier properties and fungal biofilm formation.
Peptides address antifungal activity, fungal cell membrane disruption, induction of reactive oxygen species, mitochondrial dysfunction, biofilm disruption, immune modulation, and nail penetration enhancement.
Ringworm
Ringworm, also known as dermatophytosis or tinea, is a contagious fungal infection of the skin, hair, or nails caused by dermatophytes such as Trichophyton, Microsporum, or Epidermophyton species, presenting as circular, red, itchy patches with raised edges.
Peptides target membrane disruption to lyse fungal cells, enhancement of host innate immunity to combat infection, cell wall inhibition to prevent fungal growth, and anti-biofilm activity to disrupt fungal communities.
Systemic Candidiasis
Systemic Candidiasis is a severe fungal infection caused by Candida species spreading to the bloodstream and organs, often in immunocompromised patients, leading to high mortality.
Peptides target fungal membrane disruption and cell death, cell wall integrity and fungal inhibition, biofilm management, hyphal inhibition, oxidative stress, immune enhancement, virulence neutralization, and synergistic effects to combat infection, reduce resistance, and improve outcomes.
Tinea Versicolor (Yeast Spots on Skin)
Tinea Versicolor is a common superficial fungal infection caused by overgrowth of Malassezia yeast species on the skin, leading to hypo- or hyperpigmented spots due to interference with melanin production and mild scaling.
Peptides address antifungal activity via membrane disruption and growth inhibition targeting Malassezia species, and provide anti-inflammatory benefits.
Resonant Recognition Model (RRM)
RRM frequencies offer a new way to address how proteins and other molecules in living things interact. Proteins are long chains of building blocks, and each chain has a hidden pattern that acts like a specific radio frequency. Just as radios tune into the same station to play the same song, proteins with matching frequencies can “hear” each other and work together, even from a distance.
In this model, the protein’s chain is converted into a series of special numbers, based on how electrons move in each building block. These numbers form a signal, similar to a sound wave. By analyzing that signal, we can identify the main frequency, which is like the dominant note in a chord. Proteins that share the same dominant note are more likely to connect for tasks like fighting infections or sending signals in the body.
Here, the frequency comes from the molecule’s overall makeup, much like how different materials in a bell produce different rings. This helps predict if a substance will interfere with a protein’s frequency, blocking negative effects, such as in Fungi. RRM is a tool to design better results by matching or disrupting energy patterns. RRM frequencies address:
Candida albicans, Candida glabrata, Candida parapsilosis, Candida tropicalis, Cladophialophora, Coccidioidomycosis, Cryptococcus gattii, Exophiala, Geotrichum candidum, Histoplasma capsulatum, Mucor, Nannizzia, Paracoccidioides, Pityriasis versicolor, Pneumocystis jirovecii, Pseudallescheria boydii, Zygomycosis
Emotional Balance
Peptides effectively manage stress, anxiety, and emotional responses, thereby promoting overall mental well-being. Emotional disruptions and imbalances can lead to conditions such as anxiety disorders, depression, or chronic stress. Peptides facilitate emotional balance by modulating neurotransmitter release (serotonin, dopamine, GABA), hormonal regulation (Hypothalamic-Pituitary-Adrenal axis via cortisol), neuropeptide signaling for social interaction, anxiety reduction, stress resilience, neuroprotection, anti-inflammatory effects, mood and pain-related emotions, and sleep regulation.
NOTE: Peptide programs were developed over eight years of research to support molecular-level frequency work. Peptide frequencies offer multitudes of benefits for the body. A particular peptide may be in a certain program for its medically researched and acknowledged benefits for a particular challenge, and it may also help in many other areas of the body. If your body doesn’t require the benefit of a particular peptide in frequency form, that peptide will not do anything for you and will not have any negative effect.
